# Express-RLP

User’s Guide

intel

![Close-up of a green printed circuit board with integrated circuits and memory chips (no readable text or symbols)](.express-rlp-manual-50m-72139-2020-12/ba50ac9a6255fbdb44b69ca6004d6b47ae4cbc94a086c050c9253a9e668905b9.jpg)

Revision History

<table><tr><td>Revision</td><td>Description</td><td>Date</td><td>Author</td></tr><tr><td>1.0</td><td>Initial release</td><td>2023-11-15</td><td>CC</td></tr><tr><td>1.1</td><td>BIOS tables and PCIe suitability added</td><td>2024-06-17</td><td>AL</td></tr><tr><td>1.2</td><td>Pinouts and signal descriptions updated</td><td>2025-02-19</td><td>AL</td></tr></table>

# Preface

# Disclaimer

Information in this document is provided in connection with ADLINK products. No license, express or implied, by estoppel or otherwise, to any intellectual property rights is granted by this document. Except as provided in ADLINK´s Terms and Conditions of Sale for such products, ADLINK assumes no liability whatsoever, and ADLINK disclaims any express or implied warranty, relating to sale and/or use of ADLINK products including liability or warranties relating to fitness for a particular purpose, merchantability, or infringement of any patent, copyright or other intellectual property right. If you intend to use ADLINK products in or as medical devices, you are solely responsible for all required regulatory compliance, including, without limitation, Title 21 of the CFR (US), Directive 2007/47/EC (EU), and ISO 13485 & 14971, if any. ADLINK may make changes to specifications and product descriptions at any time, without notice.

# Environmental Responsibility

ADLINK is committed to fulfil its social responsibility to global environmental preservation through compliance with the European Union's Restriction of Hazardous Substances (RoHS) directive and Waste Electrical and Electronic Equipment (WEEE) directive. Environmental protection is a top priority for ADLINK. We have enforced measures to ensure that our products, manufacturing processes, components, and raw materials have as little impact on the environment as possible. When products are at their end of life, our customers are encouraged to dispose of them in accordance with the product disposal and/or recovery programs prescribed by their nation or company.

![The image displays a standard warning symbol: a yellow equilateral triangle with a thick black outline. Inside the triangle is a centered, black exclamation point. The background is white.](.express-rlp-manual-50m-72139-2020-12/4765f3478d5d8cbd36d56f1c02f1f187a1bdd5341ffb7a8fb011cdad9c21595e.jpg)

California Proposition 65 Warning: This product can expose you to chemicals including acrylamide, arsenic, benzene, cadmium, Tris(1,3- dichloro-2-propyl)phosphate (TDCPP), 1,4-Dioxane, formaldehyde, lead, DEHP, styrene, DINP, BBP, PVC, and vinyl materials, which are known to the State of California to cause cancer, and acrylamide, benzene, cadmium, lead, mercury, phthalates, toluene, DEHP, DIDP, DnHP, DBP, BBP, PVC, and vinyl materials, which are known to the State of California to cause birth defects or other reproductive harm. For more information go to www.P65Warnings.ca.gov.

![The image displays a black line drawing of a wheeled trash bin. A large 'X' is superimposed over the bin, crossing it out. At the bottom of the image, there is a solid black rectangular block.](.express-rlp-manual-50m-72139-2020-12/3ff468af16831ad04b8f739624980fb7a952704762eb7892e27b4084f00d97ae.jpg)

# Trademarks

Product names mentioned herein are used for identification purposes only and may be trademarks / registered trademarks of respective companies.

# Copyright © 2025 ADLINK Technology Incorporated

This document contains proprietary information protected by copyright. All rights are reserved. No part of this manual may be reproduced by any mechanical, electronic, or other means in any form without prior written permission of the manufacturer.

# Safety Instructions

For user safety, please read and follow all Instructions, WARNINGs, CAUTIONs, and NOTEs marked in this manual and on the associated equipment before handling/operating the equipment.

Read these safety instructions carefully.

Keep this manual for future reference.
• Read the specifications section of this manual for detailed information on the operating environment of this equipment.
• Turn off power and unplug any power cords/cables when installing/mounting or un-installing/removing equipment.
• To avoid electrical shock and/or damage to equipment:
• Keep equipment away from water or liquid sources;
• Keep equipment away from high heat or high humidity;
• Keep equipment properly ventilated (do not block or cover ventilation openings);
• Make sure to use recommended voltage and power source settings;
• Always install and operate equipment near an easily accessible electrical socket outlet;
• Secure the power cord (do not place any object on/over the power cord);
• Only install/attach and operate equipment on stable surfaces and/or recommended mountings;
• If the equipment will not be used for long periods of time, turn off the power source and unplug the equipment.

# Conventions

The following conventions may be used throughout this manual, denoting special levels of information

![The image displays a red icon on a white background. It features the outline of a document or page with a folded bottom-right corner. Inside the shape are three horizontal lines stacked vertically, resembling text on a page.](.express-rlp-manual-50m-72139-2020-12/968a96ad87ed1f3fca65aa6106b0a3d8a54675bad97ed9205348e704a6cc6906.jpg)

Note: This information adds clarity or specifics to text and illustrations.

![The image displays a standard warning sign: a yellow triangle with a thick black border. Inside the triangle is a large black exclamation point centered vertically.](.express-rlp-manual-50m-72139-2020-12/b0d0ca0aeda2bdc95fcb41563094a79c87f1384bf865fbd981ddd501a7a0d06e.jpg)

Caution: This information indicates the possibility of minor physical injury, component damage, data loss, and/or program corruption.

![The image shows a red triangular warning sign with a white border. Inside the red triangle is a white exclamation mark.](.express-rlp-manual-50m-72139-2020-12/43ebcc3a8a6d74e72f25ad7dd1bcd1d041880ea689d3b2503872108ae877b475.jpg)

Warning: This information warns of possible serious physical injury, component damage, data loss, and/or program corruption.

# Getting Service

Ask an Expert: https://www.adlinktech.com/en/Askanexpert

# ADLINK Technology, Inc.

No. 66, Huaya 1st Rd., Guishan District, Taoyuan City 333411, Taiwan

Tel: +886-3-216-5088

Fax: +886-3-328-5706

Email: service@adlinktech.com

# Ampro ADLINK Technology, Inc.

6450 Via Del Oro, San Jose, CA 95119-1208, USA

Tel: +1-408-360-0200

Toll Free: +1-800-966-5200 (USA only)

Fax: +1-408-600-1189

Email: info@adlinktech.com

# ADLINK Technology (China) Co., Ltd.

300 Fang Chun Rd., Zhangjiang Hi-Tech Park, Pudong New Area, Shanghai, 201203, China

Tel: +86-21-5132-8988

Fax: +86-21-5132-3588

Email: market@adlinktech.com

# ADLINK Technology GmbH

Hans-Thoma-Strasse 8-10, 68163 Mannheim, Germany

Tel: +49-621-43214-0

Fax: +49-621 43214-30

Email: emea@adlinktech.com

Please visit the Contact page at www.adlinktech.com for information on how to contact the ADLINK regional office nearest you.

# Table of Contents

Revision History ..

Preface .

List of Figures ...

1. Introduction .. .12
2. Specifications.. .13

2.1. Core System... . 13

2.2. Video.... ... 14

2.2.1 Display Interface Support.. . 15

2.3. Audio .. ... 15

2.4. Expansion Busses... ... 16

2.5. Ethernet ... . 17

2.6. Multi I/O and Storage... . 17

2.7. Trusted Platform Module (TPM).. .. 18

2.8. SEMA Board controller.. ... 19

2.9. Debug... ... 19

2.10. Power.... ... 19

2.11. Mechanical and Environmental .. . 20

3. Block Diagram .. ..21
4. Pinout and Signal Descriptions ... .22

4.1. Pin Summary .. . 22

4.2. Signal Terminology Descriptions... . 27

4.3. AB Connector Signal Descriptions .. . 28

4.3.1 Audio... ... 28

4.3.2 Analog VGA.. . 29

4.3.3 LVDS or eDP.... ... 30

4.3.4 Gigabit Ethernet... ... 33

4.3.5 SATA . . 34

4.3.6 PCI Express... ... 35

4.3.7 LPC Bus.. . 37

4.3.8 USB.. . 38

4.3.9 SPI Bus (BIOS only).. . 39

4.3.10 Miscellaneous.. .... 40

4.3.11 SMBus . . 41

4.3.12 I 2C Bus... . 41
4.3.13 General Purpose I/O (GPIO) .. . 42
4.3.14 Serial Interface Signals.. .... 42
4.3.15 Power and System Management . .... 43
4.3.16 Power and Ground .. ... 44

4.4. CD Connector Signal Descriptions.. . 45

4.4.1 USB 3.0 Extensions . ... 45
4.4.2 PCI Express.. .... 46
4.4.3 DDI1 Port... . 47
4.4.4 DDI2 Port... ... 50
4.4.5 DDI3 Port... . 53
4.4.6 PCIe Graphics Port (PEG)... . 56
4.4.7 Module Type Definition .. . 59
4.4.8 Power and Ground .. .... 60

5. Additional Features ... ...61

5.1. Module Feature Locations. . 61
5.2. Debug Connector.. . 62
5.3. Status LEDs.. . 63
5.4. Exception Codes.. . 64
5.5. Fan Connector.... ... 65
5.6. BIOS Default Reset Button.. .. 66
5.7. BIOS Boot Select.. . 67

6. System Resources ... ..68

6.1. System Memory Map... . 68
6.2. I/O Map ... . 68
6.3. Interrupt Request (IRQ) Lines . . 70
6.4. PCI Configuration Space Map.. . 71
6.5. PCI Interrupt Routing Map ... . 72
6.6. SMBus Address Table .. . 72

7. BIOS Setup... ..73

7.1. Menu Structure... . 73
7.2. Main .... . 74

7.2.1 BIOS Information.. . 74
7.2.2 System Information.. . 74
7.2.3 Board Information . . 75
7.2.4 System Date and Time.. ... 76
7.3. Advanced ... ... 76

7.3.1 CPU Configuration... . 76

7.3.2 Power & Performance Configuration... . 77

7.3.3 Graphic Configuration .. ... 99

7.3.4 Power Management .. ..101

7.3.5 System Management . ....102

7.3.6 Thermal Management... ..103

7.3.7 Watchdog Timer... ..105

7.3.8 Super IO Configuration . ..105

7.3.9 Miscellaneous .. ....108

7.3.10 USB Configuration.. ..109

7.3.11 NVMe Configuration .. ..110

7.3.12 AMI Graphics Output Protocol Policy .. ..110

7.3.13 Serial Console Redirection .. .111

7.3.14 Network Stack Configuration.. ..113

7.3.15 Trusted Computing ... ..113

7.4. Chipset .. ...113

7.4.1 Chipset > System Agent (SA) Configuration.. ..114

7.4.2 Chipset > PCH-IO Configuration.. ..120

7.5. Security ... ...126

7.5.1 Secure Boot menu . ..127

7.6. Boot ... ...127

7.6.1 Boot Configuration... ..127

7.7. Save & Exit... .....128

8. BIOS Checkpoints, Beep Codes .... . 129

8.1. Status Code Ranges . ...130

8.2. Standard Status Codes... .....131

8.2.1 SEC Phase.. ....131

8.2.2 SEC Beep Codes... ....132

8.2.3 PEI Phase.. ....132

8.2.4 PEI Beep Codes .. ....136

8.2.5 DXE Status Codes.. ..137

8.2.6 DXE Beep Codes.. ..141

8.2.7 ACPI/ASL Checkpoint .. ..141

8.3. OEM-Reserved Checkpoint Ranges.. ...142

9. Software Support ... . 143

9.1. Windows 10 IoT Enterprise 64-bit... ...143

9.2. Yocto Linux 64-bit .. .....143

10.Mechanical and Thermal... . 144

10.1. Module Dimensions .. ..144
10.2. Thermal Solutions . ...145
10.2.1 Heatspreader: HTS... ...145
10.2.2 Heatsink: THS... ...146
10.2.3 Heatsink High Profile: THSH.. ..147
10.2.4 Heatsink with Fan: THSF.. ...148

# List of Figures

Figure 1 – Module function diagram... ..21

Figure 2 – Module rear side row and pin numbering....... ...22

Figure 3 – Module feature locations (top side) ... ...61

Figure 5 – Express-RLP and Debug Module .... ..62

Figure 6 – Module mechanical dimensions ..... .. 144

Figure 7 – Heatspreader: HTS...... .. 145

Figure 8 – Heatsink: THS.... .. 146

Figure 9 – Heatsink High Profile: THSH .. .. 147

Figure 10 – Heatsink with Fan: THSF...... .. 148

# 1. Introduction

The Express-RLP is a COM.0 R3.1 compliant COM Express® Basic Size Type 6 module based on 13th Gen Intel® Core™ and Intel® Celeron® SoC utilizing Intel’s advanced hybrid architecture (formerly “Raptor Lake-P”). It features up to 6 Performance-cores (P-cores) for IoT workloads, maximum responsiveness and 8 Efficient-cores (E-cores) for offload multi-tasking at background, and is integrated with up to 96 Intel® Iris® Xe high performance graphics cores that boost productivity and fueling IoT innovation across a wide variety of deployments. Typical industries in need of such high performance, low power characteristics include industrial automation and control, medical ultra sound, image processing and analysis, high-speed video encoding and streaming, predictive traffic analysis, and multi camera-based AI.

The Express-RLP supports up to 64GB (2x 32GB) DDR5 memory, maximum 4800 MT/s memory frequency at two SODIMM sockets, and suits power envelopes ranging across 15, 28, and 45W, making it well suited for mission-critical applications for both stationary and mobile edge use cases.

The integrated Intel® Iris® Xe Graphics includes features such as OpenGL 4.5, DirectX 12, OpenCL 2.1/2.0/1.2, Intel® Clear Video HD Technology, and DirectX Video Acceleration (DXVA) support for full H.265/HEVC 10-bit, VP9 hardware codecs. In addition, High Dynamic Range is supported for enhanced picture color and quality, and digital content protection has been upgraded to HDCP 2.3. Graphics outputs include LVDS and three DDI ports supporting HDMI/DVI/DisplayPort and eDP/VGA as a build option, with a maximum of four 4K displays supported. In addition, maximum 2x USB4 that can transfer media and data through a single tunnel is a build option supported by project basis in place of DDI 1/2. The Express-RLP is specifically designed for customers with high-performance processing graphics requirements who want to outsource the custom core logic of their systems for reduced development time. Adding to the onboard integrated graphics, a multiplexed 16 PCIe Gen4 graphics bus at one x8 plus two x4 configuration is available for discrete graphics expansion.

Input/output features include up to eight PCIe Gen3 lanes via PCIe switch that can be used for NVMe SSD, allowing application access to the highest speed storage solutions, as well as a single onboard 2.5Gigabit Ethernet port with optional Time Sensitive Network (TSN) support, four USB 3.2 Gen2/2.0 ports, four USB 2.0 ports, and two SATA 6 Gb/s ports. Optional onboard PCIe NVMe SSD is offered by project basis. Support is provided for SMBus and I2C. The module is equipped with SPI AMI EFI BIOS with CMOS backup, supporting embedded features such as remote console, hardware monitor, and watchdog timer.

# 2. Specifications

# 2.1. Core System

# CPU

13th Gen Intel® Core™ Processor (formerly Raptor Lake-P)

• Intel® Core™ i7-13800HE, 6P+8E/20T, 24MB, 45W(35W cTDP), Iris Xe 96EU
• Intel® Core™ i5-13600HE, 4P+8E/16T, 18MB, 45W(35W cTDP), Iris Xe 80EU
• Intel® Core™ i3-13300HE, 4P+4E/12T, 12MB, 45W(35W cTDP), UHD 48EU
• Intel® Core™ i7-1370PE, 6P+8E/20T, 24MB, 28W(20W cTDP), Iris Xe 96EU
• Intel® Core™ i5-1350PE, 4P+8E/16T, 12MB, 28W(20W cTDP), Iris Xe 80EU
• Intel® Core™ i3-1320PE, 4P+4E/12T, 12MB, 28W(20W cTDP), UHD 48EU
• Intel® Core™ i7-1365UE, 2P+8E/12T, 12MB, 15W(12W cTDP), Iris Xe 96EU
• Intel® Core™ i5-1345UE, 2P+8E/12T, 12MB, 15W(12W cTDP), Iris Xe 80EU
• Intel® Core™ i3-1315UE, 2P+4E/8T, 10MB, 15W(12W cTDP), UHD 64EU
• Intel® Celeorn™ U300E, 1P+4E/5T, 8MB, 15W(12W cTDP), UHD 48EU
• Intel® Core™ i7-13800HRE, 6P+8E/20T, 24MB, 45W(35W cTDP), Iris Xe 96EU (TCC/TSN, IBECC capable)
• Intel® Core™ i5-13600HRE, 4P+8E/16T, 18MB, 45W(35W cTDP), Iris Xe 80EU (TCC/TSN, IBECC capable)
• Intel® Core™ i3-13300HRE, 4P+4E/12T, 12MB, 45W(35W cTDP), UHD 48EU (TCC/TSN, IBECC capable)
• Intel® Core™ i7-1370PRE, 6P+8E/20T, 24MB, 28W(20W cTDP), Iris Xe 96EU (TCC/TSN, IBECC capable)
• Intel® Core™ i5-1350PRE, 4P+8E/16T, 12MB, 28W(20W cTDP), Iris Xe 80EU (TCC/TSN, IBECC capable)
• Intel® Core™ i3-1320PRE, 4P+4E/12T, 12MB, 28W(20W cTDP), UHD 48EU (TCC/TSN, IBECC capable)
• Intel® Core™ i7-1365URE, 2P+8E/12T, 12MB, 15W(12W cTDP), Iris Xe 96EU (TCC/TSN, IBECC capable)
• Intel® Core™ i5-1345URE, 2P+8E/12T, 12MB, 15W(12W cTDP), Iris Xe 80EU (TCC/TSN, IBECC capable)
• Intel® Core™ i3-1315URE, 2P+4E/8T, 10MB, 15W(12W cTDP), UHD 64EU (TCC/TSN, IBECC capable)

Supporting: Intel® VT (including VT-x, VT-d, VT-x with Extended Page Tables), Intel® HT Technology, Intel® SSE4.2, Intel® 64 Architecture, Intel® Turbo Boost Technology 2.0, Intel® AVX512-VNNI, Intel® TXT, Execute Disable Bit, Intel® Data Protection Technology with Intel® Secure Key, Intel® AES-NI (availability of features may vary between processor SKUs)

![The image displays a red outline icon of a document or note with a folded top-right corner. Inside the outline are two horizontal red lines of different lengths, representing text.](.express-rlp-manual-50m-72139-2020-12/3fce417bef8d369563c2fc26717522f1554ee0cf0d6cc96787230c5436a1c03b.jpg)

Note: Standard availability will be based on 45W SKU. SKUs with other power envelopes and with TCC/TSN, IBECC-capabilities will be available by project basis. Please contact your local ADLINK representative for details.

# Memory

Up to 64GB (2x 32GB) non-ECC DDR5 in two SODIMM sockets (one on top, one on bottom), maximum 32GB per socket, maximum 4800 MT/s.

![The image displays a red icon resembling a document or file. It features a rectangular outline with a folded bottom-right corner (a 'dog-ear'). Inside the outline, there are two horizontal lines centered vertically, representing text or content.](.express-rlp-manual-50m-72139-2020-12/370e59ee16dcc38cae5d7c65e25ea3fedaf731600eb92e44d76344112abb3293.jpg)

Note: It is recommended to check that the bottom side specifications are suitable for your application purposes.

# Embedded BIOS

AMI Aptio V UEFI with CMOS backup in 32 MB SPI BIOS, dual BIOS by build option

# 2.2. Video

# GPU

Intel® Iris Xe Graphics architecture with up to 96 execution units

# Feature Support

• 4 independent and simultaneous combinations of DisplayPort/HDMI/LVDS/eDP/VGA and display alternative mode through USB4/Thunderbolt4 graphics outputs (4x 4K @60Hz, up to 8K@60Hz)
• (eDP optional in place of LVDS, VGA optional in place of DDI 3)
• Playback of high-definition content including Blu-ray Disc and Blu-ray Disc 3D content using HDMI (1.4a spec compliant with 3D)
• DirectX Video Acceleration (DXVA) support for accelerated video processing

• HEVC/H.265, H.264, M/JPEG, MPEG2, AV1, WMV9, VP9 HW decode
• HEVC/H.265, H.264, JPEG, VP9 HW encode, up to 8K60 HEVC
• Advanced Scheduler 2.0, 1.0, XPDM support
DirectX up to 12
• OpenGL up to 4.6 and ES 2.0 support
• OpenCL up to 2.1 support

![The image displays a red icon on a white background. It features a thick red outline resembling a document with a folded bottom-right corner. Inside the outline are two horizontal red bars.](.express-rlp-manual-50m-72139-2020-12/a91a71d076906e4f444ea798b543f0f7c68b368b6eeb5f92299d16eb09c4c1e6.jpg)

Note: Availability of features is dependent on the operating system used (Windows 10 64-bit, Linux 64-bit).

# 2.2.1 Display Interface Support

LVDS: Single/dual channel 18/24-bit LVDS through eDP to LVDS IC, supports DE mode and Hsync/Vsync mode.

Max. resolution 1920x1200@60Hz in dual mode. Pixel clock frequency up to 112 MHz. VESA and JEIDA panel data formats supported.

eDP: eDP 1.4b up to 4 lane support, in place of LVDS (BOM option), up to 4096x2304@60Hz bpp with DSC

DDI x3: Digital Display Ports (DDI) support DisplayPort 1.4a, HDMI 2.0b or DVI

VGA: VGA BOM option support in place of DDI 3; max. resolution 1920x1200@60Hz

![The image displays a red square with rounded corners. Inside the red square is a white square. Centered within the white square are two horizontal red bars.](.express-rlp-manual-50m-72139-2020-12/8def8d838b22b1c6156054bcc952827638bc956cd9b31261d834cf96366d0cd6.jpg)

Note: USB4 is a build option (HW and BIOS) supported by project basis in place of DDI channels. Maximum 2x USB4 by using DDI 1 and DDI 2 channels. USB4 support also requires re-timer and PD on carrier.

# 2.3. Audio

Intel® HD Audio integrated

Located on carrier Express-BASE6 or Express-BASE6 R3.1 (ALC886 standard support)

# 2.4. Expansion Busses

1 PCI Express x8 Gen4 (45W CPU only): Lanes 16-23 (configurable to 1 x8). Gen4 support dependent on carrier design (suitable for GPU, NVMe SSD).
2 PCI Express x4 Gen4: Lanes 24-27 and 28-31 (configurable to 2 x4). Gen4 support dependent on carrier design (suitable for GPU, NVMe SSD).
8 PCI Express x1 Gen3: Lanes 0-3 (configurable to 4 x1, 2 x2, 1 x4, 1 x2 + 2 x1) and Lanes 4-7 (configurable to 4 x1, via PCIe switch)
Other: SMBus (system), I2 C (user), LPC bus (via eSPI to LPC bridge IC)

![The image displays a red icon representing a document or file. It is depicted as a square outline with a folded top-right corner, containing two short, horizontal red lines. There is no text in the image.](.express-rlp-manual-50m-72139-2020-12/99c03f1e4767a1f2d85df4598330f8ebefd36202bab708e22f3ff5a3542174a8.jpg)

Note: PCIe 16-23, 24-27, and 28-31 are recommended to be used for discrete graphics and storage purposes.

# 2.5. Ethernet

2.5GbE Intel® Ethernet Controller I225 Series (V, IT or LM version)

Supports up to 2.5GbE and 1000/100/10 Mbit/s connections

IT version supports TSN feature on Linux OS, GbE0\_SDP available if TSN support enabled

# 2.6. Multi I/O and Storage

# USB 4

2x USB4: build option (HW and BIOS) supported by project basis in place of DDI channels. Maximum 2x USB4 by using DDI 1 and DDI 2 channels. USB4 support also requires re-timer and PD on carrier.

![The image shows a red icon resembling a document or piece of paper. It features a thick red outline with a folded bottom-right corner (a 'page curl'). Inside the white area, three horizontal red lines are stacked vertically in the center, representing text.](.express-rlp-manual-50m-72139-2020-12/8b85b4d4bb4c823787c5fcdfae66a90375fe6700cb18301e5080f7317791bfae.jpg)

Note: Capable of TBT4. Please contact your local ADLINK representative for details.

# USB

4x USB 3.2 Gen2/2.0/1.1 (USB 0,1,2,3), 4x USB 2.0/1.1 (USB 4,5,6,7)

SuperSpeedPlus, SuperSpeed, High-Speed, Full-Speed and Low-Speed USB signaling

![The image displays a red icon resembling a document or page. It features a square shape with rounded corners and a folded top-right corner. Inside the red outline, there are two horizontal red lines stacked vertically.](.express-rlp-manual-50m-72139-2020-12/6bfcc6abead1979cbff05e7c03dd3f54d5ac329f299ee8a01d832dcf178b41d0.jpg)

Note: Carrier board must be designed for Gen2 operation. USB 0,1,2,3 are backward compatible with USB 2.0/1.1.

# SATA

2x SATA 6Gb/s (SATA 0,1)

![The image shows a simple red icon on a white background. It depicts a rectangular document outline with the bottom-right corner folded over. Inside the outline, there are two horizontal red lines stacked vertically, resembling text.](.express-rlp-manual-50m-72139-2020-12/aeef40e9bdef6b2dc778987890493f9507d037b1fe7f0ab0e433b45c02344988.jpg)

Note: For SATA 6Gb/s compatibility, it is strongly recommended to use a SATA redriver on the carrier board

# GPIO or SD

4 GPO and 4 GPI (GPI with interrupt)

# On-board Storage

Soldered type PCIe NVMe SSD, available capacities: 60GB/120GB/240GB. Build option support by project basis

PCIe NVMe SSD co-lay 1 PCI Express x4 Gen4 : PEG12-15

![This is a digital icon depicting a document or file symbol. It features a white background with a thick red outline shaped like a piece of paper with a folded bottom-right corner. Inside the outline, there are two horizontal red lines stacked vertically.](.express-rlp-manual-50m-72139-2020-12/74fd01ca588320e60508472f87b9ad0a5ac31195e36a2edc397731327cffc963.jpg)

Note: For the NVMe SSD build option, DIMM support is limited to 2 slots. Please contact your local ADLINK representative for details.

# UART

Two UART interfaces SER0 and SER1 RX/TX on module

Console Redirection via COM 1 or COM 2 selectable in BIOS

Up to 4 serial ports supported by standard BIOS, including Super I/O on carrier board

<table><tr><td>COM Port</td><td>Description</td><td>IRQ</td><td>Address</td><td>Console Redirection Support</td></tr><tr><td>COM 1</td><td>Supported by module (SER0, A98/A99), via embedded controller</td><td>4</td><td>0x3F8</td><td>Yes</td></tr><tr><td>COM 2</td><td>Supported by module (SER1, A101/A102), via embedded controller</td><td>3</td><td>0x2F8</td><td>Yes</td></tr><tr><td>COM 3</td><td>Supported by Super I/O (W83627DHG) on carrier board</td><td>5</td><td>0x240</td><td>Yes</td></tr><tr><td>COM 4</td><td>Supported by Super I/O (W83627DHG) on carrier board</td><td>7</td><td>0x248</td><td>Yes</td></tr></table>

![The image displays a red icon resembling a document or page with a folded bottom-right corner. Inside the white space of the document, there are two horizontal red lines centered vertically.](.express-rlp-manual-50m-72139-2020-12/7576a7d9c959abf920ef55fb165aaa80a3c8d73bfceb027476842c43a89b5c92.jpg)

Note: SER0, SER1 from SoC HSUART are BOM option support by project basis

# 2.7. Trusted Platform Module (TPM)

Chipset: Infineon solution

Type: TPM 2.0 (SPI bus based)

# 2.8. SEMA Board controller

Supports: Voltage/current monitoring, power sequence debug support, AT/ATX mode control, logistics and forensic information, flat panel control, general purpose I 2 C, failsafe BIOS (dual BIOS, opt. support), watchdog timer and fan control.

# 2.9. Debug

30-pin flat cable connector for use with DB-30 x86 debug module

Supports embedded controller access, SPI BIOS flashing, internal power rail test points, debug LEDs

# 2.10. Power

Power Modes: AT and ATX mode (AT mode startup controlled by SEMA Board Controller)

<table><tr><td>Standard Voltage Input:</td><td>ATX: 12V±5% / 5Vsb ±5%</td><td>or</td><td>AT: 12V±5%</td></tr><tr><td>Wide Voltage Input:</td><td>ATX: 8.5-20V, 5Vsb ±5%</td><td>or</td><td>AT: 8.5-20V</td></tr></table>

Power Management: ACPI 5.0 compliant, Smart Battery support

Power States: C1-C6, S0, S1, S3, S4, S5, S5 ECO mode (Wake-on-USB S3/S4, WoL S3/S4/S5)

ECO Mode support for deep S5 for 5Vsb power saving

# Power Consumption

Please contact your ADLINK representative for the document “COM Express Module Power Consumption”.

# 2.11. Mechanical and Environmental

# Form Factor and specification

PICMG COM Express Rev 3.1 (COM.0 R3.1), Type 6, Basic size 125 x 95 mm

# Operating Temperature

<table><tr><td>Standard</td><td>0°C to 60°C (wide voltage input)</td><td>Storage: -20°C to 80°C</td></tr><tr><td>Extreme Rugged</td><td>-40°C to 85°C (selected SKUs, TBC)</td><td>Storage: -40°C to 85°C</td></tr></table>

# Humidity

5-90% RH operating, non-condensing, 5-95% RH storage (and operating with conformal coating)

# Shock and Vibration

<table><tr><td>IEC 60068-2-64 and IEC-60068-2-27</td></tr><tr><td>MIL-STD-202F, Method 213B, Table 213-I, Condition A and Method 214A, Table 214-I, Condition D</td></tr></table>

# HALT tested

Thermal Stress, Vibration Stress, Thermal Shock and Combined Test

# 3. Block Diagram

PICMG COM.0 R3.1 compliant
![The diagram illustrates the connectivity of a central block labeled **13th Gen Intel® Core Processor (Raptor Lake-P)**.\n\n**Left-Side Connections (Peripherals & Memory):**\n*   **on-die ECC** connects to two blocks labeled **DDR5 SODIMM max. 4800MT/s 8-32GB**.\n*   **eDP/LVDS** connects to **eDP to LVDS**.\n*   **VGA** connects to a dashed block **DP to VGA**.\n*   **Max. 2.5GbE** connects to **LAN controller i225**.\n*   **PCIe Lane 0-3**, **PCIe Lane 4**, and **PCIe Lane 5** connect to **PCIe switch**.\n*   **SPI** connects to **BIOS flash** and **TPM 2.0**. A dashed block labeled **BIOS flash** is also present.\n*   **8x GPIO/SDIO**, **2x UART/CAN**, **LPC/eSPI**, and **eSPI build option(TBC)** connect to the **Embedded Controller** block at the bottom.\n\n**Right-Side Connections (High-Speed Interfaces):**\n*   **TCP 0** connects to **DDI/USB4/TBT4 Port 1**.\n*   **TCP 1** connects to **DDI/USB4/TBT4 Port 2**.\n*   **HSIO 0-3** connects to **USB 3.x Lane 0**, **USB 3.x Lane 1**, **USB 3.x Lane 2**, and **USB 3.x Lane 3**.\n*   **two x1** connects to **PCIe Lane 6-7**.\n*   **GEN4 x8 (CPU)** connects to **PEG Port PCIe 16-23**.\n*   **GEN4 x4 (CPU)** connects to **PCIe 24-27**.\n*   **GEN4 x4 (CPU)** connects to **PCIe 28-31**.\n*   A dashed line connects to **DDI only Port 3**.\n*   A dashed line connects to **NVMe BGA SSD build option**.\n\n**Direct Connections:**\n*   **USB 2.0 Lane 0-7**, **SATA 0-1**, **SATA 2-3**, **HDA**, **SMBus**, and **I2C** connect directly to the processor.\n\n**Bottom Section (Embedded Controller):**\n*   The **Embedded Controller** receives connections from **eSPI to LPC**, **2x I2C**, and **2x HSUART** (originating from the processor).\n*   It outputs to **build option fan connector** and **LM73 (board)**.](.express-rlp-manual-50m-72139-2020-12/3a57a4549a157b663eb01fd3e503f02492811ce1bea9efc83546c6332d3da44d.jpg)

Figure 1 – Module function diagram

# 4 Pinout and Signal Descriptions

# 4.1. Pin Summary

The table below is a comprehensible list of all signal pins supported on the dual 220-pin COM Express connectors as defined for Type 6 in the PICMG COM.0 R3.1 specification. Signals described in the specification but not supported on the Express-RLP are marked with strikethrough.

