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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 cons_buf (
// -- Clock & Reset
input core_clk,
input core_rst,
input sdram_clk,
input sd_rst,
// --
input cons_mode,
// -- data in
input sample_en,
input capture_done,
input capture_valid,
input [15:0] capture_data,
input wr_done,
// -- dread
input rd_req,
output rd_valid,
input [31:0] rd_addr,
output rd_rdy,
output [15:0] rd_data,
// -- DSO config
input [23:0] dso_sampleDivider,
input [23:0] dso_triggerPos,
input [7:0] dso_triggerSlope,
input [7:0] dso_triggerSource,
input [16:0] dso_triggerValue,
// -- sdram
// -- dread
output read_start,
output sd_rd_req,
input sd_rd_valid,
output [31:0] sd_rd_addr,
input sd_rd_rdy,
input [15:0] sd_rd_data
);
`define DP_MAXBIT 12
`define FPS_MAX 24'd5000000
// --
// internal signals definition
// --
reg buf_rd_valid;
reg buf_rd_rdy;
wire [15:0] buf_rd_data;
wire cfifo_full;
wire cfifo_empty;
reg cfifo_wr;
wire cfifo_wr_nxt;
reg capture_wr;
wire capture_wr_nxt;
reg [`DP_MAXBIT:0] cfifo_wr_cnt;
wire [`DP_MAXBIT:0] cfifo_wr_cnt_nxt;
wire [`DP_MAXBIT:0] cfifo_cnt;
reg [15:0] cfifo_din;
wire [15:0] cfifo_din_nxt;
wire cfifo_rd;
reg cfifo_rd_1T;
wire [15:0] cfifo_dout;
reg [23:0] div_cnt;
wire [23:0] div_cnt_nxt;
reg sample_en_1T;
reg [23:0] fps_cnt;
wire [23:0] fps_cnt_nxt;
assign sd_rd_req = cons_mode ? 1'b0 : rd_req;
assign sd_rd_addr = cons_mode ? 32'b0 : rd_addr;
assign rd_valid = cons_mode ? buf_rd_valid : sd_rd_valid;
assign rd_rdy = cons_mode ? buf_rd_rdy : sd_rd_rdy;
assign rd_data = cons_mode ? buf_rd_data : sd_rd_data;
// --
// detection
// --
reg rising0;
wire rising0_nxt;
reg falling0;
wire falling0_nxt;
reg rising1;
wire rising1_nxt;
reg falling1;
wire falling1_nxt;
reg [16:0] capture_data_1T;
reg [16:0] capture_data_2T;
reg [16:0] capture_data_4T;
reg [16:0] capture_data_8T;
reg [16:0] capture_data_16T;
reg [3:0] slope01_log;
wire [3:0] slope01_log_nxt;
reg [3:0] slope02_log;
wire [3:0] slope02_log_nxt;
reg [3:0] slope04_log;
wire [3:0] slope04_log_nxt;
reg [3:0] slope08_log;
wire [3:0] slope08_log_nxt;
reg [3:0] slope016_log;
wire [3:0] slope016_log_nxt;
reg [3:0] slope11_log;
wire [3:0] slope11_log_nxt;
reg [3:0] slope12_log;
wire [3:0] slope12_log_nxt;
reg [3:0] slope14_log;
wire [3:0] slope14_log_nxt;
reg [3:0] slope18_log;
wire [3:0] slope18_log_nxt;
reg [3:0] slope116_log;
wire [3:0] slope116_log_nxt;
assign slope01_log_nxt = (sample_en & ~sample_en_1T) ? 'b0101 :
(capture_wr & (capture_data[7:0] > capture_data_1T[7:0])) ? {slope01_log[2:0], 1'b1} :
(capture_wr & (capture_data[7:0] < capture_data_1T[7:0])) ? {slope01_log[2:0], 1'b0} : slope01_log;
assign slope02_log_nxt = (sample_en & ~sample_en_1T) ? 'b0101 :
(capture_wr & (capture_data[7:0] > capture_data_2T[7:0])) ? {slope02_log[2:0], 1'b1} :
(capture_wr & (capture_data[7:0] < capture_data_2T[7:0])) ? {slope02_log[2:0], 1'b0} : slope02_log;
assign slope04_log_nxt = (sample_en & ~sample_en_1T) ? 'b0101 :
(capture_wr & (capture_data[7:0] > capture_data_4T[7:0])) ? {slope04_log[2:0], 1'b1} :
(capture_wr & (capture_data[7:0] < capture_data_4T[7:0])) ? {slope04_log[2:0], 1'b0} : slope04_log;
assign slope08_log_nxt = (sample_en & ~sample_en_1T) ? 'b0101 :
