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//
// PCILeech Buffered Communication Core for either:
// - FT601 USB3.
// - FPGA RMII ETHERNET.
//
//
// (c) Ulf Frisk, 2019-2024
// Author: Ulf Frisk, pcileech@frizk.net
//
`timescale 1ns / 1ps
//`define ENABLE_ETH
`define ENABLE_FT601
module pcileech_com (
// SYS
input clk, // 100MHz SYSTEM CLK
input clk_com, // COMMUNICATION CORE CLK
input rst,
output led_state_txdata,
input led_state_invert,
// TO/FROM FIFO
IfComToFifo.mp_com dfifo,
`ifdef ENABLE_FT601
// FT601
inout [31:0] ft601_data,
output [3:0] ft601_be,
input ft601_rxf_n,
input ft601_txe_n,
output ft601_wr_n,
output ft601_siwu_n,
output ft601_rd_n,
output ft601_oe_n
`endif /* ENABLE_FT601 */
`ifdef ENABLE_ETH
// ETH
output eth_clk50,
output eth_rst_n,
input [1:0] eth_rx_data,
input eth_crs_dv,
output eth_tx_en,
output [1:0] eth_tx_data,
output eth_mdc,
inout eth_mdio,
input eth_rx_err,
input [31:0] eth_cfg_static_addr,
input eth_cfg_static_force,
input [15:0] eth_cfg_port,
output eth_led_state_red,
output eth_led_state_green
`endif /* ENABLE_ETH */
);
// ----------------------------------------------------------------------------
// COMMUNICATION CORE INITIAL ON-BOARD DEFAULT RX-DATA
// Sometimes there is a need to perform actions - such as setting DRP-related
// values before the PCIe core is brought online. This is possible by specify
// "virtual" COM-core initial transmitted values below.
// ----------------------------------------------------------------------------
bit [63:0] initial_rx [5] = '{
// Modify data below to set own actions - examples:
// - send some initial TLP on core startup.
// - set initial VID/PID if PCIe core has been modified.
// - write to DRP memory space to alter the core.
// replace / expand on dummy values below - for syntax of each 64-bit word
// please consult sources and also device_fpga.c in the LeechCore project.
64'h00000000_00000000,
64'h00000000_00000000,
64'h00000000_00000000,
64'h00000000_00000000,
// Bring the PCIe core online from initial hot-reset state. This is done by
// setting control bit in PCIleech FIFO CMD register. This should ideally be
// done after DRP&Config actions are completed - but before sending PCIe TLPs.
64'h00000003_80182377
};
time tickcount64 = 0;
always @ ( posedge clk )
tickcount64 <= rst ? 0 : tickcount64 + 1;
time tickcount64_com = 0;
always @ ( posedge clk_com )
tickcount64_com <= rst ? 0 : tickcount64_com + 1;
wire initial_rx_valid = ~rst & (tickcount64 >= 16) & (tickcount64 < $size(initial_rx) + 16);
wire [63:0] initial_rx_data = initial_rx_valid ? initial_rx[tickcount64 - 16] : 64'h0;
// ----------------------------------------------------------------------------
// COMMUNICATION CORE RX DATA BELOW:
// 1: convert 32-bit signal into 64-bit signal using logic.
// 2: change clock domain from clk_com to clk using a very shallow fifo.
// due to previous 32->64 conversion this will be fine if: 2*clk_com < clk.
// ----------------------------------------------------------------------------
wire [31:0] com_rx_data32;
wire com_rx_valid32;
reg [63:0] com_rx_data64;
reg [1:0] com_rx_valid64_dw;
wire com_rx_valid64 = com_rx_valid64_dw[0] & com_rx_valid64_dw[1];
wire [63:0] com_rx_dout;
wire com_rx_valid;
always @ ( posedge clk_com )
if ( rst | (~com_rx_valid32 & com_rx_valid64_dw[0] & com_rx_valid64_dw[1]) )
com_rx_valid64_dw <= 2'b00;
else if ( com_rx_valid32 && (com_rx_data32 == 32'h66665555) && (com_rx_data64[31:0] == 32'h66665555) )
// resync logic to allow the host to send resync data that will
// allow bitstream to sync to proper 32->64-bit sequence in case
// it should have happen to get out of sync at startup/shutdown.