![NVMe SSD\noptional\nD1\nCD\nC1\nB1\nAB\nA110\nA1](.express-rlp-manual-50m-72139-2020-12/e0d67fd70fafc0d968923806ba5015b2cb604fb076e69811bfeff6288bc7749f.jpg)

Figure 2 – Module rear side row and pin numbering

<table><tr><td colspan="2">Row A</td><td></td><td colspan="2">Row B</td><td></td><td colspan="2">Row C</td><td></td><td colspan="2">Row D</td></tr><tr><td>A1</td><td>GND (FIXED)</td><td></td><td>B1</td><td>GND (FIXED)</td><td></td><td>C1</td><td>GND FIXED)</td><td></td><td>D1</td><td>GND FIXED)</td></tr><tr><td>A2</td><td>GBE0_MDI3-</td><td></td><td>B2</td><td>GBE0_ACT#</td><td></td><td>C2</td><td>GND</td><td></td><td>D2</td><td>GND</td></tr><tr><td>A3</td><td>GBE0_MDI3+</td><td></td><td>B3</td><td>LPC_FRAME#/ESPI_CS0# $^{1}$ </td><td></td><td>C3</td><td>USB_SSRX0-</td><td></td><td>D3</td><td>USB_SSTX0-</td></tr><tr><td>A4</td><td>GBE0_LINK_MID#</td><td></td><td>B4</td><td>LPC_AD0/ESPI_IO_0 $^{1}$ </td><td></td><td>C4</td><td>USB_SSRX0+</td><td></td><td>D4</td><td>USB_SSTX0+</td></tr><tr><td>A5</td><td>GBE0_LINK_MAX#</td><td></td><td>B5</td><td>LPC_AD1/ESPI_IO_1 $^{1}$ </td><td></td><td>C5</td><td>GND</td><td></td><td>D5</td><td>GND</td></tr><tr><td>A6</td><td>GBE0_MDI2-</td><td></td><td>B6</td><td>LPC_AD2/ESPI_IO_2 $^{1}$ </td><td></td><td>C6</td><td>USB_SSRX1-</td><td></td><td>D6</td><td>USB_SSTX1-</td></tr><tr><td>A7</td><td>GBE0_MDI2+</td><td></td><td>B7</td><td>LPC_AD3/ESPI_IO_3 $^{1}$ </td><td></td><td>C7</td><td>USB_SSRX1+</td><td></td><td>D7</td><td>USB_SSTX1+</td></tr><tr><td>A8</td><td>GBE0_LINK#</td><td></td><td>B8</td><td>LPC_DRQ0#/ESPI_ALERT0#</td><td></td><td>C8</td><td>GND</td><td></td><td>D8</td><td>GND</td></tr><tr><td>A9</td><td>GBE0_MDI1-</td><td></td><td>B9</td><td>LPC_DRQ1#/ESPI_ALERT1#</td><td></td><td>C9</td><td>USB_SSRX2-</td><td></td><td>D9</td><td>USB_SSTX2-</td></tr><tr><td>A10</td><td>GBE0_MDI1+</td><td></td><td>B10</td><td>LPC_CLK/ESPI_CK $^{1}$ </td><td></td><td>C10</td><td>USB_SSRX2+</td><td></td><td>D10</td><td>USB_SSTX2+</td></tr><tr><td>A11</td><td>GND (FIXED)</td><td></td><td>B11</td><td>GND (FIXED)</td><td></td><td>C11</td><td>GND (FIXED)</td><td></td><td>D11</td><td>GND (FIXED)</td></tr><tr><td>A12</td><td>GBE0_MDI0-</td><td></td><td>B12</td><td>PWRBTN#</td><td></td><td>C12</td><td>USB_SSRX3-</td><td></td><td>D12</td><td>USB_SSTX3-</td></tr><tr><td>A13</td><td>GBE0_MDI0+</td><td></td><td>B13</td><td>SMB_CK</td><td></td><td>C13</td><td>USB_SSRX3+</td><td></td><td>D13</td><td>USB_SSTX3+</td></tr><tr><td>A14</td><td>GBE0_CTREF</td><td></td><td>B14</td><td>SMB_DAT</td><td></td><td>C14</td><td>GND</td><td></td><td>D14</td><td>GND</td></tr><tr><td>A15</td><td>SUS_S3#</td><td></td><td>B15</td><td>SMB_ALERT#</td><td></td><td>C15</td><td>USB4_1_LSTX $^{1}$ </td><td></td><td>D15</td><td>DDI1_CTRLCLK_AUX+/USB4_1_AUX+ $^{1}$ </td></tr><tr><td>A16</td><td>SATA0_TX+</td><td></td><td>B16</td><td>SATA1_TX+</td><td></td><td>C16</td><td>USB4_1_LSRX $^{1}$ </td><td></td><td>D16</td><td>DDI1_CTRLDATA_AUX-/USB4_1_AUX- $^{1}$ </td></tr><tr><td>A17</td><td>SATA0_TX-</td><td></td><td>B17</td><td>SATA1_TX-</td><td></td><td>C17</td><td>USB4_RT_ENA $^{1}$ </td><td></td><td>D17</td><td>USB4_PD_I2C_ALERT# $^{1}$ </td></tr><tr><td>A18</td><td>SUS_S4#</td><td></td><td>B18</td><td>SUS_STAT#/ESPI_RESET# $^{1}$ </td><td></td><td>C18</td><td>GND</td><td></td><td>D18</td><td>PMCALERT# $^{1}$ </td></tr><tr><td>A19</td><td>SATA0_RX+</td><td></td><td>B19</td><td>SATA1_RX+</td><td></td><td>C19</td><td>PCIE_RX6+ $^{1}$ </td><td></td><td>D19</td><td>PCIE_TX6+</td></tr><tr><td>A20</td><td>SATA0_RX-</td><td></td><td>B20</td><td>SATA1_RX-</td><td></td><td>C20</td><td>PCIE_RX6- $^{1}$ </td><td></td><td>D20</td><td>PCIE_TX6-</td></tr><tr><td>A21</td><td>GND (FIXED)</td><td></td><td>B21</td><td>GND (FIXED)</td><td></td><td>C21</td><td>GND (FIXED)</td><td></td><td>D21</td><td>GND (FIXED)</td></tr><tr><td>A22</td><td>SATA2_TX+</td><td></td><td>B22</td><td>SATA3_TX+</td><td></td><td>C22</td><td>PCIE_RX7+ $^{1}$ </td><td></td><td>D22</td><td>PCIE_TX7+</td></tr><tr><td>A23</td><td>SATA2_TX-</td><td></td><td>B23</td><td>SATA3_TX-</td><td></td><td>C23</td><td>PCIE_RX7- $^{1}$ </td><td></td><td>D23</td><td>PCIE_TX7-</td></tr><tr><td>A24</td><td>SUS_S5#</td><td></td><td>B24</td><td>PWR_OK</td><td></td><td>C24</td><td>DDI1_HPD</td><td></td><td>D24</td><td>GND</td></tr><tr><td>A25</td><td>SATA2_RX+</td><td></td><td>B25</td><td>SATA3_RX+</td><td></td><td>C25</td><td>SML0_CLK $^{1}$ </td><td></td><td>D25</td><td>GND</td></tr><tr><td>A26</td><td>SATA2_RX-</td><td></td><td>B26</td><td>SATA3_RX-</td><td></td><td>C26</td><td>SML0_DAT $^{1}$ </td><td></td><td>D26</td><td>DDI1_PAIR0+/USB4_1_SSTX0+ $^{1}$ </td></tr><tr><td>A27</td><td>BATLOW#</td><td></td><td>B27</td><td>WDT</td><td></td><td>C27</td><td>SML1_CLK $^{1}$ </td><td></td><td>D27</td><td>DDI1_PAIR0-/USB4_1_SSTX0- $^{1}$ </td></tr><tr><td>A28</td><td>(S)ATA_ACT#</td><td></td><td>B28</td><td>HDA_SDIN2/SNDW0_CLK $^{2}$ </td><td></td><td>C28</td><td>SML1_DAT $^{1}$ </td><td></td><td>D28</td><td>GND</td></tr><tr><td>A29</td><td>HDA_SYNC</td><td></td><td>B29</td><td>HDA_SDIN1/SNDW0_DAT $^{2}$ </td><td></td><td>C29</td><td>USB4_PD_I2C_CLK $^{1}$ </td><td></td><td>D29</td><td>DDI1_PAIR1+/USB4_1_SSRX0+ $^{1}$ </td></tr><tr><td>A30</td><td>HDA_RST#</td><td></td><td>B30</td><td>HDA_SDINO</td><td></td><td>C30</td><td>USB4_PD_I2C_DAT $^{1}$ </td><td></td><td>D30</td><td>DDI1_PAIR1-/USB4_1_SSRX0- $^{1}$ </td></tr><tr><td>A31</td><td>GND (FIXED)</td><td></td><td>B31</td><td>GND (FIXED)</td><td></td><td>C31</td><td>GND (FIXED)</td><td></td><td>D31</td><td>GND (FIXED)</td></tr><tr><td>A32</td><td>HDA_BITCLK</td><td></td><td>B32</td><td>SPKR</td><td></td><td>C32</td><td>DDI2_CTRLCLK_AUX+/USB4_2_AUX+1</td><td></td><td>D32</td><td>DDI1_PAIR2+/USB4_1_SSTX1+1</td></tr><tr><td>A33</td><td>HDA_SDOUT</td><td></td><td>B33</td><td>I2C_CK</td><td></td><td>C33</td><td>DDI2_CTRLDATA_AUX-/USB4_2_AUX-1</td><td></td><td>D33</td><td>DDI1_PAIR2-/USB4_1_SSTX1-1</td></tr><tr><td>A34</td><td>BIOS_DIS0#/ESPI_SAFS1</td><td></td><td>B34</td><td>I2C_DAT</td><td></td><td>C34</td><td>DDI2_DDC_AUX_SEL</td><td></td><td>D34</td><td>DDI1_DDC_AUX_SEL</td></tr><tr><td>A35</td><td>THRMTRIP#</td><td></td><td>B35</td><td>THRM#</td><td></td><td>C35</td><td>USB4_2_LSTX1</td><td></td><td>D35</td><td>USB4_2_LSRX1</td></tr><tr><td>A36</td><td>USB6-</td><td></td><td>B36</td><td>USB7-</td><td></td><td>C36</td><td>DDI3_CTRLCLK_AUX+</td><td></td><td>D36</td><td>DDI1_PAIR3+/USB4_1_SSRX1+1</td></tr><tr><td>A37</td><td>USB6+</td><td></td><td>B37</td><td>USB7+</td><td></td><td>C37</td><td>DDI3_CTRLDATA_AUX-</td><td></td><td>D37</td><td>DDI1_PAIR3-/USB4_1_SSRX1-1</td></tr><tr><td>A38</td><td>USB_6_7_OC#</td><td></td><td>B38</td><td>USB_4_5_OC#</td><td></td><td>C38</td><td>DDI3_DDC_AUX_SEL</td><td></td><td>D38</td><td>GND</td></tr><tr><td>A39</td><td>USB4-</td><td></td><td>B39</td><td>USB5-</td><td></td><td>C39</td><td>DDI3_PAIR0+</td><td></td><td>D39</td><td>DDI2_PAIR0+/USB4_2_SSTX0+1</td></tr><tr><td>A40</td><td>USB4+</td><td></td><td>B40</td><td>USB5+</td><td></td><td>C40</td><td>DDI3_PAIR0-</td><td></td><td>D40</td><td>DDI2_PAIR0-/USB4_2_SSTX0-1</td></tr><tr><td>A41</td><td>GND (FIXED)</td><td></td><td>B41</td><td>GND (FIXED)</td><td></td><td>C41</td><td>GND (FIXED)</td><td></td><td>D41</td><td>GND (FIXED)</td></tr><tr><td>A42</td><td>USB2-</td><td></td><td>B42</td><td>USB3-</td><td></td><td>C42</td><td>DDI3_PAIR1+</td><td></td><td>D42</td><td>DDI2_PAIR1+/USB4_2_SSRX0+1</td></tr><tr><td>A43</td><td>USB2+</td><td></td><td>B43</td><td>USB3+</td><td></td><td>C43</td><td>DDI3_PAIR1-</td><td></td><td>D43</td><td>DDI2_PAIR1-/USB4_2_SSRX0-1</td></tr><tr><td>A44</td><td>USB_2_3_OC#</td><td></td><td>B44</td><td>USB_0_1_OC#</td><td></td><td>C44</td><td>DDI3_HPD</td><td></td><td>D44</td><td>DDI2_HPD</td></tr><tr><td>A45</td><td>USB0-</td><td></td><td>B45</td><td>USB1-</td><td></td><td>C45</td><td>GP_SPI_CS#2</td><td></td><td>D45</td><td>GND</td></tr><tr><td>A46</td><td>USB0+</td><td></td><td>B46</td><td>USB1+</td><td></td><td>C46</td><td>DDI3_PAIR2+</td><td></td><td>D46</td><td>DDI2_PAIR2+/USB4_2_SSTX1+1</td></tr><tr><td>A47</td><td>VCC_RTC</td><td></td><td>B47</td><td>ESPI_EN#1</td><td></td><td>C47</td><td>DDI3_PAIR2-</td><td></td><td>D47</td><td>DDI2_PAIR2-/USB4_2_SSTX1-1</td></tr><tr><td>A48</td><td>RSMRST_OUT#</td><td></td><td>B48</td><td>USB0_HOST_PRSNT</td><td></td><td>C48</td><td>RSVD</td><td></td><td>D48</td><td>GND</td></tr><tr><td>A49</td><td>GBE0_SDP1</td><td></td><td>B49</td><td>SYS_RESET#</td><td></td><td>C49</td><td>DDI3_PAIR3+</td><td></td><td>D49</td><td>DDI2_PAIR3+/USB4_2_SSRX1+1</td></tr><tr><td>A50</td><td>LPC_SERIRQ/ESPI_CS1#1</td><td></td><td>B50</td><td>CB_RESET#</td><td></td><td>C50</td><td>DDI3_PAIR3-</td><td></td><td>D50</td><td>DDI2_PAIR3-/USB4_2_SSRX1-1</td></tr><tr><td>A51</td><td>GND (FIXED)</td><td></td><td>B51</td><td>GND (FIXED)</td><td></td><td>C51</td><td>GND (FIXED)</td><td></td><td>D51</td><td>GND (FIXED)</td></tr><tr><td>A52</td><td>PCIE_TX5+1</td><td></td><td>B52</td><td>PCIE_RX5+1</td><td></td><td>C52</td><td>PEG_RX0+</td><td></td><td>D52</td><td>PEG_TX0+</td></tr><tr><td>A53</td><td>PCIE_TX5-1</td><td></td><td>B53</td><td>PCIE_RX5-1</td><td></td><td>C53</td><td>PEG_RX0-</td><td></td><td>D53</td><td>PEG_TX0-</td></tr><tr><td>A54</td><td>GPIO</td><td></td><td>B54</td><td>GPO1</td><td></td><td>C54</td><td>TYPE0#</td><td></td><td>D54</td><td>PEG_LANE_RV#</td></tr><tr><td>A55</td><td>PCIE_TX4+</td><td></td><td>B55</td><td>PCIE_RX4+</td><td></td><td>C55</td><td>PEG_RX1+</td><td></td><td>D55</td><td>PEG_TX1+</td></tr><tr><td>A56</td><td>PCIE_TX4-</td><td></td><td>B56</td><td>PCIE_RX4-</td><td></td><td>C56</td><td>PEG_RX1-</td><td></td><td>D56</td><td>PEG_TX1-</td></tr><tr><td>A57</td><td>GND</td><td></td><td>B57</td><td>GPO2</td><td></td><td>C57</td><td>TYPE1#</td><td></td><td>D57</td><td>TYPE2#</td></tr><tr><td>A58</td><td>PCIE_TX3+</td><td></td><td>B58</td><td>PCIE_RX3+</td><td></td><td>C58</td><td>PEG_RX2+</td><td></td><td>D58</td><td>PEG_TX2+</td></tr><tr><td>A59</td><td>PCIE_TX3-</td><td></td><td>B59</td><td>PCIE_RX3-</td><td></td><td>C59</td><td>PEG_RX2-</td><td></td><td>D59</td><td>PEG_TX2-</td></tr><tr><td>A60</td><td>GND (FIXED)</td><td></td><td>B60</td><td>GND (FIXED)</td><td></td><td>C60</td><td>GND (FIXED)</td><td></td><td>D60</td><td>GND (FIXED)</td></tr><tr><td>A61</td><td>PCIE_TX2+</td><td></td><td>B61</td><td>PCIE_RX2+</td><td></td><td>C61</td><td>PEG_RX3+</td><td></td><td>D61</td><td>PEG_TX3+</td></tr><tr><td>A62</td><td>PCIE_TX2-</td><td></td><td>B62</td><td>PCIE_RX2-</td><td></td><td>C62</td><td>PEG_RX3-</td><td></td><td>D62</td><td>PEG_TX3-</td></tr><tr><td>A63</td><td>GPI1</td><td></td><td>B63</td><td>GPO3</td><td></td><td>C63</td><td>GND</td><td></td><td>D63</td><td>GND</td></tr><tr><td>A64</td><td>PCIE_TX1+</td><td></td><td>B64</td><td>PCIE_RX1+</td><td></td><td>C64</td><td>GND</td><td></td><td>D64</td><td>GND</td></tr><tr><td>A65</td><td>PCIE_TX1-</td><td></td><td>B65</td><td>PCIE_RX1-</td><td></td><td>C65</td><td>PEG_RX4+</td><td></td><td>D65</td><td>PEG_TX4+</td></tr><tr><td>A66</td><td>GND</td><td></td><td>B66</td><td>WAKE0#</td><td></td><td>C66</td><td>PEG_RX4-</td><td></td><td>D66</td><td>PEG_TX4-</td></tr><tr><td>A67</td><td>GPI2</td><td></td><td>B67</td><td>WAKE1#</td><td></td><td>C67</td><td>RAPID_SHUTDOWN</td><td></td><td>D67</td><td>GND</td></tr><tr><td>A68</td><td>PCIE_TX0+</td><td></td><td>B68</td><td>PCIE_RX0+</td><td></td><td>C68</td><td>PEG_RX5+</td><td></td><td>D68</td><td>PEG_TX5+</td></tr><tr><td>A69</td><td>PCIE_TX0-</td><td></td><td>B69</td><td>PCIE_RX0-</td><td></td><td>C69</td><td>PEG_RX5-</td><td></td><td>D69</td><td>PEG_TX5-</td></tr><tr><td>A70</td><td>GND (FIXED)</td><td></td><td>B70</td><td>GND (FIXED)</td><td></td><td>C70</td><td>GND (FIXED)</td><td></td><td>D70</td><td>GND (FIXED)</td></tr><tr><td>A71</td><td>LVDS_A0+ / eDP_TX2+ $^1$ </td><td></td><td>B71</td><td>LVDS_B0+</td><td></td><td>C71</td><td>PEG_RX6+</td><td></td><td>D71</td><td>PEG_TX6+</td></tr><tr><td>A72</td><td>LVDS_A0- / eDP_TX2- $^1$ </td><td></td><td>B72</td><td>LVDS_B0-</td><td></td><td>C72</td><td>PEG_RX6-</td><td></td><td>D72</td><td>PEG_TX6-</td></tr><tr><td>A73</td><td>LVDS_A1+ / eDP_TX1+ $^1$ </td><td></td><td>B73</td><td>LVDS_B1+</td><td></td><td>C73</td><td>GND</td><td></td><td>D73</td><td>GND</td></tr><tr><td>A74</td><td>LVDS_A1- / eDP_TX1- $^1$ </td><td></td><td>B74</td><td>LVDS_B1-</td><td></td><td>C74</td><td>PEG_RX7+</td><td></td><td>D74</td><td>PEG_TX7+</td></tr><tr><td>A75</td><td>LVDS_A2+ / eDP_TX0+ $^1$ </td><td></td><td>B75</td><td>LVDS_B2+</td><td></td><td>C75</td><td>PEG_RX7-</td><td></td><td>D75</td><td>PEG_TX7-</td></tr><tr><td>A76</td><td>LVDS_A2- / eDP_TX0- $^1$ </td><td></td><td>B76</td><td>LVDS_B2-</td><td></td><td>C76</td><td>GND</td><td></td><td>D76</td><td>GND</td></tr><tr><td>A77</td><td>LVDS_VDD_EN / eDP_VDD_EN $^1$ </td><td></td><td>B77</td><td>LVDS_B3+</td><td></td><td>C77</td><td>GND</td><td></td><td>D77</td><td>GND</td></tr><tr><td>A78</td><td>LVDS_A3+</td><td></td><td>B78</td><td>LVDS_B3-</td><td></td><td>C78</td><td>PEG_RX8+</td><td></td><td>D78</td><td>PEG_TX8+</td></tr><tr><td>A79</td><td>LVDS_A3-</td><td></td><td>B79</td><td>LVDS_BKLT_EN</td><td></td><td>C79</td><td>PEG_RX8-</td><td></td><td>D79</td><td>PEG_TX8-</td></tr><tr><td>A80</td><td>GND (FIXED)</td><td></td><td>B80</td><td>GND (FIXED)</td><td></td><td>C80</td><td>GND (FIXED)</td><td></td><td>D80</td><td>GND (FIXED)</td></tr><tr><td>A81</td><td>LVDS_A_CK+ / eDP_TX3+ $^1$ </td><td></td><td>B81</td><td>LVDS_B_CK+</td><td></td><td>C81</td><td>PEG_RX9+</td><td></td><td>D81</td><td>PEG_TX9+</td></tr><tr><td>A82</td><td>LVDS_A_CK- / eDP_TX3- $^1$ </td><td></td><td>B82</td><td>LVDS_B_CK-</td><td></td><td>C82</td><td>PEG_RX9-</td><td></td><td>D82</td><td>PEG_TX9-</td></tr><tr><td>A83</td><td>LVDS_I2C_CK / eDP_AUX+ $^1$ </td><td></td><td>B83</td><td>LVDS_BKLT_CTRL / eDP_BKLT_CTRL $^1$ </td><td></td><td>C83</td><td>GND</td><td></td><td>D83</td><td>GND</td></tr><tr><td>A84</td><td>LVDS_I2C_DAT / eDP_AUX- $^1$ </td><td></td><td>B84</td><td>VCC_5V_SBY</td><td></td><td>C84</td><td>GND</td><td></td><td>D84</td><td>GND</td></tr><tr><td>A85</td><td>GPI3</td><td></td><td>B85</td><td>VCC_5V_SBY</td><td></td><td>C85</td><td>PEG_RX10+</td><td></td><td>D85</td><td>PEG_TX10+</td></tr><tr><td>A86</td><td>GP_SPI_MOSI $^2$ </td><td></td><td>B86</td><td>VCC_5V_SBY</td><td></td><td>C86</td><td>PEG_RX10-</td><td></td><td>D86</td><td>PEG_TX10-</td></tr><tr><td>A87</td><td>eDP_HPD</td><td></td><td>B87</td><td>VCC_5V_SBY</td><td></td><td>C87</td><td>GND</td><td></td><td>D87</td><td>GND</td></tr><tr><td>A88</td><td>PCIE_CK_REF+</td><td></td><td>B88</td><td>BIOS_DIS1#</td><td></td><td>C88</td><td>PEG_RX11+</td><td></td><td>D88</td><td>PEG_TX11+</td></tr><tr><td>A89</td><td>PCIE_CK_REF-</td><td></td><td>B89</td><td>VGA_RED $^1$ </td><td></td><td>C89</td><td>PEG_RX11-</td><td></td><td>D89</td><td>PEG_TX11-</td></tr><tr><td>A90</td><td>GND (FIXED)</td><td></td><td>B90</td><td>GND (FIXED)</td><td></td><td>C90</td><td>GND (FIXED)</td><td></td><td>D90</td><td>GND (FIXED)</td></tr><tr><td>A91</td><td>SPI_POWER</td><td></td><td>B91</td><td>VGA_GRN $^1$ </td><td></td><td>C91</td><td>PEG_RX12+</td><td></td><td>D91</td><td>PEG_TX12+</td></tr><tr><td>A92</td><td>SPI_MISO</td><td></td><td>B92</td><td>VGA_BLU $^1$ </td><td></td><td>C92</td><td>PEG_RX12-</td><td></td><td>D92</td><td>PEG_TX12-</td></tr><tr><td>A93</td><td>GPO0</td><td></td><td>B93</td><td>VGA_HSYNC $^1$ </td><td></td><td>C93</td><td>GND</td><td></td><td>D93</td><td>GND</td></tr><tr><td>A94</td><td>SPI_CLK</td><td></td><td>B94</td><td>VGA_VSYNC $^1$ </td><td></td><td>C94</td><td>PEG_RX13+</td><td></td><td>D94</td><td>PEG_TX13+</td></tr><tr><td>A95</td><td>SPI_MOSI</td><td></td><td>B95</td><td>VGA_I2C_CK $^1$ </td><td></td><td>C95</td><td>PEG_RX13-</td><td></td><td>D95</td><td>PEG_TX13-</td></tr><tr><td>A96</td><td>TPM_PP</td><td></td><td>B96</td><td>VGA_I2C_DAT $^1$ </td><td></td><td>C96</td><td>GND</td><td></td><td>D96</td><td>GND</td></tr><tr><td>A97</td><td>TYPE10#</td><td></td><td>B97</td><td>SPI_CS#</td><td></td><td>C97</td><td>GND</td><td></td><td>D97</td><td>GND</td></tr><tr><td>A98</td><td>SER0_TX</td><td></td><td>B98</td><td>GP_SPI_MISO $^2$ </td><td></td><td>C98</td><td>PEG_RX14+</td><td></td><td>D98</td><td>PEG_TX14+</td></tr><tr><td>A99</td><td>SER0_RX</td><td></td><td>B99</td><td>GP_SPI_CK $^2$ </td><td></td><td>C99</td><td>PEG_RX14-</td><td></td><td>D99</td><td>PEG_TX14-</td></tr><tr><td>A100</td><td>GND (FIXED)</td><td></td><td>B100</td><td>GND (FIXED)</td><td></td><td>C100</td><td>GND (FIXED)</td><td></td><td>D100</td><td>GND (FIXED)</td></tr><tr><td>A101</td><td>SER1_TX/CAN_TX</td><td></td><td>B101</td><td>FAN_PWMOUT</td><td></td><td>C101</td><td>PEG_RX15+</td><td></td><td>D101</td><td>PEG_TX15+</td></tr><tr><td>A102</td><td>SER1_RX/CAN_RX</td><td></td><td>B102</td><td>FAN_TACHIN</td><td></td><td>C102</td><td>PEG_RX15-</td><td></td><td>D102</td><td>PEG_TX15-</td></tr><tr><td>A103</td><td>LID#</td><td></td><td>B103</td><td>SLEEP#</td><td></td><td>C103</td><td>GND</td><td></td><td>D103</td><td>GND</td></tr><tr><td>A104</td><td>VCC_12V</td><td></td><td>B104</td><td>VCC_12V</td><td></td><td>C104</td><td>VCC_12V</td><td></td><td>D104</td><td>VCC_12V</td></tr><tr><td>A105</td><td>VCC_12V</td><td></td><td>B105</td><td>VCC_12V</td><td></td><td>C105</td><td>VCC_12V</td><td></td><td>D105</td><td>VCC_12V</td></tr><tr><td>A106</td><td>VCC_12V</td><td></td><td>B106</td><td>VCC_12V</td><td></td><td>C106</td><td>VCC_12V</td><td></td><td>D106</td><td>VCC_12V $^1$ </td></tr><tr><td>A107</td><td>VCC_12V</td><td></td><td>B107</td><td>VCC_12V</td><td></td><td>C107</td><td>VCC_12V</td><td></td><td>D107</td><td>VCC_12V</td></tr><tr><td>A108</td><td>VCC_12V</td><td></td><td>B108</td><td>VCC_12V</td><td></td><td>C108</td><td>VCC_12V</td><td></td><td>D108</td><td>VCC_12V</td></tr><tr><td>A109</td><td>VCC_12V</td><td></td><td>B109</td><td>VCC_12V</td><td></td><td>C109</td><td>VCC_12V</td><td></td><td>D109</td><td>VCC_12V</td></tr><tr><td>A110</td><td>GND (FIXED)</td><td></td><td>B110</td><td>GND (FIXED)</td><td></td><td>C110</td><td>GND (FIXED)</td><td></td><td>D110</td><td>GND (FIXED)</td></tr></table>

![The image displays a red icon representing a document or note. It features a thick red outline shaped like a piece of paper with the top-right corner curled upwards. Inside the outline, there are two horizontal red bars centered vertically, resembling lines of text.](.express-rlp-manual-50m-72139-2020-12/891222e827ed7c63d7625a4b154406535360a98f6f07770b3617c5f1ad41c682.jpg)

Note: Strike-through entries are not supported functions on this product.

PEG 0-7 are available only for 45W CPU SKUs.

1. eDP (in place of LVDS), VGA (in place of DDI 3), eSPI (in place of LPC), PCIe lane5-7 (via PCIe switch), USB4\_1/2 (in place of DDI 1/2), and GBE0\_SDP (for selected LAN controller versions) are BOM options supported by project basis.
2. GP\_SPI and SNDW0 support TBC.

# 4.2. Signal Terminology Descriptions

Meaning of the terms used for signal description tables

<table><tr><td>Term</td><td>Description</td></tr><tr><td>I</td><td>Input to the module</td></tr><tr><td>O</td><td>Output from the module</td></tr><tr><td>I/O</td><td>Bi-directional Input / Output</td></tr><tr><td>OD</td><td>Open drain output from the module</td></tr><tr><td></td><td></td></tr><tr><td>I 3.3V</td><td>Input 3.3V tolerant</td></tr><tr><td>I 5V</td><td>Input 5V tolerant</td></tr><tr><td>O 3.3V</td><td>Output 3.3V signal level</td></tr><tr><td>O 5V</td><td>Output 5V signal level</td></tr><tr><td>I/O 3.3V</td><td>Bi-directional signal 3.3V tolerant</td></tr><tr><td>I/O 5V</td><td>Bi-directional signal 5V tolerant</td></tr><tr><td>I/O  $3.3V_{SB}$ </td><td>Input or output 3.3V tolerant active in standby state</td></tr><tr><td></td><td></td></tr><tr><td>DDC</td><td>Display Data Channel</td></tr><tr><td>PCIE</td><td>PCI Express compatible differential signal</td></tr><tr><td>PEG</td><td>PCI Express Graphics</td></tr><tr><td>SATA</td><td>Serial ATA specification Revision 2.6 and 3</td></tr><tr><td>LVDS</td><td>Low Voltage Differential Signal - 330 mV nominal; 450 mV maximum differential signal</td></tr><tr><td></td><td></td></tr><tr><td>P</td><td>Power Input / Output</td></tr><tr><td>REF</td><td>Reference voltage output. May be sourced from a Module power plane.</td></tr><tr><td>PDS</td><td>Pull-down strap. A Module output pin that is either tied to GND or is not connected.Used to signal Module capabilities to the Carrier Board.</td></tr><tr><td></td><td></td></tr><tr><td>PU</td><td>PU (pull-up) resistor on module</td></tr><tr><td>PD</td><td>PD (pull-down) resistor on module</td></tr></table>

# 4.3. AB Connector Signal Descriptions

4.3.1 Audio

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="6"></td></tr><tr><td>AC_RST# / HDA_RST#</td><td>A30</td><td>Reset output to CODEC, active low.</td><td>O 3.3VSB</td><td></td><td></td></tr><tr><td>AC_SYNC / HDA_SYNC</td><td>A29</td><td>Sample-synchronization signal to the CODEC(s).</td><td>O 3.3VSB</td><td></td><td>PCH internal PD 20Kohm</td></tr><tr><td>AC_BITCLK / HDA_BITCLK</td><td>A32</td><td>Serial data clock generated by the external CODEC(s).</td><td>I/O 3.3VSB</td><td></td><td></td></tr><tr><td>AC_SDOUT / HDA_SDOUT</td><td>A33</td><td>Serial TDM data output to the CODEC.</td><td>O 3.3VSB</td><td></td><td>PCH internal PD 20Kohm</td></tr><tr><td>AC_SDIN[2:0] / HDA_SDIN[2:0]</td><td>B28 B29 B30</td><td>Serial TDM data inputs from up to 3 CODECs.</td><td>I/O 3.3VSB</td><td></td><td>PCH internal PD 20Kohm AC_SDNI2/HDA_SDIN2 not supported</td></tr></table>

4.3.2 Analog VGA

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td>VGA_RED</td><td>B89</td><td>Red for monitor. Analog DAC output, designed to drive a 37.5-Ohm equivalent load.</td><td>O Analog</td><td>PD 150R</td><td></td></tr><tr><td>VGA_GRN</td><td>B91</td><td>Green for monitor. Analog DAC output, designed to drive a 37.5-Ohm equivalent load.</td><td>O Analog</td><td>PD 150R</td><td></td></tr><tr><td>VGA_BLU</td><td>B92</td><td>Blue for monitor. Analog DAC output, designed to drive a 37.5-Ohm equivalent load.</td><td>O Analog</td><td>PD 150R</td><td></td></tr><tr><td>VGA_HSYNC</td><td>B93</td><td>Horizontal sync output to VGA monitor</td><td>O 3.3V</td><td></td><td></td></tr><tr><td>VGA_VSYNC</td><td>B94</td><td>Vertical sync output to VGA monitor</td><td>O 3.3V</td><td></td><td></td></tr><tr><td>VGA_I2C_CK</td><td>B95</td><td>DDC clock line (I2C port dedicated to identifying VGA monitor capabilities)</td><td>I/O OD 3.3V</td><td>PU 2k2 3.3V</td><td></td></tr><tr><td>VGA_I2C_DAT</td><td>B96</td><td>DDC data line.</td><td>I/O OD 3.3V</td><td>PU 2k2 3.3V</td><td></td></tr></table>

![The image displays a red icon representing a document or page. It features a thick red outline with a folded bottom-right corner. Inside the outline, there are two horizontal lines suggesting text. The background is white.](.express-rlp-manual-50m-72139-2020-12/e64a516548be5e87a4ddc188a0dd779d0fc3a7d524bdc779c33de5ba1695e16e.jpg)
Note: VGA is BOM option support (in place of DDI 3) by project basis

# 4.3.3 LVDS or eDP

The module default supports a single or dual channel LVDS display panel with up to 24-bit colors. A BOM option that removes the eDP to LVDS bridge IC and outputs the eDP signals directly is available. eDP vs LVDS pin mapping is described below.

