- Made some things optional to reduce logic when used with the new xport_sv: (1) Clocking to sys_clk (2) Preamble insertion - New options to CUTTHROUGH faster on the TX path. The new xport_sv already has a gate to accumulate at its clock crossing. Original-commit: a68e7101167a4b5bf7b60ed90d963982aae735b8
486 lines
16 KiB
Verilog
486 lines
16 KiB
Verilog
/////////////////////////////////////////////////////////////////////
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//
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// Copyright 2013-2020 Ettus Research, A National Instruments Company
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//
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// SPDX-License-Identifier: LGPL-3.0-or-later
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//
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// Module: xge_mac_wrapper
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// Description:
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// Wrap XGE MAC + optional wishbone interface
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//
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// *) Signals are crossed between the MAC's own 156.25MHz clock domain and the
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// main FPGA clock domain.
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// *) 6 byte Padding is added at RX, including metadata so that IP headers become aligned.
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// *) 6 Byte padding is stripped at TX, so that Eth header data starts immediately.
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// *) TX & RX can buffer at least an MTU sized packet
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// *) On TX, to not start an Ethernet Tx until a complete packet is present in the
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// last Tx FIFO so that the MAC doesn't underrun.
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//
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// Parameters:
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// - PORTNUM: Refers to which ethernet port is being built. Added to padding but not used
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// - WISHBONE: If set use wishbone implementation
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// - ADD_PREAMBLE: If set add/remove 6 byte padding used in old ethernet_interface
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// - CROSS_TO_SYSCLK: If set cross AXI streams to the sys_clk domain.
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// - CUT_THROUGH: If > 0, how many words to wait before starting to transmit.
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/////////////////////////////////////////////////////////////////////
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module xge_mac_wrapper #(
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parameter PORTNUM = 8'd0,
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parameter WISHBONE = 1,
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parameter ADD_PREAMBLE = 1,
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parameter CROSS_TO_SYSCLK = 1,
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parameter CUT_THROUGH = 0
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)(
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// XGMII
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input xgmii_clk,
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output [63:0] xgmii_txd,
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output [7:0] xgmii_txc,
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input [63:0] xgmii_rxd,
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input [7:0] xgmii_rxc,
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// Client FIFO Interfaces
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input sys_clk,
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input sys_rst, // From sys_clk domain.
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output [63:0] rx_tdata,
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output [3:0] rx_tuser,
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output rx_tlast,
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output rx_tvalid,
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input rx_tready,
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input [63:0] tx_tdata,
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input [3:0] tx_tuser, // Bit[3] (error) is ignored for now.
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input tx_tlast,
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input tx_tvalid,
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output tx_tready,
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// Control and Status
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input phy_ready,
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input ctrl_tx_enable,
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output status_crc_error,
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output status_fragment_error,
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output status_txdfifo_ovflow,
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output status_txdfifo_udflow,
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output status_rxdfifo_ovflow,
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output status_rxdfifo_udflow,
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output status_pause_frame_rx,
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output status_local_fault,
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output status_remote_fault,
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// MDIO
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output mdc,
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output mdio_in,
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input mdio_out,
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// Wishbone interface
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input [7:0] wb_adr_i, // To wishbone_if0 of wishbone_if.v
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input wb_clk_i, // To sync_clk_wb0 of sync_clk_wb.v, ...
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input wb_cyc_i, // To wishbone_if0 of wishbone_if.v
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input [31:0] wb_dat_i, // To wishbone_if0 of wishbone_if.v
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input wb_rst_i, // To sync_clk_wb0 of sync_clk_wb.v, ...
