fpga: Multiple X300 FPGA bugfixes and enhancements

- Fixed 10GigE firmware communication issues and sequence errors for TX
- Multiple changes to help ease timing closure
- Cleaned up build scripts
- Switched to Xilinx ISE 14.7 as the default build tool for X300


Original-commit: 64d71dcbc5fa6790385b288de25224d386b047b0
This commit is contained in:
Ashish Chaudhari
2014-09-24 18:45:31 -07:00
parent 6b7004c311
commit adf2da6ac7
275 changed files with 14057 additions and 293393 deletions
+2
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@@ -18,4 +18,6 @@ cvita_insert_tlast.v \
cvita_dest_lookup.v \
cvita_chunker.v \
cvita_dechunker.v \
axis_packet_debug.v \
cvita_packet_debug.v \
))
+71
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@@ -0,0 +1,71 @@
//
// Copyright 2014 Ettus Research LLC
//
module axis_packet_debug (
input clk,
input reset,
input clear,
//Packet In
input [63:0] tdata,
input tlast,
input tvalid,
input tready,
//Per packet info
output reg pkt_strobe,
output reg [15:0] length,
output reg [63:0] checksum,
//Statistics
output reg [31:0] pkt_count
);
localparam ST_HEADER = 1'b0;
localparam ST_DATA = 1'b1;
//Packet state logic
reg pkt_state;
always @(posedge clk) begin
if (reset) begin
pkt_state <= ST_HEADER;
end else if (tvalid & tready) begin
pkt_state <= tlast ? ST_HEADER : ST_DATA;
end
end
//Trigger logic
always @(posedge clk)
if (reset)
pkt_strobe <= 1'b0;
else
pkt_strobe <= tvalid & tready & tlast;
//Length capture
always @(posedge clk)
if (reset || pkt_state == ST_HEADER)
length <= tlast ? 16'd8 : 16'd0;
else
if (tvalid & tready)
length <= length + 16'd8;
//Checksum capture
always @(posedge clk)
if (reset || pkt_state == ST_HEADER)
checksum <= 64'd0;
else
if (tvalid & tready)
checksum <= checksum ^ tdata;
//Counts
always @(posedge clk)
if (reset | clear) begin
pkt_count <= 32'd0;
end else begin
if (tvalid & tready & tlast) begin
pkt_count <= pkt_count + 32'd1;
end
end
endmodule // cvita_packet_debug
+108
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@@ -0,0 +1,108 @@
//
// Copyright 2014 Ettus Research LLC
//
module cvita_packet_debug (
input clk,
input reset,
input clear,
//Packet In
input [63:0] tdata,
input tlast,
input tvalid,
input tready,
//Per packet info
output reg pkt_strobe,
output reg [63:0] header,
output reg [63:0] timestamp,
output reg [15:0] actual_length,
output reg [63:0] checksum,
//Statistics
output reg [31:0] pkt_count,
output reg [31:0] ctrl_pkt_count
);
localparam ST_HEADER = 2'd0;
localparam ST_TIME = 2'd1;
localparam ST_DATA = 2'd2;
//Packet state logic
reg [1:0] pkt_state;
always @(posedge clk) begin
if (reset) begin
pkt_state <= ST_HEADER;
end else if (tvalid & tready) begin
case(pkt_state)
ST_HEADER: begin
if (!tlast)
pkt_state <= (tdata[61]) ? ST_TIME : ST_DATA;
end
ST_TIME: begin
pkt_state <= (tlast) ? ST_HEADER : ST_DATA;
end
ST_DATA: begin
pkt_state <= (tlast) ? ST_HEADER : ST_DATA;
end
default: pkt_state <= ST_HEADER;
endcase
end
end
//Trigger logic
always @(posedge clk)
if (reset)
pkt_strobe <= 1'b0;
else
pkt_strobe <= tvalid & tready & tlast;