<table><tr><td>Pin #</td><td>LVDS mode</td><td>eDP mode</td></tr><tr><td>A71</td><td>LVDS_A0+</td><td>eDP_TX2+</td></tr><tr><td>A72</td><td>LVDS_A0-</td><td>eDP_TX2-</td></tr><tr><td>A73</td><td>LVDS_A1+</td><td>eDP_TX1+</td></tr><tr><td>A74</td><td>LVDS_A1-</td><td>eDP_TX1-</td></tr><tr><td>A75</td><td>LVDS_A2+</td><td>eDP_TX0+</td></tr><tr><td>A76</td><td>LVDS_A2-</td><td>eDP_TX0-</td></tr><tr><td>A78</td><td>LVDS_A3+</td><td>-</td></tr><tr><td>A79</td><td>LVDS_A3-</td><td>-</td></tr><tr><td>A81</td><td>LVDS_A_CK+</td><td>eDP_TX3+</td></tr><tr><td>A82</td><td>LVDS_A_CK-</td><td>eDP_TX3-</td></tr><tr><td>B71</td><td>LVDS_B0+</td><td>-</td></tr><tr><td>B72</td><td>LVDS_B0-</td><td>-</td></tr><tr><td>B73</td><td>LVDS_B1+</td><td>-</td></tr><tr><td>B74</td><td>LVDS_B1-</td><td>-</td></tr><tr><td>B75</td><td>LVDS_B2+</td><td>-</td></tr><tr><td>B76</td><td>LVDS_B2-</td><td>-</td></tr><tr><td>B77</td><td>LVDS_B3+</td><td>-</td></tr><tr><td>B78</td><td>LVDS_B3-</td><td>-</td></tr><tr><td>B81</td><td>LVDS_B_CK+</td><td>-</td></tr><tr><td>B82</td><td>LVDS_B_CK-</td><td>-</td></tr><tr><td>A77</td><td>LVDS_VDD_EN</td><td>eDP_VDD_EN</td></tr><tr><td>B79</td><td>LVDS_BKLT_EN</td><td>eDP_BKLT_EN</td></tr><tr><td>B83</td><td>LVDS_BKLT_CTRL</td><td>eDP_BKLT_CTRL</td></tr><tr><td>A83</td><td>LVDS_I2C_CK</td><td>eDP_AUX+</td></tr><tr><td>A84</td><td>LVDS_I2C_DAT</td><td>eDP_AUX-</td></tr><tr><td>A87</td><td>-</td><td>eDP_HPD</td></tr></table>

![The image displays a red icon resembling a document or note. It features a red outline of a square with rounded corners. Inside the outline, two horizontal red lines are stacked vertically and centered within the shape. The bottom right corner of the outline has a slight curl, suggesting a folded piece of paper.](.express-rlp-manual-50m-72139-2020-12/b7160798e9d38b2487072da4d2c64aeb87c8c3557fc26e83ccc8dda7d13dd1cc.jpg)
Note: LVDS is the default mode and eDP is a BOM option

4.3.3.1. Single/Dual Channel LVDS (default)

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="6"></td></tr><tr><td>LVDS_A0+</td><td>A71</td><td>LVDS Channel A differential pairs</td><td>O LVDS</td><td></td><td></td></tr><tr><td>LVDS_A0-</td><td>A72</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_A1+</td><td>A73</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_A1-</td><td>A74</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_A2+</td><td>A75</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_A2-</td><td>A76</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_A3+</td><td>A78</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_A3-</td><td>A79</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_A_CK+</td><td>A81</td><td>LVDS Channel A differential clock</td><td>O LVDS</td><td></td><td></td></tr><tr><td>LVDS_A_CK-</td><td>A82</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_B0+</td><td>B71</td><td>LVDS Channel B differential pairs</td><td>O LVDS</td><td></td><td></td></tr><tr><td>LVDS_B0-</td><td>B72</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_B1+</td><td>B73</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_B1-</td><td>B74</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_B2+</td><td>B75</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_B2-</td><td>B76</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_B3+</td><td>B77</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_B3-</td><td>B78</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_B_CK+</td><td>B81</td><td>LVDS Channel B differential clock</td><td>O LVDS</td><td></td><td></td></tr><tr><td>LVDS_B_CK-</td><td>B82</td><td></td><td></td><td></td><td></td></tr><tr><td>LVDS_VDD_EN</td><td>A77</td><td>LVDS panel power enable</td><td>O 3.3V</td><td>PD 100K</td><td></td></tr><tr><td>LVDS_BKLT_EN</td><td>B79</td><td>LVDS panel backlight enable</td><td>O 3.3V</td><td>PD 100K</td><td></td></tr><tr><td>LVDS_BKLT_CTRL</td><td>B83</td><td>LVDS panel backlight brightness control</td><td>O 3.3V</td><td>PD 100K</td><td></td></tr><tr><td>LVDS_I2C_CK</td><td>A83</td><td>DDC lines used for flat panel detection and control.</td><td>O 3.3V</td><td>PU 2k2 3.3V</td><td></td></tr><tr><td>LVDS_I2C_DAT</td><td>A84</td><td>DDC lines used for flat panel detection and control.</td><td>I/O 3.3V</td><td>PU 2k2 3.3V</td><td></td></tr></table>

4.3.3.2. 4-lane eDP

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="6"></td></tr><tr><td>eDP_TX3+</td><td>A81</td><td>eDP differential pairs</td><td>O PCIE</td><td></td><td>AC coupled off module</td></tr><tr><td>eDP_TX3-</td><td>A82</td><td></td><td></td><td></td><td></td></tr><tr><td>eDP_TX2+</td><td>A71</td><td></td><td></td><td></td><td></td></tr><tr><td>eDP_TX2-</td><td>A72</td><td></td><td></td><td></td><td></td></tr><tr><td>eDP_TX1+</td><td>A73</td><td></td><td></td><td></td><td></td></tr><tr><td>eDP_TX1-</td><td>A74</td><td></td><td></td><td></td><td></td></tr><tr><td>eDP_TX0+</td><td>A75</td><td></td><td></td><td></td><td></td></tr><tr><td>eDP_TX0-</td><td>A76</td><td></td><td></td><td></td><td></td></tr><tr><td>eDP_VDD_EN</td><td>A77</td><td>eDP power enable</td><td>O 3.3V</td><td>PD 100K</td><td></td></tr><tr><td>eDP_BKLT_EN</td><td>B79</td><td>eDP backlight enable</td><td>O 3.3V</td><td>PD 100K</td><td></td></tr><tr><td>eDP_BKLT_CTRL</td><td>B83</td><td>eDP backlight brightness control</td><td>O 3.3V</td><td>PD 100K</td><td></td></tr><tr><td>eDP_AUX+</td><td>A83</td><td>eDP AUX+</td><td>I/O PCIE</td><td></td><td>AC coupled off module</td></tr><tr><td>eDP_AUX-</td><td>A84</td><td>eDP AUX-</td><td>I/O PCIE</td><td></td><td>AC coupled off module</td></tr><tr><td>eDP_HPD</td><td>A87</td><td>Detection of Hot Plug / Unplug and notification of the link layer</td><td>I 3.3V</td><td>PD 100K</td><td>PD 100K on this pin when eDP is supported</td></tr></table>

4.3.4 Gigabit Ethernet

<table><tr><td>Name</td><td>Pin #</td><td colspan="4">Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="9"></td></tr><tr><td>GBE0_MDI0+</td><td>A13</td><td rowspan="3" colspan="4">Gigabit Ethernet Controller 0: Media Dependent Interface Differential Pairs 0, 1, 2, 3. The MDI can operate in 1000, 100, and 10Mbit/sec modes. Some pairs are unused in some modes according to the following:</td><td rowspan="8">I/O Analog</td><td rowspan="8"></td><td rowspan="8">Twisted pair signals for external transformer.</td></tr><tr><td>GBE0_MDI0-</td><td>A12</td></tr><tr><td>GBE0_MDI1+</td><td>A10</td></tr><tr><td>GBE0_MDI1-</td><td>A9</td><td colspan="2">1000</td><td>100</td><td>10</td></tr><tr><td>GBE0_MDI2+</td><td>A7</td><td>MDI[0]+/-</td><td>B1_DA+/-</td><td>TX+/-</td><td>TX+/-</td></tr><tr><td>GBE0_MDI2-</td><td>A6</td><td>MDI[1]+/-</td><td>B1_DB+/-</td><td>RX+/-</td><td>RX+/-</td></tr><tr><td>GBE0_MDI3+</td><td>A3</td><td>MDI[2]+/-</td><td>B1_DC+/-</td><td></td><td></td></tr><tr><td>GBE0_MDI3-</td><td>A2</td><td>MDI[3]+/-</td><td>B1_DD+/-</td><td></td><td></td></tr><tr><td>GBE0_ACT#</td><td>B2</td><td colspan="4">Gigabit Ethernet Controller 0 activity indicator, active low.</td><td>OD 3.3VSB</td><td></td><td></td></tr><tr><td>GBE0_LINK#</td><td>A8</td><td colspan="4">Gigabit Ethernet Controller 0 link indicator, active low.</td><td>OD 3.3VSB</td><td></td><td></td></tr><tr><td>GBE0_LINK100# *</td><td>A4</td><td colspan="4">Gigabit Ethernet Controller 0 100Mbit/sec link indicator, active low.</td><td>OD 3.3VSB</td><td></td><td></td></tr><tr><td>GBE0_LINK1000# *</td><td>A5</td><td colspan="4">Gigabit Ethernet Controller 0 1000Mbit/sec link indicator, active low.</td><td>OD 3.3VSB</td><td></td><td></td></tr><tr><td>GBE0_CTREF</td><td>A14</td><td colspan="4">Reference voltage for Carrier Board Ethernet channel 1 and 2 magnetics center tap. The reference voltage is determined by the requirements of the Module PHY and may be as low as 0V and as high as 3.3V. The reference voltage output shall be current limited on the Module. In the case in which the reference is shorted to ground, the current shall be 250 mA or less.</td><td>REF GND min 3.3V max</td><td></td><td>Not supported</td></tr><tr><td>GBE0_SDP</td><td>A49</td><td colspan="4">Gigabit Ethernet Controller 0 Software-Definable Pin. Can also be used for IEEE1588 support such as 1pps signal.</td><td>IO 3.3VSB</td><td>GBE0_SDP</td><td>Depends on the selection of LAN controller. i225-IT support this pin</td></tr></table>

![The image displays a simple icon resembling a document or note. It features a red outline of a square with the bottom-right corner folded upward (a 'dog-ear'). Inside the red border, on a white background, are two horizontal red lines centered vertically, mimicking lines of text. There is no actual written text.](.express-rlp-manual-50m-72139-2020-12/03f8e0da7cfccc6d40f30de382c0eee38c068c3ac05b3876f2ea00c34ca8b114.jpg)

Note: This product supports up to 2.5GbE. The LAN LED behavior is optimized for maximum 2.5GbE speed.

GBE0\_LINK1000# will be active for 2.5GbE speed indication.

GBE0\_LINK100# will be active for 1GbE speed indication or lower.

GBE0\_ACT# and GBE0\_LINK# share the same source from the LAN controller.

For 100Mbit/sec and 10Mbit/sec speed, the LAN LED will be OFF.

4.3.5 SATA

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td>SATA0_TX+SATA0_TX-</td><td>A16A17</td><td>Serial ATA channel 0, Transmit Output differential pair.</td><td>O SATA</td><td></td><td>AC coupled on Module</td></tr><tr><td>SATA0_RX+SATA0_RX-</td><td>A19A20</td><td>Serial ATA channel 0, Receive Input differential pair.</td><td>I SATA</td><td></td><td>AC coupled on Module</td></tr><tr><td>SATA1_TX+SATA1_TX-</td><td>B16B17</td><td>Serial ATA channel 1, Transmit Output differential pair.</td><td>O SATA</td><td></td><td>AC coupled on Module</td></tr><tr><td>SATA1_RX+SATA1_RX-</td><td>B19B20</td><td>Serial ATA channel 1, Receive Input differential pair.</td><td>I SATA</td><td></td><td>AC coupled on Module</td></tr><tr><td>SATA2_TX+SATA2_TX-</td><td>A22A23</td><td>Serial ATA channel 2, Transmit Output differential pair.</td><td>O SATA</td><td></td><td>Not supported</td></tr><tr><td>SATA2_RX+SATA2_RX-</td><td>A25A26</td><td>Serial ATA channel 2, Receive Input differential pair.</td><td>I SATA</td><td></td><td>Not supported</td></tr><tr><td>SATA3_TX+SATA3_TX-</td><td>B22B23</td><td>Serial ATA channel 3, Transmit Output differential pair.</td><td>O SATA</td><td></td><td>Not supported</td></tr><tr><td>SATA3_RX+SATA3_RX-</td><td>B25B26</td><td>Serial ATA channel 3, Receive Input differential pair.</td><td>I SATA</td><td></td><td>Not supported</td></tr><tr><td>(S)ATA_ACT#</td><td>A28</td><td>ATA (parallel and serial) or SAS activity indicator, active low.</td><td>O 3.3V</td><td>PU 10K3.3V</td><td>AC coupled on Module</td></tr></table>

4.3.5.1. PCH HSIO Lane Assignments

<table><tr><td>Name</td><td>HSIO name on SOC</td><td>Comment</td></tr><tr><td colspan="3"></td></tr><tr><td>SATA0</td><td>HSIO 26</td><td></td></tr><tr><td>SATA1</td><td>HSIO 27</td><td></td></tr><tr><td>SATA2</td><td>HSIO 28</td><td>Not supported</td></tr><tr><td>SATA3</td><td>HSIO 29</td><td>Not supported</td></tr></table>

4.3.6 PCI Express

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="6"></td></tr><tr><td>PCIE_TX0+PCIE_TX0-</td><td>A68A69</td><td>PCI Express channel 0, Transmit Output differential pair.</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PCIE_RX0+PCIE_RX0-</td><td>B68B69</td><td>PCI Express channel 0, Receive Input differential pair.</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PCIE_TX1+PCIE_TX1-</td><td>A64A65</td><td>PCI Express channel 1, Transmit Output differential pair.</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PCIE_RX1+PCIE_RX1-</td><td>B64B65</td><td>PCI Express channel 1, Receive Input differential pair.</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PCIE_TX2+PCIE_TX2-</td><td>A61A62</td><td>PCI Express channel 2, Transmit Output differential pair.</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PCIE_RX2+PCIE_RX2-</td><td>B61B62</td><td>PCI Express channel 2, Receive Input differential pair.</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PCIE_TX3+PCIE_TX3-</td><td>A58A59</td><td>PCI Express channel 3, Transmit Output differential pair.</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PCIE_RX3+PCIE_RX3-</td><td>B58B59</td><td>PCI Express channel 3, Receive Input differential pair.</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PCIE_TX4+PCIE_TX4-</td><td>A55A56</td><td>PCI Express channel 4, Transmit Output differential pair.</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PCIE_RX4+PCIE_RX4-</td><td>B55B56</td><td>PCI Express channel 4, Receive Input differential pair.</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PCIE_TX5+PCIE_TX5-</td><td>A52A53</td><td>PCI Express channel 5, Transmit Output differential pair.</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PCIE_RX5+PCIE_RX5-</td><td>B52B53</td><td>PCI Express channel 5, Receive Input differential pair.</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PCIE_CLK_REF+PCIE_CLK_REF-</td><td>A88A89</td><td>PCI Express Reference Clock output for all PCI Express and PCI Express Graphics Lanes.</td><td>O PCIE</td><td></td><td></td></tr></table>

4.3.6.1. PCH HSIO Lane Assignments

<table><tr><td>Name</td><td>HSIO name on SOC / Switch IC</td><td>Comment</td></tr><tr><td>PCIE0</td><td>HSIO 22</td><td></td></tr><tr><td>PCIE1</td><td>HSIO 23</td><td></td></tr><tr><td>PCIE2</td><td>HSIO 24</td><td></td></tr><tr><td>PCIE3</td><td>HSIO 25</td><td></td></tr><tr><td>PCIE4</td><td>PCIe SW DPE_0</td><td></td></tr><tr><td>PCIE5</td><td>PCIe SW DPE_1</td><td></td></tr><tr><td>PCIE6</td><td>PCIe SW DPE_6</td><td></td></tr><tr><td>PCIE7</td><td>PCIe SW DPE_14</td><td></td></tr></table>

4.3.7 LPC Bus

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="6"></td></tr><tr><td>LPC_AD0</td><td>B4</td><td>LPC multiplexed address, command and data bus</td><td>I/O 3.3VSB</td><td></td><td></td></tr><tr><td>LPC_AD1</td><td>B5</td><td></td><td></td><td></td><td></td></tr><tr><td>LPC_AD2</td><td>B6</td><td></td><td></td><td></td><td></td></tr><tr><td>LPC_AD3</td><td>B7</td><td></td><td></td><td></td><td></td></tr><tr><td>LPC_FRAME#</td><td>B3</td><td>LPC frame indicates the start of an LPC cycle</td><td>O 3.3VSB</td><td></td><td></td></tr><tr><td>LPC_DRQ0#</td><td>B8</td><td>LPC serial DMA request</td><td>I 3.3V</td><td></td><td>Not connected</td></tr><tr><td>LPC_DRQ1#</td><td>B9</td><td></td><td></td><td></td><td></td></tr><tr><td>LPC_SERIRQ</td><td>A50</td><td>LPC serial interrupt</td><td>I/O 3.3VSB</td><td>PU 8.2K3.3VSB</td><td></td></tr><tr><td>LPC_CLK</td><td>B10</td><td>LPC clock output -33MHz nominal</td><td>O 3.3VSB</td><td></td><td>The LPC_CLK frequency is 24MHz on this platform</td></tr></table>

![The image displays a digital icon of a document page. It features a white background shaped like a piece of paper with a folded bottom-right corner, enclosed by a thick red outline. Inside the white area, there are two horizontal red bars centered vertically, resembling simplified lines of text.](.express-rlp-manual-50m-72139-2020-12/99cec85fee37f2f0f432461c4eb4e674e332c44a299b29f08e9c3fac433fa490.jpg)
Note: LPC Bus is supported by an eSPI to LPC bridge IC

4.3.8 USB

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="6"></td></tr><tr><td>USB0+USB0-</td><td>A46A45</td><td>USB differential data pairs for Port 0</td><td>I/O 3.3VSB</td><td></td><td>USB 1.1/ 2.0 compliant</td></tr><tr><td>USB1+USB1-</td><td>B46B45</td><td>USB differential data pairs for Port 1</td><td>I/O 3.3VSB</td><td></td><td>USB 1.1/ 2.0 compliant</td></tr><tr><td>USB2+USB2-</td><td>A43A42</td><td>USB differential data pairs for Port 1</td><td>I/O 3.3VSB</td><td></td><td>USB 1.1/ 2.0 compliant</td></tr><tr><td>USB3+USB3-</td><td>B43B42</td><td>USB differential data pairs for Port 2</td><td>I/O 3.3VSB</td><td></td><td>USB 1.1/ 2.0 compliant</td></tr><tr><td>USB4+USB4-</td><td>A40A39</td><td>USB differential data pairs for Port 3</td><td>I/O 3.3VSB</td><td></td><td>USB 1.1/ 2.0 compliant</td></tr><tr><td>USB5+USB5-</td><td>B40B39</td><td>USB differential data pairs for Port 4</td><td>I/O 3.3VSB</td><td></td><td>USB 1.1/ 2.0 compliant</td></tr><tr><td>USB6+USB6-</td><td>A37A36</td><td>USB differential data pairs for Port 5</td><td>I/O 3.3VSB</td><td></td><td>USB 1.1/ 2.0 compliant</td></tr><tr><td>USB7+USB7-</td><td>B37B37</td><td>USB differential data pairs for Port 6</td><td>I/O 3.3VSB</td><td></td><td>USB 1.1/ 2.0 compliant</td></tr><tr><td>USB_0_1_OC#</td><td>B44</td><td>USB over-current sense, USB ports 0 and 1 (see *Note)</td><td>I 3.3VSB</td><td>PU 10K 3.3VSB</td><td>Do not pull high on carrier</td></tr><tr><td>USB_2_3_OC#</td><td>A44</td><td>USB over-current sense, USB ports 2 and 3 (see *Note)</td><td>I 3.3VSB</td><td>PU 10K 3.3VSB</td><td>Do not pull high on carrier</td></tr><tr><td>USB_4_5_OC#</td><td>B38</td><td>USB over-current sense, USB ports 4 and 5 (see *Note)</td><td>I 3.3VSB</td><td>PU 10K 3.3VSB</td><td>Do not pull high on carrier</td></tr><tr><td>USB_6_7_OC#</td><td>A38</td><td>USB over-current sense, USB ports 6 and 7 (see *Note)</td><td>I 3.3VSB</td><td>PU 10K 3.3VSB</td><td>Do not pull high on carrier</td></tr><tr><td>USB0_HOST_PRSNT</td><td>B48</td><td>Module USB client may detect the presence of a USB host on USB0. A high value indicates that a host is present.</td><td>I 3.3VSB</td><td></td><td>Not supported</td></tr></table>

![The image shows a red icon resembling a document or page with a folded bottom-right corner. Inside the red shape, there are two horizontal white lines. The background is white.](.express-rlp-manual-50m-72139-2020-12/5ab184ad15253ed7c8d6cee31aef3e7b7a317d71640c613da43fed2d3296330c.jpg)
\*Note: A pull-up for this line shall be present on the module. An open drain driver from a USB current monitor on the carrier board may drive this line low.

4.3.9 SPI Bus (BIOS only)

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="6"></td></tr><tr><td>SPI_CS#</td><td>B97</td><td>Chip select for Carrier Board SPI BIOS Flash.</td><td>O 3.3VSB</td><td>PU 10K3.3VSB</td><td></td></tr><tr><td>SPI_MISO</td><td>A92</td><td>Data in to module from carrier board SPI BIOS flash.</td><td>I 3.3VSB</td><td></td><td></td></tr><tr><td>SPI_MOSI</td><td>A95</td><td>Data out from module to carrier board SPI BIOS flash.</td><td>O 3.3VSB</td><td></td><td></td></tr><tr><td>SPI_CLK</td><td>A94</td><td>Clock from module to carrier board SPI BIOS flash.</td><td>O 3.3VSB</td><td></td><td></td></tr><tr><td>SPI_POWER</td><td>A91</td><td>Power supply for Carrier Board SPI – sourced from Module – nominally 3.3V. The Module shall provide a minimum of 100mA on SPI_POWER. Carriers shall use less than 100mA of SPI_POWER. SPI_POWER shall only be used to power SPI devices on the Carrier</td><td>O P 3.3VSB</td><td></td><td></td></tr><tr><td>BIOS_DIS0#</td><td>A34</td><td>Selection strap to determine the BIOS boot device.</td><td>I</td><td>PU 10K3.3VSB</td><td>Carrier shall pull to GND or leave not- connected.</td></tr><tr><td>BIOS_DIS1#</td><td>B88</td><td>Selection strap to determine the BIOS boot device.</td><td>I</td><td>PU 10K3.3VSB</td><td>Carrier shall pull to GND or leave not- connected</td></tr></table>

4.3.10 Miscellaneous

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td>SPKR</td><td>B32</td><td>Output for audio enunciator, the &quot;speaker&quot; in PC-AT systems</td><td>O 3.3V</td><td></td><td></td></tr><tr><td>WDT</td><td>B27</td><td>Output indicating that a watchdog time-out event has occurred.</td><td>O 3.3V</td><td>PU 10K 3.3V</td><td></td></tr><tr><td>THRM#</td><td>B35</td><td>Input from off-module temp sensor indicating an over-temp situation.</td><td>I 3.3VSB</td><td></td><td></td></tr><tr><td>THRMTRIP#</td><td>A35</td><td>Active low output indicating that the CPU has entered thermal shutdown.</td><td>O 3.3VSB</td><td>PU 100K 3.3VSB</td><td></td></tr><tr><td>FAN_PWMOUT</td><td>B101</td><td>Fan speed control. Uses the Pulse Width Modulation (PWM) technique to control the fan&#x27;s RPM.</td><td>O OD 3.3V</td><td></td><td>There shall be PD on carrier board</td></tr><tr><td>FAN_TACHIN</td><td>B102</td><td>Fan tachometer input for a fan with a two-pulse output.</td><td>I OD 3.3V</td><td>PU 47K 3.3V</td><td></td></tr><tr><td>TPM_PP</td><td>A96</td><td>Trusted Platform Module (TPM) Physical Presence pin. Active high. TPM chip has an internal pull down. This signal is used to indicate Physical Presence to the TPM.</td><td>I 3.3V</td><td>PD 100K</td><td>PD only when TPM on module. Modules implementing a TPM shall pull down</td></tr></table>

4.3.11 SMBus

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="6"></td></tr><tr><td>SMB_CK</td><td>B13</td><td>System Management Bus bidirectional clock line. Power sourced through 3.3V standby rail and main power rails.</td><td>I/O OD3.3VSB</td><td>PU 4.7K3.3VSB</td><td></td></tr><tr><td>SMB_DAT#</td><td>B14</td><td>System Management Bus bidirectional data line. Power sourced through 3.3V standby rail and main power rails.</td><td>I/O OD3.3VSB</td><td>PU 4.7K3.3VSB</td><td></td></tr><tr><td>SMB_ALERT#</td><td>B15</td><td>System Management Bus Alert – active low input can be used to generate an SMI# (System Management Interrupt) or to wake the system. Power sourced through 3.3V standby rail and main power rails.</td><td>I 3.3VSB</td><td>PU 10K3.3VSB</td><td></td></tr></table>

4.3.12 I2 C Bus

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="6"></td></tr><tr><td>I2C_CK</td><td>B33</td><td>General purpose I2C port clock output/input</td><td>I/O OD 3.3VSB</td><td>PU 2.2K 3.3VSB</td><td>Source SEMA BMC as default (chipset by BOM option)</td></tr><tr><td>I2C_DAT</td><td>B34</td><td>General purpose I2C port data I/O line</td><td>I/O OD 3.3VSB</td><td>PU 2.2K 3.3VSB</td><td>Source SEMA BMC as default (chipset by BOM option)</td></tr></table>

4.3.13 General Purpose I/O (GPIO)

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="6"></td></tr><tr><td>GPO[0]</td><td>A93</td><td>General purpose output pins.</td><td>O 3.3V</td><td>PD 10K</td><td>After hardware RESET output low</td></tr><tr><td>GPO[1]</td><td>B54</td><td>General purpose output pins.</td><td>O 3.3V</td><td>PD 10K</td><td>After hardware RESET output low</td></tr><tr><td>GPO[2]</td><td>B57</td><td>General purpose output pins.</td><td>O 3.3V</td><td>PD 10K</td><td>After hardware RESET output low</td></tr><tr><td>GPO[3]</td><td>B63</td><td>General purpose output pins.</td><td>O 3.3V</td><td>PD 10K</td><td>After hardware RESET output low</td></tr><tr><td>GPI[0]</td><td>A54</td><td>General purpose input pins. Pulled high internally on the module.</td><td>I 3.3V</td><td>PU 10K 3.3V</td><td></td></tr><tr><td>GPI[1]</td><td>A63</td><td>General purpose input pins. Pulled high internally on the module.</td><td>I 3.3V</td><td>PU 10K 3.3V</td><td></td></tr><tr><td>GPI[2]</td><td>A67</td><td>General purpose input pins. Pulled high internally on the module.</td><td>I 3.3V</td><td>PU 10K 3.3V</td><td></td></tr><tr><td>GPI[3]</td><td>A85</td><td>General purpose input pins. Pulled high internally on the module.</td><td>I 3.3V</td><td>PU 10K 3.3V</td><td></td></tr></table>

4.3.14 Serial Interface Signals

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="6"></td></tr><tr><td>SERO_TX</td><td>A98</td><td>General purpose serial port transmitter</td><td>O CMOS3.3V</td><td></td><td>Power rail tolerance 5V, 12VThere shall be PD on carrier board</td></tr><tr><td>SERO_RX</td><td>A99</td><td>General purpose serial port receiver</td><td>I CMOS3.3V</td><td>PU 10K 3.3V</td><td>Power rail tolerance 5V, 12V</td></tr><tr><td>SER1_TX</td><td>A101</td><td>General purpose serial port transmitter</td><td>O CMOS3.3V</td><td></td><td>Power rail tolerance 5V, 12VThere shall be PD on carrier board</td></tr><tr><td>SER1_RX</td><td>A102</td><td>General purpose serial port receiver</td><td>I CMOS3.3V</td><td>PU 10K 3.3V</td><td>Power rail tolerance 5V, 12V</td></tr></table>

4.3.15 Power and System Management

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td>PWRBTN#</td><td>B12</td><td>Power button to bring system out of S5 (soft off), active on falling edge.</td><td>I 3.3VSB</td><td>PU 10K 3.3VSB</td><td></td></tr><tr><td>SYS_RESET#</td><td>B49</td><td>Reset button input. Active low request for module to reset and reboot. May be falling edge sensitive. For situations when SYS_RESET# is not able to reestablish control of the system, PWR_OK or a power cycle may be used.</td><td>I 3.3VSB</td><td>PU 10K 3.3VSB</td><td></td></tr><tr><td>CB_RESET#</td><td>B50</td><td>Reset output from module to Carrier Board. Active low. Issued by module chipset and may result from a low SYS_RESET# input, a low PWR_OK input, a VCC_12V power input that falls below the minimum specification, a watchdog timeout, or may be initiated by the module software.</td><td>O 3.3V</td><td></td><td></td></tr><tr><td>PWR_OK</td><td>B24</td><td>Power OK from main power supply. A high value indicates that the power is good. This signal can be used to hold off Module startup to allow carrier-based FPGAs or other configurable devices time to be programmed.</td><td>I 3.3VSB</td><td>PU 10K 3.3VSB</td><td>Should have weak pull up.</td></tr><tr><td>SUS_STAT#</td><td>B18</td><td>Indicates imminent suspend operation; used to notify LPC devices.</td><td>O 3.3VSB</td><td></td><td></td></tr><tr><td>SUS_S3#</td><td>A15</td><td>Indicates system is in Suspend to RAM state. Active-low output. An inverted copy of SUS_S3# on the carrier board (also known as “PS_ON”) may be used to enable the non-standby power on a typical ATX power supply.</td><td>O 3.3VSB</td><td>PD 100K</td><td></td></tr><tr><td>SUS_S4#</td><td>A18</td><td>Indicates system is in Suspend to Disk state. Active low output.</td><td>O 3.3VSB</td><td>PD 100K</td><td></td></tr><tr><td>SUS_S5#</td><td>A24</td><td>Indicates system is in Soft Off state.</td><td>O 3.3VSB</td><td>PD 100K</td><td></td></tr><tr><td>WAKE0#</td><td>B66</td><td>PCI Express wake up signal.</td><td>I 3.3VSB</td><td>PU 10K 3.3VSB</td><td></td></tr><tr><td>WAKE1#</td><td>B67</td><td>General purpose wake-up signal. May be used to implement wake-up on PS/2 keyboard or mouse activity.</td><td>I 3.3VSB</td><td>PU 10K 3.3VSB</td><td>Connect to WAKE 0#</td></tr><tr><td>BATLOW#</td><td>A27</td><td>Battery low input. This signal may be driven low by external circuitry to signal that the system battery is low or may be used to signal some other external power-management event.</td><td>I 3.3VSB</td><td>PU 10K 3.3VSB</td><td></td></tr><tr><td>LID#</td><td>A103</td><td>LID button. Low active signal used by the ACPI operating system for a LID switch.</td><td>I OD 3.3VSB</td><td>PU 47K 3.3VSB</td><td>Emulated on GPIO (BIOS)</td></tr><tr><td>SLEEP#</td><td>B103</td><td>Sleep button. Low active signal used by the ACPI operating system to bring the system to sleep state or to wake it up again.</td><td>I OD 3.3VSB</td><td>PU 47K 3.3VSB</td><td>Emulated on GPIO (BIOS)</td></tr><tr><td>RAPID_SHUTDOWN</td><td>C67</td><td>Trigger for Rapid Shutdown. Must be driven to 5V though a &lt;=50 ohm source impedance for ≥20 μs.</td><td>I CMOS 5VSB</td><td></td><td>Not supported</td></tr></table>

4.3.16 Power and Ground

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td>VCC_12V</td><td>A104, A105, A106, A107, A108, A109, B104, B105, B106, B107, B109</td><td>Primary power input supports a wide range input of 5 — 20V. All available VCC_12V pins on the connector(s) shall be used.</td><td>P</td><td></td><td>8.5-20 V</td></tr><tr><td>VCC_5V_SBY</td><td>B84, B85, B86, B87</td><td>Standby power input: +5.0V nominal. If VCC5_SBY is used, all available VCC_5V_SBY pins on the connector(s) shall be used. Only used for standby and suspend functions. May be left unconnected if these functions are not used in the system design.</td><td>P</td><td></td><td>5Vsb ±5%</td></tr><tr><td>VCC_RTC</td><td>A47</td><td>Real-time clock circuit-power input. Nominally +3.0V.</td><td>P</td><td></td><td></td></tr><tr><td>GND</td><td>A1, A11, A21, A31, A41, A51, A57, A60, A66, A70, A80, A90, A100, A110, B1, B11, B21, B31, B41, B51, B60, B70, B80, B90, B100, B110</td><td>Ground - DC power and signal and AC signal return path.</td><td>P</td><td></td><td></td></tr></table>

# 4.4. CD Connector Signal Descriptions

4.4.1 USB 3.0 Extensions

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td>USB_SSRX0-USB_SSRX0+</td><td>C3C4</td><td>Additional Receive signal differential pairs for the SuperSpeed USB data path on USB0</td><td>I PCIE</td><td></td><td>AC coupled off module</td></tr><tr><td>USB_SSTX0-USB_SSTX0+</td><td>D3D4</td><td>Additional Transmit signal differential pairs for the SuperSpeed USB data path on USB0</td><td>O PCIE</td><td></td><td>AC coupled on module</td></tr><tr><td>USB_SSRX1-USB_SSRX1+</td><td>C6C7</td><td>Additional Receive signal differential pairs for the SuperSpeed USB data path on USB1</td><td>I PCIE</td><td></td><td>AC coupled off module</td></tr><tr><td>USB_SSTX1-USB_SSTX1+</td><td>D6D7</td><td>Additional Transmit signal differential pairs for the SuperSpeed USB data path on USB1</td><td>O PCIE</td><td></td><td>AC coupled on module</td></tr><tr><td>USB_SSRX2-USB_SSRX2+</td><td>C9C10</td><td>Additional Receive signal differential pairs for the SuperSpeed USB data path on USB2</td><td>I PCIE</td><td></td><td>AC coupled off module</td></tr><tr><td>USB_SSTX2-USB_SSTX2+</td><td>D9D10</td><td>Additional Transmit signal differential pairs for the SuperSpeed USB data path on USB2</td><td>O PCIE</td><td></td><td>AC coupled on module</td></tr><tr><td>USB_SSRX3-USB_SSRX3+</td><td>C12C13</td><td>Additional Receive signal differential pairs for the SuperSpeed USB data path on USB3</td><td>I PCIE</td><td></td><td>AC coupled off module</td></tr><tr><td>USB_SSTX3-USB_SSTX3+</td><td>D12D13</td><td>Additional Transmit signal differential pairs for the SuperSpeed USB data path on USB3</td><td>O PCIE</td><td></td><td>AC coupled on module</td></tr></table>

# 4.4.1.1. USB Root Segmentation

All USB interfaces are derived from the xHCI controller.

4.4.2 PCI Express

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="6"></td></tr><tr><td>PCIE_TX6+PCIE_TX6-</td><td>D19D20</td><td>PCI Express channel 6, Transmit Output differential pair.</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PCIE_RX6+PCIE_RX6-</td><td>C19C20</td><td>PCI Express channel 6, Receive Input differential pair.</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PCIE_TX7+PCIE_TX7-</td><td>D22D23</td><td>PCI Express channel 7, Transmit Output differential pair.</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PCIE_RX7+PCIE_RX7-</td><td>C22C23</td><td>PCI Express channel 7, Receive Input differential pair.</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr></table>

# 4.4.2.1. PCH HSIO Lane Assignments

Refer to Section 4.3.6.1 PCH HSIO Lane Assignments on page 36.

# 4.4.3 DDI1 Port

<table><tr><td>Name</td><td>Pin #</td><td>DisplayPort (DP)</td><td>HDMI</td></tr><tr><td>DDI1_PAIR0+</td><td>D26</td><td>DP1_LANE0+</td><td>TMDS1_DATA2+</td></tr><tr><td>DDI1_PAIR0-</td><td>D27</td><td>DP1_LANE0-</td><td>TMDS1_DATA2-</td></tr><tr><td>DDI1_PAIR1+</td><td>D29</td><td>DP1_LANE1+</td><td>TMDS1_DATA1+</td></tr><tr><td>DDI1_PAIR1-</td><td>D30</td><td>DP1_LANE1-</td><td>TMDS1_DATA1-</td></tr><tr><td>DDI1_PAIR2+</td><td>D32</td><td>DP1_LANE2+</td><td>TMDS1_DATA0+</td></tr><tr><td>DDI1_PAIR2-</td><td>D33</td><td>DP1_LANE2-</td><td>TMDS1_DATA0-</td></tr><tr><td>DDI1_PAIR3+</td><td>D36</td><td>DP1_LANE3+</td><td>TMDS1_CLK+</td></tr><tr><td>DDI1_PAIR3-</td><td>D37</td><td>DP1_LANE3-</td><td>TMDS1_CLK-</td></tr><tr><td>DDI1_PAIR4+</td><td>C25</td><td>-</td><td>-</td></tr><tr><td>DDI1_PAIR4-</td><td>C26</td><td></td><td></td></tr><tr><td>DDI1_PAIR5+</td><td>C29</td><td>-</td><td>-</td></tr><tr><td>DDI1_PAIR5-</td><td>C30</td><td></td><td></td></tr><tr><td>DDI1_PAIR6+</td><td>C15</td><td>-</td><td>-</td></tr><tr><td>DDI1_PAIR6-</td><td>C16</td><td></td><td></td></tr><tr><td>DDI1_HPD</td><td>C24</td><td>DP1_HPD</td><td>HDMI1_HPD</td></tr><tr><td>DDI1_CTRLCLK_AUX+</td><td>D15</td><td>DP1_AUX+</td><td>HMDI1_CTRLCLK</td></tr><tr><td>DDI1_CTRLCLK_AUX-</td><td>D16</td><td>DP1_AUX-</td><td>HMDI1_CTRLDATA</td></tr><tr><td>DDI1_DDC_AUX_SEL</td><td>D34</td><td>DDI1_DDC_AUX_SEL</td><td>DDI1_DDC_AUX_SEL</td></tr></table>

![The image displays a simple icon of a document or file. It features a thick red outline forming a square shape with the top-right corner folded downward. Inside the red border, there are two horizontal red lines positioned centrally. The background inside the outline is white.](.express-rlp-manual-50m-72139-2020-12/23254f2c7d3fd06c8fe10bd565af1661e50e0e2323b81959f4883e57a11d463e.jpg)

Note: Dual Mode (HDMI and DisplayPort on the same pins) implementations may be realized. This is desirable for SOCs that natively implement this capability. With such SOCs, the primary Dual Mode implementation challenge is that the HDMI\_CTRL\_DAT and HDMI\_CTRL\_CK lines are DC coupled, but the DP\_AUX+ /- pair must be AC coupled. A set of FET switches is usually used to sort this out. The FET gates can be controlled by the AUX\_SEL pin function.