com_rx_valid64_dw <= 2'b00;
else if ( com_rx_valid32 )
begin
com_rx_data64 <= (com_rx_data64 << 32) | com_rx_data32;
com_rx_valid64_dw <= (com_rx_valid64_dw == 2'b01) ? 2'b11 : 2'b01;
end
fifo_64_64_clk2_comrx i_fifo_64_64_clk2_comrx(
.rst ( rst | (tickcount64_com<2) ),
.wr_clk ( clk_com ),
.rd_clk ( clk ),
.din ( com_rx_data64 ),
.wr_en ( com_rx_valid64 ),
.rd_en ( 1'b1 ),
.dout ( com_rx_dout ),
.full ( ),
.empty ( ),
.valid ( com_rx_valid )
);
assign dfifo.com_dout = initial_rx_valid ? initial_rx_data : com_rx_dout;
assign dfifo.com_dout_valid = initial_rx_valid | com_rx_valid;
// ----------------------------------------------------------------------------
// COMMUNICATION CORE TX DATA BELOW:
// ----------------------------------------------------------------------------
wire [31:0] core_din;
wire core_din_empty;
wire core_din_wr_en;
wire core_din_ready;
wire [31:0] com_tx_data;
wire com_tx_wr_en;
wire com_tx_almost_full;
wire com_tx_prog_full;
wire com_tx_prog_empty;
wire out_buffer1_almost_full;
assign dfifo.com_din_ready = ~out_buffer1_almost_full;
assign led_state_txdata = com_tx_prog_full ^ led_state_invert;
fifo_32_32_clk1_comtx i_fifo_32_32_clk2_comtx(
.clk ( clk_com ),
.srst ( rst ),
.din ( com_tx_data ),
.wr_en ( com_tx_wr_en ),
.rd_en ( core_din_ready ),
.dout ( core_din ),
.full ( ),
.almost_full ( com_tx_almost_full ),
.empty ( core_din_empty ),
.prog_empty ( com_tx_prog_empty ), // threshold = 3
.prog_full ( com_tx_prog_full ), // threshold = 6
.valid ( core_din_wr_en )
);
fifo_256_32_clk2_comtx i_fifo_256_32_clk2_comtx(
.rd_clk ( clk_com ),
.wr_clk ( clk ),
.rst ( rst ),
.din ( dfifo.com_din ),
.wr_en ( dfifo.com_din_wr_en ),
.rd_en ( ~com_tx_almost_full ),
.dout ( com_tx_data ),
.full ( ),
.almost_full ( out_buffer1_almost_full ),
.empty ( ),
.valid ( com_tx_wr_en )
);
// ----------------------------------------------------
// FT601 USB3 BELOW:
// ----------------------------------------------------
`ifdef ENABLE_FT601
pcileech_ft601 i_pcileech_ft601(
// SYS
.clk ( clk_com ),
.rst ( rst ),
// TO/FROM FT601 PADS
.FT601_DATA ( ft601_data ),
.FT601_BE ( ft601_be ),
.FT601_TXE_N ( ft601_txe_n ),
.FT601_RXF_N ( ft601_rxf_n ),
.FT601_SIWU_N ( ft601_siwu_n ),
.FT601_WR_N ( ft601_wr_n ),
.FT601_RD_N ( ft601_rd_n ),
.FT601_OE_N ( ft601_oe_n ),
// TO/FROM FIFO
.dout ( com_rx_data32 ), // -> [31:0]
.dout_valid ( com_rx_valid32 ), // ->
.din ( core_din ), // <- [31:0]
.din_wr_en ( core_din_wr_en ), // <-
.din_req_data ( core_din_ready ) // ->
);
`endif /* ENABLE_FT601 */
// ----------------------------------------------------
// UDP Ethernet Below:
// ----------------------------------------------------
`ifdef ENABLE_ETH
pcileech_eth i_pcileech_eth(
// SYS
.clk ( clk_com ),
.rst ( rst ),
// MAC/RMII
.eth_clk50 ( eth_clk50 ),
.eth_rst_n ( eth_rst_n ),
.eth_crs_dv ( eth_crs_dv ),
.eth_rx_data ( eth_rx_data ),
.eth_rx_err ( eth_rx_err ),
.eth_tx_en ( eth_tx_en ),
.eth_tx_data ( eth_tx_data ),
.eth_mdc ( eth_mdc ),
.eth_mdio ( eth_mdio ),
// CFG
.cfg_static_addr ( eth_cfg_static_addr ), // <- [31:0]
.cfg_static_force ( eth_cfg_static_force ), // <-
.cfg_port ( eth_cfg_port ), // <- [15:0]
// State and Activity LEDs
.led_state_red ( eth_led_state_red ), // ->
.led_state_green ( eth_led_state_green ), // ->
// TO/FROM FIFO
.dout ( com_rx_data32 ), // -> [31:0]
.dout_valid ( com_rx_valid32 ), // ->
.din ( core_din ), // <- [31:0]
.din_empty ( core_din_empty ), // <-
.din_wr_en ( core_din_wr_en ), // <-
.din_ready ( core_din_ready ) // ->
);
`endif /* ENABLE_ETH */
endmodule