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* This file is part of the DSLogic-hdl project.
*
* Copyright (C) 2014 DreamSourceLab <support@dreamsourcelab.com>
*
* This program is free software; you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation; either version 2 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program; if not, write to the Free Software
* Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
*/
`timescale 1ns/100ps
`define D #1
module loopback(
// -- clock & reset
input core_clk,
input core_rst,
input sdram_clk,
input sdram_rst,
input usb_clk,
input usb_rst,
input sd_lpb_mode,
input mux,
// -- control
input sd_dcm0_locked,
input sd_dcm1_locked,
output reg sd_clk_rst,
output reg sd_clk_sel,
output reg sd_clk_en,
// -- write
output [31:0] sample_depth,
output capture_done,
output reg capture_valid,
output reg [15:0] capture_data,
input sdwr_done,
input sd_init_done,
// -- read
output reg read_done,
output reg lpb_read,
output read_start,
output [31:0] sd_saddr,
output sd_fbe,
output reg usb_rd,
input usb_rd_valid,
input [15:0] usb_rdata,
input usb_rdy,
// -- error
output reg lpb_error
);
//parameter DEPTH = 32'h3fffff;
parameter DEPTH = 32'hffffff;
parameter INIT = 3'b000;
parameter SW_WR = 3'b001;
parameter WRITE = 3'b010;
parameter SW_RD = 3'b100;
parameter READ = 3'b101;
// --
// signal declare
// --
wire sd_clk_rst_nxt;
wire sd_clk_sel_nxt;
wire sd_clk_en_nxt;
reg [3:0] sd_clk_rst_cnt;
wire [3:0] sd_clk_rst_cnt_nxt;
reg [2:0] lpb_cstate;
reg [2:0] lpb_nstate;
reg swwr_done;
wire swwr_done_nxt;
reg swrd_done;
wire swrd_done_nxt;
reg sd_init_done_sync;
reg init_done;
reg sdwr_done_sync;
reg write_done;
reg mux_sync;
reg mux_trig;
// -- loopback test for 128Mbit SDRAM
assign sample_depth = DEPTH;
// -- sd_clk_sel / sd_clk_en
assign sd_clk_sel_nxt = ((lpb_cstate != SW_WR) & (lpb_nstate == SW_WR)) ? 1'b1 :
((lpb_cstate != SW_RD) & (lpb_nstate == SW_RD)) ? 1'b0 : sd_clk_sel;
assign sd_clk_en_nxt = ((lpb_nstate != SW_WR) & (lpb_nstate != SW_RD)) ? 1'b1 : 1'b0;
assign sd_clk_rst_nxt = ((lpb_cstate != SW_WR) & (lpb_nstate == SW_WR)) ? 1'b1 :
((lpb_cstate != SW_RD) & (lpb_nstate == SW_RD)) ? 1'b1 :
~|sd_clk_rst_cnt ? 1'b0 : sd_clk_rst;
assign sd_clk_rst_cnt_nxt = ((lpb_cstate != SW_WR) & (lpb_nstate == SW_WR)) ? 4'b1111 :
((lpb_cstate != SW_RD) & (lpb_nstate == SW_RD)) ? 4'b1111 :
|sd_clk_rst_cnt ? sd_clk_rst_cnt - 1'b1 : sd_clk_rst_cnt;
always @(posedge usb_clk or posedge usb_rst)
begin
if (usb_rst) begin
sd_clk_sel <= `D 1'b0;
sd_clk_en <= `D 1'b0;
sd_clk_rst <= `D 1'b0;
sd_clk_rst_cnt <= `D 4'b0;
end else begin
sd_clk_sel <= `D sd_clk_sel_nxt;
sd_clk_en <= `D sd_clk_en_nxt;
sd_clk_rst <= `D sd_clk_rst_nxt;
sd_clk_rst_cnt <= `D sd_clk_rst_cnt_nxt;
end
end
// -- swwr_done / swrd_done
reg sd_dcm0_locked_sync;
reg sd_clk0_locked;
reg sd_clk0_locked_1T;