4.4.3.1. DisplayPort (DP) Mode

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td>DP1_LANE0+</td><td>D26</td><td>DP Port 1, differential pair data lines</td><td>O PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>DP1_LANE0-</td><td>D27</td><td></td><td></td><td></td><td rowspan="7">100 nF DC blocking capacitors shall be placed on the Carrier</td></tr><tr><td>DP1_LANE1+</td><td>D29</td><td></td><td></td><td></td></tr><tr><td>DP1_LANE1-</td><td>D30</td><td></td><td></td><td></td></tr><tr><td>DP1_LANE2+</td><td>D32</td><td></td><td></td><td></td></tr><tr><td>DP1_LANE2-</td><td>D33</td><td></td><td></td><td></td></tr><tr><td>DP1_LANE3+</td><td>D36</td><td></td><td></td><td></td></tr><tr><td>DP1_LANE3-</td><td>D37</td><td></td><td></td><td></td></tr><tr><td>DP1_HPD</td><td>C24</td><td>DP Port 1, detection of Hot Plug / Unplug and notification of the link layer</td><td>I 3.3V</td><td>PD 100K</td><td>Module must tolerate high level in stand-by mode. The carrier board shall include a blocking FET on DP1_HPD to prevent back-drive current from damaging the Module.</td></tr><tr><td>DP1_AUX+</td><td>D15</td><td>DP Port 1, Bidirectional Channel used for Link Management and Device Control</td><td>I/O PCIE</td><td>PD 100K</td><td>AC coupled on Module</td></tr><tr><td>DP1_AUX-</td><td>D16</td><td>DP Port 1, Bidirectional Channel used for Link Management and Device Control</td><td>I/O PCIE</td><td>PU 100K</td><td>AC coupled on Module</td></tr><tr><td>DDI1_DDC_AUX_SEL</td><td>D34</td><td>Strapping Signal to select HDMI or DP output1M pull-down on the module and floating on the carrier that enables DisplayPort mode</td><td>I 3.3V</td><td>PD 1M</td><td>DP mode enabled</td></tr></table>

4.4.3.2. HDMI Mode

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td>TMDS1_DATA2+</td><td>D26</td><td rowspan="6">HDMI / DVI Port, Differential Pair Data Lines</td><td rowspan="6">O PCIE</td><td rowspan="6"></td><td rowspan="6">AC coupled off Module100 nF DC blocking capacitors shall be placed on the Carrier</td></tr><tr><td>TMDS1_DATA2-</td><td>D27</td></tr><tr><td>TMDS1_DATA1+</td><td>D29</td></tr><tr><td>TMDS1_DATA1-</td><td>D30</td></tr><tr><td>TMDS1_DATA0+</td><td>D32</td></tr><tr><td>TMDS1_DATA0-</td><td>D33</td></tr><tr><td>TMDS1_CLK+</td><td>D36</td><td rowspan="2">HDMI Port, Differential Pair Clock Lines</td><td rowspan="2"></td><td rowspan="2"></td><td rowspan="2"></td></tr><tr><td>TMDS1_CLK-</td><td>D37</td></tr><tr><td>HDMI_HPD</td><td>C24</td><td>Detection of Hot Plug / Unplug and notification of the link layer</td><td>I 3.3V</td><td>PD 100K</td><td></td></tr><tr><td>HDMI1_CTRLCLK</td><td>D15</td><td>I2C_CLK Line for HDMI</td><td>I/O PCIE</td><td>PU 2.2K</td><td>AC couple on Module</td></tr><tr><td>HDMI1_CTRLDATA</td><td>D16</td><td>I2C_DAT Line for HDMI</td><td>I/O PCIE</td><td>PU 2.2K</td><td>AC couple on Module</td></tr><tr><td>DDI1_DDC_AUX_SEL</td><td>D34</td><td>Strapping Signal to select HDMI or DP output1M pull-down on the module and floating on the carrier that enables DisplayPort mode</td><td>I 3.3V</td><td>PD 1M</td><td>HDMI mode enabled</td></tr></table>

4.4.4 DDI2 Port

<table><tr><td>Name</td><td>Pin #</td><td>DisplayPort (DP)</td><td>HDMI</td></tr><tr><td>DDI2_PAIR0+</td><td>D39</td><td>DP2_LANE0+</td><td>TMDS2_DATA2+</td></tr><tr><td>DDI2_PAIR0-</td><td>D40</td><td>DP2_LANE0-</td><td>TMDS2_DATA2-</td></tr><tr><td>DDI2_PAIR1+</td><td>D42</td><td>DP2_LANE1+</td><td>TMDS2_DATA1+</td></tr><tr><td>DDI2_PAIR1-</td><td>D43</td><td>DP2_LANE1-</td><td>TMDS2_DATA1-</td></tr><tr><td>DDI2_PAIR2+</td><td>D46</td><td>DP2_LANE2+</td><td>TMDS2_DATA0+</td></tr><tr><td>DDI2_PAIR2-</td><td>D47</td><td>DP2_LANE2-</td><td>TMDS2_DATA0-</td></tr><tr><td>DDI2_PAIR3+</td><td>D49</td><td>DP2_LANE3+</td><td>TMDS2_CLK+</td></tr><tr><td>DDI2_PAIR3-</td><td>D50</td><td>DP2_LANE3-</td><td>TMDS2_CLK-</td></tr><tr><td>DDI2_HPD</td><td>D44</td><td>DP2_HPD</td><td>HDMI2_HPD</td></tr><tr><td>DDI2_CTRLCLK_AUX+</td><td>C32</td><td>DP2_AUX+</td><td>HMDI2_CTRLCLK</td></tr><tr><td>DDI2_CTRLCLK_AUX-</td><td>C33</td><td>DP2_AUX-</td><td>HMDI2_CTRLDATA</td></tr><tr><td>DDI2_DDC_AUX_SEL</td><td>C34</td><td>DDI2_DDC_AUX_SEL</td><td>DDI2_DDC_AUX_SEL</td></tr></table>

![The image displays a red outline icon resembling a message bubble or document with a folded top-right corner. Inside the shape are two horizontal red lines centered near the top, representing text. There is no actual text present.](.express-rlp-manual-50m-72139-2020-12/3cee098611579e712b62cf80d6380dcf8e94d236e8a8a8984c5d6b83827c78d3.jpg)

# Note:

Dual Mode (HDMI and DisplayPort on the same pins) implementations may be realized. This is desirable for SOCs that natively implement this capability. With such SOCs, the primary Dual Mode implementation challenge is that the HDMI\_CTRL\_DAT and HDMI\_CTRL\_CK lines are DC coupled, but the DP\_AUX+ /- pair must be AC coupled. A set of FET switches is usually used to sort this out. The FET gates can be controlled by the AUX\_SEL pin function.

4.4.4.1. DisplayPort (DP) Mode

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="6"></td></tr><tr><td>DP2_LANE0+</td><td>D39</td><td>DP Port 2, differential pair data lines</td><td>O PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>DP2_LANE0-</td><td>D40</td><td></td><td></td><td></td><td rowspan="7">100 nF DC blocking capacitors shall be placed on the Carrier</td></tr><tr><td>DP2_LANE1+</td><td>D42</td><td></td><td></td><td></td></tr><tr><td>DP2_LANE1-</td><td>D43</td><td></td><td></td><td></td></tr><tr><td>DP2_LANE2+</td><td>D46</td><td></td><td></td><td></td></tr><tr><td>DP2_LANE2-</td><td>D47</td><td></td><td></td><td></td></tr><tr><td>DP2_LANE3+</td><td>D49</td><td></td><td></td><td></td></tr><tr><td>DP2_LANE3-</td><td>D50</td><td></td><td></td><td></td></tr><tr><td>DP2_HPD</td><td>D44</td><td>DP Port 2, detection of Hot Plug / Unplug and notification of the link layer</td><td>I 3.3V</td><td>PD 100K</td><td>Module must tolerate high level in stand-by mode. The carrier board shall include a blocking FET on DP1_HPD to prevent back-drive current from damaging the Module.</td></tr><tr><td>DP2_AUX+</td><td>C32</td><td>DP Port 2, Bidirectional Channel used for Link Management and Device Control</td><td>I/O PCIE</td><td>PD 100K</td><td>AC coupled on Module</td></tr><tr><td>DP2_AUX-</td><td>C33</td><td>DP Port 2, Bidirectional Channel used for Link Management and Device Control</td><td>I/O PCIE</td><td>PU 100K</td><td>AC coupled on Module</td></tr><tr><td>DDI2_DDC_AUX_SEL</td><td>C34</td><td>Strapping Signal to select HDMI or DP output1M pull-down on the module and floating on the carrier that enables DisplayPort mode</td><td>I 3.3V</td><td>PD 1M</td><td>DP mode enabled</td></tr></table>

4.4.4.2. HDMI Mode

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td>TMDS2_DATA2+</td><td>D39</td><td rowspan="6">HDMI / DVI Port, Differential Pair Data Lines</td><td rowspan="6">O PCIE</td><td rowspan="6"></td><td rowspan="6">AC coupled off Module100 nF DC blocking capacitors shall be placed on the Carrier</td></tr><tr><td>TMDS2_DATA2-</td><td>D40</td></tr><tr><td>TMDS2_DATA1+</td><td>D42</td></tr><tr><td>TMDS2_DATA1-</td><td>D43</td></tr><tr><td>TMDS2_DATA0+</td><td>D46</td></tr><tr><td>TMDS2_DATA0-</td><td>D47</td></tr><tr><td>TMDS2_CLK+</td><td>D49</td><td rowspan="2">HDMI Port, Differential Pair Clock Lines</td><td rowspan="2"></td><td rowspan="2"></td><td rowspan="2"></td></tr><tr><td>TMDS2_CLK-</td><td>D50</td></tr><tr><td>HDM2_HPD</td><td>D44</td><td>Detection of Hot Plug / Unplug and notification of the link layer</td><td>I 3.3V</td><td>PD 100K</td><td></td></tr><tr><td>HDMI2_CTRLCLK</td><td>C32</td><td>I2C_CLK Line for HDMI</td><td>I/O PCIE</td><td>PU 2.2K</td><td>AC couple on Module</td></tr><tr><td>HDMI2_CTRLDATA</td><td>C33</td><td>I2C_DAT Line for HDMI</td><td>I/O PCIE</td><td>PU 2.2K</td><td>AC couple on Module</td></tr><tr><td>DDI2_DDC_AUX_SEL</td><td>C34</td><td>Strapping Signal to select HDMI or DP output1M pull-down on the module and floating on the carrier that enables DisplayPort mode</td><td>I 3.3V</td><td>PD 1M</td><td>HDMI mode enabled</td></tr></table>

4.4.5 DDI3 Port

<table><tr><td>Name</td><td>Pin #</td><td>DisplayPort (DP)</td><td>HDMI</td></tr><tr><td>DDI3_PAIR0+</td><td>C39</td><td>DP3_LANE0+</td><td>TMDS3_DATA2+</td></tr><tr><td>DDI3_PAIR0-</td><td>C40</td><td>DP3_LANE0-</td><td>TMDS3_DATA2-</td></tr><tr><td>DDI3_PAIR1+</td><td>C42</td><td>DP3_LANE1+</td><td>TMDS3_DATA1+</td></tr><tr><td>DDI3_PAIR1-</td><td>C43</td><td>DP3_LANE1-</td><td>TMDS3_DATA1-</td></tr><tr><td>DDI3_PAIR2+</td><td>C46</td><td>DP3_LANE2+</td><td>TMDS3_DATA0+</td></tr><tr><td>DDI3_PAIR2-</td><td>C47</td><td>DP3_LANE2-</td><td>TMDS3_DATA0-</td></tr><tr><td>DDI3_PAIR3+</td><td>C49</td><td>DP3_LANE3+</td><td>TMDS3_CLK+</td></tr><tr><td>DDI3_PAIR3-</td><td>C50</td><td>DP3_LANE3-</td><td>TMDS3_CLK-</td></tr><tr><td>DDI3_HPD</td><td>C44</td><td>DP3_HPD</td><td>HDMI3_HPD</td></tr><tr><td>DDI3_CTRLCLK_AUX+</td><td>C36</td><td>DP3_AUX+</td><td>HMDI3_CTRLCLK</td></tr><tr><td>DDI3_CTRLCLK_AUX-</td><td>C37</td><td>DP3_AUX-</td><td>HMDI3_CTRLDATA</td></tr><tr><td>DDI3_DDC_AUX_SEL</td><td>C38</td><td>DDI3_DDC_AUX_SEL</td><td>DDI3_DDC_AUX_SEL</td></tr></table>

![A red outline icon depicting a square document or page with its bottom-right corner folded over, featuring two horizontal lines in the center.](.express-rlp-manual-50m-72139-2020-12/7acd2981db00da3e57beaf56a8b3970b094d2da4c0541728dd54cd69abcffd32.jpg)

# Note:

Dual Mode (HDMI and DisplayPort on the same pins) implementations may be realized. This is desirable for SOCs that natively implement this capability. With such SOCs, the primary Dual Mode implementation challenge is that the HDMI\_CTRL\_DAT and HDMI\_CTRL\_CK lines are DC coupled, but the DP\_AUX+ /- pair must be AC coupled. A set of FET switches is usually used to sort this out. The FET gates can be controlled by the AUX\_SEL pin function.

4.4.5.1. DisplayPort (DP) Mode

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td>DP3_LANE0+</td><td>C39</td><td>DP Port 3, differential pair data lines</td><td>O PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>DP3_LANE0-</td><td>C40</td><td></td><td></td><td></td><td rowspan="7">100 nF DC blocking capacitors shall be placed on the Carrier</td></tr><tr><td>DP3_LANE1+</td><td>C42</td><td></td><td></td><td></td></tr><tr><td>DP3_LANE1-</td><td>C43</td><td></td><td></td><td></td></tr><tr><td>DP3_LANE2+</td><td>C46</td><td></td><td></td><td></td></tr><tr><td>DP3_LANE2-</td><td>C47</td><td></td><td></td><td></td></tr><tr><td>DP3_LANE3+</td><td>C49</td><td></td><td></td><td></td></tr><tr><td>DP3_LANE3-</td><td>C50</td><td></td><td></td><td></td></tr><tr><td>DP3_HPD</td><td>C44</td><td>DP Port 3, detection of Hot Plug / Unplug and notification of the link layer</td><td>I 3.3V</td><td>PD 100K</td><td>Module must tolerate high level in stand-by mode. The carrier board shall include a blocking FET on DP1_HPD to prevent back-drive current from damaging the Module.</td></tr><tr><td>DP3_AUX+</td><td>C36</td><td>DP Port 3, Bidirectional Channel used for Link Management and Device Control</td><td>I/O PCIE</td><td>PD 100K</td><td>AC coupled on Module</td></tr><tr><td>DP3_AUX-</td><td>C37</td><td>DP Port 3, Bidirectional Channel used for Link Management and Device Control</td><td>I/O PCIE</td><td>PU 100K</td><td>AC coupled on Module</td></tr><tr><td>DDI3_DDC_AUX_SEL</td><td>C38</td><td>Strapping Signal to select HDMI or DP output1M pull-down on the module and floating on the carrier that enables DisplayPort mode</td><td>I 3.3V</td><td>PD 1M</td><td>DP mode enabled</td></tr></table>

4.4.5.2. HDMI Mode

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td>TMDS3_DATA2+</td><td>C39</td><td rowspan="6">HDMI / DVI Port, Differential Pair Data Lines</td><td rowspan="6">O PCIE</td><td rowspan="6"></td><td rowspan="6">AC coupled off Module100 nF DC blocking capacitors shall be placed on the Carrier</td></tr><tr><td>TMDS3_DATA2-</td><td>C40</td></tr><tr><td>TMDS3_DATA1+</td><td>C42</td></tr><tr><td>TMDS3_DATA1-</td><td>C43</td></tr><tr><td>TMDS3_DATA0+</td><td>C46</td></tr><tr><td>TMDS3_DATA0-</td><td>C47</td></tr><tr><td>TMDS3_CLK+</td><td>C49</td><td rowspan="2">HDMI Port, Differential Pair Clock Lines</td><td rowspan="2"></td><td rowspan="2"></td><td rowspan="2"></td></tr><tr><td>TMDS3_CLK-</td><td>C50</td></tr><tr><td>HDM3_HPD</td><td>C44</td><td>Detection of Hot Plug / Unplug and notification of the link layer</td><td>I 3.3V</td><td>PD 100K</td><td></td></tr><tr><td>HDMI3_CTRLCLK</td><td>C36</td><td>I2C_CLK Line for HDMI</td><td>I/O PCIE</td><td>PU 2.2K</td><td>AC couple on Module</td></tr><tr><td>HDMI3_CTRLDATA</td><td>C37</td><td>I2C_DAT Line for HDMI</td><td>I/O PCIE</td><td>PU 2.2K</td><td>AC couple on Module</td></tr><tr><td>DDI3_DDC_AUX_SEL</td><td>C38</td><td>Strapping Signal to select HDMI or DP output1M pull-down on the module and floating on the carrier that enables DisplayPort mode</td><td>I 3.3V</td><td>PD 1M</td><td>HDMI mode enabled</td></tr></table>

4.4.6 PCIe Graphics Port (PEG)

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td>PEG_TX0+PEG_TX0-</td><td>D52D53</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX0+PEG_RX0-</td><td>C52C53</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_TX1+PEG_TX1-</td><td>D55D56</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX1+PEG_RX1-</td><td>C55C56</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_TX2+PEG_TX2-</td><td>D58D59</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX2+PEG_RX2-</td><td>C58C59</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_TX3+PEG_TX3-</td><td>D61D62</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX3+PEG_RX3-</td><td>C61C62</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_TX4+PEG_TX4-</td><td>D65D66</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX4+PEG_RX4-</td><td>C65C66</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_TX5+PEG_TX5-</td><td>D68D69</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX5+PEG_RX5-</td><td>C68C69</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_TX6+PEG_TX6-</td><td>D71D72</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX6+PEG_RX6-</td><td>C71C72</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_TX7+PEG_TX7-</td><td>D74D75</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX7+PEG_RX7-</td><td>C74C75</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_TX8+PEG_TX8-</td><td>D78D79</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX8+PEG_RX8-</td><td>C78C79</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_TX9+PEG_TX9-</td><td>D81D82</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX9+PEG_RX9-</td><td>C81C82</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_TX10+PEG_TX10-</td><td>D85D86</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX10+PEG_RX10-</td><td>C85C86</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_TX11+PEG_TX11-</td><td>D88D89</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX11+PEG_RX11-</td><td>C88C89</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_TX12+PEG_TX12-</td><td>D91D92</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX12+PEG_RX12-</td><td>C91C92</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_TX13+PEG_TX13-</td><td>D94D95</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX13+PEG_RX13-</td><td>C94C95</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_TX14+PEG_TX14-</td><td>D98D99</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX14+PEG_RX14-</td><td>C98C99</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_TX15+PEG_TX15-</td><td>D101D102</td><td>PCI Express Graphics transmit differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>O PCIE</td><td></td><td>AC coupled on Module</td></tr><tr><td>PEG_RX15+PEG_RX15-</td><td>C101C102</td><td>PCI Express Graphics receive differential pairs. These are the same lines as PCIE_TX[16:31]+ and – in Module pin-out Type 6</td><td>I PCIE</td><td></td><td>AC coupled off Module</td></tr><tr><td>PEG_LANE_RV#</td><td>D54</td><td>PCI Express Graphics lane reversal input strap. Pull low on the Carrier Board to reverse lane order.</td><td>I 3.3V</td><td></td><td></td></tr></table>

![The image displays a red icon resembling a document or page. It features a thick red outline of a rectangular shape with the top-right corner folded down. Inside the outline, two horizontal red lines are centered, representing text.](.express-rlp-manual-50m-72139-2020-12/d246f5e4e3bfb47f194fb09343bd8d5e344d68d816e7a86d6869fb6a7546831c.jpg)

Note: PEG slot is suitable for GPU, NVMe SSD.

4.4.7 Module Type Definition

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="6"></td></tr><tr><td>TYPE0#</td><td>C54</td><td rowspan="3">The TYPE pins indicate to the Carrier Board the Pin-out Type that is implemented on the Module. The pins are tied on the Module to either ground (GND) or are no-connects (NC).</td><td rowspan="3"></td><td rowspan="3"></td><td rowspan="3">Type 6</td></tr><tr><td>TYPE1#</td><td>C57</td></tr><tr><td>TYPE2#</td><td>D57</td></tr><tr><td></td><td></td><td>For Pin-out Type 1 and Type 10 that lack a CD connector, these pins are not present (X)</td><td></td><td></td><td></td></tr><tr><td></td><td></td><td>TYPE2# TYPE1# TYPE0#</td><td></td><td></td><td></td></tr><tr><td></td><td></td><td>X X X Pinout Type 1</td><td></td><td></td><td></td></tr><tr><td></td><td></td><td>X X X Pinout Type 10</td><td></td><td></td><td></td></tr><tr><td></td><td></td><td>NC NC NC Pinout Type 2</td><td></td><td></td><td></td></tr><tr><td></td><td></td><td>NC NC GND Pinout Type 3</td><td></td><td></td><td></td></tr><tr><td></td><td></td><td>NC GND NC Pinout Type 4</td><td></td><td></td><td></td></tr><tr><td></td><td></td><td>NC GND GND Pinout Type 5</td><td></td><td></td><td></td></tr><tr><td></td><td></td><td>GND NC NC Pinout Type 6</td><td></td><td></td><td></td></tr><tr><td></td><td></td><td>GND NC GND Pinout Type 7</td><td></td><td></td><td></td></tr><tr><td></td><td></td><td>The Carrier Board should implement combinatorial logic that monitors the module TYPE pins and keeps power off (e.g. deactivates the ATX_ON signal for an ATX power supply) if an incompatible module pin-out type is detected. The Carrier Board logic may also implement a fault indicator such as an LED.</td><td></td><td></td><td></td></tr><tr><td>TYPE10#</td><td>A97</td><td>In case of a type 10 module this pin signal is tied to GND through a 47K resistor on the module.</td><td></td><td></td><td>No PD</td></tr></table>

4.4.8 Power and Ground

<table><tr><td>Name</td><td>Pin #</td><td>Description</td><td>I/O</td><td>PU / PD</td><td>Comment</td></tr><tr><td colspan="6"></td></tr><tr><td>VCC_12V</td><td>C104, C105, C106, C107, C108, C109, D104, D105, D106, D107, D108, D109</td><td>Primary power input supports a wide input range of 5~20V. All available VCC_12V pins on the connector(s) shall be used.</td><td>P</td><td></td><td>8.5-20 V</td></tr><tr><td>GND</td><td>C1, C2, C5, C8, C11, C14, C21, C31, C41, C51, C60, C70, C73, C76, C80, C84, C87, C90, C93, C96, C100, C103, C110, D1, D2, D5, D8, D11, D14, D21, D31, D41, D51, D60, D67, D70, D73, D76, D80, D84, D87, D90, D93, D96, D100, D103, D110</td><td>Ground - DC power and signal and AC signal return path.</td><td>P</td><td></td><td></td></tr></table>

# 5. Additional Features

This chapter describes connectors, LEDs, switches and additional items located on the module and not necessarily included in the PICMG standard specification. The locations of these items are as below:

![5.1. Module Feature Locations\nStatus LEDs\nBIOS Default Reset Button\n30-pin Debug connector\nBIOS Boot Select\nADLINK\nFan](.express-rlp-manual-50m-72139-2020-12/676b7971cbe2f0f400297f21138b14d6c62f927a32a4dab6574a84f1634e4a5a.jpg)

Figure 3 – Module feature locations (top side)

# 5.2. Debug Connector

This connector is particular useful during carrier design and bring up phase. It offers access to the following critical parts of the module:

Test points measurement of internal power rails
SPI BIOS programming interface
Embedded Controller programming interface

30-pin Debug Connector located on bottom side (illustration only)
![Close-up of a green printed circuit board with multiple microchips and connectors (no readable text or symbols)](.express-rlp-manual-50m-72139-2020-12/6065cab89ac84331b68bd7f18c7e85c9cdb81724ebde8737bdfe7efd403e2dcb.jpg)

![Electronic circuit board with gold contacts and a coiled ribbon, no visible text or symbols](.express-rlp-manual-50m-72139-2020-12/a8498d66fd5c9dd195380c665a662bdce7e74c54a175c8c856d28049acb251de.jpg)

Figure 4 – Express-RLP and Debug Module

# 5.3. Status LEDs

Status LED’s are mounted on the module to facilitate easier maintenance.

![LED3 LED2 LED1](.express-rlp-manual-50m-72139-2020-12/9f85add078a6d5cb116c02dcae41f424702d9c2d13fd7f897c719cc8052ed316.jpg)

<table><tr><td>Name</td><td>Color</td><td>Connection</td><td>Function</td></tr><tr><td colspan="4"></td></tr><tr><td>LED1</td><td>Blue</td><td>EC output</td><td>Power Sequence Status Code (EC) Power Changes, RESET (see Exception Codes below)</td></tr><tr><td>LED2</td><td>Green</td><td>Power Source 3Vcc</td><td>S0 LED ONS3/S4/S5 LED OFFECO mode LED OFF</td></tr><tr><td>LED3</td><td>Red</td><td>EC output and same signal as WDT (B27) on BtB connector</td><td>Module power up WD LED = LED OFFWatchdog counting WD LED = Keep Last StateWatchdog timed out WD LED = LED ONWatchdog RESET WD LED = LED ONRebooted after WD RESET WD LED = LED ONRebooted after PWRBTN WD LED = LED OFFRebooted after RESET BTN WD LED = LED OFFNote: only a RESET not initiated by the BMC can clear the WD LED (user action)</td></tr></table>

# 5.4. Exception Codes

<table><tr><td>Exception Code</td><td>Error Message</td></tr><tr><td>0</td><td>NOERROR</td></tr><tr><td>3</td><td>NO_SLP_S5</td></tr><tr><td>4</td><td>NO_SLP_S4</td></tr><tr><td>5</td><td>NO_SLP_S3</td></tr><tr><td>6</td><td>BIOS_FAIL</td></tr><tr><td>7</td><td>RESET_FAIL</td></tr><tr><td>9</td><td>NO_CB_PWROK</td></tr><tr><td>10</td><td>CRITICAL_TEMP</td></tr><tr><td>11</td><td>POWER_FAIL</td></tr><tr><td>12</td><td>VOLTAGE_FAIL</td></tr><tr><td>13</td><td>RSMRST_FAIL</td></tr><tr><td>14</td><td>NO_VDDQ_PG</td></tr><tr><td>16</td><td>NO_VCORE_PG</td></tr><tr><td>17</td><td>NO_SYS_GD</td></tr><tr><td>19</td><td>NO_V3P3A</td></tr><tr><td>21</td><td>NO_PWRSRC_GD</td></tr></table>

# 5.5. Fan Connector

Connector type: JVE 24W1125A-04M00

![Close-up of a green printed circuit board with various electronic components and a red arrow pointing to component 4 (no readable text or symbols)](.express-rlp-manual-50m-72139-2020-12/5f6461c8e8c665318446196d294eb42ba09e18876c42e5755678e05a27d41afe.jpg)

<table><tr><td>Name</td><td>Description</td></tr><tr><td colspan="2"></td></tr><tr><td>1</td><td>FAN_PWMOUT</td></tr><tr><td>2</td><td>FAN_TACHIN</td></tr><tr><td>3</td><td>GND</td></tr><tr><td>4</td><td>12V</td></tr></table>

# 5.6. BIOS Default Reset Button

![Close-up of a green printed circuit board with electronic components and a red arrow pointing to a component (no visible text or symbols)](.express-rlp-manual-50m-72139-2020-12/3a538b1e56a2c13b10693b73ad3e9ec9c6b05a4295dc7bc621c56a206cdacc6b.jpg)

To perform a hardware reset of BIOS default settings, perform the following steps:

1. Shut down the system.
2. Keep the BIOS Setup Defaults Reset Button pressed and boot up the system. You can release the button when the BIOS prompt screen appears
3. The BIOS prompt screen will display a confirmation that BIOS defaults have been reset and request that you reboot the system.

![American\nMegatrends\nVersion 2.15.1236. Copyright (C) 2012 American Megatrends, Inc.\nExpress-HL REV:1.04\nPress (CTRL + P) to Enter MEBX setup menu\nPress (DEL) or (ESC) to enter setup.\nDefault settings had been loaded due to BIOS_DEFAULT jumper is set!\nPlease turn off system power and remove BIOS_DEFAULT jumper!](.express-rlp-manual-50m-72139-2020-12/74dbb6f2e47be93bd4d8cd2af245efd45bab1280b4f6d5e6228f23751ce8172e.jpg)

# 5.7. BIOS Boot Select

The module has two BIOS chips (BOM option) and BIOS operation can be configured to "PICMG" and dual-BIOS "Failsafe" modes using BIOS Select and Mode Configuration Switch, Pin 2.

Setting the module to PICMG mode will configure the BIOS chips on the module as SPI0 and SPI1. In PICMG mode, a BIOS chip cannot be placed in the SPI0 slot on the carrier.

In dual-BIOS Failsafe mode, both BIOS chips on the module are configured as SPI1. Only one of the two is connected to the SPI bus at any given time. In case of failure of the primary SPI1 BIOS, the system will reboot and switch to the secondary SPI1 BIOS on the module. In Failsafe mode, the SPI0 BIOS socket on the carrier can be populated.

In either mode, BIOS Select and Mode Configuration Switch Pin 1 is used to select whether to boot from SPI0 or SPI1.

<table><tr><td>Mode</td><td>Pin 1</td><td>Pin 2</td></tr><tr><td>Boot from SPI0 (default)</td><td>On</td><td>-</td></tr><tr><td>Boot from SPI1</td><td>Off</td><td>-</td></tr><tr><td>Set BIOS to PICMG mode (default)</td><td>-</td><td>On</td></tr><tr><td>Set BIOS to Failsafe BIOS mode</td><td>-</td><td>Off</td></tr></table>

# 6. System Resources

6.1. System Memory Map

<table><tr><td>Address Range (hex)</td><td>Description</td></tr><tr><td>FFE00000 – FFFFFFFF</td><td>High BIOS Area</td></tr><tr><td>FEE00000 – FEEFFFFFF</td><td>MSI Interrupt</td></tr><tr><td>FEC00000 – FECFFFFFF</td><td>APIC Configuration Space</td></tr><tr><td>F00000 – FFFFFFF</td><td>ISA Hole</td></tr><tr><td>100000 – EFFFFF</td><td>Main Memory</td></tr><tr><td>0K – 1MB</td><td>DOS Compatibility Memory</td></tr></table>

6.2. I/O Map

<table><tr><td>Hex Range</td><td>Device</td></tr><tr><td>000h-CF7h</td><td>PCIe Root Complex</td></tr><tr><td>020h – 02Dh &amp; 030h – 03Dh</td><td>Programmable Interrupt Controller</td></tr><tr><td>02Eh – 02Fh</td><td>Motherboard Resource</td></tr><tr><td>040h – 043h &amp; 050h – 053h</td><td>System Timer</td></tr><tr><td>04Eh – 04Fh</td><td>Motherboard Resource</td></tr><tr><td>060h, 064h</td><td>8042 Equivalent (keyboard)</td></tr><tr><td>061h, 063h, 065h, 067h, 070h,080h,92h</td><td>Motherboard Resource</td></tr><tr><td>062h, 066h</td><td>Embedded Controller</td></tr><tr><td>0A0h – 0A1h &amp; 0A4h – 0A5h, 0A8h – 0A9h &amp; 0ACh – 0ADh, &amp; 0B0h – 0B1h &amp; 0B4h – 0B5h &amp; 0B8h – 0B9h &amp; 0BCh – 0BDh</td><td>Programmable Interrupt Controller</td></tr><tr><td>240h – 247h</td><td>Serial Port 3</td></tr><tr><td>248h – 24Fh</td><td>Serial Port 4</td></tr><tr><td>2F8h – 2FFh</td><td>Serial Port 2</td></tr><tr><td>3F8h – 3FFh</td><td>Serial Port 1</td></tr><tr><td>4D0h-4D1h</td><td>Programmable Interrupt Controller</td></tr><tr><td>680h-69Fh, A00h-A1Fh,A20h-A2Fh,A30h-A3Fh,A40h-A4Fh,A50h-A5Fh,A60h-A6Fh</td><td>Motherboard Resource</td></tr><tr><td>0D00h– – FFFFh</td><td>PCIe Root Complex</td></tr><tr><td>164Eh – 164Fh,1800h-18FEh,1854h-1857h,2000h-20FEh</td><td>Motherboard Resource</td></tr><tr><td>03000h-303Fh</td><td>Intel Graphics Driver</td></tr><tr><td>03060h – 307Fh, 03080h-03083h, 3090h-3097h</td><td>SATA AHCI Controller</td></tr><tr><td>EFA0h-EFBFh</td><td>SMBUS</td></tr><tr><td>FFF8h-FFFFh</td><td>AMT SOL Serial COM 5</td></tr></table>

# 6.3. Interrupt Request (IRQ) Lines

APIC Mode

<table><tr><td>IRQ#</td><td>Typical Interrupt Resource</td><td>Connected to Pin</td><td>Available</td></tr><tr><td>0</td><td>Counter 0</td><td>N/A</td><td>No</td></tr><tr><td>1</td><td>Keyboard Controller</td><td>IRQ1 via SERIRQ</td><td>No</td></tr><tr><td>2</td><td>N/A</td><td>N/A</td><td>No</td></tr><tr><td>3</td><td>Serial Port 2 (COM2)</td><td>IRQ3 via SERIRQ</td><td>Note (1)</td></tr><tr><td>4</td><td>Serial Port 1 (COM1)</td><td>IRQ4 via SERIRQ</td><td>Note (1)</td></tr><tr><td>5</td><td>Serial Port 3 (COM3)</td><td>IRQ5 via SERIRQ</td><td>Note (1)</td></tr><tr><td>6</td><td>N/A</td><td>N/A</td><td>Note (1)</td></tr><tr><td>7</td><td>Serial Port 4 (COM4)</td><td>IRQ7 via SERIRQ</td><td>Note (1)</td></tr><tr><td>8</td><td>Real-Time clock</td><td>N/A</td><td>No</td></tr><tr><td>9</td><td>Generic</td><td>N/A</td><td>Note (1)</td></tr><tr><td>10</td><td>N/A</td><td>N/A</td><td>Note (1)</td></tr><tr><td>11</td><td>N/A</td><td>N/A</td><td>Note (1)</td></tr><tr><td>12</td><td>PS/2 Mouse</td><td>IRQ12 via SERIRQ</td><td>Note (1)</td></tr><tr><td>13</td><td>Numeric data processor</td><td>N/A</td><td>Note (1)</td></tr><tr><td>14</td><td>Generic</td><td>IRQ14 via SERIRQ</td><td>Note (1)</td></tr><tr><td>15</td><td>N/A</td><td>IRQ15 via SERIRQ</td><td>Note (1)</td></tr><tr><td>16-511</td><td>Microsoft ACPI-Compliant System</td><td>P.E.G Root Port, Intel HDA, PCIE Port 0/1/2/3/4/5/6, I.G.D., XHCI Controller</td><td>Note (1)</td></tr></table>

![The image displays a red icon resembling a document or text file. It features a thick red outline with a folded corner at the bottom right. Inside the white area, there are two horizontal red bars centered vertically, representing text lines or a list.](.express-rlp-manual-50m-72139-2020-12/0de7df864f075b5c05cba47d16c488551ea169d278a98210e8e6714de7cfc23c.jpg)
Note (1): These IRQs can be used for PCI devices when onboard device is disabled.