(capture_wr & (capture_data[7:0] > capture_data_8T[7:0])) ? {slope08_log[2:0], 1'b1} :
(capture_wr & (capture_data[7:0] < capture_data_8T[7:0])) ? {slope08_log[2:0], 1'b0} : slope08_log;
assign slope016_log_nxt = (sample_en & ~sample_en_1T) ? 'b0101 :
(capture_wr & (capture_data[7:0] > capture_data_16T[7:0])) ? {slope016_log[2:0], 1'b1} :
(capture_wr & (capture_data[7:0] < capture_data_16T[7:0])) ? {slope016_log[2:0], 1'b0} : slope016_log;
assign slope11_log_nxt = (sample_en & ~sample_en_1T) ? 'b0101 :
(capture_wr & (capture_data[15:8] > capture_data_1T[15:8])) ? {slope11_log[2:0], 1'b1} :
(capture_wr & (capture_data[15:8] < capture_data_1T[15:8])) ? {slope11_log[2:0], 1'b0} : slope11_log;
assign slope12_log_nxt = (sample_en & ~sample_en_1T) ? 'b0101 :
(capture_wr & (capture_data[15:8] > capture_data_2T[15:8])) ? {slope12_log[2:0], 1'b1} :
(capture_wr & (capture_data[15:8] < capture_data_2T[15:8])) ? {slope12_log[2:0], 1'b0} : slope12_log;
assign slope14_log_nxt = (sample_en & ~sample_en_1T) ? 'b0101 :
(capture_wr & (capture_data[15:8] > capture_data_4T[15:8])) ? {slope14_log[2:0], 1'b1} :
(capture_wr & (capture_data[15:8] < capture_data_4T[15:8])) ? {slope14_log[2:0], 1'b0} : slope14_log;
assign slope18_log_nxt = (sample_en & ~sample_en_1T) ? 'b0101 :
(capture_wr & (capture_data[15:8] > capture_data_8T[15:8])) ? {slope18_log[2:0], 1'b1} :
(capture_wr & (capture_data[15:8] < capture_data_8T[15:8])) ? {slope18_log[2:0], 1'b0} : slope18_log;
assign slope116_log_nxt = (sample_en & ~sample_en_1T) ? 'b0101 :
(capture_wr & (capture_data[15:8] > capture_data_16T[15:8])) ? {slope116_log[2:0], 1'b1} :
(capture_wr & (capture_data[15:8] < capture_data_16T[15:8])) ? {slope116_log[2:0], 1'b0} : slope116_log;
always @(posedge core_clk or posedge core_rst)
begin
if (core_rst) begin
capture_data_1T <= `D 'b0;
capture_data_2T <= `D 'b0;
capture_data_4T <= `D 'b0;
capture_data_8T <= `D 'b0;
capture_data_16T <= `D 'b0;
slope01_log <= `D 'b0101;
slope02_log <= `D 'b0101;
slope04_log <= `D 'b0101;
slope08_log <= `D 'b0101;
slope016_log <= `D 'b0101;
slope11_log <= `D 'b0101;
slope12_log <= `D 'b0101;
slope14_log <= `D 'b0101;
slope18_log <= `D 'b0101;
slope116_log <= `D 'b0101;
end else begin
capture_data_1T <= `D capture_wr ? capture_data : capture_data_1T;
capture_data_2T <= `D capture_wr & cfifo_wr_cnt[0] ? capture_data : capture_data_2T;
capture_data_4T <= `D capture_wr & &cfifo_wr_cnt[1:0] ? capture_data : capture_data_4T;
capture_data_8T <= `D capture_wr & &cfifo_wr_cnt[2:0] ? capture_data : capture_data_8T;
capture_data_16T <= `D capture_wr & &cfifo_wr_cnt[3:0] ? capture_data : capture_data_16T;
slope01_log <= `D slope01_log_nxt;
slope02_log <= `D slope02_log_nxt;
slope04_log <= `D slope04_log_nxt;
slope08_log <= `D slope08_log_nxt;
slope016_log <= `D slope016_log_nxt;
slope11_log <= `D slope11_log_nxt;
slope12_log <= `D slope12_log_nxt;
slope14_log <= `D slope14_log_nxt;
slope18_log <= `D slope18_log_nxt;
slope116_log <= `D slope116_log_nxt;
end
end
assign rising0_nxt = &slope01_log | &slope02_log | &slope04_log |
&slope08_log | &slope016_log;
assign rising1_nxt = &slope11_log | &slope12_log | &slope14_log |
&slope18_log | &slope116_log;