reg sd_dcm1_locked_sync;
reg sd_clk1_locked;
reg sd_clk1_locked_1T;
reg sd_clk_locked;
reg sd_clk_locked_1T;
always @(posedge usb_clk)
begin
sd_dcm0_locked_sync <= `D sd_dcm0_locked;
sd_clk0_locked <= `D sd_dcm0_locked_sync;
sd_clk0_locked_1T <= `D sd_clk0_locked;
sd_dcm1_locked_sync <= `D sd_dcm1_locked;
sd_clk1_locked <= `D sd_dcm1_locked_sync;
sd_clk1_locked_1T <= `D sd_clk1_locked;
sd_clk_locked <= `D sd_clk0_locked & sd_clk1_locked;
sd_clk_locked_1T <= `D sd_clk_locked;
end
//assign swwr_done_nxt = ((lpb_cstate == SW_WR) & sd_clk_locked & ~sd_clk_locked_1T) ? 1'b1 : 1'b0;
//assign swrd_done_nxt = ((lpb_cstate == SW_RD) & sd_clk_locked & ~sd_clk_locked_1T) ? 1'b1 : 1'b0;
assign swwr_done_nxt = ((lpb_cstate == SW_WR) & sd_clk_locked) ? 1'b1 : 1'b0;
assign swrd_done_nxt = ((lpb_cstate == SW_RD) & sd_clk_locked) ? 1'b1 : 1'b0;
always @(posedge usb_clk or posedge usb_rst)
begin
if (usb_rst) begin
swwr_done <= `D 1'b0;
swrd_done <= `D 1'b0;
end else begin
swwr_done <= `D swwr_done_nxt;
swrd_done <= `D swrd_done_nxt;
end
end
// -- state machine
always @(posedge usb_clk or posedge usb_rst)
begin
if (usb_rst)
lpb_cstate <= `D INIT;
else
lpb_cstate <= `D lpb_nstate;
end
always @(*)
begin
case(lpb_cstate)
INIT:
if (sd_lpb_mode & init_done & mux_trig)
lpb_nstate = SW_WR;
else
lpb_nstate = INIT;
SW_WR:
if (swwr_done)
lpb_nstate = WRITE;
else
lpb_nstate = SW_WR;
WRITE:
if (write_done)
lpb_nstate = SW_RD;
else
lpb_nstate = WRITE;
SW_RD:
//if (swrd_done)
if (usb_rdy)
lpb_nstate = READ;
else
lpb_nstate = SW_RD;
READ:
if (read_done)
lpb_nstate = SW_WR;
else
lpb_nstate = READ;
default:
lpb_nstate = INIT;
endcase
end
// -- init_done / write_done
reg [7:0] sdwr_done_shift;
reg sdwr_done_extend;
wire sdwr_done_extend_nxt;
assign sdwr_done_extend_nxt = |sdwr_done_shift;
always @(posedge sdram_clk)
begin
sdwr_done_shift <= `D {sdwr_done_shift[6:0], sdwr_done};
sdwr_done_extend <= `D sdwr_done_extend_nxt;
end
always @(posedge usb_clk)
begin
sd_init_done_sync <= `D sd_init_done;
init_done <= `D sd_init_done_sync;
mux_sync <= `D mux;
mux_trig <= `D mux_sync;
sdwr_done_sync <= `D sdwr_done_extend;
write_done <= `D sdwr_done_sync;
end
reg wr_phase;
reg rd_phase;
wire wr_phase_nxt;
wire rd_phase_nxt;
wire lpb_read_nxt;
assign wr_phase_nxt = (lpb_nstate == WRITE);
assign rd_phase_nxt = (lpb_nstate == READ);
assign lpb_read_nxt = (lpb_nstate == SW_RD) | (lpb_nstate == READ);
always @(posedge usb_clk)
begin
wr_phase <= `D wr_phase_nxt;
rd_phase <= `D rd_phase_nxt;
lpb_read <= `D lpb_read_nxt;
end
// -- write @ core_clk
reg wr_phase_sync;
reg wr_flag;
reg wr_flag_1T;
always @(posedge core_clk)
begin
wr_phase_sync <= `D wr_phase;
wr_flag <= `D wr_phase_sync;
wr_flag_1T <= `D wr_flag;
end
reg [31:0] write_cnt;
wire [31:0] write_cnt_nxt;
reg wr_loop;
wire wr_loop_nxt;
assign wr_loop_nxt = (wr_flag & ~wr_flag_1T) ? ~wr_loop : wr_loop;