//Header capture
always @(posedge clk)
if (reset)
header <= 64'd0;
else if (pkt_state == ST_HEADER)
if (tvalid & tready)
header <= tdata;
//Timestamp capture
always @(posedge clk)
if (reset)
timestamp <= 64'd0;
else if (pkt_state == ST_TIME)
if (tvalid & tready)
timestamp <= tdata;
//Length capture
always @(posedge clk)
if (reset || pkt_state == ST_HEADER)
actual_length <= (tvalid & tready & tlast) ? 16'd8 : 16'd0;
else
if (tvalid & tready)
actual_length <= actual_length + 16'd8;
//Checksum capture
always @(posedge clk)
if (reset || pkt_state == ST_HEADER)
checksum <= 64'd0;
else if (pkt_state == ST_DATA)
if (tvalid & tready)
checksum <= checksum ^ tdata;
//Counts
always @(posedge clk)
if (reset | clear) begin
pkt_count <= 32'd0;
ctrl_pkt_count <= 32'd0;
end else begin
if (tvalid & tready & tlast) begin
pkt_count <= pkt_count + 32'd1;
if (pkt_state == ST_HEADER && tdata[63])
ctrl_pkt_count <= ctrl_pkt_count + 32'd1;
else if (header[63])
ctrl_pkt_count <= ctrl_pkt_count + 32'd1;
end
end
endmodule // cvita_packet_debug
+99 -159
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@@ -76,138 +76,130 @@ module eth_dispatch
output [31:0] debug
);
//
//---------------------------------------------------------
// State machine declarations
//
reg [2:0] state;
//---------------------------------------------------------
reg [2:0] state;
localparam WAIT_PACKET = 0;
localparam READ_HEADER = 1;
localparam FORWARD_ZPU = 2;
localparam FORWARD_ZPU_AND_XO = 3;
localparam FORWARD_XO = 4;
localparam FORWARD_RADIO_CORE = 5;
localparam DROP_PACKET = 6;
localparam CLASSIFY_PACKET = 7;
localparam WAIT_PACKET = 0;
localparam READ_HEADER = 1;
localparam FORWARD_ZPU = 2;
localparam FORWARD_ZPU_AND_XO = 3;
localparam FORWARD_XO = 4;
localparam FORWARD_RADIO_CORE = 5;
localparam DROP_PACKET = 6;
localparam CLASSIFY_PACKET = 7;
//
// Small RAM stores packet header during parsing.
//
// IJB consider changing HEADER_RAM_SIZE to 7
localparam HEADER_RAM_SIZE = 9;
(*ram_style="distributed"*)
reg [68:0] header_ram [HEADER_RAM_SIZE-1:0];
reg [3:0] header_ram_addr;
reg drop_this_packet;
(*ram_style="distributed"*) reg [68:0] header_ram [HEADER_RAM_SIZE-1:0];
wire header_done = (header_ram_addr == HEADER_RAM_SIZE-1);
reg fwd_input;
reg [3:0] header_ram_addr;
wire header_done = (header_ram_addr == HEADER_RAM_SIZE-1);
reg fwd_input;
//
reg [63:0] in_tdata_reg;
reg [63:0] in_tdata_reg;
//
wire out_tvalid;
wire out_tready;
wire out_tlast;
wire [3:0] out_tuser;
wire [63:0] out_tdata;
wire out_tvalid;
wire out_tready;
wire out_tlast;
wire [3:0] out_tuser;
wire [63:0] out_tdata;
//
// Output AXI-Stream interface to VITA Radio Core
wire [63:0] vita_pre_tdata;
wire [3:0] vita_pre_tuser;
wire vita_pre_tlast;
wire vita_pre_tvalid;
wire vita_pre_tready;
wire [63:0] vita_pre_tdata;
wire [3:0] vita_pre_tuser;
wire vita_pre_tlast;
wire vita_pre_tvalid;
wire vita_pre_tready;
// Output AXI-Stream interface to ZPU
wire [63:0] zpu_pre_tdata;
wire [3:0] zpu_pre_tuser;
wire zpu_pre_tlast;
wire zpu_pre_tvalid;
wire zpu_pre_tready;
wire [63:0] zpu_pre_tdata;