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input wb_stb_i, // To wishbone_if0 of wishbone_if.v
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input wb_we_i, // To wishbone_if0 of wishbone_if.v
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output wb_ack_o, // From wishbone_if0 of wishbone_if.v
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output [31:0] wb_dat_o, // From wishbone_if0 of wishbone_if.v
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output wb_int_o // From wishbone_if0 of wishbone_if.v
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);
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//
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// Generate 156MHz synchronized sys_rst locally
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//
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wire xgmii_reset, ctrl_tx_enable_xclk;
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wire phy_ready_xgmiiclk, sys_rst_xgmiiclk;
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synchronizer #(
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.INITIAL_VAL(1'b0), .STAGES(3)
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) phy_ready_sync_i (
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.clk(xgmii_clk), .rst(1'b0 /* no reset */), .in(phy_ready), .out(phy_ready_xgmiiclk)
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);
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if (CROSS_TO_SYSCLK) begin : reset_cross
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synchronizer #(
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.INITIAL_VAL(1'b1), .STAGES(3)
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) sys_rst_sync_i (
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.clk(xgmii_clk), .rst(1'b0 /* no reset */), .in(sys_rst), .out(sys_rst_xgmiiclk)
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);
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assign xgmii_reset = !phy_ready_xgmiiclk || sys_rst_xgmiiclk;
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end else begin : reset_no_cross
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assign xgmii_reset = !phy_ready_xgmiiclk;
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end
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synchronizer #(
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.INITIAL_VAL(1'b1), .STAGES(3)
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) tx_enabled_sync_i (
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.clk(xgmii_clk), .rst(1'b0 /* no reset */), .in(ctrl_tx_enable), .out(ctrl_tx_enable_xclk)
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);
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//
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// 10G MAC
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//
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wire [63:0] eth_rx_data;
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wire eth_rx_avail;
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wire eth_rx_eof;
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wire eth_rx_err;
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wire [2:0] eth_rx_occ;
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wire eth_rx_sof;
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wire eth_rx_valid;
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wire eth_rx_ren;
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wire eth_tx_full;
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wire [63:0] eth_tx_data;
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wire eth_tx_eof;
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wire [2:0] eth_tx_occ;
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wire eth_tx_sof;
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wire eth_tx_valid;
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generate if (WISHBONE == 1) begin : wishbone_mac
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xge_mac_wb xge_mac_wb (
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// Clocks and Resets
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.clk_156m25 (xgmii_clk),
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.clk_xgmii_rx (xgmii_clk),
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.clk_xgmii_tx (xgmii_clk),
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.reset_156m25_n (~xgmii_reset),
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.reset_xgmii_rx_n (~xgmii_reset),
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.reset_xgmii_tx_n (~xgmii_reset),
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// XGMII
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.xgmii_txc (xgmii_txc[7:0]),
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.xgmii_txd (xgmii_txd[63:0]),
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.xgmii_rxc (xgmii_rxc[7:0]),
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.xgmii_rxd (xgmii_rxd[63:0]),
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// MDIO
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.mdc (mdc),
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.mdio_out (mdio_in),// Switch sense of in and out here for master and slave.
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.mdio_tri (mdio_tri),
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.xge_gpo (),
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.mdio_in (mdio_out), // Switch sense of in and out here for master and slave.
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.xge_gpi (/*{2'b00,align_status,mgt_tx_ready,sync_status[3:0]}*/0),
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// Packet interface
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.pkt_rx_avail (eth_rx_avail),
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.pkt_rx_data (eth_rx_data),
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.pkt_rx_eop (eth_rx_eof),
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.pkt_rx_err (eth_rx_err),
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.pkt_rx_mod (eth_rx_occ),
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.pkt_rx_sop (eth_rx_sof),
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.pkt_rx_val (eth_rx_valid),
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.pkt_tx_full (eth_tx_full),
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// Inputs
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.pkt_rx_ren (eth_rx_ren),
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.pkt_tx_data (eth_tx_data),
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.pkt_tx_eop (eth_tx_eof),
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.pkt_tx_mod (eth_tx_occ),
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.pkt_tx_sop (eth_tx_sof),
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.pkt_tx_val (eth_tx_valid),
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.wb_ack_o (wb_ack_o),
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.wb_dat_o (wb_dat_o),
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.wb_adr_i (wb_adr_i[7:0]),
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.wb_clk_i (wb_clk_i),