6.4. PCI Configuration Space Map

<table><tr><td>Bus Number</td><td>Device Number</td><td>Function Number</td><td>Routing</td><td>Description</td></tr><tr><td>00h</td><td>00h</td><td>00h</td><td>Internal</td><td>Intel Host Bridge</td></tr><tr><td>00h</td><td>02h</td><td>00h</td><td>Internal</td><td>Processor Graphics</td></tr><tr><td>00h</td><td>04h</td><td>00h</td><td>Internal</td><td>Intel Data Acquisition/Signal Processor</td></tr><tr><td>00h</td><td>06h</td><td>00h</td><td>Internal</td><td>PCI Express* Controller (x4 PCIe)</td></tr><tr><td>00h</td><td>06h</td><td>02h</td><td>Internal</td><td>PCI Express* Controller (x4 PCIe)</td></tr><tr><td>00h</td><td>08h</td><td>00h</td><td>Internal</td><td>Intel System Peripherals</td></tr><tr><td>00h</td><td>14h</td><td>00h</td><td>Internal</td><td>Intel USB 3.0 XHCI</td></tr><tr><td>00h</td><td>14h</td><td>02h</td><td>Internal</td><td>Intel RAM</td></tr><tr><td>00h</td><td>15h</td><td>00h</td><td>Internal</td><td>Intel Serial Bus Controller</td></tr><tr><td>00h</td><td>15h</td><td>01h</td><td>Internal</td><td>Intel Serial Bus Controller</td></tr><tr><td>00h</td><td>16h</td><td>00h</td><td>Internal</td><td>Intel Communication Device</td></tr><tr><td>00h</td><td>16h</td><td>03h</td><td>Internal</td><td>Intel 16550 Serial Controller</td></tr><tr><td>00h</td><td>17h</td><td>00h</td><td>Internal</td><td>Intel AHCI 1.0 Controller</td></tr><tr><td>00h</td><td>1Ch</td><td>00h</td><td>Internal</td><td>Intel PCI Express</td></tr><tr><td>00h</td><td>1Dh</td><td>00h</td><td>Internal</td><td>Intel PCI Express</td></tr><tr><td>00h</td><td>1Dh</td><td>01h</td><td>Internal</td><td>Intel PCI Express</td></tr><tr><td>00h</td><td>1Fh</td><td>00h</td><td>Internal</td><td>Intel ISA Bridge</td></tr><tr><td>00h</td><td>1Fh</td><td>03h</td><td>Internal</td><td>Intel Multimedia</td></tr><tr><td>00h</td><td>1Fh</td><td>04h</td><td>Internal</td><td>Intel SMBUS</td></tr><tr><td>00h</td><td>1Fh</td><td>05h</td><td>Internal</td><td>Intel Serial BUS Controller</td></tr></table>

6.5. PCI Interrupt Routing Map

<table><tr><td>INT Line</td><td>Audio Controller</td><td>xHCI Controller</td><td>CSME Controller</td><td>eSPI Controller</td><td>SATA Controller</td><td>SMBus Controller</td></tr><tr><td>Int0</td><td>INTA: 16</td><td>INTA: 16</td><td>INTA: 16</td><td>INTA: None</td><td>INTA: 16</td><td>INTA: 16</td></tr><tr><td>Int1</td><td></td><td>INTB: 17</td><td>INTB: 17</td><td></td><td></td><td></td></tr><tr><td>Int2</td><td></td><td>INTC: 18</td><td>INTC: 18</td><td></td><td></td><td></td></tr><tr><td>Int3</td><td></td><td>INTD: 19</td><td>INTD: 19</td><td></td><td></td><td></td></tr></table>

<table><tr><td>INT Line</td><td>PCIe Port 5</td><td>PCIe Port6</td><td>PCIe Port 7</td><td>PCIe Port 8</td><td>PCIe Port 9</td><td>PCIe Port 10</td></tr><tr><td>Int0</td><td>INTA: 16</td><td>INTB: 17</td><td>INTC: 18</td><td>INTD: 19</td><td>INTA: 16</td><td>INTB: 17</td></tr><tr><td>Int1</td><td>INTB: 17</td><td>INTC: 18</td><td>INTD: 19</td><td>INTA: 16</td><td>INTB: 17</td><td>INTC: 18</td></tr><tr><td>Int2</td><td>INTC: 18</td><td>INTD: 19</td><td>INTA: 16</td><td>INTB: 17</td><td>INTC: 18</td><td>INTD: 19</td></tr><tr><td>Int3</td><td>INTD: 19</td><td>INTA: 16</td><td>INTB: 17</td><td>INTC: 18</td><td>INTD: 19</td><td>INTA: 16</td></tr></table>

6.6. SMBus Address Table

<table><tr><td>Device</td><td>Address</td></tr><tr><td>DIMM A</td><td>0A0h</td></tr><tr><td>DIMM B</td><td>0A4h</td></tr><tr><td>PTN3460</td><td>0C0h</td></tr></table>

# 7. BIOS Setup

# 7.1. Menu Structure

This section presents the six primary menus of the BIOS Setup Utility. Use the following table as a quick reference for the contents of the BIOS Setup Utility. The subsections in this section describe the submenus and setting options for each menu item. The default setting options are presented in bold, and the function of each setting is described in the right-hand column of the respective table.

<table><tr><td>Main</td><td>Advanced</td><td>Chipset</td><td>Security</td><td>Boot</td><td>Save &amp; Exit</td></tr><tr><td>BIOS InformationSystem InformationBoard Information►System DateSystem Time</td><td>CPU Configuration ►Power &amp; Performance ►Graphics Configuration ►Power Management ►System Management ►Thermal Management ►Watchdog Timer ►Super IO Configuration ►Miscellaneous ►USB Configuration ►NVMe Configuration ►AMI Graphic Output Protocol Policy ►Serial Port Console Redirection ►Network Stack Configuration ►Trusted Computing ►</td><td>System Agent (SA) Configuration ►PCH-IO Configuration ►</td><td>PasswordDescriptionSecure BootMenu ►</td><td>BootConfiguration</td><td>Save OptionsBoot Override</td></tr></table>

![The image displays a red icon on a white background. It features an outline of a document or piece of paper with the bottom-right corner folded up. Inside the outline, there are two horizontal red bars centered vertically, resembling lines of text.](.express-rlp-manual-50m-72139-2020-12/fd29d38323379d748d71683e2cbb5b15e319b497e289047f121a7718271da3dd.jpg)

Note: indicates a submenu Gray text indicates info only

# 7.2. Main

The Main Menu provides read-only information about your system and also allows you to set the System Date and Time. Refer to the tables below the screenshot of this menu for details of the submenus and settings.

7.2.1 BIOS Information

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>BIOS Vender</td><td>Info only</td><td>American Megatrends</td></tr><tr><td>BIOS Version</td><td>Info only</td><td>Display Core Version</td></tr><tr><td>Build Date</td><td>Info only</td><td>Display Compliancy Information</td></tr><tr><td>MRC Version</td><td>Info only</td><td>Display Compliancy Information</td></tr><tr><td>GOP Version</td><td>Info only</td><td>ADLINK BIOS Version</td></tr><tr><td>ME FW Version</td><td>Info only</td><td>ADLINK BIOS Version</td></tr><tr><td>BIOS Boot Source</td><td>Info only</td><td>SPI Boot Source</td></tr></table>

7.2.2 System Information

<table><tr><td>Board Information</td><td>Info only</td><td>Description</td></tr><tr><td>Project Name</td><td>Info only</td><td>Display Project Name</td></tr><tr><td>CPU Board Version</td><td>Info only</td><td>Display CPU Signature</td></tr><tr><td>CPU Brand String</td><td>Info only</td><td>Display CPU Brand Name</td></tr><tr><td>Stepping</td><td>Info only</td><td>Display CPU Stepping</td></tr><tr><td>CPU Frequency</td><td>Info only</td><td>Display CPU Frequency</td></tr><tr><td>Total Memory</td><td>Info only</td><td>Display Installed Memory Size</td></tr><tr><td>Memory Frequency</td><td>Info only</td><td>Display Memory Frequency</td></tr><tr><td>PCH SKU</td><td>Info only</td><td>Display PCH Information.</td></tr><tr><td>Board Information</td><td>Submenu</td><td></td></tr></table>

7.2.3 Board Information

<table><tr><td>Board Information</td><td>Info only</td><td>Description</td></tr><tr><td>Serial Number</td><td>Read only</td><td>Display SMC serial number.</td></tr><tr><td>Manufacturing Date</td><td>Read only</td><td>Display SMC manufacturing date.</td></tr><tr><td>Last Repair Date</td><td>Read only</td><td>Display SMC last repair date.</td></tr><tr><td>MAC ID</td><td>Read only</td><td>Display SMC MAC ID.</td></tr><tr><td>Runtime Statistics</td><td colspan="2">Info only</td></tr><tr><td>Total Runtime</td><td>Read only</td><td>The returned value specifies the total time in minutes the system is running in the S0 state.</td></tr><tr><td>Current Runtime</td><td>Read only</td><td>The returned value specifies the time in seconds the system is running in the S0 state.This counter is cleared when the system is removed from the external power supply.</td></tr><tr><td>Power Cycles</td><td>Read only</td><td>The returned value specifies the number of times the external power supply has been shut down.</td></tr><tr><td>Boot Cycles</td><td>Read only</td><td>The Bootcounter is increased after a HW- or SW-Reset or after a successful power-up.</td></tr><tr><td>Boot Reason</td><td>Read only</td><td>The boot reason is the event which causes the reboot of the system.</td></tr></table>

7.2.4 System Date and Time

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>System Date</td><td>Weekday, MM/DD/YYYY</td><td>Requires the alpha-numeric entry of the day of the week, day of the month, calendar month, and all 4 digits of the year, indicating the century and year (Fri XX/XX/20XX).</td></tr><tr><td>System Time</td><td>HH/MM/SS</td><td>Presented as a 24-hour clock setting in hours, minutes, and seconds.</td></tr><tr><td>Access Level</td><td>Read only</td><td>It shows what access level is used to enter the BIOS setup menu.</td></tr></table>

# 7.3. Advanced

This menu contains the settings for most of the user interfaces in the system.

7.3.1 CPU Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>ID</td><td>Info only</td><td>Display CPU information.</td></tr><tr><td>Brand String</td><td>Info only</td><td>Display CPU brand string.</td></tr><tr><td>Microcode Revision</td><td>Info only</td><td>Display CPU microcode revision.</td></tr><tr><td>VMX</td><td>Info only</td><td>Display Intel Virtualization Technology support status.</td></tr><tr><td>SMX/TXT</td><td>Info only</td><td>Display Intel SMX Technology support status.</td></tr><tr><td>Intel (VMX) Virtualization Technology</td><td>Disabled, Enabled</td><td>When enabled, a VMM can utilize the additional hardware capabilities provided by Vanderpool Technology.</td></tr><tr><td>Active Performance-Cores</td><td>All, 3, 2, 1</td><td>Number of P-cores to enable in each processor package.</td></tr><tr><td>Active Processor Cores</td><td>All, 7, 6, 5, 4, 3, 2, 1, 0</td><td>Number of E-cores to enable in each processor package.</td></tr><tr><td>Hyper-Threading</td><td>Disabled, Enabled</td><td>Enable or Disable Hyper-Threading Technology.</td></tr><tr><td>Intel Trusted Execution Technology</td><td>Disabled, Enabled</td><td>Enables utilization of additional hardware capabilities provided by Intel (R) Trusted Execution Technology.</td></tr><tr><td>Total Memory Encryption</td><td>Disabled, Enabled</td><td>Configure Toral Memory Encryption (TME) to protect DRAM data from physical attacks.</td></tr></table>