wire [3:0] zpu_pre_tuser;
wire zpu_pre_tlast;
wire zpu_pre_tvalid;
wire zpu_pre_tready;
// Output AXI-Stream interface to cross-over MAC
wire [63:0] xo_pre_tdata;
wire [3:0] xo_pre_tuser;
wire xo_pre_tlast;
wire xo_pre_tvalid;
wire xo_pre_tready;
wire [63:0] xo_pre_tdata;
wire [3:0] xo_pre_tuser;
wire xo_pre_tlast;
wire xo_pre_tvalid;
wire xo_pre_tready;
//
// Packet Parse Flags
//
reg is_eth_dst_addr;
reg is_eth_broadcast;
reg is_eth_type_ipv4;
reg is_ipv4_dst_addr;
reg is_ipv4_proto_udp;
reg is_ipv4_proto_icmp;
reg [1:0] is_udp_dst_ports;
reg is_icmp_no_fwd;
reg is_chdr;
reg is_eth_dst_addr;
reg is_eth_broadcast;
reg is_eth_type_ipv4;
reg is_ipv4_dst_addr;
reg is_ipv4_proto_udp;
reg is_ipv4_proto_icmp;
reg [1:0] is_udp_dst_ports;
reg is_icmp_no_fwd;
reg is_chdr;
//
//---------------------------------------------------------
// Settings regs
//
wire [47:0] my_mac;
//---------------------------------------------------------
// MAC address for the dispatcher module.
// This value is used to determine if the packet is meant
// for this device should be consumed
wire [47:0] my_mac;
setting_reg #(.my_addr(BASE), .awidth(16), .width(32)) sr_my_mac_lsb
(.clk(clk),.rst(reset),.strobe(set_stb),.addr(set_addr),
.in(set_data),.out(my_mac[31:0]),.changed());
setting_reg #(.my_addr(BASE+1), .awidth(16), .width(16)) sr_my_mac_msb
(.clk(clk),.rst(reset),.strobe(set_stb),.addr(set_addr),
.in(set_data),.out(my_mac[47:32]),.changed());
wire [31:0] my_ip;
// IP address for the dispatcher module.
// This value is used to determine if the packet is addressed
// to this device
wire [31:0] my_ip;
setting_reg #(.my_addr(BASE+2), .awidth(16), .width(32)) sr_my_ip
(.clk(clk),.rst(reset),.strobe(set_stb),.addr(set_addr),
.in(set_data),.out(my_ip[31:0]),.changed());
wire [15:0] my_port0, my_port1;
// This module supports two destination ports
wire [15:0] my_port0, my_port1;
setting_reg #(.my_addr(BASE+3), .awidth(16), .width(32)) sr_udp_port
(.clk(clk),.rst(reset),.strobe(set_stb),.addr(set_addr),
.in(set_data),.out({my_port1[15:0],my_port0[15:0]}),.changed());
// forward_ndest: Forward to crossover path if MAC Addr in packet
// does not match "my_mac"
// forward_bcast: Forward broadcasts to crossover path
wire forward_ndest, forward_bcast;
setting_reg #(.my_addr(BASE+4), .awidth(16), .width(2)) sr_forward_ctrl
(.clk(clk),.rst(reset),.strobe(set_stb),.addr(set_addr),
.in(set_data),.out({forward_ndest, forward_bcast}),.changed());
//ICMP Type and Code to forward packet to ZPU
wire [7:0] my_icmp_type, my_icmp_code;
setting_reg #(.my_addr(BASE+5), .awidth(16), .width(16)) sr_icmp_ctrl
(.clk(clk),.rst(reset),.strobe(set_stb),.addr(set_addr),
.in(set_data),.out({my_icmp_type, my_icmp_code}),.changed());
assign debug =
{
1'b0, state, //4
1'b0, in_tvalid, in_tready, in_tlast, //4
1'b0, is_eth_dst_addr, is_eth_broadcast, is_eth_type_ipv4,
is_ipv4_dst_addr, is_ipv4_proto_udp, is_udp_dst_ports, //8
header_ram_addr[3:0], //4
4'b0, 8'b0
};
//
//---------------------------------------------------------
// Packet Forwarding State machine.