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.wb_cyc_i (wb_cyc_i),
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.wb_dat_i (wb_dat_i),
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.wb_rst_i (wb_rst_i),
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.wb_stb_i (wb_stb_i),
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.wb_we_i (wb_we_i),
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.wb_int_o (xge_int)
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);
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assign status_crc_error = 1'b0;
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assign status_fragment_error = 1'b0;
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assign status_txdfifo_ovflow = 1'b0;
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assign status_txdfifo_udflow = 1'b0;
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assign status_rxdfifo_ovflow = 1'b0;
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assign status_rxdfifo_udflow = 1'b0;
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assign status_pause_frame_rx = 1'b0;
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assign status_local_fault = 1'b0;
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assign status_remote_fault = 1'b0;
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end else begin : xge_mac
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xge_mac xge_mac (
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// Clocks and Resets
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.clk_156m25 (xgmii_clk),
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.clk_xgmii_rx (xgmii_clk),
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.clk_xgmii_tx (xgmii_clk),
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.reset_156m25_n (~xgmii_reset),
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.reset_xgmii_rx_n (~xgmii_reset),
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.reset_xgmii_tx_n (~xgmii_reset),
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// XGMII
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.xgmii_txc (xgmii_txc[7:0]),
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.xgmii_txd (xgmii_txd[63:0]),
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.xgmii_rxc (xgmii_rxc[7:0]),
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.xgmii_rxd (xgmii_rxd[63:0]),
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// Packet interface
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.pkt_rx_avail (eth_rx_avail),
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.pkt_rx_data (eth_rx_data),
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.pkt_rx_eop (eth_rx_eof),
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.pkt_rx_err (eth_rx_err),
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.pkt_rx_mod (eth_rx_occ),
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.pkt_rx_sop (eth_rx_sof),
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.pkt_rx_val (eth_rx_valid),
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.pkt_tx_full (eth_tx_full),
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// Inputs
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.pkt_rx_ren (eth_rx_ren),
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.pkt_tx_data (eth_tx_data),
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.pkt_tx_eop (eth_tx_eof),
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.pkt_tx_mod (eth_tx_occ),
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.pkt_tx_sop (eth_tx_sof),
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.pkt_tx_val (eth_tx_valid),
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// Control and Status
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.ctrl_tx_enable (ctrl_tx_enable_xclk),
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.status_crc_error (status_crc_error),
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.status_fragment_error (status_fragment_error),
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.status_txdfifo_ovflow (status_txdfifo_ovflow),
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.status_txdfifo_udflow (status_txdfifo_udflow),
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.status_rxdfifo_ovflow (status_rxdfifo_ovflow),
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.status_rxdfifo_udflow (status_rxdfifo_udflow),
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.status_pause_frame_rx (status_pause_frame_rx),
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.status_local_fault (status_local_fault),
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.status_remote_fault (status_remote_fault)
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);
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assign wb_ack_o = 1'b0;
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assign wb_dat_o = 1'b0;
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assign wb_int_o = 1'b0;
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assign mdio_in = 1'b0;
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assign mdc = 1'b0;
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end
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endgenerate
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///////////////////////////////////////////////////////////////////////////////////////
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// RX FIFO Chain
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///////////////////////////////////////////////////////////////////////////////////////
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wire [63:0] rx_tdata_int;
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wire [3:0] rx_tuser_int;
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wire rx_tlast_int;
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wire rx_tvalid_int;
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wire rx_tready_int;
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//
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// Logic to drive pkt_rx_ren on XGE MAC
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//
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xge_handshake xge_handshake (
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.clk(xgmii_clk),
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.reset(xgmii_reset),
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.pkt_rx_ren(eth_rx_ren),
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.pkt_rx_avail(eth_rx_avail),
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.pkt_rx_eop(eth_rx_eof)
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);
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if (ADD_PREAMBLE) begin : rx_preamble
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//
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// Add pad of 6 empty bytes before MAC addresses of new Rxed packet so that IP
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// headers are aligned. Also put metadata in first octet of pad that shows
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// ingress port.