# 7.3.2 Power & Performance Configuration

# 7.3.2.1. CPU - Power Management Control

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Boot Performance Mode</td><td>Max Battery, Max Non-Turbo Performance, Turbo Performance</td><td>Selects the performance state that the BIOS will set starting from the reset vector.</td></tr><tr><td>Intel(R) SpeedStep(TM)</td><td>Disabled, Enabled</td><td>Allows more than two frequency ranges to be supported.</td></tr><tr><td>Race To Halt (RTH)</td><td>Disabled, Enabled</td><td>Enables/Disables the Race To Halt feature. RTH will dynamically increase CPU frequency in order to enter pkg C-State faster to reduce overall power. (RTH is controlled through MSR 1FC bit 20)</td></tr><tr><td>Intel(R) Speed Shift Technology</td><td>Disabled, Enabled</td><td>Enables/Disables Intel(R) Speed Shift Technology support. Enabling it will expose the CPPC v2 interface to allow for hardware-controlled P-states.</td></tr><tr><td>Per Core P State OS control mode</td><td>Disabled, Enabled</td><td>Enables/Disables Per Core P state OS control mode. Disabling it will set Bit 31 = 1 command 0x06. When set, the highest core request is used for all other core requests.</td></tr><tr><td>HwP Autonomous Per Core P state</td><td>Disabled, Enabled</td><td>Disabling Autonomous PCPS (Bit 30 = 1, command 0x11) means it will request the same value for all cores at all times. Enable PCPS (default Bit 30 = 0, command 0x11)</td></tr><tr><td>HwP Autonomous EPP Grouping</td><td>Disabled, Enabled</td><td>Enables EPP grouping (default Bit 29 =0, command 0x11) Autonomous will request the same values for all cores with the same EPP. Disables EPP grouping (Bit 29 =1 , command 0x11) autonomous will not necessarily request the same values for all cores with the same EPP.</td></tr><tr><td>EPB override over PECI</td><td>Disabled, Enabled</td><td>Enables/Disables EPB override over PECI. Enable it by sending pcode command 0x2b, subcommand 0x3 to 1. This will allow OOB EPB PECI override control.</td></tr><tr><td>HwP Lock</td><td>Disabled, Enabled</td><td>Enables/Disables HwP Lock support in Misc Power Management MSR</td></tr><tr><td>HDC Control</td><td>Disabled, Enabled</td><td>This option allows HDC configuration. Disabled: Disables HDC Enabled: Can be enabled by OS if OS native support is available.</td></tr><tr><td>Turbo Mode</td><td>Disabled, Enabled</td><td>Enables/Disables processor Turbo Mode (requires EMTTM enabled too). AUTO means enabled.</td></tr><tr><td>View/Configure Turbo Options</td><td>Submenu</td><td></td></tr><tr><td>Turbo Ratio Limit Options</td><td>Submenu</td><td></td></tr><tr><td>Current Turbo Ratio Limit Settings</td><td>Current Turbo Ratio Limit Settings</td><td>Current Turbo Ratio Limit Settings</td></tr><tr><td>P-core Turbo Ratio Limit Numcore0</td><td>1</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Numcore1</td><td>2</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Numcore2</td><td>3</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Numcore3</td><td>4</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Numcore4</td><td>5</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Numcore5</td><td>6</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Numcore6</td><td>7</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Numcore7</td><td>8</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Ratio0</td><td>45</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Ratio1</td><td>45</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Ratio2</td><td>38</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Ratio3</td><td>35</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Ratio4</td><td>35</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Ratio5</td><td>35</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Ratio6</td><td>35</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Ratio7</td><td>35</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Numcore0</td><td>1</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Numcore1</td><td>2</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Numcore2</td><td>3</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Numcore3</td><td>4</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Numcore4</td><td>5</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Numcore5</td><td>6</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Numcore6</td><td>7</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Numcore7</td><td>8</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Ratio0</td><td>33</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Ratio1</td><td>33</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Ratio2</td><td>33</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Ratio3</td><td>33</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Ratio4</td><td>31</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Ratio5</td><td>31</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Ratio6</td><td>31</td><td></td></tr><tr><td>E-core Turbo Ratio Limit Ratio7</td><td>31</td><td></td></tr><tr><td>P-core Turbo Ratio Limit Numcore0</td><td>1</td><td>Performance-core Turbo Ratio Limit Numcore0 defines the core range, the turbo ratio is defined in Turbo Ratio Limit Ratio0. If value is zero, this entry is ignored.</td></tr><tr><td>P-core Turbo Ratio Limit Numcore1</td><td>2</td><td>Performance-core Turbo Ratio Limit Numcore1 defines the core range, the turbo ratio is defined in Turbo Ratio Limit Ratio1. If value is zero, this entry is ignored.</td></tr><tr><td>P-core Turbo Ratio Limit Numcore2</td><td>3</td><td>Performance-core Turbo Ratio Limit Numcore2 defines the core range, the turbo ratio is defined in Turbo Ratio Limit Ratio2. If value is zero, this entry is ignored.</td></tr><tr><td>P-core Turbo Ratio Limit Numcore3</td><td>4</td><td>Performance-core Turbo Ratio Limit Numcore3 defines the core range, the turbo ratio is defined in Turbo Ratio Limit Ratio3. If value is zero, this entry is ignored.</td></tr><tr><td>P-core Turbo Ratio Limit Numcore4</td><td>5</td><td>Performance-core Turbo Ratio Limit Numcore4 defines the core range, the turbo ratio is defined in Turbo Ratio Limit Ratio4. If value is zero, this entry is ignored.</td></tr><tr><td>P-core Turbo Ratio Limit Numcore5</td><td>6</td><td>Performance-core Turbo Ratio Limit Numcore5 defines the core range, the turbo ratio is defined in Turbo Ratio Limit Ratio5. If value is zero, this entry is ignored.</td></tr><tr><td>P-core Turbo Ratio Limit Numcore6</td><td>7</td><td>Performance-core Turbo Ratio Limit Numcore6 defines the core range, the turbo ratio is defined in Turbo Ratio Limit Ratio6. If value is zero, this entry is ignored.</td></tr><tr><td>P-core Turbo Ratio Limit Numcore7</td><td>8</td><td>Performance-core Turbo Ratio Limit Numcore7 defines the core range, the turbo ratio is defined in Turbo Ratio Limit Ratio7. If value is zero, this entry is ignored.</td></tr><tr><td>P-core Turbo Ratio Limit Ratio0</td><td>45</td><td>Performance-core Turbo Ratio Limit Ratio0 defines the turbo ratio (max is 85 in normal mode and 120 in core extension mode), the core range is defined in Turbo Ratio Limit Numcore0.</td></tr><tr><td>P-core Turbo Ratio Limit Ratio1</td><td>45</td><td>Performance-core Turbo Ratio Limit Ratio1 defines the turbo ratio (max is 85 in normal mode and 120 in core extension mode), the core range is defined in Turbo Ratio Limit Numcore1.</td></tr><tr><td>P-core Turbo Ratio Limit Ratio2</td><td>38</td><td>Performance-core Turbo Ratio Limit Ratio2 defines the turbo ratio (max is 85 in normal mode and 120 in core extension mode), the core range is defined in Turbo Ratio Limit Numcore2.</td></tr><tr><td>P-core Turbo Ratio Limit Ratio3</td><td>35</td><td>Performance-core Turbo Ratio Limit Ratio3 defines the turbo ratio (max is 85 in normal mode and 120 in core extension mode), the core range is defined in Turbo Ratio Limit Numcore3.</td></tr><tr><td>P-core Turbo Ratio Limit Ratio4</td><td>35</td><td>Performance-core Turbo Ratio Limit Ratio4 defines the turbo ratio (max is 85 in normal mode and 120 in core extension mode), the core range is defined in Turbo Ratio Limit Numcore4.</td></tr><tr><td>P-core Turbo Ratio Limit Ratio5</td><td>35</td><td>Performance-core Turbo Ratio Limit Ratio5 defines the turbo ratio (max is 85 in normal mode and 120 in core extension mode), the core range is defined in Turbo Ratio Limit Numcore5.</td></tr><tr><td>P-core Turbo Ratio Limit Ratio6</td><td>35</td><td>Performance-core Turbo Ratio Limit Ratio6 defines the turbo ratio (max is 85 in normal mode and 120 in core extension mode), the core range is defined in Turbo Ratio Limit Numcore6.</td></tr><tr><td>P-core Turbo Ratio Limit Ratio7</td><td>35</td><td>Performance-core Turbo Ratio Limit Ratio7 defines the turbo ratio (max is 85 in normal mode and 120 in core extension mode), the core range is defined in Turbo Ratio Limit Numcore7.</td></tr><tr><td>E-core Turbo Ratio Limit Numcore0</td><td>1</td><td>Efficient-core Turbo Ratio Limit Numcore0 defines the core range, the turbo ratio is defined in E-core Turbo Ratio Limit Ratio0. If value is zero, this entry is ignored.</td></tr><tr><td>E-core Turbo Ratio Limit Numcore1</td><td>2</td><td>Efficient-core Turbo Ratio Limit Numcore1 defines the core range, the turbo ratio is defined in E-core Turbo Ratio Limit Ratio1. If value is zero, this entry is ignored.</td></tr><tr><td>E-core Turbo Ratio Limit Numcore2</td><td>3</td><td>Efficient-core Turbo Ratio Limit Numcore2 defines the core range, the turbo ratio is defined in E-core Turbo Ratio Limit Ratio2. If value is zero, this entry is ignored.</td></tr><tr><td>E-core Turbo Ratio Limit Numcore3</td><td>4</td><td>Efficient-core Turbo Ratio Limit Numcore3 defines the core range, the turbo ratio is defined in E-core Turbo Ratio Limit Ratio3. If value is zero, this entry is ignored.</td></tr><tr><td>E-core Turbo Ratio Limit Numcore4</td><td>5</td><td>Efficient-core Turbo Ratio Limit Numcore4 defines the core range, the turbo ratio is defined in E-core Turbo Ratio Limit Ratio4. If value is zero, this entry is ignored.</td></tr><tr><td>E-core Turbo Ratio Limit Numcore5</td><td>6</td><td>Efficient-core Turbo Ratio Limit Numcore5 defines the core range, the turbo ratio is defined in E-core Turbo Ratio Limit Ratio5. If value is zero, this entry is ignored.</td></tr><tr><td>E-core Turbo Ratio Limit Numcore6</td><td>7</td><td>Efficient-core Turbo Ratio Limit Numcore6 defines the core range, the turbo ratio is defined in E-core Turbo Ratio Limit Ratio6. If value is zero, this entry is ignored.</td></tr><tr><td>E-core Turbo Ratio Limit Numcore7</td><td>8</td><td>Efficient-core Turbo Ratio Limit Numcore7 defines the core range, the turbo ratio is defined in E-core Turbo Ratio Limit Ratio7. If value is zero, this entry is ignored.</td></tr><tr><td>E-core Turbo Ratio Limit Ratio0</td><td>80</td><td>Efficient-core Turbo Ratio Limit Ratio0 defines the turbo ratio (max is 85 irrespective of the core extension mode), the core range is defined in E-core Turbo Ratio Limit Numcore0.</td></tr><tr><td>E-core Turbo Ratio Limit Ratio1</td><td>80</td><td>Efficient-core Turbo Ratio Limit Ratio1 defines the turbo ratio (max is 85 irrespective of the core extension mode), the core range is defined in E-core Turbo Ratio Limit Numcore1.</td></tr><tr><td>E-core Turbo Ratio Limit Ratio2</td><td>80</td><td>Efficient-core Turbo Ratio Limit Ratio2 defines the turbo ratio (max is 85 irrespective of the core extension mode), the core range is defined in E-core Turbo Ratio Limit Numcore2.</td></tr><tr><td>E-core Turbo Ratio Limit Ratio3</td><td>80</td><td>Efficient-core Turbo Ratio Limit Ratio3 defines the turbo ratio (max is 85 irrespective of the core extension mode), the core range is defined in E-core Turbo Ratio Limit Numcore3.</td></tr><tr><td>E-core Turbo Ratio Limit Ratio4</td><td>80</td><td>Efficient-core Turbo Ratio Limit Ratio4 defines the turbo ratio (max is 85 irrespective of the core extension mode), the core range is defined in E-core Turbo Ratio Limit Numcore4.</td></tr><tr><td>E-core Turbo Ratio Limit Ratio5</td><td>80</td><td>Efficient-core Turbo Ratio Limit Ratio5 defines the turbo ratio (max is 85 irrespective of the core extension mode), the core range is defined in E-core Turbo Ratio Limit Numcore5.</td></tr><tr><td>E-core Turbo Ratio Limit Ratio6</td><td>80</td><td>Efficient-core Turbo Ratio Limit Ratio6 defines the turbo ratio (max is 85 irrespective of the core extension mode), the core range is defined in E-core Turbo Ratio Limit Numcore6.</td></tr><tr><td>E-core Turbo Ratio Limit Ratio7</td><td>80</td><td>Efficient-core Turbo Ratio Limit Ratio7 defines the turbo ratio (max is 85 irrespective of the core extension mode), the core range is defined in E-core Turbo Ratio Limit Numcore7.</td></tr><tr><td>Energy Efficient P-state</td><td>Disabled, Enabled</td><td>Enables/Disables Energy Efficient P-state feature. When set to 0, it will disable access to ENERGY_PERFORMANCE_BIAS MSR, and CPUID Function 6 ECX[3] will read 0 indicating no support for Energy Efficient policy setting. When set to 1, it will enable access to ENERGY_PERFORMANCE_BIAS MSR 1B0h and CPUID Fun</td></tr><tr><td>Package Power Limit MSR Lock</td><td>Disabled, Enabled</td><td>Enables/Disables locking of Package Power Limit settings. When enabled, PACKAGE_POWER_LIMIT MSR will be locked and a reset will be required to unlock the register.</td></tr><tr><td>Energy Efficient Turbo</td><td>Disabled, Enabled</td><td>Enables/Disables Energy Efficient Turbo Feature. This feature will opportunistically lower the turbo frequency to increase efficiency. Recommended only to disable in overclocking situations where turbo frequency must remain constant. Otherwise, leave enabled.</td></tr><tr><td>Config TDP Configurations</td><td>Submenu</td><td></td></tr><tr><td>Config TDP Configurations</td><td>Config TDP Configurations</td><td>Config TDP Configurations</td></tr><tr><td>Enable Configurable TDP</td><td>Applies to non-cTDP, Applies to cTDP</td><td>Applies TDP initialization settings based on non-cTDP or cTDP. Default is 1: Applies to cTDP; if 0 then applies non-cTDP and BIOS will bypass cTDP initialization flow</td></tr><tr><td>Configurable TDP Boot Mode</td><td>Nominal, Down2, Down1, Deactivate</td><td>Configurable Processor Base Power (cTDP) Mode as Nominal/Up/Down/Deactivate TDP selection. Deactivate option will set MSR to Nominal and MMIO to Zero.</td></tr><tr><td>Configurable TDP Lock</td><td>Enabled, Disabled</td><td>Configurable TDP Mode Lock sets the Lock bits on TURBO_ACTIVATION_RATIO and CONFIG_TDP_CONTROL. Note: When cTDP Lock is enabled Custom Config TDP Count will be forced to 1 and Custom Config TDP Boot Index will be forced to 0.</td></tr><tr><td>Config TDP Levels</td><td>3</td><td></td></tr><tr><td>Config TDP Turbo Activation Ratio</td><td>27 (Unlocked)</td><td></td></tr><tr><td>Power Limit 1</td><td>28.0W (MSR:28.0)</td><td></td></tr><tr><td>Power Limit 2</td><td>64.0W (MSR:64.0)</td><td></td></tr><tr><td colspan="3">Custom Settings Nominal</td></tr><tr><td>Config TDP Nominal</td><td>Ratio:28 TAR:27 PL1:28.0W</td><td></td></tr><tr><td>Power Limit 1</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x003E7F83, 0x00000000, 0x0000007D]</td><td>Power Limit 1 in Milli Watts. BIOS will round to the nearest 1/8W when programming. 0 = no custom override. For 12.50W, enter 12500. Overclocking SKU: Value must be between Max and Min Power Limits (specified by PACKAGE_POWER_SKU_MSR). Other SKUs: This value must be between Min Power Limit and TDP</td></tr><tr><td>Power Limit 2</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x003E7F83, 0x00000000, 0x0000007D]</td><td>Power Limit 2 value in Milli Watts. BIOS will round to the nearest 1/8W when programming. 0 = no custom override. For 12.50W, enter 12500. Processor applies control policies such that the package power does not exceed this limit.</td></tr><tr><td>Power Limit 1 Time Window</td><td>0, 1, 2, 3, 4, 5, 6, 7, 8, 10, 12, 14, 16, 20, 24, 28, 32, 40, 48, 56, 64,80, 96, 112, 128</td><td>Power Limit 1 Time Window value in seconds. The value may vary from 0 to 128. 0 = default value (28 sec for Mobile and 8 sec for Desktop). Defines the time window in which the TDP value should be maintained.</td></tr><tr><td>Config TDP Turbo Activation Ratio</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0xFF, 0x00, 0x01]</td><td>Custom value for Turbo Activation Ratio. Needs to be configured with valid values from LFM to Max Turbo. 0 means don't use custom value.</td></tr><tr><td colspan="3">Custom Settings Down</td></tr><tr><td>Config TDP Level1</td><td>Ratio:12 TAR:11PL1:12.0W</td><td></td></tr><tr><td>Power Limit 1</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x003E7F83,0x00000000,0x0000007D]</td><td>Power Limit 1 in Milli Watts. BIOS will round to the nearest 1/8W when programming. 0 = no custom override. For 12.50W, enter 12500. Overclocking SKU: Value must be between Max and Min Power Limits (specified by PACKAGE_POWER_SKU_MSR). Other SKUs: This value must be between Min Power Limit and TDP</td></tr><tr><td>Power Limit 2</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x003E7F83,0x00000000,0x0000007D]</td><td>Power Limit 2 value in Milli Watts. BIOS will round to the nearest 1/8W when programming. 0 = no custom override. For 12.50W, enter 12500. Processor applies control policies such that the package power does not exceed this limit.</td></tr><tr><td>Power Limit 1 Time Window</td><td>0, 1, 2, 3, 4, 5, 6, 7, 8, 10, 12, 14, 16, 20, 24, 28, 32, 40, 48, 56, 64, 80, 96, 112, 128</td><td>Power Limit 1 Time Window value in seconds. The value may vary from 0 to 128. 0 = default value (28 sec for Mobile and 8 sec for Desktop). Defines the time window in which the TDP value should be maintained.</td></tr><tr><td>Config TDP Turbo Activation Ratio</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0xFF, 0x00, 0x01]</td><td>Custom value for Turbo Activation Ratio. Needs to be configured with valid values from LFM to Max Turbo. 0 means don't use custom value.</td></tr><tr><td colspan="3">Custom Settings Up</td></tr><tr><td>Config TDP Level2</td><td>Ratio:19 TAR:18PL1:35.0W</td><td></td></tr><tr><td>Power Limit 1</td><td>[ Max-Value, Min-Value, Step-Value] =[0x003E7F83,0x00000000,0x0000007D]</td><td>Power Limit 1 in Milli Watts. BIOS will round to the nearest 1/8W when programming. 0 = no custom override. For 12.50W, enter 12500. Overclocking SKU: Value must be between Max and Min Power Limits (specified byPACKAGE_POWER_SKU_MSR). Other SKUs: This value must be between Min Power Limit and TDP</td></tr><tr><td>Power Limit 2</td><td>[Max-Value, Min-Value, Step-Value] = [0x003E7F83,0x00000000,0x0000007D]</td><td>Power Limit 2 value in Milli Watts. BIOS will round to the nearest 1/8W when programming. 0 = no custom override. For 12.50W, enter 12500. Processor applies control policies such that the package power does not exceed this limit.</td></tr><tr><td>Power Limit 1 Time Window</td><td>0, 1, 2, 3, 4, 5, 6, 7, 8, 10, 12, 14, 16, 20, 24, 28, 32, 40, 48, 56, 64, 80, 96, 112, 128</td><td>Power Limit 1 Time Window value in seconds. The value may vary from 0 to 128. 0 = default value (28 sec for Mobile and 8 sec for Desktop). Defines the time window in which the TDP value should be maintained.</td></tr><tr><td>Config TDP Turbo Activation Ratio</td><td>[Max-Value, Min-Value, Step-Value] = [0xFF, 0x00, 0x01]</td><td>Custom value for Turbo Activation Ratio. Needs to be configured with valid values from LFM to Max Turbo. 0 means don't use custom value.</td></tr><tr><td>CPU VR Settings</td><td>Submenu</td><td></td></tr><tr><td colspan="3">CPU VR Settings</td></tr><tr><td>Current VccIn Aux Icc Max</td><td>128</td><td></td></tr><tr><td>PSYS Slope</td><td>[Max-Value, Min-Value, Step-Value] = [0xC8, 0x00, 0x01]</td><td>PSYS Slope is defined in 1/100 increments. The range is from 0-200. For a 1.25 slope, enter 125. 0 = AUTO. Uses BIOS VR mailbox command 0x9."</td></tr><tr><td>PSYS Offset</td><td>[Max-Value, Min-Value, Step-Value] = [0xF9FF, 0x0000, 0x0001]</td><td>PSYS Offset is defined in 1/1000 increments. The range is from 0-63999. For an offset of 25.348, enter 25348. PSYS Uses BIOS VR mailbox command 0x4.</td></tr><tr><td>PSYS Prefix</td><td>+, -</td><td>Sets the offset value as positive or negative.</td></tr><tr><td>PSYS PMax Power</td><td>[Max-Value, Min-Value, Step-Value] = [0x1FFF, 0x0000,0x0001]</td><td>PSYS PMax power, defined in 1/8 Watt increments. The range is from 0-8192. For a PMax of 125W, enter 1000. 0 = AUTO. Uses BIOS VR mailbox command 0xB.</td></tr><tr><td>Min Voltage Override</td><td>Disabled, Enabled</td><td>Min Voltage Override. Enable to override minimum voltage for runtime and for C8.</td></tr><tr><td>VccIn Aux Icc Max</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x200, 0x00, 0x00]</td><td>Sets the Max Icc VccIn Aux value defined in 1/4A increments. The range is from 0-512. For an IccMax 32A, enter 128(32*4).</td></tr><tr><td>VccIn Aux IMON Slope</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0xC8, 0x100, 0x01]</td><td>VccIn Aux IMON Slope defined in 1/100 increments. The range is from 0-200. For a 1.25 slope, enter 125. 0 = AUTO. Uses BIOS VR mailbox command 0x1B.</td></tr><tr><td>VccIn Aux IMON Offset</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0xF9FF, 0x0000, 0x0001]</td><td>VccIN Aux IMON Offset defined in 1/1000 increments. The range is from 0-63999. For an offset of 25.348, enter 25348. IMON Uses BIOS VR mailbox command 0x18.</td></tr><tr><td>VccIn Aux IMON Prefix</td><td>+, -</td><td>Sets the offset value as positive or negative.</td></tr><tr><td>Vsys Critical</td><td>Disabled, Enabled</td><td>Vsys Critical Enable or disable</td></tr><tr><td>VR Power Delivery Design</td><td>AUTO, ADL P 282 15W, ADL P 482 28W, ADL P 682 28W, ADL P 682 45W, ADL P 142 15W, ADL P 242 15W, ADL P 482 45W, ADL P 442 45W, ADL P 442 28W, ADL P 282 28W, ADL P 242 28W, ADL P 142 28W, ADL P 242 45W, ADL P 182 28W, ADL P 662 28W, ADL P 642 28W, ADL P 642 45W</td><td>Specifies the ADL Desktop board design used for the VR settings override values. By default, BIOS will override the default Desktop VR settings based on the board design. A value of AUTO(0) will use the board ID to determine the board design. Any other value will override the board id logic to provide a custom VR Power Delivery Design value. This is intended primarily for validation.</td></tr><tr><td>Acoustic Noise Settings</td><td>Submenu</td><td></td></tr><tr><td>Acoustic Noise Mitigation</td><td>Disabled, Enabled</td><td>Enabling this option will help mitigate acoustic noise on certain SKUs when the CPU is in deeper C state</td></tr><tr><td>Pre Wake Time</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0xFF, 0x00, 0x01]</td><td>Set the maximum Pre Wake randomization time in micro ticks. The range is from 0-255. This is for acoustic noise mitigation Dynamic Periodicity Alteration (DPA) tuning.</td></tr><tr><td>Ramp Up Time</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0xFF, 0x00, 0x01]</td><td>Set the maximum Ramp Up randomization time in micro ticks. The range is from 0-255. This is for acoustic noise mitigation Dynamic Periodicity Alteration (DPA) tuning.</td></tr><tr><td>Ramp Down Time</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0xFF, 0x00, 0x01]</td><td>Set the maximum Ramp Down randomization time in micro ticks. The range is from 0-255. This is for acoustic noise mitigation Dynamic Periodicity Alteration (DPA) tuning.</td></tr><tr><td>IA VR Domain</td><td></td><td></td></tr><tr><td>Disable Fast PKG C State Ramp for IA Domain</td><td>FALSE</td><td></td></tr><tr><td>Slow Slew Rate for IA Domain</td><td>Fast/2</td><td></td></tr><tr><td>GT VR Domain</td><td></td><td></td></tr><tr><td>Disable Fast PKG C State Ramp for GT Domain</td><td>FALSE</td><td></td></tr><tr><td>Slow Slew Rate for GT Domain</td><td>Fast/2</td><td></td></tr><tr><td>Core/IA VR Settings</td><td>Submenu</td><td></td></tr><tr><td colspan="3">Core/IA VR Domain</td></tr><tr><td>VR Config Enable</td><td>Disabled, Enabled</td><td>VR Config Enable</td></tr><tr><td>Current AC Loadline</td><td>230</td><td></td></tr><tr><td>Current DC Loadline</td><td>230</td><td></td></tr><tr><td>Current Psi1 Threshold</td><td>80</td><td></td></tr><tr><td>Current Psi2 Threshold</td><td>20</td><td></td></tr><tr><td>Current Psi3 Threshold</td><td>4</td><td></td></tr><tr><td>Current Imon Slope</td><td>0</td><td></td></tr><tr><td>Current Imon Offset</td><td>1</td><td></td></tr><tr><td>Current VR Current Limit</td><td>340</td><td></td></tr><tr><td>Current TDC Current Limit</td><td>312</td><td></td></tr><tr><td>Current Voltage Limit</td><td>1600</td><td></td></tr><tr><td>AC Loadline</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x1868, 0x0000, 0x0001], 0x0000</td><td>AC Loadline defined in 1/100 mOhms. A value of 100 = 1.00 mOhm, and 1255 = 12.55 mOhm. The range is from 0-6249 (0-62.49 mOhms). 0 = AUTO/HW default. Uses BIOS mailbox command 0x2.</td></tr><tr><td>DC Loadline</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x1868, 0x0000, 0x0001], 0x0000</td><td>DC Loadline defined in 1/100 mOhms. A value of 100 = 1.00 mOhm, and 1255 = 12.55 mOhm. The range is from 0-6249 (0-62.49 mOhms). 0 = AUTO/HW default. Uses BIOS mailbox command 0x2.</td></tr><tr><td>PS Current Threshold1</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x0200, 0x0000, 0x0001], 0x0080</td><td>PS Current Threshold1, defined in 1/4 A increments. A value of 400 = 100A. The range is from 0-512, which translates to 0-128A. 0 = AUTO. Uses BIOS VR mailbox command 0x3.</td></tr><tr><td>PS Current Threshold2</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x0200, 0x0000, 0x0001], 0x0020</td><td>PS Current Threshold2, defined in 1/4 A increments. A value of 400 = 100A. The range is from 0-512, which translates to 0-128A. 0 = AUTO. Uses BIOS VR mailbox command 0x3.</td></tr><tr><td>PS Current Threshold3</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x0200, 0x0000, 0x0001], 0x0004</td><td>PS Current Threshold3, defined in 1/4 A increments. A value of 400 = 100A. Range 0-512, which translates to 0-128A. 0 = AUTO. Uses BIOS VR mailbox command 0x3.</td></tr><tr><td>PS3 Enable</td><td>Disabled, Enabled</td><td>PS3 Enable/Disable. 0 - Disabled, 1 - Enabled. Uses BIOS VR mailbox command 0x3.</td></tr><tr><td>PS4 Enable</td><td>Disabled, Enabled</td><td>PS4 Enable/Disable. 0 - Disabled, 1 - Enabled. Uses BIOS VR mailbox command 0x3</td></tr><tr><td>IMON Slope</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x00C8, 0x0000, 0x0001]</td><td>IMON Slope defined in 1/100 increments. The range is from 0-200. For a 1.25 slope, enter 125. 0 = AUTO. Uses BIOS VR mailbox command 0x4.</td></tr><tr><td>IMON Offset</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0xF9FF, 0x0000, 0x0001]</td><td>IMON Offset defined in 1/1000 increments. The range is from 0-63999. For an offset of 25.348, enter 25348. IMON Uses BIOS VR mailbox command 0x4.</td></tr><tr><td>IMON Prefix</td><td>+, -</td><td>Sets the offset value as positive or negative.</td></tr><tr><td>VR Current Limit</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x03FF, 0x0000, 0x0001]</td><td>Voltage Regulator Current Limit (Icc Max). This value represents the Maximum instantaneous current allowed at any given time. The value is represented in 1/4 A increments. A value of 400 = 100A. 0 means AUTO. Uses BIOS VR mailbox command 0x6.</td></tr><tr><td>VR Voltage Limit</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x1F3F, 0x0000, 0x0001]</td><td>Voltage Limit (VMAX). This value represents the Maximum instantaneous voltage allowed at any given time. The range is from 0 - 7999mV. Uses BIOS VR mailbox command 0x8.</td></tr><tr><td>TDC Enable</td><td>Disabled, Enabled</td><td>TDC Enable. 0- Disable, 1 - Enable</td></tr><tr><td>TDC Current Limit</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x7FFF, 0x0000, 0x007D]</td><td>TDC Current Limit, defined in 1/8A increments. The range is from 0-32767. For a TDC Current Limit of 125A, enter 1000. 0 = 0 Amps. Uses BIOS VR mailbox command 0x1A.</td></tr><tr><td>TDC Time Window</td><td>1 sec, 2 sec, 3 sec, 4 sec, 5 sec, 6 sec, 7 sec, 8 sec, 10 sec, 10 sec, 12 sec, 14 sec, 16 sec, 20 sec, 24 sec, 28 sec, 32 sec, 40 sec, 48 sec, 56 sec, 64 sec, 80 sec, 96 sec, 112 sec, 128 sec, 160 sec, 192 sec, 224 sec, 256 sec, 320 sec, 384 sec, 448 sec</td><td>VR TDC Time Window, value in seconds. 1s is the default, ranging from 1s to 448s.</td></tr><tr><td>TDC Lock</td><td>Disabled, Enabled</td><td>TDC Lock</td></tr><tr><td>IRMS</td><td>Disabled, Enabled</td><td>Enable/Disable IRMS - Current root mean square.</td></tr><tr><td>GT VR Settings</td><td>Submenu</td><td></td></tr><tr><td colspan="3">GT Domain</td></tr><tr><td>VR Config Enable</td><td>Disabled, Enabled</td><td>VR Config Enable</td></tr><tr><td>Current AC Loadline</td><td>320</td><td></td></tr><tr><td>Current DC Loadline</td><td>320</td><td></td></tr><tr><td>Current Psi1 Threshold</td><td>80</td><td></td></tr><tr><td>Current Psi2 Threshold</td><td>20</td><td></td></tr><tr><td>Current Psi3 Threshold</td><td>4</td><td></td></tr><tr><td>Current Imon Slope</td><td>0</td><td></td></tr><tr><td>Current Imon Offset</td><td>1</td><td></td></tr><tr><td>Current VR Current Limit</td><td>220</td><td></td></tr><tr><td>Current TDC Limit</td><td>240</td><td></td></tr><tr><td>Current Voltage Limit</td><td>1519</td><td></td></tr><tr><td>AC Loadline</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x1868, 0x0000, 0x0001], 0x0000</td><td>AC Loadline is defined in 1/100 mOhms. A value of 100 = 1.00 mOhm, and 1255 = 12.55 mOhm. The range is from 0-6249 (0-62.49 mOhms). 0 = AUTO/HW default. Uses BIOS mailbox command 0x2.</td></tr><tr><td>DC Loadline</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x1868, 0x0000, 0x0001], 0x0000</td><td>DC Loadline is defined in 1/100 mOhms. A value of 100 = 1.00 mOhm, and 1255 = 12.55 mOhm. The range is from 0-6249 (0-62.49 mOhms). 0 = AUTO/HW default. Uses BIOS mailbox command 0x2.</td></tr><tr><td>PS Current Threshold1</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x0200, 0x0000, 0x0001], 0x0080</td><td>PS Current Threshold1, defined in 1/4 A increments. A value of 400 = 100A. The range is from 0-512, which translates to 0-128A. 0 = AUTO. Uses BIOS VR mailbox command 0x3.</td></tr><tr><td>PS Current Threshold2</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x0200, 0x0000, 0x0001], 0x0020</td><td>PS Current Threshold2, defined in 1/4 A increments. A value of 400 = 100A. The range is from 0-512, which translates to 0-128A. 0 = AUTO. Uses BIOS VR mailbox command 0x3.</td></tr><tr><td>PS Current Threshold3</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x0200, 0x0000, 0x0001], 0x0004</td><td>PS Current Threshold3, defined in 1/4 A increments. A value of 400 = 100A. The range is from 0-512, which translates to 0-128A. 0 = AUTO. Uses BIOS VR mailbox command 0x3.</td></tr><tr><td>PS3 Enable</td><td>Disabled, Enabled</td><td>PS3 Enable/Disable. 0 - Disabled, 1 - Enabled. Uses BIOS VR mailbox command 0x3.</td></tr><tr><td>PS4 Enable</td><td>Disabled, Enabled</td><td>PS4 Enable/Disable. 0 - Disabled, 1 - Enabled. Uses BIOS VR mailbox command 0x3</td></tr><tr><td>IMON Slope</td><td>[ Max-Value, Min-Value, Step-Value] =[0x00C8, 0x0000, 0x0001]</td><td>IMON Slope defined in 1/100 increments. The range is from 0-200. For a 1.25 slope, enter 125. 0 = AUTO. Uses BIOS VR mailbox command 0x4.</td></tr><tr><td>IMON Offset</td><td>[Max-Value, Min-Value, Step-Value] = [0xF9FF, 0x0000, 0x0001]</td><td>IMON Offset defined in 1/1000 increments. The range is from 0-63999. For an offset of 25.348, enter 25348. IMON Uses BIOS VR mailbox command 0x4.</td></tr><tr><td>IMON Prefix</td><td>+, -</td><td>Sets the offset value as positive or negative.</td></tr><tr><td>VR Current Limit</td><td>[Max-Value, Min-Value, Step-Value] = [0x03FF, 0x0000, 0x0001]</td><td>Voltage Regulator Current Limit (Icc Max). This value represents the Maximum instantaneous current allowed at any given time. The value is represented in 1/4 A increments. A value of 400 = 100A. 0 means AUTO. Uses BIOS VR mailbox command 0x6.</td></tr><tr><td>VR Voltage Limit</td><td>[Max-Value, Min-Value, Step-Value] = [0x1F3F, 0x0000, 0x0001]</td><td>Voltage Limit (VMAX). This value represents the Maximum instantaneous voltage allowed at any given time. The range is from 0 - 7999mV. Uses BIOS VR mailbox command 0x8.</td></tr><tr><td>TDC Enable</td><td>Disabled, Enabled</td><td>TDC Enable. 0- Disable, 1 - Enable</td></tr><tr><td>TDC Current Limit</td><td>[Max-Value, Min-Value, Step-Value] = [0x7FFF, 0x0000, 0x007D]</td><td>TDC Current Limit, defined in 1/8A increments. Range 0-32767. For a TDC Current Limit of 125A, enter 1000. 0 = 0 Amps. Uses BIOS VR mailbox command 0x1A.</td></tr><tr><td>TDC Time Window</td><td>1 sec, 2 sec, 3 sec, 4 sec, 5 sec, 6 sec, 7 sec, 8 sec, 10 sec, 10 sec, 12 sec, 14 sec, 16 sec, 20 sec, 24 sec, 28 sec, 32 sec, 40 sec, 48 sec, 56 sec, 64 sec, 80 sec, 96 sec, 112 sec, 128 sec, 160 sec, 192 sec, 224 sec, 256 sec, 320 sec, 384 sec, 448 sec</td><td>VR TDC Time Window, value in seconds. 1s is the default, ranging from 1s to 448s.</td></tr><tr><td>TDC Lock</td><td>Disabled, Enabled</td><td>TDC Lock</td></tr><tr><td>RFI Settings</td><td>Submenu</td><td></td></tr><tr><td colspan="3">RFI Domain</td></tr><tr><td>RFI Current Frequency</td><td>139.200MHz</td><td></td></tr><tr><td>RFI Frequency</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x077E, 0x0000, 0x0000]</td><td>Set desired RFI frequency, in increments of 100KHz. (For a frequency of 100.6MHz, enter 1006.)</td></tr><tr><td>FIVR Spread Spectrum</td><td>Disabled, Enabled</td><td>Enable or Disable the FIVR Spread Spectrum</td></tr><tr><td>RFI Spread Spectrum</td><td>0.5%, 1%, 1.5%, 2%, 3%, 4%, 5%, 6%</td><td>Set the Spread Spectrum</td></tr><tr><td>Platform PL1 Enable</td><td>Disabled, Enabled</td><td>Enable/Disable Platform Power Limit 1 programming. If this option is enabled, it activates the PL1 value to be used by the processor to limit the average power of a given time window.</td></tr><tr><td>Platform PL1 Power</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x003E7F83, 0x00000000, 0x0000007D]</td><td>Platform Power Limit 1 Power in Milli Watts. BIOS will round to the nearest 1/8W when programming. Any value can be programmed between Max and Min Power Limits (specified by PACKAGE_POWER_SKU_MSR). For 12.50W, enter 12500. This setting will act as the new PL1 value for the Package RAPL algorithm.</td></tr><tr><td>Platform PL1 Time Window</td><td>0, 1, 2, 3, 4, 5, 6, 7, 8, 10, 12, 14, 16, 20, 24, 28, 32, 40, 48, 56, 64, 80, 96, 112, 128</td><td>Platform Power Limit 1 Time Window value in seconds. The value may vary from 0 to 128. 0 = default values. Indicates the time window over which Platform TDP value should be maintained.</td></tr><tr><td>Platform PL2 Enable</td><td>Disabled, Enabled</td><td>Enable/Disable Platform Power Limit 2 programming. If this option is disabled, BIOS will program the default values for Platform Power Limit 2.</td></tr><tr><td>Platform PL2 Power</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x003E7F83,0x00000000, 0x0000007D]</td><td>Platform Power Limit 2 Power in Milli Watts. BIOS will round to the nearest 1/8W when programming. Any value can be programmed between Max and Min Power Limits (specified by PACKAGE_POWER_SKU_MSR). For 12.50W, enter 12500. This setting will act as the new PL2 value for the Package RAPL algorithm.</td></tr><tr><td>Power Limit 4 Override</td><td>Disabled, Enabled</td><td>Enable/Disable Power Limit 4 override. If this option is disabled, BIOS will leave the default values for Power Limit 4.</td></tr><tr><td>Power Limit 4</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x003E7F83, 0x00000000, 0x0000007D]</td><td>Power Limit 4 in Milli Watts. BIOS will round to the nearest 1/8W when programming. For 12.50W, enter 12500. If the value is 0, BIOS leaves the default value</td></tr><tr><td>Power Limit 4 Lock</td><td>Disabled, Enabled</td><td>Power Limit 4 MSR 601h Lock. When enabled PL4 configurations are locked during OS. When disabled PL4 configuration can be changed during OS.</td></tr><tr><td>C states</td><td>Disabled, Enabled</td><td>Enable/Disable CPU Power Management. Allows CPU to go to C states when it's not 100% utilized.</td></tr><tr><td>Enhanced C-State</td><td>Disabled, Enabled</td><td>Enable/Disable C1E. When enabled, the CPU will switch to minimum speed when all cores enter C-State.</td></tr><tr><td>C-State Auto Demotion</td><td>Disabled, C1</td><td>Configure C-State Auto Demotion</td></tr><tr><td>C-State Un-Demotion</td><td>Disabled, C1</td><td>Configure C-State Un-demotion</td></tr><tr><td>Package C-State Demotion</td><td>Disabled, Enabled</td><td>Package C-State Demotion</td></tr><tr><td>Package C-State Un-Demotion</td><td>Disabled, Enabled</td><td>Package C-State Un-demotion</td></tr><tr><td>CState Pre-Wake</td><td>Disabled, Enabled</td><td>Disable - Sets bit 30 of POWER_CTL MSR(0x1FC) to 1 to disable the Cstate Pre-Wake</td></tr><tr><td>IO MWAIT Redirection</td><td>Disabled, Enabled</td><td>When set, will map IO_read instructions sent to IO registers PMG_IO_BASE_ADDRBASE+offset to MWAIT(offset)</td></tr><tr><td>Package C State Limit</td><td>C0/C1, C2, C3, C6, C7, C7S, C8, C9, C10, Cpu Default, Auto, 0xFF, 0x00, 0x01</td><td>Maximum Package C State Limit Setting. Cpu Default: Leaves to Factory default value. Auto: Initializes to deepest available Package C State Limit.</td></tr><tr><td colspan="3">C6/C7 Short Latency Control (MSR 0x60B)</td></tr><tr><td>Time Unit</td><td>1 ns, 32 ns, 1024 ns, 32768 ns, 1048576 ns, 33554432 ns</td><td>Unit of measurement for IRTL value - bits [12:10]</td></tr><tr><td>Latency</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x03FF, 0x0000, 0x0001]</td><td>Interrupt Response Time Limit value- bits [9:0], Enter 0-1023</td></tr><tr><td colspan="3">C6/C7 Long Latency Control (MSR 0x60C)</td></tr><tr><td>Time Unit*</td><td>1 ns, 32 ns, 1024 ns, 32768 ns, 1048576 ns, 33554432 ns</td><td>Unit of measurement for IRTL value - bits [12:10]</td></tr><tr><td>Latency</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x03FF, 0x0000, 0X0001]</td><td>Interrupt Response Time Limit value- bits [9:0], Enter 0-1023</td></tr><tr><td colspan="3">C8 Latency Control(MSR 0x633)</td></tr><tr><td>Time Unit*</td><td>1 ns, 32 ns, 1024 ns, 32768 ns, 1048576 ns, 33554432 ns</td><td>Unit of measurement for IRTL value - bits [12:10]</td></tr><tr><td>Latency</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x03FF,  0x0000, 0x0001]</td><td>Interrupt Response Time Limit value- bits [9:0], Enter 0-1023</td></tr><tr><td colspan="3">C9 Latency Control(MSR 0x634)</td></tr><tr><td>Time Unit*</td><td>1 ns, 32 ns, 1024 ns, 32768 ns, 1048576 ns, 33554432 ns</td><td>Unit of measurement for IRTL value - bits [12:10]</td></tr><tr><td>Latency</td><td>[ Max-Value, Min-Value, Step-Value] =[ 0x03FF, 0x0000, 0x0001]</td><td>Interrupt Response Time Limit value- bits [9:0], Enter 0-1023</td></tr><tr><td colspan="3">C10 Latency Control(MSR 0x635)</td></tr><tr><td>Time Unit*</td><td>1 ns, 32 ns, 1024 ns, 32768 ns, 1048576 ns, 33554432 ns</td><td>Unit of measurement for IRTL value - bits [12:10]</td></tr><tr><td>Latency</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x03FF, 0x0000, 0x0001]</td><td>Interrupt Response Time Limit value- bits [9:0], Enter 0-1023</td></tr><tr><td>Thermal Monitor</td><td>Disabled, Enabled</td><td>Enables/Disables Thermal Monitor</td></tr><tr><td>Interrupt Redirection Mode Selection</td><td>Fixed Priority, Round robin, Hash Vector, No Change</td><td>Interrupt Redirection Mode Select for Logical Interrupts</td></tr><tr><td>Timed MWAIT</td><td>Disabled, Enabled</td><td>Enables/Disables Timed MWAIT Support</td></tr><tr><td>Custom P-state Table</td><td>Submenu</td><td></td></tr><tr><td colspan="3">Custom P-state Table</td></tr><tr><td>Number of P States</td><td>0</td><td>Sets the number of custom P-states. At least 2 states must be present.</td></tr><tr><td>EC Turbo Control Mode</td><td>Disabled, Enabled</td><td>Enables/Disables EC Turbo Control mode</td></tr><tr><td>AC Brick Capacity</td><td>90W AC Brick, 65W AC Brick, 75W AC Brick</td><td>Specify the AC Brick capacity</td></tr><tr><td>EC Polling Period</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x03FF, 0x0000, 0x0001]</td><td>Count 1 to 255 for a range of 10ms to 2.55 seconds (1 count = 10ms)</td></tr><tr><td>EC Guard Band Value</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x14, 0x01, 0x0001]</td><td>Count 1 to 20 for a range of 1 watt to 20 watts</td></tr><tr><td>EC Algorithm Selection</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x0A, 0x01, 0x0001]</td><td>Count 1 to 10 for algorithm selection</td></tr><tr><td>Energy Performance Gain</td><td>Disabled, Enabled</td><td>Enables/disables Energy Performance Gain.</td></tr><tr><td>EPG DIMM ldd3N</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x07D0, 0x0000, 0x0001], 0x001A</td><td>Active standby current (Idd3N) in milliamps from datasheet. Must be calculated on a per DIMM basis.</td></tr><tr><td>EPG DIMM ldd3P</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x07D0, 0x0000, 0x0001], 0x000B</td><td>Active power-down current (Idd3P) in milliamps from datasheet. Must be calculated on a per DIMM basis.</td></tr><tr><td>Power Limit 3 Settings</td><td>Submenu</td><td></td></tr><tr><td>Power Limit 3 Override</td><td>Disabled, Enabled</td><td>Enables/Disables Power Limit 3 override. If this option is disabled, BIOS will leave the hardware default values for Power Limit 3 and Power Limit 3 Time Window.</td></tr><tr><td>Power Limit 3</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x003E7F83, 0x00000000, 0x0000007D]</td><td>Power Limit 3 in Milli Watts. BIOS will round to the nearest 1/8W when programming. For 12.50W, enter 12500. XE SKU: Any value can be programmed. Overclocking SKU: Value must be between Max and Min Power Limits (specified by PACKAGE_POWER_SKU_MSR). Other SKUs: This value must be between Min Power L.</td></tr><tr><td>Power Limit 3 Time Window</td><td>0, 3, 4, 5, 6, 7, 8, 10, 12, 14, 16, 20, 24, 28, 32, 40, 48, 56, 64</td><td>Power Limit 3 Time Window value in Milli seconds. The value may vary from 3 to 64(max). Indicates the time window over which Power Limit 3 value should be maintained. If the value is 0, BIOS leaves the hardware default value.</td></tr><tr><td>Power Limit 3 Duty Cycle</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x64, 0x00, 0x00]</td><td>Specifies the duty cycle in percentage that the CPU is required to maintain over the configured time window. The range is from 0-100.</td></tr><tr><td>Power Limit 3 Lock</td><td>Disabled, Enabled</td><td>Power Limit 3 MSR 615h Lock. When enabled, PL3 configurations are locked during OS. When disabled, PL3 configuration can be changed during OS.</td></tr><tr><td>CPU Lock Configuration</td><td>Submenu</td><td>Enables/Disables Power Limit 3 override. If this option is disabled, BIOS will leave the hardware default values for Power Limit 3 and Power Limit 3 Time Window.</td></tr><tr><td>CFG Lock</td><td>Disabled, Enabled</td><td>Configures MSR 0xE2[15], CFG Lock bit</td></tr><tr><td>Overclocking Lock</td><td>Disabled, Enabled</td><td>Enables/Disables Overclocking Lock (Bit 20) in FLEX_RATION(194) MSR</td></tr></table>

7.3.2.2. GT Power Management Control

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>RC6(Render Standby)*</td><td>Disabled, Enabled</td><td>Check to enable render standby support.</td></tr><tr><td>Maximum GT Frequency</td><td>Default MaxFrequency, 100Mhz, 150Mhz, 200Mhz, 250Mhz, 300Mhz, 350Mhz, 400Mhz, 450Mhz, 500Mhz, 550Mhz, 600Mhz, 650Mhz, 700Mhz, 750Mhz, 800Mhz, 850Mhz, 900Mhz, 950Mhz, 1000Mhz, 1050Mhz, 1100Mhz, 1150Mhz, 1200Mhz</td><td>Maximum GT frequency is limited by the user. Choose between 100MHz (RPN) and 1350MHz (RP0). Value beyond the range will be clipped to min/max supported by SKU</td></tr><tr><td>Disable Turbo GT Frequency</td><td>Enabled, Disabled</td><td>Enabled: Disables Turbo GT frequency. Disabled: GT frequency is not limited.</td></tr></table>

7.3.3 Graphic Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Nxp configuration</td><td>Info Only</td><td></td></tr><tr><td>Data format and Color Depth</td><td>VESA 24 bppJEIDA 24 bppJEIDA/vesa 18 bpp</td><td>Data format and Color Depth select</td></tr><tr><td>LVDS Output Mode</td><td>Dual LVDS busSingle LVDS bus</td><td>Single/Dual mode select</td></tr><tr><td>DE Polarity</td><td>Active HighActive Low</td><td>DE Polarity select</td></tr><tr><td>Vsync Polarity</td><td>Active HighActive Low</td><td>Vsync Polarity select</td></tr><tr><td>Spreading depth</td><td>No Spreading0.5%1.0%1.5%2.0%2.5%</td><td>Clock frequency center spreading depth.</td></tr><tr><td>Integrated Display Configuration</td><td>Info only</td><td></td></tr><tr><td>eDP/LVDS</td><td>DisabledEnabled</td><td>Enables/Disables eDP/LVDS</td></tr><tr><td>LFP Panel Type</td><td>VBIOS Default640x480800x6001024x7681280x10241400x1050 LVDS11400x1050 LVDS21600x12001366x7681680x10501920x12001440x9001600x9001024x7681280x8001920x10802048x1536</td><td>Selects LFP panel used by Internal Graphics Device by selecting the appropriate setup item.</td></tr><tr><td>LVDS Backlight Mode</td><td>EC ModeGTT Mode</td><td>Selects LVDS Backlight control function.</td></tr><tr><td>LVDS Backlight</td><td>Submenu</td><td></td></tr><tr><td>LVDS Backlight Brightness</td><td>Value Range (0-255)</td><td>The change takes effect immediately. The value range starts from 0 and ends at 255.</td></tr><tr><td>DDI port 1</td><td>No DeviceDisplay PortHDMIDisplayPort WithHDMI/DVI Compatibility</td><td>DDI port 1 function choose to Display Port or HDMI</td></tr><tr><td>DDI port 2</td><td>No DeviceDisplay PortHDMIDisplayPort WithHDMI/DVI Compatibility</td><td>DDI port 2 function choose to Display Port or HDMI</td></tr><tr><td>DDI port 3</td><td>No DeviceDisplay PortHDMIDisplayPort WithHDMI/DVI Compatibility</td><td>DDI port 3 function choose to Display Port or HDMI</td></tr></table>

7.3.4 Power Management

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Enable ACPI Auto Configuration</td><td>Disabled, Enabled</td><td>Enables or Disables BIOS ACPI Auto Configuration.</td></tr><tr><td>Enable Hibernation</td><td>Disabled, Enabled</td><td>Enables or Disables the system&#x27;s ability to hibernate (OS/S4 Sleep State). This option may not be effective with some operating systems.</td></tr><tr><td>ACPI Sleep State*</td><td>Suspend Disabled, S3(Suspend to RAM)</td><td>Selects the highest ACPI sleep state the system will enter when the SUSPEND button is pressed.</td></tr><tr><td>LID Function</td><td>Disabled, Enabled</td><td>Enables/Disables LID Function</td></tr><tr><td>Sleep Function</td><td>Disabled, Enabled</td><td>Enables/Disables Sleep Button Function</td></tr><tr><td>ECO Mode*</td><td>Disabled, Enabled</td><td>Reduces the power consumption of the system, but after a shut down, you have to wait at least 5 seconds before you can restart the system.</td></tr><tr><td>Power-Up Mode*</td><td>Turn On, Remain Off, Last State</td><td>Turn On:</td></tr><tr><td colspan="3">ATTENTION: The Power-Up Mode only has effect,If the module is in ATX-Mode.</td></tr><tr><td>Power Consumption</td><td>Submenu</td><td></td></tr></table>

7.3.4.1. Power Management > Power Consumption

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Power Consumption</td><td>Info only</td><td></td></tr><tr><td>Main Current</td><td>Read only</td><td>Display input current.</td></tr><tr><td>Current Input Power</td><td>Read only</td><td>Display input power.</td></tr><tr><td>RTC</td><td>Read only</td><td>Display the sensed voltage based on hardware design.</td></tr><tr><td>5VSB</td><td>Read only</td><td>Display the sensed voltage based on hardware design.</td></tr><tr><td>VIN</td><td>Read only</td><td>Display the sensed voltage based on hardware design</td></tr><tr><td>3.3V</td><td>Read only</td><td>Display the sensed voltage based on hardware design</td></tr><tr><td>VMEM</td><td>Read only</td><td>Display the sensed voltage based on hardware design</td></tr><tr><td>3.3VSB</td><td>Read only</td><td>Display the sensed voltage based on hardware design</td></tr><tr><td>VCORE</td><td>Read only</td><td>Display the sensed voltage based on hardware design</td></tr></table>

# 7.3.5 System Management

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>System Management</td><td>Info Only</td><td></td></tr><tr><td>Version</td><td>Info Only</td><td>Display SEMA Module Version.</td></tr><tr><td>SEMA Firmware</td><td>Info Only</td><td>Display SEMA Firmware Version.</td></tr><tr><td>SEMA Flags</td><td>Submenu</td><td>Display SEMA Flags</td></tr><tr><td>SEMA Features</td><td>Info</td><td>Display SEMA Supported Features</td></tr></table>

# 7.3.5.1. System Management > SEMA Flags

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>SEMA Flags</td><td>Info Only</td><td></td></tr><tr><td>BIOS Select</td><td>Info Only</td><td></td></tr><tr><td>ATX/AT-Mode</td><td>Info Only</td><td></td></tr></table>

7.3.6 Thermal Management

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Thermal Management</td><td>Info Only</td><td></td></tr><tr><td>Critical Trip Point</td><td>Disabled80 C90 C95 C</td><td>The value is the temperature threshold of the Critical Trip Point.</td></tr><tr><td>Passive Cooling Trip Point</td><td>Disabled70 C80 C90 C100 C</td><td>The value is the temperature threshold of the Passive Cooling Trip Point.</td></tr><tr><td>Active Cooling Trip Point</td><td>40 C50 C60 C70 CRefer to BMC</td><td>This value is the temperature threshold of the active cooling trip point.</td></tr><tr><td>Watchdog ACPI Event Shutdown</td><td>DisabledEnabled</td><td>Watchdog ACPI Event Shutdown Enabled/Disabled</td></tr><tr><td>Temperature and Fan Speed</td><td>Submenu</td><td></td></tr></table>

7.3.6.1. Thermal Management > Temperature and Fan Speed

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Temperatures and Fan Speed</td><td>Info Only</td><td></td></tr><tr><td>CPU Temperature</td><td>Info Only</td><td></td></tr><tr><td>Current</td><td>Info Only</td><td>Display Current CPU Temperature</td></tr><tr><td>Startup</td><td>Info Only</td><td>Display Startup Board Temperature</td></tr><tr><td>Min</td><td>Info Only</td><td>Display Min Board Temperature</td></tr><tr><td>Max</td><td>Info Only</td><td>Display Max Board Temperature</td></tr><tr><td>CPU Fan Speed</td><td>Info Only</td><td>Display CPU Fan Speed</td></tr><tr><td>Smart Fan</td><td>Submenu</td><td></td></tr></table>

7.3.6.1.1. Thermal Management > Temperature and Fan Speed > Smart Fan

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Smart Fan</td><td>Info Only</td><td></td></tr><tr><td>CPU Smart Fan Temperature Source</td><td>CPU Sensor Board Sensor</td><td>CPU Smart Fan Temperature Source</td></tr><tr><td>CPU Fan Mode</td><td>AUTO (Smart Fan) Fan Off Fan On</td><td>Select CPU Fan control mode.</td></tr><tr><td>Trigger Point 1</td><td>Info-only</td><td></td></tr><tr><td>Trigger Temperature</td><td>45</td><td>Set the temperature value for trigger point 1 to control CPU fan.</td></tr><tr><td>PWM Level</td><td>25</td><td>When configured sensor reaches the trigger temperature value, set PWM level for this condition.</td></tr><tr><td>Trigger Point 2</td><td>Info-only</td><td></td></tr><tr><td>Trigger Temperature</td><td>60</td><td>Set the temperature value for trigger point 2 to control CPU fan.</td></tr><tr><td>PWM Level</td><td>50</td><td>When configured sensor reaches the trigger temperature value, set PWM level for this condition.</td></tr><tr><td>Trigger Point 3</td><td>Info-only</td><td></td></tr><tr><td>Trigger Temperature</td><td>75</td><td>Set the temperature value for trigger point 3 to control CPU fan.</td></tr><tr><td>PWM Level</td><td>75</td><td>When configured sensor reaches the trigger temperature value, set PWM level for this condition.</td></tr><tr><td>Trigger Point 4</td><td>Info-only</td><td></td></tr><tr><td>Trigger Temperature</td><td>90</td><td>Set the temperature value for trigger point 4 to control CPU fan.</td></tr><tr><td>PWM Level</td><td>100</td><td>When configured sensor reaches the trigger temperature value, set PWM level for this condition.</td></tr><tr><td>Trigger Point 1</td><td>Info-only</td><td></td></tr></table>