//
//---------------------------------------------------------
// Read input packet and store the header into a RAM for
// classification. A header is defined as HEADER_RAM_SIZE
// number of 64-bit words.
// Based on clasification results, output the packet to the
// VITA port, crossover(XO) port or the ZPU. Note that the
// XO and ZPU ports require fully framed Eth packets so data
// from the RAM has to be replayed on the output. The state
// machine will hold off input packets until the header is
// replayed. The state machine also supports dropping pkts.
always @(posedge clk)
if (reset || clear) begin
state <= WAIT_PACKET;
header_ram_addr <= 0;
drop_this_packet <= 0;
fwd_input <= 0;
end else begin
// Defaults.
drop_this_packet <= 0;
case(state)
//
// Wait for start of a packet
@@ -250,15 +242,15 @@ module eth_dispatch
end else if (is_eth_broadcast) begin
header_ram_addr <= 0;
state <= forward_bcast? FORWARD_ZPU_AND_XO : FORWARD_ZPU;
end else if (!is_eth_dst_addr) begin
end else if (!is_eth_dst_addr && forward_ndest) begin
header_ram_addr <= 0;
state <= forward_ndest? FORWARD_XO : DROP_PACKET;
state <= FORWARD_XO;
end else if (!is_eth_dst_addr && !forward_ndest) begin
header_ram_addr <= HEADER_RAM_SIZE - 1;
state <= DROP_PACKET;
end else if ((is_udp_dst_ports != 0) && is_chdr) begin
header_ram_addr <= 6; // Jump to CHDR
state <= FORWARD_RADIO_CORE;
end else if (drop_this_packet) begin
header_ram_addr <= HEADER_RAM_SIZE-1;
state <= DROP_PACKET;
end else begin
header_ram_addr <= 0;
state <= FORWARD_ZPU;
@@ -328,10 +320,14 @@ module eth_dispatch
endcase // case (state)
end // else: !if(reset || clear)
//
//---------------------------------------------------------
// Classifier State machine.
// Deep packet inspection during header ingress.
//
//---------------------------------------------------------
// As the packet header is pushed into the RAM, set classification
// bits so that by the time the input state machine reaches the
// CLASSIFY_PACKET state, the packet has been fully identified.
always @(posedge clk)
if (reset || clear) begin
is_eth_dst_addr <= 1'b0;
@@ -343,10 +339,6 @@ module eth_dispatch
is_udp_dst_ports <= 0;
is_icmp_no_fwd <= 0;
is_chdr <= 1'b0;
//space_in_fifo <= 0;
//is_there_fifo_space <= 1;
//packet_length <= 0;
end else if (in_tvalid && in_tready) begin // if (reset || clear)
in_tdata_reg <= in_tdata;
@@ -426,9 +418,9 @@ module eth_dispatch
end // if (in_tvalid && in_tready)
//
//---------------------------------------------------------
// Output (Egress) Interface muxing
//
//---------------------------------------------------------
assign out_tready =
(state == DROP_PACKET) ||
((state == FORWARD_RADIO_CORE) && vita_pre_tready) ||
@@ -448,7 +440,6 @@ module eth_dispatch
(state == READ_HEADER) ||
(out_tready && fwd_input);
//
// Because we can forward to both the ZPU and XO FIFO's concurrently
// we have to make sure both can accept data in the same cycle.