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//
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xge64_to_axi64 #(
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.LABEL(PORTNUM)
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) xge64_to_axi64 (
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.clk(xgmii_clk),
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.reset(xgmii_reset),
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.clear(1'b0),
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.datain(eth_rx_data),
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.occ(eth_rx_occ),
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.sof(eth_rx_sof),
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.eof(eth_rx_eof),
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.err(eth_rx_err),
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.valid(eth_rx_valid),
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.axis_tdata(rx_tdata_int),
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.axis_tuser(rx_tuser_int),
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.axis_tlast(rx_tlast_int),
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.axis_tvalid(rx_tvalid_int),
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.axis_tready(rx_tready_int)
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);
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end else begin : rx_no_preamble
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assign rx_tdata_int = eth_rx_data;
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assign rx_tuser_int[3] = eth_rx_err;
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assign rx_tuser_int[2:0] = eth_rx_occ;
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assign rx_tlast_int = eth_rx_eof;
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assign rx_tvalid_int = eth_rx_valid;
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// there is no holdoff so ignore rx_tready_int
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end
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if (CROSS_TO_SYSCLK) begin : rx_cross
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//
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// Large FIFO must be able to run input side at 64b@156MHz to sustain 10Gb Rx.
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//
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axi64_4k_2clk_fifo rxfifo_2clk (
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.s_aresetn(~xgmii_reset),
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.s_aclk(xgmii_clk),
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.s_axis_tvalid(rx_tvalid_int),
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.s_axis_tready(rx_tready_int),
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.s_axis_tdata(rx_tdata_int),
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.s_axis_tlast(rx_tlast_int),
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.s_axis_tuser(rx_tuser_int),
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.axis_wr_data_count(),
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.m_aclk(sys_clk),
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.m_axis_tvalid(rx_tvalid),
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.m_axis_tready(rx_tready),
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.m_axis_tdata(rx_tdata),
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.m_axis_tlast(rx_tlast),
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.m_axis_tuser(rx_tuser),
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.axis_rd_data_count()
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);
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end else begin : rx_no_cross
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assign rx_tdata = rx_tdata_int;
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assign rx_tuser = rx_tuser_int;
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assign rx_tlast = rx_tlast_int;
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assign rx_tvalid = rx_tvalid_int;
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assign rx_tready_int = rx_tready;
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end
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///////////////////////////////////////////////////////////////////////////////////////
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// TX FIFO Chain
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///////////////////////////////////////////////////////////////////////////////////////
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wire [63:0] tx_tdata_int;
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wire [3:0] tx_tuser_int;
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wire tx_tlast_int;
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wire tx_tvalid_int;
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wire tx_tready_int;
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wire [63:0] tx_tdata_int2;
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wire [3:0] tx_tuser_int2;
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wire tx_tlast_int2;
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wire tx_tvalid_int2;
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wire tx_tready_int2;
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wire tx_tvalid_int3;
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wire tx_tready_int3;
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wire tx_sof_int3;
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wire enable_tx;
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if (CROSS_TO_SYSCLK) begin : tx_cross
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axi64_4k_2clk_fifo txfifo_2clk_1x (
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.s_aresetn(~xgmii_reset),
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.s_aclk(sys_clk),
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.s_axis_tvalid(tx_tvalid),
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.s_axis_tready(tx_tready),
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.s_axis_tdata(tx_tdata),
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.s_axis_tlast(tx_tlast),
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.s_axis_tuser(tx_tuser),
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.axis_wr_data_count(),
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.m_aclk(xgmii_clk),
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.m_axis_tvalid(tx_tvalid_int),
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.m_axis_tready(tx_tready_int),
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.m_axis_tdata(tx_tdata_int),
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.m_axis_tlast(tx_tlast_int),
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.m_axis_tuser(tx_tuser_int),
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.axis_rd_data_count()
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);
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end else begin : tx_no_cross
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assign tx_tdata_int = tx_tdata;
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assign tx_tuser_int = tx_tuser;
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assign tx_tlast_int = tx_tlast;
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assign tx_tvalid_int = tx_tvalid;
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assign tx_tready = tx_tready_int;
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end
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if (ADD_PREAMBLE) begin : tx_preamble
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//
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// Strip the 6 octet ethernet padding we used internally.
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// Put SOF into bit[3] of tuser.