assign write_cnt_nxt = (wr_flag & ~wr_flag_1T) ? DEPTH :
capture_valid ? write_cnt - 1'b1 : write_cnt;
always @(posedge core_clk or posedge core_rst)
begin
if (core_rst) begin
wr_loop <= `D 1'b0;
write_cnt <= `D DEPTH;
end else begin
wr_loop <= `D wr_loop_nxt;
write_cnt <= `D write_cnt_nxt;
end
end
wire capture_valid_nxt;
wire [31:0] capture_data_nxt;
assign capture_done = capture_valid & ~|write_cnt;
assign capture_valid_nxt = (wr_flag & ~wr_flag_1T) ? 1'b1 :
~|write_cnt ? 1'b0 : capture_valid;
assign capture_data_nxt = (~wr_loop & capture_valid) ? capture_data + 1'b1 :
(wr_loop & capture_valid) ? capture_data - 1'b1 : capture_data;
always @(posedge core_clk or posedge core_rst)
begin
if (core_rst) begin
capture_data <= `D 16'b0;
capture_valid <= `D 1'b0;
end else begin
capture_data <= `D capture_data_nxt;
//capture_data <= `D 16'h1;
capture_valid <= `D capture_valid_nxt;
end
end
// -- read @ usb_clk
reg [31:0] read_cnt;
wire [31:0] read_cnt_nxt;
reg read_loop;
wire read_loop_nxt;
reg rd_phase_sync;
reg rd_phase_sdram;
reg rd_phase_sdram_1T;
always @(posedge sdram_clk)
begin
rd_phase_sync <= `D rd_phase;
rd_phase_sdram <= `D rd_phase_sync;
rd_phase_sdram_1T <= `D rd_phase_sdram;
end
assign read_start = rd_phase_sdram & ~rd_phase_sdram_1T;
// --
reg rd_phase_1T;
always @(posedge usb_clk)
begin
rd_phase_1T <= `D rd_phase;
end
assign usb_start = rd_phase & ~rd_phase_1T;
// --
assign sd_saddr = 32'b0;
assign sd_fbe = 1'b0;
wire usb_rd_nxt;
assign usb_rd_nxt = usb_start ? 1'b1 :
((read_cnt == 32'b0) & usb_rd & usb_rd_valid) ? 1'b0 : usb_rd;
always @(posedge usb_clk or posedge usb_rst)
begin
if (usb_rst) begin
usb_rd <= `D 1'b0;
end else begin
usb_rd <= `D usb_rd_nxt;
end
end
assign read_done_nxt = read_done ? 1'b0 :
(read_cnt == 32'b0 & usb_rd & usb_rd_valid) ? 1'b1 : read_done;
assign read_loop_nxt = usb_start ? ~read_loop : read_loop;
assign read_cnt_nxt = usb_start ? DEPTH :
(usb_rd & usb_rd_valid) ? read_cnt - 1'b1 : read_cnt;
always @(posedge usb_clk or posedge usb_rst)
begin
if (usb_rst) begin
read_cnt <= `D 32'b0;
read_done <= `D 1'b0;
read_loop <= `D 1'b0;
end else begin
read_cnt <= `D read_cnt_nxt;
read_done <= `D read_done_nxt;
read_loop <= `D read_loop_nxt;
end
end
// -- read data check
reg [15:0] exp_data;
wire [15:0] exp_data_nxt;
wire lpb_error_nxt;
assign exp_data_nxt = (~read_loop & usb_rd & usb_rd_valid) ? exp_data + 1'b1 :
(read_loop & usb_rd & usb_rd_valid) ? exp_data - 1'b1 : exp_data;
assign lpb_error_nxt = (usb_rd & usb_rd_valid & (exp_data != usb_rdata) | lpb_error) ? 1'b1 : 1'b0;
always @(posedge usb_clk or posedge usb_rst)
begin
if (usb_rst) begin
exp_data <= `D 16'b0;
lpb_error <= `D 1'b0;
end else begin
exp_data <= `D exp_data_nxt;
//exp_data <= `D 16'h1;
lpb_error <= `D lpb_error_nxt;
end
end
endmodule
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