@@ -461,25 +452,22 @@ module eth_dispatch
assign zpu_pre_tvalid = out_tvalid &&
((state == FORWARD_ZPU) ||
((state == FORWARD_ZPU_AND_XO) && xo_pre_tready));
assign vita_pre_tvalid = out_tvalid && (state == FORWARD_RADIO_CORE);
assign vita_pre_tvalid = out_tvalid &&
(state == FORWARD_RADIO_CORE);
assign {zpu_pre_tuser,zpu_pre_tdata} = ((state == FORWARD_ZPU_AND_XO) || (state == FORWARD_ZPU)) ?
{out_tuser,out_tdata} : 0;
assign {zpu_pre_tlast, zpu_pre_tuser, zpu_pre_tdata} = {out_tlast, out_tuser, out_tdata};
assign {xo_pre_tlast, xo_pre_tuser, xo_pre_tdata} = {out_tlast, out_tuser, out_tdata};
assign {vita_pre_tlast, vita_pre_tuser, vita_pre_tdata} = {out_tlast, out_tuser, out_tdata};
assign {xo_pre_tuser,xo_pre_tdata} = ((state == FORWARD_ZPU_AND_XO) || (state == FORWARD_XO)) ?
{out_tuser,out_tdata} : 0;
assign {vita_pre_tuser,vita_pre_tdata} = (state == FORWARD_RADIO_CORE) ? {out_tuser,out_tdata} : 0;
assign zpu_pre_tlast = out_tlast && ((state == FORWARD_ZPU) || (state == FORWARD_ZPU_AND_XO));
assign xo_pre_tlast = out_tlast && ((state == FORWARD_XO) || (state == FORWARD_ZPU_AND_XO));
assign vita_pre_tlast = out_tlast && (state == FORWARD_RADIO_CORE);
//
// Egress FIFO's (Large)
//
//---------------------------------------------------------
// Egress FIFO's
//---------------------------------------------------------
// These FIFO's have to be fairly large to prevent any egress
// port from backpressuring the input state machine.
// The ZPU and XO ports are inherently slow consumers so they
// get a large buffer. The VITA port is fast but high throughput
// so even that needs a large FIFO.
axi_fifo #(.WIDTH(69),.SIZE(10))
axi_fifo_zpu (
.clk(clk),
@@ -525,52 +513,4 @@ module eth_dispatch
.occupied()
);
assign debug_flags = {vita_pre_tready,xo_pre_tready,zpu_pre_tready};
/* -----\/----- EXCLUDED -----\/-----
wire vready, zready, oready;
wire vvalid, zvalid, ovalid;
reg [2:0] ed_state;
localparam ED_IDLE = 3'd0;
localparam ED_IN_HDR = 3'd1;
localparam ED_VITA = 3'd2;
localparam ED_ZPU = 3'd3;
localparam ED_OUT = 3'd4;
localparam ED_DROP = 3'd5;
-----/\----- EXCLUDED -----/\----- */
// for now, send everything to zpu
/*
always @(posedge clk)
if(reset | clear)
ed_state <= ED_IDLE;
else
case(ed_state)
ED_IDLE:
if(vready & zready & oready & in_tvalid)
;
endcase // case (ed_state)
*/
/* -----\/----- EXCLUDED -----\/-----
axi_packet_gate #(.WIDTH(64), .SIZE(10)) vita_gate
(.clk(clk), .reset(reset), .clear(clear),
.i_tdata(in_tdata), .i_tlast(), .i_terror(), .i_tvalid(1'b0), .i_tready(vready),
.o_tdata(vita_tdata), .o_tlast(vita_tlast), .o_tvalid(vita_tvalid), .o_tready(vita_tready));
axi_packet_gate #(.WIDTH(68), .SIZE(10)) zpu_gate
(.clk(clk), .reset(reset), .clear(clear),
.i_tdata({in_tuser,in_tdata}), .i_tlast(in_tlast), .i_terror(in_tuser[3]), .i_tvalid(in_tvalid), .i_tready(in_tready),