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//
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axi64_to_xge64 axi64_to_xge64 (
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.clk(xgmii_clk),
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.reset(xgmii_reset),
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.clear(1'b0),
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.s_axis_tdata(tx_tdata_int),
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.s_axis_tuser(tx_tuser_int),
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.s_axis_tlast(tx_tlast_int),
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.s_axis_tvalid(tx_tvalid_int),
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.s_axis_tready(tx_tready_int),
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.m_axis_tdata(tx_tdata_int2),
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.m_axis_tuser(tx_tuser_int2),
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.m_axis_tlast(tx_tlast_int2),
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.m_axis_tvalid(tx_tvalid_int2),
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.m_axis_tready(tx_tready_int2)
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);
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end else begin : tx_no_preamble
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reg sof = 1'b1;
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// Add SOF
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always @(posedge xgmii_clk) begin : add_sof
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if (xgmii_reset) begin
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sof <= 1'b1;
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end else if (tx_tvalid_int && tx_tready_int) begin
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sof <= tx_tlast_int;
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end
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end
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assign tx_tdata_int2 = tx_tdata_int;
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assign tx_tuser_int2[3] = sof && tx_tvalid_int;
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assign tx_tuser_int2[2:0] = tx_tuser_int[2:0];
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assign tx_tlast_int2 = tx_tlast_int;
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assign tx_tvalid_int2 = tx_tvalid_int;
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assign tx_tready_int = tx_tready_int2;
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end
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//
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// Large FIFO can hold a max sized ethernet packet.
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//
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wire [15:0] tx_occupied;
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localparam TX_FIFO_SIZE = CUT_THROUGH > 0 ? $clog2(CUT_THROUGH)+1 : 10;
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axi_fifo #(.WIDTH(64+4+1), .SIZE(TX_FIFO_SIZE)) txfifo (
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.clk(xgmii_clk), .reset(xgmii_reset), .clear(1'b0),
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.i_tdata({tx_tlast_int2, tx_tuser_int2, tx_tdata_int2}),
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.i_tvalid(tx_tvalid_int2),
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.i_tready(tx_tready_int2),
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.o_tvalid(tx_tvalid_int3),
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.o_tready(tx_tready_int3),
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|
.o_tdata({eth_tx_eof,tx_sof_int3,eth_tx_occ,eth_tx_data}),
|
|
.space(), .occupied(tx_occupied)
|
|
);
|
|
|
|
//
|
|
// add cut through if we have "enough" data buffered up
|
|
//
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|
reg cut_through;
|
|
|
|
if (CUT_THROUGH > 0) begin : yes_cut_through
|
|
|
|
wire cut_start;
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|
wire cut_end;
|
|
|
|
assign cut_start = tx_occupied > CUT_THROUGH;
|
|
assign cut_end = eth_tx_eof && eth_tx_valid;
|
|
|
|
// Add SOF
|
|
always @(posedge xgmii_clk) begin : cut_through_dff
|
|
if (xgmii_reset) begin
|
|
cut_through <= 1'b0;
|
|
end else begin
|
|
if (cut_start) begin
|
|
cut_through <= 1'b1;
|
|
end else if (cut_end) begin
|
|
cut_through <= 1'b0;
|
|
end
|
|
end
|
|
end
|
|
end else begin : no_cut_through
|
|
always @(*) cut_through <= 0;
|
|
end
|
|
|
|
//
|
|
// Monitor number of Ethernet packets in tx_fifo2
|
|
//
|
|
axi_count_packets_in_fifo axi_count_packets_in_fifo (
|
|
.clk(xgmii_clk),
|
|
.reset(xgmii_reset),
|
|
.in_axis_tvalid(tx_tvalid_int2),
|
|
.in_axis_tready(tx_tready_int2),
|
|
.in_axis_tlast(tx_tlast_int2),
|
|
.out_axis_tvalid(tx_tvalid_int3),
|
|
.out_axis_tready(tx_tready_int3),
|
|
.out_axis_tlast(eth_tx_eof),
|
|
.pkt_tx_full(eth_tx_full),
|
|
.enable_tx(enable_tx)
|
|
);
|
|
|
|
//
|
|
//
|
|
// Suppress FIFO flags to stop overflow of MAC in Tx direction
|
|
//
|
|
assign tx_tready_int3 = (enable_tx || cut_through);
|
|
assign eth_tx_valid = (enable_tx || cut_through) & tx_tvalid_int3;
|
|
assign eth_tx_sof = (enable_tx || cut_through) & tx_sof_int3;
|
|
|
|
endmodule
|