Triple-Speed Ethernet IP User Guide: Agilex™ 3 and Agilex™ 5 FPGAs and SoCs
ID
813669
Date
8/04/2025
Public
1. About Triple-Speed Ethernet IP for Agilex™ 3 and Agilex™ 5 devices
2. Getting Started
3. Parameter Settings
4. Functional Description
5. Configuration Register Space
6. Interface Signals
7. Design Considerations
8. Timing Constraints
9. Testbench
10. Triple-Speed Ethernet Debug Checklist
11. Software Programming Interface
12. Triple-Speed Ethernet IP User Guide: Agilex™ 3 and Agilex™ 5 FPGAs and SoCs Archives
13. Document Revision History for the Triple-Speed Ethernet IP User Guide: Agilex™ 3 and Agilex™ 5 FPGAs and SoCs
A. Ethernet Frame Format
B. Simulation Parameters
4.1.1. MAC Architecture
4.1.2. MAC Interfaces
4.1.3. MAC Transmit Datapath
4.1.4. MAC Receive Datapath
4.1.5. MAC Transmit and Receive Latencies
4.1.6. FIFO Buffer Thresholds
4.1.7. Congestion and Flow Control
4.1.8. Magic Packets
4.1.9. MAC Local Loopback
4.1.10. MAC Reset
4.1.11. PHY Management (MDIO)
4.1.12. Connecting MAC to External PHYs
5.1.1. Base Configuration Registers (Dword Offset 0x00 – 0x17)
5.1.2. Statistics Counters (Dword Offset 0x18 – 0x38)
5.1.3. Transmit and Receive Command Registers (Dword Offset 0x3A – 0x3B)
5.1.4. Supplementary Address (Dword Offset 0xC0 – 0xC7)
5.1.5. IEEE 1588v2 Feature (Dword Offset 0xD0 – 0xD6)
5.1.6. Deterministic Latency (Dword Offset 0xE1– 0xE3)
5.1.7. IEEE 1588v2 Feature PMA Delay
6.1.1. 10/100/1000 Ethernet MAC Signals
6.1.2. 10/100/1000 Multiport Ethernet MAC Signals
6.1.3. 10/100/1000 Ethernet MAC with 1000BASE-X/SGMII PCS Signals
6.1.4. 10/100/1000 Ethernet MAC with Internal FIFO Buffers, and 1000BASE-X/SGMII 2XTBI PCS with Embedded PMA (GTS) Signals
6.1.5. 10/100/1000 Multiport Ethernet MAC with 1000BASE-X/SGMII PCS Signals
6.1.6. 1000BASE-X/SGMII PCS Signals
6.1.7. 1000BASE-X/SGMII PCS and PMA (LVDS) Signals
6.1.8. 1000BASE-X/SGMII 2XTBI PCS Signals
6.1.9. 10/100/1000 Ethernet MAC with 1000BASE-X/SGMII PCS and Embedded PMA (LVDS) Signals
6.1.10. 10/100/1000 Multiport Ethernet MAC with 1000BASE-X/SGMII PCS and Embedded PMA (LVDS) Signals
6.1.11. 10/100/1000 Ethernet MAC without Internal FIFO Buffers with 1000BASE-X/SGMII 2XTBI PCS and Embedded PMA Signals (GTS) with IEEE 1588v2
6.1.12. 10/100/1000 Multiport Ethernet MAC with 1000BASE-X/SGMII PCS and Embedded PMA Signals (LVDS) with IEEE 1588v2
6.1.1.1. Clock and Reset Signals
6.1.1.2. Clock Enabler Signals
6.1.1.3. MAC Control Interface Signals
6.1.1.4. MAC Status Signals
6.1.1.5. MAC Receive Interface Signals
6.1.1.6. MAC Transmit Interface Signals
6.1.1.7. Pause and Magic Packet Signals
6.1.1.8. MII/GMII/RGMII Signals
6.1.1.9. PHY Management Signals
6.1.11.1. Deterministic Latency Clock Signals
6.1.11.2. IEEE 1588v2 RX Timestamp Signals
6.1.11.3. IEEE 1588v2 TX Timestamp Signals
6.1.11.4. IEEE 1588v2 TX Timestamp Request Signals
6.1.11.5. IEEE 1588v2 TX Insert Control Timestamp Signals
6.1.11.6. IEEE 1588v2 Time-of-Day (TOD) Clock Interface Signals
4.1.3.4. CRC-32 Generation
To turn on CRC-32 generation, you must set the OMIT_CRC bit in the tx_cmd_stat register to 0 and send the frame to the MAC function with the ff_tx_crc_fwd signal deasserted.
The following equation shows the CRC polynomial, as specified in the IEEE 802.3 standard:
FCS(X) = X 32 +X 26 +X 23 +X 22 +X 16 +X 12 +X 11 +X 10 +X 8 +X 7 +X 5 +X 4 +X 2 +X 1 +1
The 32-bit CRC value occupies the FCS field with X31 in the least significant bit of the first byte. The CRC bits are thus transmitted in the following order: X31, X30, ..., X1, X0.