.o_tdata({zpu_tuser,zpu_tdata}), .o_tlast(zpu_tlast), .o_tvalid(zpu_tvalid), .o_tready(zpu_tready));
axi_packet_gate #(.WIDTH(68), .SIZE(10)) out_gate
(.clk(clk), .reset(reset), .clear(clear),
.i_tdata({in_tuser,in_tdata}), .i_tlast(), .i_terror(), .i_tvalid(1'b0), .i_tready(oready),
.o_tdata({out_tuser,out_tdata}), .o_tlast(out_tlast), .o_tvalid(out_tvalid), .o_tready(out_tready));
-----/\----- EXCLUDED -----/\----- */
endmodule // eth_dispatch
+35 -55
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@@ -26,24 +26,27 @@ module eth_interface
output [31:0] debug
);
wire [63:0] v2ef_tdata;
wire [3:0] v2ef_tuser;
wire v2ef_tlast, v2ef_tvalid, v2ef_tready;
wire [63:0] v2ef_tdata;
wire [3:0] v2ef_tuser;
wire v2ef_tlast, v2ef_tvalid, v2ef_tready;
// //////////////////////////////////////////////////////////////
// Incoming Ethernet path
// Includes FIFO on the output going to ZPU
wire [63:0] epg_tdata_int;
wire [3:0] epg_tuser_int;
wire epg_tlast_int, epg_tvalid_int, epg_tready_int;
wire [63:0] epg_tdata_int;
wire [3:0] epg_tuser_int;
wire epg_tlast_int, epg_tvalid_int, epg_tready_int;
//
// Packet gate ensures on entire ingressing packet is buffered before feeding it downstream so that it bursts
// efficiently internally without holding resources allocted for longer than optimal. This also means that an upstream
// error discovered in the packet can allow the packet to be destroyed here, before it gets deeper into the USRP.
//
axi_packet_gate #(.WIDTH(68), .SIZE(10)) packet_gater //holds 8K pkts
// This gate must be able to hold at least 9900 bytes which is the maximum length between the SOF and EOF
// as asserted by the 1G and 10G MACs. This is required in case one of the max size packets has an error
// and needs to be dropped. With SIZE=11, this gate will hold 2 8k packets.
axi_packet_gate #(.WIDTH(68), .SIZE(11)) packet_gater
(.clk(clk), .reset(reset), .clear(clear),
.i_tdata({eth_rx_tuser, eth_rx_tdata}), .i_tlast(eth_rx_tlast),
@@ -56,20 +59,30 @@ module eth_interface
//
// Based on programmed rules, parse network headers and decide which internal destination(s) this packet will be forwarded to.
//
wire [63:0] e2z_tdata_int;
wire [3:0] e2z_tuser_int;
wire e2z_tlast_int, e2z_tvalid_int, e2z_tready_int;
wire [2:0] dispatch_debug_flags;
wire [63:0] e2v_tdata_int;
wire e2v_tlast_int, e2v_tvalid_int, e2v_tready_int;
wire [63:0] e2z_tdata_int;
wire [3:0] e2z_tuser_int;
wire e2z_tlast_int, e2z_tvalid_int, e2z_tready_int;
wire [2:0] dispatch_debug_flags;
eth_dispatch #(.BASE(BASE+8)) eth_dispatch
(.clk(clk), .reset(reset), .clear(clear),
.set_stb(set_stb), .set_addr(set_addr) , .set_data(set_data),
.in_tdata(epg_tdata_int), .in_tuser(epg_tuser_int), .in_tlast(epg_tlast_int), .in_tvalid(epg_tvalid_int), .in_tready(epg_tready_int),