7.3.7 Watchdog Timer

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Watchdog Timer</td><td>Info only</td><td></td></tr><tr><td>Power-Up Watchdog</td><td>Disabled Enabled</td><td>The Power Up Watchdog resets the system after a certain amount of time after power up. Pressing F12 during start-up disables the Power Up Watchdog.</td></tr><tr><td>Timeout</td><td>65535</td><td>Here you can enter the time the Power Up Watchdog should wait until it resets the system. The value range starts by 24 and ends at 65535.</td></tr><tr><td>RunTime Watchdog</td><td>Disabled Enabled</td><td>The RunTime Watchdog resets the system after a certain period following a power-up.</td></tr><tr><td>Timeout</td><td>24</td><td>Here you can specify the duration of the Runtime Watchdog and wait until it resets the system. The value range starts by 30 and ends by 65535.</td></tr></table>

7.3.8 Super IO Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Super IO Configuration</td><td>Info only</td><td></td></tr><tr><td>IT5121E Super IO Configuration</td><td>Submenu</td><td>System Super IO Chip Parameters.</td></tr><tr><td>W83627DHGSEC Super IO Configuration</td><td>Submenu</td><td>System Super IO Chip Parameters.</td></tr></table>

7.3.8.1. Super IO Configuration > IT5121E Super IO Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td colspan="3">IT5121E Super IO Configuration</td></tr><tr><td>Serial Port 1 Configuration</td><td>Submenu</td><td></td></tr><tr><td>Serial Port 2 Configuration</td><td>Submenu</td><td></td></tr></table>

7.3.8.1.1. Super IO Configuration > IT5121E Super IO Configuration > Serial Port X Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td colspan="3">Serial Port 1 Configuration</td></tr><tr><td>Serial Port 1 Configuration</td><td>Disabled, Enabled</td><td>Set Parameters of Serial Port 1</td></tr><tr><td>Device Settings</td><td>4;</td><td></td></tr><tr><td>Change Settings</td><td>Auto, IO=3F8h; IRQ=4;, IO=3F8h;IRQ=3,4,5,6,7,9,10,11,12;, IO=2F8h;IRQ=3,4,5,6,7,9,10,11,12;, IO=3E8h;IRQ=3,4,5,6,7,9,10,11,12;, IO=2E8h;IRQ=3,4,5,6,7,9,10,11,12;</td><td>Select an optimal setting for Super IO Device</td></tr><tr><td>Change Settings</td><td>Normal, High Speed</td><td>Select an optimal setting for Super IO Device</td></tr><tr><td colspan="3">Serial Port 2 Configuration</td></tr><tr><td>Serial Port 2 Configuration</td><td>Disabled, Enabled</td><td>Set Parameters of Serial Port 2</td></tr><tr><td>Device Settings</td><td>3;</td><td></td></tr><tr><td>Change Settings</td><td>Auto, IO=2F8h; IRQ=3;, IO=3F8h;IRQ=3,4,5,6,7,9,10,11,12;, IO=2F8h;IRQ=3,4,5,6,7,9,10,11,12;, IO=3E8h;IRQ=3,4,5,6,7,9,10,11,12;, IO=2E8h;IRQ =3,4,5,6,7,9,10,11,12;, Normal, High Speed</td><td>Select an optimal setting for Super IO Device</td></tr><tr><td>Change Settings</td><td>Normal, High Speed</td><td>Select an optimal setting for Super IO Device</td></tr></table>

7.3.8.2. Super IO Configuration > W83627DHGSEC Super IO Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td colspan="3">W83627DHGSEC Super IO Configuration</td></tr><tr><td>Serial Port 1 Configuration</td><td>Submenu</td><td></td></tr><tr><td>Serial Port 2 Configuration</td><td>Submenu</td><td></td></tr></table>

7.3.8.2.1. Super IO Configuration > W83627DHGSEC Super IO Configuration > Serial Port X Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td colspan="3">Serial Port 1 Configuration</td></tr><tr><td>Serial Port 1 Configuration</td><td>Disabled, Enabled</td><td>Set Parameters of Serial Port 1</td></tr><tr><td>Device Settings</td><td>5</td><td></td></tr><tr><td>Change Settings</td><td>Auto, IO=240h; IRQ=10;, IO=240h;IRQ=3,4,5,6,7,10,11,12;, IO=248h;IRQ=3,4,5,6,7,10,11,12;, IO=250h;IRQ=3,4,5,6,7,10,11,12;, IO=258h;IRQ=3,4,5,6,7,10,11,12;, IO=260h;IRQ=3,4,5,6,7,10,11,12;, IO=268h;IRQ=3,4,5,6,7,10,11,12;</td><td>Select an optimal setting for Super IO Device</td></tr><tr><td colspan="3">Serial Port 2 Configuration</td></tr><tr><td>Serial Port 2 Configuration</td><td>Disabled, Enabled</td><td>Set Parameters of Serial Port 2</td></tr><tr><td>Device Settings</td><td>7;</td><td></td></tr><tr><td>Change Settings</td><td>Auto, IO=248h; IRQ=10;, IO=240h;IRQ=3,4,5,6,7,10,11,12;, IO=248h;IRQ=3,4,5,6,7,10,11,12;, IO=250h;</td><td>Select an optimal setting for Super IO Device</td></tr><tr><td></td><td>IRQ=3,4,5,6,7,10,11,12;, IO=258h;IRQ=3,4,5,6,7,10,11,12;, IO=260h;IRQ=3,4,5,6,7,10,11,12;, IO=268h;IRQ=3,4,5,6,7,10,11,12;</td><td></td></tr><tr><td>Device Mode</td><td>Standard Serial Port Mode, IrDA Active pulse 1.6 uS, IrDA Active pulse 3/16 bit time, ASKIR Mode</td><td>Change the Serial Port mode.</td></tr></table>

7.3.9 Miscellaneous

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Power Supply Unit</td><td>Emulate AT ModeATX Mode</td><td>Select Emulation AT or ATX function. If this option set to [Emulation AT], BIOS will report no suspend functions (S3 &amp; S4) to ACPI OS. In windows XP, it will make OS show shutdown message during system shutdown. ATX: OS will turn off system power when shutdown.</td></tr><tr><td>I2C Speed Control</td><td>100 kbps400 kbps</td><td>I2C Speed Control</td></tr><tr><td>WOL From S5</td><td>OFFON</td><td>This Config to control power on/off LAN in S5 State by SEMA(EC).</td></tr><tr><td>Smart Battery Function</td><td>DisabledEnabledAuto</td><td>Enable/Disable Smart Battery function. Auto: disable Smart Battery function if charger IC not be detected.</td></tr><tr><td>SMBUS Select Configuration</td><td>From EC, From PCH</td><td>SMBUS Select Configuration from PCH or EC.</td></tr></table>

7.3.10 USB Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>USB Configuration</td><td>Info Only</td><td></td></tr><tr><td>USB Module Version</td><td>Info Only</td><td>Display USB Module Version.</td></tr><tr><td>USB Controllers:</td><td>Info Only</td><td>Display USB Controllers is XHCI or EHCI.</td></tr><tr><td>USB Devices:</td><td>Info Only</td><td>Display attachment USB devices.</td></tr><tr><td>Legacy USB Support</td><td>EnabledDisabledAuto</td><td>Enables Legacy USB support.Auto option disables legacy support if no USB devices are connected.Disable option will keep USB devices available only for EFI applications.</td></tr><tr><td>XHCI Hand-off</td><td>EnabledDisabled</td><td>This is a workaround for OSs without XHCI hand-off support.The XHCI ownership change should be claimed by XHCI driver.</td></tr><tr><td>USB Mass Storage Driver Support</td><td>DisabledEnabled</td><td>Enable / Disable USB Mass Storge Driver Support.</td></tr><tr><td>USB hardware delays and time-outs:</td><td>Info Only</td><td></td></tr><tr><td>USB transfer rime-out</td><td>1 sec5sec10sec20 sec</td><td>The time-out value for Control, Bulk, and Interrupt transfers.</td></tr><tr><td>Device reset time-out</td><td>10 sec20 sec30 sec40 sec</td><td>USB mass storage device Start Unit command time-out.</td></tr><tr><td>Device power-up delay</td><td>AutoManual</td><td>Maximum time the device will take before it properly reports itself to the Hot Controller.&#x27;Auto&#x27; uses default value: for a Root po\rt it is 100 ms, for a hub port the delay is taken form a hub descriptor.</td></tr></table>

7.3.11 NVMe Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>NVMe device name</td><td>Submenu</td><td></td></tr><tr><td>Seg:Bus:Dev:Func</td><td>Info Only</td><td>Display NVMe Seg:Bus:Dev:Func.</td></tr><tr><td>Model Number</td><td>Info Only</td><td>Display NVMe Model Number.</td></tr><tr><td>Total Size</td><td>Info Only</td><td>Display NVMe Total Size.</td></tr><tr><td>Vendor ID</td><td>Info Only</td><td>Display Vendor ID.</td></tr><tr><td>Device ID</td><td>Info Only</td><td>Display NVMe Total Size.</td></tr><tr><td>Namespace :</td><td>Info Only</td><td>Display NVMe Total Size.</td></tr><tr><td colspan="3">Device Self-Test :</td></tr><tr><td>Self-Test Option</td><td>Short, Extended</td><td>Select either Short or Extended Self-Test. Short option will take couple of minutes and extended option will take several minutes to complete.&quot;</td></tr><tr><td>Self-Test Action</td><td>Controller Only Test, Controller and NameSpace Test</td><td>Select either to test Controller alone or Controller and NameSpace. Selecting Controller and Namespace option will take lot longer to complete the test.</td></tr><tr><td colspan="2">Run Device Self-Test</td><td>Perform device self-test for the corresponding Option and Action selected by user. Pressing the &#x27;Esc&#x27; key will abort the test. Result shown below is the recent result logged in the device.</td></tr><tr><td>Short Device Self-Test Result</td><td>Info Only</td><td>Display Short Device Self-Test Result.</td></tr><tr><td>Extended Device Self-Test Result</td><td>Info Only</td><td>Display Extended Device Self-Test Result.</td></tr></table>

7.3.12 AMI Graphics Output Protocol Policy

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td colspan="3">Intel(R) Graphics Controller</td></tr><tr><td colspan="3">Intel(R) GOP Driver [21.0.10xx]</td></tr><tr><td>Output Select</td><td>HDMI</td><td>Auto detect Output Interface</td></tr><tr><td>Output Select*</td><td>HDMI/DP/eDP</td><td>Manual select Output Interface</td></tr><tr><td>Brightness Setting</td><td>[ Max-Value, Min-Value, Step-Value, Step-Value] = [ 0xFFFFFFF, 0x00000000, 0x00000001, Brightness Setting]</td><td>Item shown when eDP detectedSet Gop Brightness value</td></tr><tr><td>BIST Enable</td><td>Disabled, Enabled</td><td>Item shown when eDP detectedStarts or stops the BIST on the integrated display panel.</td></tr><tr><td>Output Select</td><td>HDMI</td><td>Auto detect Output Interface</td></tr></table>

7.3.13 Serial Console Redirection

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Console Redirection</td><td>Disabled, Enabled</td><td>To enable or disable console redirection of COMx.</td></tr><tr><td>Console Redirection Settings</td><td>Submenu</td><td>The settings specify how the host computer and the remote computer (which the user is using) will exchange data. Both computers should have the same or compatible settings.</td></tr></table>

7.3.13.1.Serial Console Redirection  Console Redirection Settings

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Terminal Type</td><td>VT100VT100+VT-UTF8ANSI</td><td>Configures the type of console emulation.Emulation:ANSI: Extended ASCII char set.VT100: ASCII char set.VT100+: Extends VT100 to support color, function keys, etc.VT-UTF8: Uses UTF8 encoding to map Unicode chars onto 1 or more bytes.</td></tr><tr><td>Bits per second</td><td>9600192003840057600115200</td><td>Selects serial port transmission speed. The speed must be matched on the other side. Long or noisy lines may require lower speeds.</td></tr><tr><td>Data Bits</td><td>78</td><td>Configures the number of data bits in each transmitted or received serial character for both serial ports.</td></tr><tr><td>Parity</td><td>NoneEvenOdd</td><td>Configures if parity bit is generated (transmit data) or checked.A parity bit can be sent with the data bits to detect some transmission errors. Even: The parity bit is 0 if the num of 1's in the data bits is even. Odd: The parity bit is 0 if num of 1's in the data bits is odd. Mark: The parity bit is always 1. Space: The parity bit is always 0. Mark and Space parity bits do not allow for error detection. They can be used as an additional data bit.</td></tr><tr><td>Stop Bits</td><td>12</td><td>Configures the number of stop bits transmitted and received in each serial character for both serial ports. Stop bits indicate the end of a serial data packet. (A start bit indicates the beginning). The standard setting is 1 stop bit. Communication with slow devices may require more than 1 stop bit.</td></tr><tr><td>Flow Control</td><td>NoneHardwareSoftware</td><td>Configures flow control for console redirection. Hardware flow control uses RTC/CTS. Software flow control uses XON/XOFF.</td></tr><tr><td>VT-UTF8 Combo Key Support</td><td>DisabledEnabled</td><td>Enables VT-UTF8 combination key support for ANSI/VT100 terminals.</td></tr><tr><td>Recorder Mode</td><td>DisabledEnabled</td><td>With this mode enabled only text will be sent. This is to capture terminal data.</td></tr><tr><td>Resolution 100x31</td><td>DisabledEnabled</td><td>Enables or disables extended terminal resolution.</td></tr><tr><td>Legacy OS Redirection Resolution</td><td>80x2480x25</td><td>Sets console display resolution.</td></tr><tr><td>Putty KeyPad</td><td>VT100LINUXXTERMR6SCOESCNVT400</td><td>Selects Function Keys and Key Pad on Putty.</td></tr><tr><td>Redirection After BIOS POST</td><td>Always EnabledBootLoader</td><td>The setting specifies if BootLoader is selected, then legacy console redirection is disabled before booting to legacy OS.</td></tr></table>

7.3.14 Network Stack Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Network Stack</td><td>Disabled, Enabled</td><td>Enables/Disables UEFI Network Stack</td></tr><tr><td>IPv4 PXE Support</td><td>Disabled, Enabled</td><td>Enables/Disables IPv4 PXE boot support. If disabled, IPv4 PXE boot support will not be available.</td></tr><tr><td>IPv4 HTTP Support</td><td>Disabled, Enabled</td><td>Enables/Disables IPv4 HTTP boot support. If disabled, IPv4 HTTP boot support will not be available.</td></tr><tr><td>IPv6 PXE Support</td><td>Disabled, Enabled</td><td>Enables/Disables IPv6 PXE boot support. If disabled, IPv6 PXE boot support will not be available.</td></tr><tr><td>IPv6 HTTP Support</td><td>Disabled, Enabled</td><td>Enables/Disables IPv6 HTTP boot support. If disabled, IPv6 HTTP boot support will not be available.</td></tr><tr><td>PXE boot wait time</td><td>[ Max-Value, Min-Value, Step-Value] =[ 0x05, 0x00, 0x01]</td><td>Wait time in seconds to press the ESC key to abort the PXE boot. Use either +/- or numeric keys to set the value.</td></tr><tr><td>Media detect count</td><td>[ Max-Value, Min-Value, Step-Value] =[ 0x32, 0x01, 0x01]</td><td>Number of times the presence of media will be checked. Use either +/- or numeric keys to set the value.</td></tr></table>

7.3.15 Trusted Computing

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Security Device Support</td><td>Disable, Enable</td><td>Enables or Disables BIOS support for security device. O.S. will not show Security Device. TCG EFI protocol and INT1A interface will not be available.</td></tr><tr><td colspan="3">NO Security Device Found</td></tr></table>

7.4. Chipset

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>System Agent (SA) Configuration</td><td>submenu</td><td></td></tr><tr><td>PCH-IO Configuration</td><td>submenu</td><td></td></tr></table>

7.4.1 Chipset > System Agent (SA) Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Memory Configuration</td><td>Submenu</td><td></td></tr><tr><td>Graphics Configuration</td><td>Submenu</td><td></td></tr><tr><td>VMD setup menu</td><td>Submenu</td><td></td></tr><tr><td>PCI Express Configuration</td><td>Submenu</td><td></td></tr><tr><td>Stop Grant Configuration</td><td>Auto, Manual</td><td>Automatic/Manual stio grant configuration.</td></tr><tr><td>VT-d</td><td>Disabled, Enabled</td><td>VT-d capability</td></tr><tr><td>Control Iommu Pre-boot Behavior</td><td>Disable IOMMU, Enable IOMMU during boot</td><td>Enable IOMMU in Pre-boot environment (If DMAR table is installed in DXE and If VTD_INFO_PPI is installed in PEI.)</td></tr><tr><td>X2APIC Opt Out</td><td>Enabled, Disabled</td><td>Support the word/dword decoding of port 80h behind LPC</td></tr><tr><td>DMA Control Guarantee</td><td>Disabled, Enabled</td><td>Enable/Disable DMA_CONTROL_GUARANTEE bit</td></tr><tr><td>Above 4GB MMIO BIOS assignment</td><td>Enabled, Disabled</td><td>Enable/Disable above 4GB MemoryMappedIO BIOS assignment\n\nThis is enabled automatically when Aperture Size is set to 2048MB.</td></tr></table>

7.4.1.1. Chipset > System Agent (SA) Configuration > Memory Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Memory RC Version</td><td>Info-only</td><td></td></tr><tr><td>Memory Frequency</td><td>Info-only</td><td></td></tr><tr><td>Memory Timings (tCL-tRCD-tRP-tRAS)</td><td>Info-only</td><td></td></tr><tr><td>Controller x Channel x Slot x</td><td>Info-only</td><td></td></tr><tr><td>Size</td><td>Info-only</td><td></td></tr><tr><td>Number of Ranks</td><td>Info-only</td><td></td></tr><tr><td>Manufacturer</td><td>Info-only</td><td></td></tr><tr><td>Memory Test on Warm Boot</td><td>Enabled, Disabled</td><td>Enable Or Disable Base Memory Test Run on Warm Boot</td></tr><tr><td>Maximum Memory Frequency</td><td>Auto10671333140016001800186720002133220024002600266728002933300032003467360037334000420042674400460048005000520054005600580060006200640010000</td><td>Maximum Memory Frequency Selections in Mhz. Valid values should match the refclk, i.e., divided by 133 or 100</td></tr><tr><td>Max TOLUD</td><td>Dynamic1 GB1.25 GB1.5 GB1.75 GB2 GB2.25 GB2.5 GB2.75 GB3 GB3.25 GB3.5 GB</td><td>Maximum Value of TOLUD. Dynamic assignment would adjust TOLUD automatically based on largest MMIO length of installed graphic controller</td></tr><tr><td>Controller 0, Channel 0 DIMM Control</td><td>Enabled, Disabled</td><td>Controller 0, Channel 0 DIMM Control Support - Enable or Disable Dimms on Controller 0, Channel 0.</td></tr><tr><td>Controller 1, Channel 0 DIMM Control</td><td>Enabled, Disabled</td><td>Controller 1, Channel 0 DIMM Control Support - Enable or Disable Dimms on Controller 1, Channel 0.</td></tr><tr><td>In-Band ECC Support (Industrial SKU only)</td><td>Enabled, Disabled</td><td>Enable/Disable In-Band ECC. Either the IBECC or the TME can be enabled.</td></tr><tr><td>In-Band ECC Operation Mode</td><td>0, 1, 2</td><td>0: Functional Mode protects requests based on the address range, 1: Makes all requests non protected and ignore range checks, 2:Makes all requests protected and ignore range checks</td></tr><tr><td>In-Band ECC Error Injection Control</td><td>No Error Injection,Inject Correctable Error Address match,Inject Correctable Error on insertion counter,Inject Uncorrectable Error Address match,Inject Uncorrectable Error on insertion counter</td><td>Enables IBECC Error Injection</td></tr></table>

7.4.1.2. Chipset > System Agent (SA) Configuration > Graphics Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Skip Scanning of External Gfx Card</td><td>Disabled, Enabled</td><td>If Enabled, it will not scan for External Gfx Card on PEG and PCH PCIE Ports</td></tr><tr><td>Primary Display</td><td>Auto, IGFX, PEG Slot, PCH PCI, HG</td><td>Select which of IGFX/PEG/PCI Graphics device should be Primary Display Or select HG for Hybrid Gfx.</td></tr><tr><td>External Gfx Card Primary Display Configuration</td><td>Submenu</td><td>External Gfx Card Primary Display Configuration</td></tr><tr><td>Internal Graphics</td><td>Auto, Disabled, Enabled</td><td>Keep IGFX enabled based on the setup options.</td></tr><tr><td>GTT Size</td><td>2MB, 4MB, 8MB</td><td>Select the GTT Size</td></tr><tr><td>Aperture Size</td><td>128MB, 256MB, 512MB, 1024MB</td><td>Select the Aperture Size</td></tr><tr><td>DVMT Pre-Allocated</td><td>0M, 32M, 64M, 96M, 128M, 160M, 4M, 8M, 12M, 16M, 20M, 24M, 28M, 32M/F7, 36M, 40M, 44M, 48M, 52M, 56M, 60M</td><td>Select DVMT 5.0 Pre-Allocated (Fixed) Graphics Memory size used by the Internal Graphics Device.</td></tr><tr><td>Intel Graphics Pei Display Peim</td><td>Enabled, Disabled</td><td>Enable/Disable Pei (Early) Display</td></tr></table>

7.4.1.3. Chipset > System Agent (SA) Configuration > VMD Setup Menu

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Enable VMD controller</td><td>Disabled, Enabled</td><td>Enable/Disable to VMD controller</td></tr></table>

7.4.1.4. Chipset > System Agent (SA) Configuration > PCIE Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Connection Type</td><td>Built-in, Slot</td><td>Built-In: a built-in device is connected to this rootport. Slot Implemented bit will be clear. Slot: this rootport connects to user-accessible slot. SlotImplemented bit will be set.</td></tr><tr><td>PCI Express Clock Gating</td><td>Disabled, Enabled</td><td>PCI Express Clock Gating Enable/Disable for each root port.</td></tr><tr><td>PCI Express Power Gating</td><td>Disabled, Enabled</td><td>PCI Express Power Gating Enable/Disable for each root port.</td></tr><tr><td>ASPM</td><td>Disabled, L0s, L1, L0sL1</td><td>Set the ASPM Level:Force L0s - Force all links to L0s StateAUTO - BIOS auto configureDISABLE - Disables ASPM</td></tr><tr><td>L1 Substates</td><td>Disabled, L1.1, L1.1 &amp; L1.2</td><td>PCI Express L1 Substates settings. L1SS cannot be enabled when CLKREQMSG is disabled</td></tr><tr><td>Gen3 Eq Phase3 Method</td><td>Hardware, Static Coeff.</td><td>PCIe Gen3 Equalization Phase 3 Method</td></tr><tr><td>Gen4 Eq Phase3 Method</td><td>Hardware, Static Coeff.</td><td>PCIe Gen3 Equalization Phase 3 Method</td></tr><tr><td>ACS</td><td>Disabled, Enabled</td><td>Enable/Disable Access Control Services Extended Capability</td></tr><tr><td>PTM</td><td>Disabled, Enabled</td><td>Enable/Disable Precision Time Measurement</td></tr><tr><td>DPC</td><td>Disabled, Enabled</td><td>Enable/Disable Downstream Port Containment</td></tr><tr><td>FOM Scoreboard Control Policy</td><td>Auto, Gen3, Gen4, Gen3/Gen4</td><td>Select the FOM Scoreboard Control Policy, when set to Auto, speed is based on TLS</td></tr><tr><td>Multi-VC</td><td>Disabled, Enabled</td><td>Enable/Disable Multi Virtual Channel</td></tr><tr><td>EDPC</td><td>Disabled, Enabled</td><td>Enable/Disable Rootport extensions for Downstream Port Containment</td></tr><tr><td>URR</td><td>Disabled, Enabled</td><td>PCI Express Unsupported Request Reporting Enable/Disable.</td></tr><tr><td>FER</td><td>Disabled, Enabled</td><td>PCI Express Device Fatal Error Reporting Enable/Disable.</td></tr><tr><td>NFER</td><td>Disabled, Enabled</td><td>PCI Express Device Non-Fatal Error Reporting Enable/Disable.</td></tr><tr><td>CER</td><td>Disabled, Enabled</td><td>PCI Express Device Correctable Error Reporting Enable/Disable.</td></tr><tr><td>CTO</td><td>Disabled, Enabled</td><td>PCI Express Completion Timer TO Enable/Disable.</td></tr><tr><td>SEFE</td><td>Disabled, Enabled</td><td>Root PCI Express System Error on Fatal Error Enable/Disable.</td></tr><tr><td>SENFE</td><td>Disabled, Enabled</td><td>Root PCI Express System Error on Non-Fatal Error Enable/Disable.</td></tr><tr><td>SECE</td><td>Disabled, Enabled</td><td>Root PCI Express System Error on Correctable Error Enable/Disable.</td></tr><tr><td>PME SCI</td><td>Disabled, Enabled</td><td>PCI Express PME SCI Enable/Disable.</td></tr><tr><td>Hot Plug</td><td>Disabled, Enabled</td><td>PCI Express Hot Plug Enable/Disable.</td></tr><tr><td>Advanced Error Reporting</td><td>Disabled, Enabled</td><td>Advanced Error Reporting Enable/Disable.</td></tr><tr><td>PCIe Speed</td><td>Auto, Gen1, Gen2, Gen3, Gen4</td><td>Configure PCIe Speed</td></tr><tr><td>Enable ClockReg Messaging</td><td>Disabled, Enabled</td><td>Enable or Disable ClockReg Messaging</td></tr><tr><td>Transmitter Half Swing</td><td>Disabled, Enabled</td><td>Transmitter Half Swing Enable/Disable.</td></tr><tr><td>Detect Timeout</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0xFFFF, 0x0000, 0x0001]</td><td>The number of milliseconds reference code will wait for link to exit Detect state for enabled ports before assuming there is no device and potentially disabling the port.</td></tr><tr><td>P2P Support</td><td>Disabled, Enabled</td><td>Program P2P Support Registers according to setup option</td></tr><tr><td>CPU PCIE Func0 Link Disable</td><td>Disabled, Enabled</td><td>CPU PCIE Func0 Link Disable while Device attached into Port having Func0 and FuncN</td></tr><tr><td colspan="3">SA PCIe LTR Configuration</td></tr><tr><td>LTR</td><td>Disabled, Enabled</td><td>SA PCIE Latency Reporting Enable/Disable</td></tr><tr><td>Snoop Latency Override</td><td>Disabled, Manual, Auto</td><td>Snoop Latency Override for SA PCIE.</td></tr><tr><td>Non Snoop Latency Override</td><td>Disabled, Manual, Auto</td><td>Non-Snoop Latency Override for SA PCIE.</td></tr><tr><td>Force LTR Override</td><td>Disabled, Enabled</td><td>Force LTR Override for SA PCIE.</td></tr><tr><td>LTR Lock</td><td>Disabled, Enabled</td><td>PCIE LTR Configuration Lock</td></tr><tr><td colspan="3">CPU PCIe Gen3 HWEQ Config</td></tr><tr><td>UPTP</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x0A, 0x00, 0x01]</td><td>Upstream Port Transmitter Preset</td></tr><tr><td>DPTP</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x0A, 0x00, 0x01]</td><td>Downstream Port Transmitter Preset</td></tr><tr><td colspan="3">CPU PCIe Gen4 HWEQ Config</td></tr><tr><td>UPTP</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x0A, 0x00, 0x01]</td><td>Upstream Port Transmitter Preset</td></tr><tr><td>DPTP</td><td>[ Max-Value, Min-Value, Step-Value] = [ 0x0A, 0x00, 0x01]</td><td>Downstream Port Transmittter Preset</td></tr></table>

7.4.2 Chipset > PCH-IO Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>PCI Express Configuration</td><td>Submenu</td><td></td></tr><tr><td>SATA Configuration</td><td>Submenu</td><td></td></tr><tr><td>USB Configuration</td><td>Submenu</td><td></td></tr><tr><td>Security Configuration</td><td>Submenu</td><td></td></tr><tr><td>HD Audio Configuration</td><td>Submenu</td><td></td></tr><tr><td>Seriallo Serial IO Configuration</td><td>Submenu</td><td></td></tr><tr><td>PCH LAN Controller</td><td>Info-Only</td><td>No GbE Region</td></tr><tr><td>Port 80h Redirection</td><td>LPC Bus, PCIE Bus</td><td>Control where the Port 80h cycles are sent.</td></tr><tr><td>Enhance Port 80h LPC Decoding</td><td>Enabled, Disabled</td><td>Support the word/dword decoding of port 80h behind LPC</td></tr><tr><td>Enable TCO Timer</td><td>Disabled, Enabled</td><td>Enable/Disable TCO timer. When disabled, it disables PCH ACPI timer, stops TCO timer, and ACPI WDAT table will not be published.</td></tr><tr><td>Pcie PII SSC</td><td>Auto, 0.0%, 0.1%, 0.2%, 0.3%, 0.4%, 0.5%, 0.6%, 0.7%, 0.8%, 0.9%, 1.0%, 1.1%, 1.2%, 1.3%, 1.4%, 1.5%, 1.6%, 1.7%, 1.8%, 1.9%, 2.0%, Disable</td><td>Pcie PII SSC percentage. AUTO - Keep hw default, no BIOS override. The range is from 0.0%-2.0%.</td></tr><tr><td>SPD Write Disable</td><td>TRUE, FALSE</td><td>Enable/Disable setting SPD Write Disable. For security recommendations, SPD write disable bit must be set.</td></tr></table>

7.4.2.1. Chipset > PCH-IO Configuration > PCI Express Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>DMI Link ASPM Control</td><td>Disabled, L0s, L1, L0sL1, Auto</td><td>The control of Active State Power Management of the DMI Link.</td></tr><tr><td>Port8xh Decode</td><td>Disabled, Enabled</td><td>PCI Express Port8xh Decode Enable/Disable.</td></tr><tr><td>PCIE Ports 5-8 Configuration</td><td>4x1 Port, 1x2 2x1 Port, 2x2 Port, 1x4 Port</td><td>Notes:Please make sure the system boots completed after changing the configuration.Do Not Attempt to Shut Down Your Computer, doing so may lead to system malfunction.</td></tr><tr><td>PCI Express Root Port 5 (COMe Lane 0)</td><td>Submenu</td><td></td></tr><tr><td>PCI Express Root Port 6 (COMe Lane 1)</td><td>Submenu</td><td></td></tr><tr><td>PCI Express Root Port 7 (COMe Lane 2)</td><td>Submenu</td><td></td></tr><tr><td>PCI Express Root Port 8 (COMe Lane 3)</td><td>Submenu</td><td></td></tr><tr><td>PCI Express Root Port 9 (LAN I225)</td><td>Submenu</td><td></td></tr><tr><td>PCI Express Root Port 10 (COMe Lane 4~7 (option))</td><td>Submenu</td><td>.</td></tr></table>

7.4.2.2. Chipset > PCH-IO Configuration > PCI Express Configuration > PCI Express Root Port#

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>PCI Express Root Port</td><td>DisabledEnable</td><td>Control the PCI Express Root Port.</td></tr><tr><td>Connection Type</td><td>Built-inSlot</td><td>Built-In: a built-in device is connected to this rootport. Slot Implemented bit will be clear. Slot: this rootport connects to user-accessible slot. Slot Implemented bit will be set.</td></tr><tr><td>ASPM</td><td>DisabledL1Auto</td><td>Set the ASPM Level.Force L0s - Force all links to L0s StateAuto - BIOS auto configure;Disabled - Disables ASPM</td></tr><tr><td>L1 Substates</td><td>DisabledL1.1L1.1 &amp; L1.2</td><td>PCI Express L1 Substates settings.</td></tr><tr><td>L1 Low</td><td>DisabledEnable</td><td>PCI Express L1 Low substate Enable/Disable.</td></tr><tr><td>ACS</td><td>DisabledEnable</td><td>Enable/Disable Access Control Services Extended Capability</td></tr><tr><td>PTM</td><td>DisabledEnable</td><td>Enable/Disable Precision Time Measurement</td></tr><tr><td>DPC</td><td>DisabledEnable</td><td>Enable/Disable Downstream Port Containment</td></tr><tr><td>EDPC</td><td>DisabledEnable</td><td>Enable/Disable Rootport extensions for Downstream Port Containment</td></tr><tr><td>URR</td><td>DisabledEnable</td><td>PCI Express Unsupported Request Reporting Enable/Disable.</td></tr><tr><td>FER</td><td>DisabledEnable</td><td>PCI Express Device Fatal Error Reporting Enable/Disable.</td></tr><tr><td>NFER</td><td>DisabledEnable</td><td>PCI Express Device Non-Fatal Error Reporting Enable/Disable.</td></tr><tr><td>CER</td><td>DisabledEnable</td><td>PCI Express Device Correctable Error Reporting Enable/Disable.</td></tr><tr><td>SEFE</td><td>DisabledEnable</td><td>Root PCI Express System Error on Fatal Error Enable/Disable.</td></tr><tr><td>SENFE</td><td>DisabledEnable</td><td>Root PCI Express System Error on Non-Fatal Error Enable/Disable.</td></tr><tr><td>SECE</td><td>DisabledEnable</td><td>Root PCI Express System Error on Correctable Error Enable/Disable.</td></tr><tr><td>PME SCI</td><td>DisabledEnable</td><td>PCI Express PME SCI Enable/Disable.</td></tr><tr><td>Hot Plug</td><td>DisabledEnable</td><td>PCI Express Hot Plug Enable/Disable.</td></tr><tr><td>Advanced Error Reporting</td><td>DisabledEnable</td><td>Advanced Error Reporting Enable/Disable.</td></tr><tr><td>PCIe Speed</td><td>AutoGen1Gen2Gen3</td><td>Configure PCIe Speed.</td></tr><tr><td>Transmitter Half Swing</td><td>DisabledEnabled</td><td>Transmitter Half Swing Enable/Disable.</td></tr><tr><td>Detect Timeout</td><td>0</td><td>The number of milliseconds reference code will wait for link to exit Detect state for enabled ports before assuming there is no device and potentially disabling the port.</td></tr><tr><td>Extra Bus Reserved</td><td>0</td><td>Extra Bus Reserved (0-7) for bridges behind this Root Bridge.</td></tr><tr><td>Reserved Memory</td><td>10</td><td>Reserved Memory for this Root Bridge (1-20) MB.</td></tr><tr><td>Reserved I/O</td><td>4</td><td>Reserved I/O (4K/8K/12K/16K/20K) Range for this Root Bridge.</td></tr><tr><td>PCH PCIe LTR Configuration</td><td>Info only</td><td></td></tr><tr><td>LTR</td><td>DisabledEnable</td><td>PCH PCIE Latency Reporting Enable/Disable.</td></tr><tr><td>Snoop Latency Override</td><td>DisabledManualAuto</td><td>Snoop Latency Override for PCH PCIE. Disabled: Disable override.Manual: Manually enter override values.Auto (default): Maintain default BIOS flow."</td></tr><tr><td>Non Snoop Latency Override</td><td>DisabledManualAuto</td><td>Non-Snoop Latency Override for PCH PCIE. Disabled: Disable override.Manual: Manually enter override values.Auto (default): Maintain default BIOS flow.</td></tr><tr><td>Force LTR Override</td><td>DisabledEnable</td><td>Force LTR Override for PCH PCIE.</td></tr><tr><td>LTR Lock</td><td>DisabledEnable</td><td>PCIE LTR Configuration Lock</td></tr><tr><td>Peer Memory Write Enable</td><td>DisabledEnable</td><td>Peer Memory Write Enable/Disable</td></tr></table>