.vita_tdata(e2v_tdata), .vita_tlast(e2v_tlast), .vita_tvalid(e2v_tvalid), .vita_tready(e2v_tready),
.vita_tdata(e2v_tdata_int), .vita_tlast(e2v_tlast_int), .vita_tvalid(e2v_tvalid_int), .vita_tready(e2v_tready_int),
.zpu_tdata(e2z_tdata_int), .zpu_tuser(e2z_tuser_int), .zpu_tlast(e2z_tlast_int), .zpu_tvalid(e2z_tvalid_int), .zpu_tready(e2z_tready_int),
.xo_tdata(xo_tdata), .xo_tuser(xo_tuser), .xo_tlast(xo_tlast), .xo_tvalid(xo_tvalid), .xo_tready(xo_tready), // to other eth port
.debug_flags(dispatch_debug_flags),.debug(debug));
axi_fifo_short #(.WIDTH(65)) e2v_pipeline_srl
(.clk(clk), .reset(reset), .clear(clear),
.i_tdata({e2v_tlast_int,e2v_tdata_int}), .i_tvalid(e2v_tvalid_int), .i_tready(e2v_tready_int),
.o_tdata({e2v_tlast,e2v_tdata}), .o_tvalid(e2v_tvalid), .o_tready(e2v_tready),
.space(), .occupied()
);
//
// ZPU can be slow to respond (relative to packet wirespeed) so extra buffer for packets destined there so it doesn't back up.
//
@@ -82,16 +95,16 @@ module eth_interface
// Outgoing Ethernet path
// Includes FIFOs on path from VITA router, from ethernet crossover, and on the overall output
wire [63:0] eth_tx_tdata_int;
wire [3:0] eth_tx_tuser_int;
wire eth_tx_tlast_int, eth_tx_tvalid_int, eth_tx_tready_int;
wire [63:0] eth_tx_tdata_int;
wire [3:0] eth_tx_tuser_int;
wire eth_tx_tlast_int, eth_tx_tvalid_int, eth_tx_tready_int;
wire [63:0] xi_tdata_int;
wire [3:0] xi_tuser_int;
wire xi_tlast_int, xi_tvalid_int, xi_tready_int;
wire [63:0] xi_tdata_int;
wire [3:0] xi_tuser_int;
wire xi_tlast_int, xi_tvalid_int, xi_tready_int;
wire [63:0] v2e_tdata_int;
wire v2e_tlast_int, v2e_tvalid_int, v2e_tready_int;
wire [63:0] v2e_tdata_int;
wire v2e_tlast_int, v2e_tvalid_int, v2e_tready_int;
axi_fifo #(.WIDTH(65),.SIZE(VITA_FIFOSIZE)) vitaout_fifo
(.clk(clk), .reset(reset), .clear(clear),
@@ -124,37 +137,4 @@ module eth_interface
.o_tdata({eth_tx_tlast,eth_tx_tuser,eth_tx_tdata}), .o_tvalid(eth_tx_tvalid), .o_tready(eth_tx_tready));
//
// Provide instrumentation so that abnormal FIFO conditions can be identifed.
//
/* -----\/----- EXCLUDED -----\/-----
setting_reg #(.my_addr(BASE+15), .awidth(16), .width(1)) sr_reset_fifo_debug
(.clk(clk),.rst(reset),.strobe(set_stb),.addr(set_addr),
.in(set_data),.out(),.changed(clear_debug_flags));
always @(posedge clk)
if (reset)
debug_flags <= 0;
else if (clear_debug_flags)
debug_flags <= 0;
else
debug_flags <= debug_flags | {eth_rx_tuser[3],
~eth_tx_tready_int,
~xi_tready,
~v2e_tready,
~e2z_tready_int,
~eth_rx_tready,
~dispatch_debug_flags[2:0]};
-----/\----- EXCLUDED -----/\----- */
assign debug_flags = {eth_rx_tuser[3],
~eth_tx_tready_int,
~xi_tready,
~v2e_tready,
~e2z_tready_int,
~eth_rx_tready,
~dispatch_debug_flags[2:0]};
endmodule // eth_interface