7.4.2.3. Chipset > PCH-IO Configuration > SATA Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>SATA Controller(s)</td><td>Disabled, Enabled</td><td>Enable/Disable SATA Device.</td></tr><tr><td>SATA Mode Selection</td><td>AHCI</td><td>Determines how SATA controller(S) operate.</td></tr><tr><td>SATA Controller Speed</td><td>Default, Gen1, Gen2, Gen3</td><td>Indicates the maximum speed the SATA controller can support.</td></tr><tr><td>SATA Test Mode</td><td>Disabled, Enabled</td><td>Test Mode Enable/Disable (Loop Back).</td></tr><tr><td>Aggressive LPM Support</td><td>Disabled, Enabled</td><td>Enable PCH to aggressively enter link power state.</td></tr><tr><td>Serial ATA Port X</td><td>Info-Only</td><td></td></tr><tr><td>Software Preserve</td><td>Info-Only</td><td></td></tr><tr><td>Port X</td><td>Disabled, Enabled</td><td>Enable or Disable SATA Port</td></tr><tr><td>Hot Plug</td><td>Disabled, Enabled</td><td>Designates this port as Hot Pluggable.</td></tr><tr><td>Configured as eSATA</td><td>Info Only</td><td></td></tr><tr><td>External</td><td>Disabled, Enabled</td><td>Marks this port as external.</td></tr><tr><td>Spin Up Device</td><td>Disabled, Enabled</td><td>If enabled for any of ports, Staggered Spin Up will be performed, and only the drives which have this option enabled will spin up at boot. Otherwise, all drives spin up at boot.</td></tr><tr><td>SATA Device Type</td><td>Hard Disk Drive, Solid State Drive</td><td>Identify the SATA port is connected to Solid State Drive or Hard Disk Drive</td></tr><tr><td>Topology</td><td>Unknown, ISATA, Direct Connect, Flex, M2</td><td>Identify the SATA Topology if it is Default, ISATA, Flex, Direct Connect, or M2</td></tr><tr><td>SATA Port X DevSlp</td><td>Disabled, Enabled</td><td>Enable/Disable SATA Port X DevSlp. For DevSlp to work, both hard drive and SATA port need to support DevSlpfunction, otherwise an unexpected behavior might happen. Please check board design before enabling it.</td></tr><tr><td>DITO Configuration</td><td>Disabled, Enabled</td><td>Enable/Disable DITO Configuration</td></tr><tr><td>DITO Value</td><td>625</td><td>DITO Value</td></tr><tr><td>DM Value</td><td>15</td><td>DM Value</td></tr></table>

7.4.2.4. Chipset > PCH-IO Configuration >USB Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>xDCI Support</td><td>Disabled, Enabled</td><td>Enable/Disable xDCI (USB OTG Device).</td></tr><tr><td>USB2 PHY Sus Well Power Gating</td><td>Disabled, Enabled</td><td>Select &#x27;Enabled&#x27; to enable SUS Well PG for USB2 PHY. This option has no effect on PCH-H</td></tr><tr><td>USB PDO Programming</td><td>Disabled, Enabled</td><td>Select &#x27;Enabled&#x27; if Port Disable Override functionality is used.</td></tr><tr><td>USB Overcurrent</td><td>Disabled, Enabled</td><td>Select &#x27;Disabled&#x27; for pin-based debug. If pin-based debug is enabled but USB overcurrent is not disabled, USB DbC does not work.</td></tr><tr><td>USB Overcurrent Lock</td><td>Disabled, Enabled</td><td>Select &#x27;Enabled&#x27; if Overcurrent functionality is used. Enabling this will make xHCI controller consume the Overcurrent mapping data</td></tr><tr><td>USB Audio Offload</td><td>Disabled, Enabled</td><td>Enable/Disable USB Audio Offload functionality</td></tr><tr><td>Enable HSII on xHCI</td><td>Disabled, Enabled</td><td>Enable/Disable HSII feature. It may lead to increased power consumption.</td></tr><tr><td>USB3.1 Speed Selection</td><td>Gen2, Gen1</td><td>USB3.1 Speed selection; Gen1 or Gen2</td></tr><tr><td>USB Port Disable Override</td><td>Disabled, Select Per-Pin</td><td>Selectively Enable/Disable the corresponding USB port from reporting a Device Connection to the controller.</td></tr></table>

7.4.2.5. Chipset > PCH-IO Configuration > Security Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>RTC Memory Lock</td><td>Disabled, Enabled</td><td>Enable will lock bytes 38h-3Fh in the lower/upper 128-byte bank of RTC RAM</td></tr><tr><td>BIOS Lock</td><td>Disabled, Enabled</td><td>Enable/Disable the PCH BIOS Lock Enable feature. Required to be enabled to ensure SMM protection of flash.</td></tr><tr><td>Force unlock on all GPIO pads</td><td>Disabled, Enabled</td><td>If Enabled BIOS will force all GPIO pads to be in unlocked state</td></tr></table>

7.4.2.6. Chipset > PCH-IO Configuration > HD Audio Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>HD Audio</td><td>DisabledEnabled</td><td>Control Detection of the HD-Audio device.</td></tr></table>

7.4.2.7. Chipset > PCH-IO Configuration > Serial IO Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>I2C0 Controller</td><td>Disabled, Enabled</td><td>Enables/Disables Serial IO Controller</td></tr><tr><td>I2C1 Controller</td><td>Disabled, Enabled</td><td>Enables/Disables Serial IO Controller</td></tr><tr><td>UART0 Controller</td><td>Disabled, Enabled, Communication port (COM)</td><td>Enables/Disables Serial IO Controller</td></tr><tr><td>UART1 Controller</td><td>Disabled, Enabled, Communication port (COM)</td><td>Enables/Disables Serial IO Controller</td></tr><tr><td>GPIO IRQ Route</td><td>IRQ14, IRQ15</td><td>Route all GPIOs to one of the IRQ.</td></tr></table>

7.5. Security

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Password Description</td><td>Info only</td><td></td></tr><tr><td>Administrator Password</td><td>Enter password</td><td></td></tr><tr><td>User Password</td><td>Enter password</td><td></td></tr><tr><td>Secure Boot menu</td><td>submenu</td><td></td></tr></table>

7.5.1 Secure Boot menu

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Secure Boot</td><td>Info only</td><td></td></tr><tr><td>Secure Boot Control</td><td>Disabled Enabled</td><td>Secure Boot feature is Active if Secure Boot is Enabled, Platform Key (PK) is enrolled and the System is in User mode, The mode change requires platform reset</td></tr></table>

# 7.6. Boot

7.6.1 Boot Configuration

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Boot Configuration</td><td colspan="2">Info only</td></tr><tr><td>Setup Prompt Timeout</td><td>1</td><td>Number of seconds to wait for setup activation key. 65535(0xFFFF) means indefinite waiting.</td></tr><tr><td>Bootup NumLock State</td><td>OnOff</td><td>Select the keyboard NumLock state</td></tr><tr><td>Quiet Boot</td><td>DisabledEnabled</td><td>Enables or disables Quiet Boot option</td></tr><tr><td>Fast Boot</td><td>DisabledEnabled</td><td>Enables or disables boot with initialization of a minimal set of devices required to launch active boot option. Has no effect for BBS boot option.</td></tr><tr><td>Boot Configuration</td><td>Info only</td><td></td></tr><tr><td>UEFI Application Boot Priorities</td><td>Info only</td><td></td></tr></table>

# 7.7. Save & Exit

<table><tr><td>Feature</td><td>Options</td><td>Description</td></tr><tr><td>Save Options</td><td>Info only</td><td></td></tr><tr><td>Save Changes and Exit</td><td></td><td>Exit system setup after saving the changes.</td></tr><tr><td>Discard Changes and Exit</td><td></td><td>Exit system setup without saving any changes.</td></tr><tr><td>Save Change and Reset</td><td></td><td>Reset the system after saving the changes.</td></tr><tr><td>Discard Changes and Reset</td><td></td><td>Reset system setup without saving any changes.</td></tr><tr><td>Save Changes</td><td></td><td>Save Changes done so far to any of the setup options.</td></tr><tr><td>Discard Changes</td><td></td><td>Discard Changes done so far to any of the setup options.</td></tr><tr><td>Default Options</td><td>Info only</td><td></td></tr><tr><td>Restore Defaults</td><td></td><td>Restore/Load Default values for all the setup options.</td></tr><tr><td>Save as User Defaults</td><td></td><td>Save the changes done so far as User Defaults.</td></tr><tr><td>Restore User Defaults</td><td></td><td>Restore the User Defaults to all the setup options.</td></tr><tr><td>Boot Override</td><td>Info only</td><td></td></tr></table>

# 8. BIOS Checkpoints, Beep Codes

This document section lists checkpoints and beep codes generated by AMI Aptio BIOS. The checkpoints defined in this document are inherent to the AMIBIOS generic core, and do not include any chipset or board-specific checkpoint definitions.

# Checkpoints and Beep Codes Definition

A checkpoint is either a byte or word value output to I/O port 80h. The BIOS outputs checkpoints throughout the boot block and Power-On Self-Test (POST) to indicate the task the system is currently executing. Checkpoints are very useful for debugging problems that occur during the preboot process.

Beep codes are used by the BIOS to indicate a serious or fatal error. They are used when an error occurs before the system video has been initialized, and generated by the system board speaker.

# Aptio Boot Flow

While performing the functions of the traditional BIOS, Aptio 5.x core follows the firmware model described by the Intel Platform Innovation Framework for EFI (“the Framework”). The Framework refers the following “boot phases”, which may apply to various status code & checkpoint descriptions:

Security (SEC) – initial low-level initialization
Pre-EFI Initialization (PEI) – memory initialization1
Driver Execution Environment (DXE) – main hardware initialization2
Boot Device Selection (BDS) – system setup, pre-OS user interface & selecting a bootable device (CD/DVD, HDD, USB, Network, Shell, …)

# Viewing BIOS Checkpoints

show the value of I/O port 80h on a LED display. Viewing all checkpoints generated by the BIOS requires a checkpoint card, also referred to as a OST Card or POST Diagnostic Card. These are PCI add-in cards that

Some computers display checkpoints in the bottom right corner of the screen during POST. This display method is limited, since it only displays checkpoints that occur after the video card has been activated.

Keep in mind that not all computers using AMI Aptio BIOS enable this feature. In most cases, a checkpoint card is the best tool for viewing AMI Aptio BIOS checkpoints.

1 Analogous to “boot block” functionality of legacy BIOS
2 Analogous to “POST” functionality in legacy BIOS

# Aptio V Checkpoint and Beep Codes

Download the Aptio V Checkpoint and Beep Codes from the AMI website at: www.ami.com/download/aptio-v-checkpoint-and-beep-codes

![The image shows a close-up crop of a digital graphic. On the right side is a pale yellow square containing five horizontal grey lines stacked vertically, resembling a text block or list. To the left of the yellow square is a sliver of a blue background featuring white text, where the letters 'D' and 'O' are partially visible.](.express-rlp-manual-50m-72139-2020-12/0ac9950be327161d076635a6c1e56937da95ce7acb8eae1af04996a122734eec.jpg)

8.1. Status Code Ranges

<table><tr><td>Status Code Range</td><td>Description</td></tr><tr><td>0x01 – 0x0B</td><td>SEC execution</td></tr><tr><td>0x0C – 0x0F</td><td>SEC errors</td></tr><tr><td>0x10 – 0x2F</td><td>PEI execution up to and including memory detection</td></tr><tr><td>0x30 – 0x4F</td><td>PEI execution after memory detection</td></tr><tr><td>0x50 – 0x5F</td><td>PEI errors</td></tr><tr><td>0x60 – 0x8F</td><td>DXE execution up to BDS</td></tr><tr><td>0x90 – 0xCF</td><td>BDS execution</td></tr><tr><td>0xD0 – 0xDF</td><td>DXE errors</td></tr><tr><td>0xE0 – 0xE8</td><td>S3 Resume (PEI)</td></tr><tr><td>0xE9 – 0xEF</td><td>S3 Resume errors (PEI)</td></tr><tr><td>0xF0 – 0xF8</td><td>Recovery (PEI)</td></tr><tr><td>0xF9 – 0xFF</td><td>Recovery errors (PEI)</td></tr></table>

# 8.2. Standard Status Codes

# 8.2.1 SEC Phase

<table><tr><td>Status Code</td><td>Description</td></tr><tr><td>0x00</td><td>Not used</td></tr><tr><td colspan="2">Progress Codes</td></tr><tr><td>0x01</td><td>Power on. Reset type detection (soft/hard).</td></tr><tr><td>0x02</td><td>AP initialization before microcode loading</td></tr><tr><td>0x03</td><td>North Bridge initialization before microcode loading</td></tr><tr><td>0x04</td><td>South Bridge initialization before microcode loading</td></tr><tr><td>0x05</td><td>OEM initialization before microcode loading</td></tr><tr><td>0x06</td><td>Microcode loading</td></tr><tr><td>0x07</td><td>AP initialization after microcode loading</td></tr><tr><td>0x08</td><td>North Bridge initialization after microcode loading</td></tr><tr><td>0x09</td><td>South Bridge initialization after microcode loading</td></tr><tr><td>0x0A</td><td>OEM initialization after microcode loading</td></tr><tr><td>0x0B</td><td>Cache initialization</td></tr></table>

<table><tr><td colspan="2">SEC Error Codes</td></tr><tr><td>0x0C – 0x0D</td><td>Reserved for future AMI SEC error codes</td></tr><tr><td>0x0E</td><td>Microcode not found</td></tr><tr><td>0x0F</td><td>Microcode not loaded</td></tr></table>

# 8.2.2 SEC Beep Codes

None

# 8.2.3 PEI Phase

<table><tr><td>Status Code</td><td>Description</td></tr><tr><td colspan="2">Progress Codes</td></tr><tr><td>0x10</td><td>PEI Core is started</td></tr><tr><td>0x11</td><td>Pre-memory CPU initialization is started</td></tr><tr><td>0x12</td><td>Pre-memory CPU initialization (CPU module specific)</td></tr><tr><td>0x13</td><td>Pre-memory CPU initialization (CPU module specific)</td></tr><tr><td>0x14</td><td>Pre-memory CPU initialization (CPU module specific)</td></tr><tr><td>0x15</td><td>Pre-memory North Bridge initialization is started</td></tr><tr><td>0x16</td><td>Pre-Memory North Bridge initialization (North Bridge module specific)</td></tr><tr><td>0x17</td><td>Pre-Memory North Bridge initialization (North Bridge module specific)</td></tr><tr><td>0x18</td><td>Pre-Memory North Bridge initialization (North Bridge module specific)</td></tr><tr><td>0x19</td><td>Pre-memory South Bridge initialization is started</td></tr><tr><td>0x1A</td><td>Pre-memory South Bridge initialization (South Bridge module specific)</td></tr><tr><td>0x1B</td><td>Pre-memory South Bridge initialization (South Bridge module specific)</td></tr><tr><td>0x1C</td><td>Pre-memory South Bridge initialization (South Bridge module specific)</td></tr><tr><td>0x1D – 0x2A</td><td>OEM pre-memory initialization codes</td></tr><tr><td>0x2B</td><td>Memory initialization. Serial Presence Detect (SPD) data reading</td></tr><tr><td>0x2C</td><td>Memory initialization. Memory presence detection</td></tr><tr><td>0x2D</td><td>Memory initialization. Programming memory timing information</td></tr><tr><td>0x2E</td><td>Memory initialization. Configuring memory</td></tr><tr><td>0x2F</td><td>Memory initialization (other).</td></tr><tr><td>0x30</td><td>Reserved for ASL (see ASL Status Codes section below)</td></tr><tr><td>0x31</td><td>Memory Installed</td></tr><tr><td>0x32</td><td>CPU post-memory initialization is started</td></tr><tr><td>0x33</td><td>CPU post-memory initialization. Cache initialization</td></tr><tr><td>0x34</td><td>CPU post-memory initialization. Application Processor(s) (AP) initialization</td></tr><tr><td>0x35</td><td>CPU post-memory initialization. Boot Strap Processor (BSP) selection</td></tr><tr><td>0x36</td><td>CPU post-memory initialization. System Management Mode (SMM) initialization</td></tr><tr><td>0x37</td><td>Post-Memory North Bridge initialization is started</td></tr><tr><td>0x38</td><td>Post-Memory North Bridge initialization (North Bridge module specific)</td></tr><tr><td>0x39</td><td>Post-Memory North Bridge initialization (North Bridge module specific)</td></tr><tr><td>0x3A</td><td>Post-Memory North Bridge initialization (North Bridge module specific)</td></tr><tr><td>0x3B</td><td>Post-Memory South Bridge initialization is started</td></tr><tr><td>0x3C</td><td>Post-Memory South Bridge initialization (South Bridge module specific)</td></tr><tr><td>0x3D</td><td>Post-Memory South Bridge initialization (South Bridge module specific)</td></tr><tr><td>0x3E</td><td>Post-Memory South Bridge initialization (South Bridge module specific)</td></tr><tr><td>0x3F-0x4E</td><td>OEM post memory initialization codes</td></tr><tr><td>0x4F</td><td>DXE IPL is started</td></tr><tr><td colspan="2">PEI Error Codes</td></tr><tr><td>0x50</td><td>Memory initialization error. Invalid memory type or incompatible memory speed</td></tr><tr><td>0x51</td><td>Memory initialization error. SPD reading has failed</td></tr><tr><td>0x52</td><td>Memory initialization error. Invalid memory size or memory modules do not match.</td></tr><tr><td>0x53</td><td>Memory initialization error. No usable memory detected</td></tr><tr><td>0x54</td><td>Unspecified memory initialization error.</td></tr><tr><td>0x55</td><td>Memory not installed</td></tr><tr><td>0x56</td><td>Invalid CPU type or Speed</td></tr><tr><td>0x57</td><td>CPU mismatch</td></tr><tr><td>0x58</td><td>CPU self-test failed or possible CPU cache error</td></tr><tr><td>0x59</td><td>CPU micro-code is not found or micro-code update is failed</td></tr><tr><td>0x5A</td><td>Internal CPU error</td></tr><tr><td>0x5B</td><td>reset PPI is not available</td></tr><tr><td>0x5C-0x5F</td><td>Reserved for future AMI error codes</td></tr><tr><td colspan="2">S3 Resume Progress Codes</td></tr><tr><td>0xE0</td><td>S3 Resume is stared (S3 Resume PPI is called by the DXE IPL)</td></tr><tr><td>0xE1</td><td>S3 Boot Script execution</td></tr><tr><td>0xE2</td><td>Video repost</td></tr><tr><td>0xE3</td><td>OS S3 wake vector call</td></tr><tr><td>0xE4-0xE7</td><td>Reserved for future AMI progress codes</td></tr><tr><td colspan="2">S3 Resume Error Codes</td></tr><tr><td>0xE8</td><td>S3 Resume Failed</td></tr><tr><td>0xE9</td><td>S3 Resume PPI not Found</td></tr><tr><td>0xEA</td><td>S3 Resume Boot Script Error</td></tr><tr><td>0xEB</td><td>S3 OS Wake Error</td></tr><tr><td>0xEC-0xEF</td><td>Reserved for future AMI error codes</td></tr><tr><td colspan="2">Recovery Progress Codes</td></tr><tr><td>0xF0</td><td>Recovery condition triggered by firmware (Auto recovery)</td></tr><tr><td>0xF1</td><td>Recovery condition triggered by user (Forced recovery)</td></tr><tr><td>0xF2</td><td>Recovery process started</td></tr><tr><td>0xF3</td><td>Recovery firmware image is found</td></tr><tr><td>0xF4</td><td>Recovery firmware image is loaded</td></tr><tr><td>0xF5-0xF7</td><td>Reserved for future AMI progress codes</td></tr><tr><td colspan="2">Recovery Error Codes</td></tr><tr><td>0xF8</td><td>Recovery PPI is not available</td></tr><tr><td>0xF9</td><td>Recovery capsule is not found</td></tr><tr><td>0xFA</td><td>Invalid recovery capsule</td></tr><tr><td>0xFB - 0xFF</td><td>Reserved for future AMI error codes</td></tr></table>

8.2.4 PEI Beep Codes

<table><tr><td># of Beeps</td><td>Description</td></tr><tr><td>1</td><td>Memory not Installed</td></tr><tr><td>1</td><td>Memory was installed twice (InstallPeiMemory routine in PEI Core called twice)</td></tr><tr><td>2</td><td>Recovery started</td></tr><tr><td>3</td><td>DXEIPL was not found</td></tr><tr><td>3</td><td>DXE Core Firmware Volume was not found</td></tr><tr><td>4</td><td>Recovery failed</td></tr><tr><td>4</td><td>S3 Resume failed</td></tr><tr><td>7</td><td>Reset PPI is not available</td></tr></table>

8.2.5 DXE Status Codes

<table><tr><td>Status Code</td><td>Description</td></tr><tr><td>0x60</td><td>DXE Core is started</td></tr><tr><td>0x61</td><td>NVRAM initialization</td></tr><tr><td>0x62</td><td>Installation of the South Bridge Runtime Services</td></tr><tr><td>0x63</td><td>CPU DXE initialization is started</td></tr><tr><td>0x64</td><td>CPU DXE initialization (CPU module specific)</td></tr><tr><td>0x65</td><td>CPU DXE initialization (CPU module specific)</td></tr><tr><td>0x66</td><td>CPU DXE initialization (CPU module specific)</td></tr><tr><td>0x67</td><td>CPU DXE initialization (CPU module specific)</td></tr><tr><td>0x68</td><td>PCI host bridge initialization</td></tr><tr><td>0x69</td><td>North Bridge DXE initialization is started</td></tr><tr><td>0x6A</td><td>North Bridge DXE SMM initialization is started</td></tr><tr><td>0x6B</td><td>North Bridge DXE initialization (North Bridge module specific)</td></tr><tr><td>0x6C</td><td>North Bridge DXE initialization (North Bridge module specific)</td></tr><tr><td>0x6D</td><td>North Bridge DXE initialization (North Bridge module specific)</td></tr><tr><td>0x6E</td><td>North Bridge DXE initialization (North Bridge module specific)</td></tr><tr><td>0x6F</td><td>North Bridge DXE initialization (North Bridge module specific)</td></tr><tr><td>0x70</td><td>South Bridge DXE initialization is started</td></tr><tr><td>0x71</td><td>South Bridge DXE SMM initialization is started</td></tr><tr><td>0x72</td><td>South Bridge devices initialization</td></tr><tr><td>0x73</td><td>South Bridge DXE Initialization (South Bridge module specific)</td></tr><tr><td>0x74</td><td>South Bridge DXE Initialization (South Bridge module specific)</td></tr><tr><td>0x75</td><td>South Bridge DXE Initialization (South Bridge module specific)</td></tr><tr><td>0x76</td><td>South Bridge DXE Initialization (South Bridge module specific)</td></tr><tr><td>0x77</td><td>South Bridge DXE Initialization (South Bridge module specific)</td></tr><tr><td>0x78</td><td>ACPI module initialization</td></tr><tr><td>0x79</td><td>CSM initialization</td></tr><tr><td>0x7A – 0x7F</td><td>Reserved for future AMI DXE codes</td></tr><tr><td>0x80 – 0x8F</td><td>OEM DXE initialization codes</td></tr><tr><td>0x90</td><td>Boot Device Selection (BDS) phase is started</td></tr><tr><td>0x91</td><td>Driver connecting is started</td></tr><tr><td>0x92</td><td>PCI Bus initialization is started</td></tr><tr><td>0x93</td><td>PCI Bus Hot Plug Controller Initialization</td></tr><tr><td>0x94</td><td>PCI Bus Enumeration</td></tr><tr><td>0x95</td><td>PCI Bus Request Resources</td></tr><tr><td>0x96</td><td>PCI Bus Assign Resources</td></tr><tr><td>0x97</td><td>Console Output devices connect</td></tr><tr><td>0x98</td><td>Console input devices connect</td></tr><tr><td>0x99</td><td>Super IO Initialization</td></tr><tr><td>0x9A</td><td>USB initialization is started</td></tr><tr><td>0x9B</td><td>USB Reset</td></tr><tr><td>0x9C</td><td>USB Detect</td></tr><tr><td>0x9D</td><td>USB Enable</td></tr><tr><td>0x9E – 0x9F</td><td>Reserved for future AMI codes</td></tr><tr><td>0xA0</td><td>IDE initialization is started</td></tr><tr><td>0xA1</td><td>IDE Reset</td></tr><tr><td>0xA2</td><td>IDE Detect</td></tr><tr><td>0xA3</td><td>IDE Enable</td></tr><tr><td>0xA4</td><td>SCSI initialization is started</td></tr><tr><td>0xA5</td><td>SCSI Reset</td></tr><tr><td>0xA6</td><td>SCSI Detect</td></tr><tr><td>0xA7</td><td>SCSI Enable</td></tr><tr><td>0xA8</td><td>Setup Verifying Password</td></tr><tr><td>0xA9</td><td>Start of Setup</td></tr><tr><td>0xAA</td><td>Reserved for ASL (see ASL Status Codes section below)</td></tr><tr><td>0xAB</td><td>Setup Input Wait</td></tr><tr><td>0xAC</td><td>Reserved for ASL (see ASL Status Codes section below)</td></tr><tr><td>0xAD</td><td>Ready To Boot event</td></tr><tr><td>0xAE</td><td>Legacy Boot event</td></tr><tr><td>0xAF</td><td>Exit Boot Services event</td></tr><tr><td>0xB0</td><td>Runtime Set Virtual Address MAP Begin</td></tr><tr><td>0xB1</td><td>Runtime Set Virtual Address MAP End</td></tr><tr><td>0xB2</td><td>Legacy Option ROM Initialization</td></tr><tr><td>0xB3</td><td>System Reset</td></tr><tr><td>0xB4</td><td>USB hot plug</td></tr><tr><td>0xB5</td><td>PCI bus hot plug</td></tr><tr><td>0xB6</td><td>Clean-up of NVRAM</td></tr><tr><td>0xB7</td><td>Configuration Reset (reset of NVRAM settings)</td></tr><tr><td>0xB8 – 0xBF</td><td>Reserved for future AMI codes</td></tr><tr><td>0xC0 – 0xCF</td><td>OEM BDS initialization codes</td></tr><tr><td colspan="2">DXE Error Codes</td></tr><tr><td>0xD0</td><td>CPU initialization error</td></tr><tr><td>0xD1</td><td>North Bridge initialization error</td></tr><tr><td>0xD2</td><td>South Bridge initialization error</td></tr><tr><td>0xD3</td><td>Some of the Architectural Protocols are not available</td></tr><tr><td>0xD4</td><td>PCI resource allocation error. Out of Resources</td></tr><tr><td>0xD5</td><td>No Space for Legacy Option ROM</td></tr><tr><td>0xD6</td><td>No Console Output Devices are found</td></tr><tr><td>0xD7</td><td>No Console Input Devices are found</td></tr><tr><td>0xD8</td><td>Invalid password</td></tr><tr><td>0xD9</td><td>Error loading Boot Option (LoadImage returned error)</td></tr><tr><td>0xDA</td><td>Boot Option is failed (StartImage returned error)</td></tr><tr><td>0xDB</td><td>Flash update is failed</td></tr><tr><td>0xDC</td><td>Reset protocol is not available</td></tr></table>

8.2.6 DXE Beep Codes

<table><tr><td># of Beeps</td><td>Description</td></tr><tr><td>1</td><td>Invalid password</td></tr><tr><td>4</td><td>Some of the Architectural Protocols are not available</td></tr><tr><td>5</td><td>No Console Output Devices are found</td></tr><tr><td>5</td><td>No Console Input Devices are found</td></tr><tr><td>6</td><td>Flash update is failed</td></tr><tr><td>7</td><td>Reset protocol is not available</td></tr><tr><td>8</td><td>Platform PCI resource requirements cannot be met</td></tr></table>

8.2.7 ACPI/ASL Checkpoint

<table><tr><td>Status Code</td><td>Description</td></tr><tr><td>0x01</td><td>System is entering S1 sleep state</td></tr><tr><td>0x02</td><td>System is entering S2 sleep state</td></tr><tr><td>0x03</td><td>System is entering S3 sleep state</td></tr><tr><td>0x04</td><td>System is entering S4 sleep state</td></tr><tr><td>0x05</td><td>System is entering S5 sleep state</td></tr><tr><td>0x10</td><td>System is waking up from the S1 sleep state</td></tr><tr><td>0x20</td><td>System is waking up from the S2 sleep state</td></tr><tr><td>0x30</td><td>System is waking up from the S3 sleep state</td></tr><tr><td>0x40</td><td>System is waking up from the S4 sleep state</td></tr><tr><td>0xAC</td><td>System has transitioned into ACPI mode. Interrupt controller is in PIC mode.</td></tr><tr><td>0xAA</td><td>System has transitioned into ACPI mode. Interrupt controller is in APICmode.</td></tr></table>

8.3. OEM-Reserved Checkpoint Ranges

<table><tr><td>Status Code</td><td>Description</td></tr><tr><td>0x05</td><td>OEM SEC initialization before microcode loading</td></tr><tr><td>0x0A</td><td>OEM SEC initialization after microcode loading</td></tr><tr><td>0x1D – 0x2A</td><td>OEM pre-memory initialization codes</td></tr><tr><td>0x3F – 0x4E</td><td>OEM PEI post memory initialization codes</td></tr><tr><td>0x80 – 0x8F</td><td>OEM DXE initialization codes</td></tr><tr><td>0xC0 – 0xFC</td><td>OEM BDS initialization codes</td></tr></table>

# 9. Software Support

9.1. Windows 10 IoT Enterprise 64-bit
9.2. Yocto Linux 64-bit

https://github.com/ADLINK/meta-adlink-x86-64bit (TBC)

# 10. Mechanical and Thermal

10.1. Module Dimensions
![95\n91\nYAM 2000\n51.41\n28.41\n4\n0\n0 4\n25.79\n80\n88.79\n121 125](.express-rlp-manual-50m-72139-2020-12/aae3584b0801d30a46889e6c14caec2ea619f6b415d8114a5899ac20192ee860.jpg)

![Top View\n5 2 ±0.25\n2\n4 ±0.25\nFront View](.express-rlp-manual-50m-72139-2020-12/8b8242f27aa3586e77669218906a1ad195028613f1f88f2e15220c1aa2dbcc19.jpg)

![Bottom Side RAM\nModule Keepout\n125\n121\n88.79\n85.05\n80\n74.2\n25.79\n16.5\n9.95\n4\n0\n95\n91\n57.195\n51.41\n28.41\n18\n6\n4\n0](.express-rlp-manual-50m-72139-2020-12/1fae710d212ea48ff2c7cd89be9432749162e5e08f1247a1dc296331dcb85803.jpg)

Bottom View

All dimensions are shown in millimeters. Tolerances should be ± 0.25mm, unless otherwise noted.

The tolerances on the module connector locating peg holes (dimensions [16.50, 6.00]&[16.50,18.00]) should be ± 0.10mm.

Dimensions: mm

Figure 5 – Module mechanical dimensions

# 10.2. Thermal Solutions

10.2.1 Heatspreader: HTS
![Dimensions: mm\n11\nM2.5*2PCS\nM2.5*5PCS\n95\n125\n89\n94\n125\n41\n87](.express-rlp-manual-50m-72139-2020-12/3d2f4e10ddba8841be5dfb5c43d5fdf5765bb57545f6ac6de2b72ff941ad2982.jpg)

Heatspreader: HTS
Figure 6 – Heatspreader: HTS

10.2.2 Heatsink: THS
![The image displays a technical CAD rendering of a heatsink, labeled 'Heatsink: THS' at the bottom center. The top right corner indicates 'Dimensions: mm'. The drawing features six distinct views with specific measurements:\n\n*   **Top Left:** A side profile view showing a height dimension of **16.39**.\n*   **Top Center:** An isometric view of the base plate with labels for screw specifications: **M2.5*5PCS** and **M2.5*2PCS**.\n*   **Top Right:** An isometric view showing the fin structure.\n*   **Bottom Left:** A front view of the fins indicating a width of **95** and a height of **125**.\n*   **Bottom Center:** A thin side profile view.\n*   **Bottom Right:** A rear view of the mounting plate showing a width of **87**, a total height of **125**, and a vertical mounting hole distance of **41**.](.express-rlp-manual-50m-72139-2020-12/f4d81896b305a60c494d5d88534942a410a2e772959d70b4dff59586d1b8649c.jpg)
Figure 7 – Heatsink: THS

# 10.2.3 Heatsink High Profile: THSH

Dimensions: mm

![This image displays a technical diagram of a heatsink with multiple views and dimensions:\n\n*   **Top Left:** A side profile view of the fins with a vertical dimension labeled **31.41**.\n*   **Top Center:** An isometric view showing mounting holes with labels **M2.5*2PCS** and **M2.5*5PCS**.\n*   **Top Right:** An isometric view of the complete heatsink assembly.\n*   **Bottom Left:** A front view showing a width of **95** and a height of **125**.\n*   **Bottom Center:** A side profile view.\n*   **Bottom Right:** A rear view showing a width of **87**, a total height of **125**, and a vertical offset dimension of **41**.\n*   **Bottom Center Text:** **Heatsink: THSH**](.express-rlp-manual-50m-72139-2020-12/03dc256b248d1d43e00e44648eb350de0341cd1509e9376ef91ae91cbe716977.jpg)
Figure 8 – Heatsink High Profile: THSH

# 10.2.4 Heatsink with Fan: THSF

Dimensions: mm
![The image displays a technical diagram of a heatsink assembly with various orthographic and isometric projections.\n\n**Top Row:**\n*   **Left:** A side elevation view showing a height dimension of **43.6**.\n*   **Center:** An isometric view with text labels '**M2.5*2PCS**' and '**M2.5*5PCS**' pointing to specific screw locations.\n*   **Right:** An isometric view showing the top surface with cooling fins and a central hexagonal pattern.\n\n**Bottom Row:**\n*   **Left:** A top-down view with dimensions **95** (width) and **125** (height).\n*   **Center:** A side profile view.\n*   **Right:** A view of a flat plate (likely the base) featuring a central yellow rectangular section. Dimensions shown are **125** (height), **87** (width), and **41** (distance from the bottom edge).\n\n**Bottom Text:**\nThe caption at the bottom center reads '**Heatsink with Fan: THSF**'.](.express-rlp-manual-50m-72139-2020-12/e0731e57ef844ec6055b1d40b988a496e5da2f925d355de8a43ac361b262830b.jpg)
Figure 9 – Heatsink with Fan: THSF
[🔗 Link to the original document](.express-rlp-manual-50m-72139-2020-12/express-rlp-manual-50m-72139-2020-12.pdf)