assign falling0_nxt = ~|slope01_log | ~|slope02_log | ~|slope04_log |
~|slope08_log | ~|slope016_log;
assign falling1_nxt = ~|slope11_log | ~|slope12_log | ~|slope14_log |
~|slope18_log | ~|slope116_log;
always @(posedge core_clk or posedge core_rst)
begin
if (core_rst) begin
rising0 <= `D 1'b0;
rising1 <= `D 1'b0;
falling0 <= `D 1'b0;
falling1 <= `D 1'b0;
end else begin
rising0 <= `D rising0_nxt;
rising1 <= `D rising1_nxt;
falling0 <= `D falling0_nxt;
falling1 <= `D falling1_nxt;
end
end
// --
// trigger
// --
reg [`DP_MAXBIT:0] redunt_cnt;
wire [`DP_MAXBIT:0] redunt_cnt_nxt;
reg redunt_rd;
wire redunt_rd_nxt;
wire cfifo_almost_full;
reg buf_rdy;
wire buf_rdy_nxt;
reg buf_rdy_1T;
reg trigger_hit;
wire trigger_hit_nxt;
reg trigger_hit_1T;
reg rising0_hit;
reg falling0_hit;
reg rising1_hit;
reg falling1_hit;
wire rising0_hit_nxt;
wire falling0_hit_nxt;
wire rising1_hit_nxt;
wire falling1_hit_nxt;
reg auto_req;
reg rising0_req;
reg falling0_req;
reg rising1_req;
reg falling1_req;
reg rising0a1_req;
reg falling0a1_req;
reg rising0o1_req;
reg falling0o1_req;
wire auto_req_nxt;
wire rising0_req_nxt;
wire falling0_req_nxt;
wire rising1_req_nxt;
wire falling1_req_nxt;
wire rising0a1_req_nxt;
wire falling0a1_req_nxt;
wire rising0o1_req_nxt;
wire falling0o1_req_nxt;
// -- hit condition
assign rising0_hit_nxt = (capture_data[7:0] >= dso_triggerValue[7:0]) &
(capture_data_1T[7:0] <= dso_triggerValue[7:0]) &
(rising0 | (~rising0 & ~falling0));
assign rising1_hit_nxt = (capture_data[15:8] >= dso_triggerValue[15:8]) &
(capture_data_1T[15:8] <= dso_triggerValue[15:8]) &
(rising1 | (~rising1 & ~falling1));
assign falling0_hit_nxt = (capture_data[7:0] <= dso_triggerValue[7:0]) &
(capture_data_1T[7:0] >= dso_triggerValue[7:0]) &
(falling0 | (~rising0 & ~falling0));
assign falling1_hit_nxt = (capture_data[15:8] <= dso_triggerValue[15:8]) &
(capture_data_1T[15:8] >= dso_triggerValue[15:8]) &
(falling1 | (~rising1 & ~falling1));
always @(posedge core_clk or posedge core_rst)
begin
if (core_rst) begin
rising0_hit <= `D 1'b0;
rising1_hit <= `D 1'b0;
falling0_hit <= `D 1'b0;
falling1_hit <= `D 1'b0;
end else begin
rising0_hit <= `D rising0_hit_nxt;
rising1_hit <= `D rising1_hit_nxt;
falling0_hit <= `D falling0_hit_nxt;
falling1_hit <= `D falling1_hit_nxt;
end
end
// -- trigger setting
assign auto_req_nxt = (dso_triggerSource == 'd0);
assign rising0_req_nxt = (dso_triggerSource == 'd1) & (dso_triggerSlope == 'b0);
assign falling0_req_nxt = (dso_triggerSource == 'd1) & (dso_triggerSlope == 'b1);
assign rising1_req_nxt = (dso_triggerSource == 'd2) & (dso_triggerSlope == 'b0);
assign falling1_req_nxt = (dso_triggerSource == 'd2) & (dso_triggerSlope == 'b1);
assign rising0a1_req_nxt = (dso_triggerSource == 'd3) & (dso_triggerSlope == 'b0);
assign falling0a1_req_nxt = (dso_triggerSource == 'd3) & (dso_triggerSlope == 'b1);
assign rising0o1_req_nxt = (dso_triggerSource == 'd4) & (dso_triggerSlope == 'b0);
assign falling0o1_req_nxt = (dso_triggerSource == 'd4) & (dso_triggerSlope == 'b1);
always @(posedge core_clk or posedge core_rst)
begin
if (core_rst) begin
auto_req <= `D 1'b0;
rising0_req <= `D 1'b0;
falling0_req <= `D 1'b0;
rising1_req <= `D 1'b0;
falling1_req <= `D 1'b0;
rising0a1_req <= `D 1'b0;
falling0a1_req <= `D 1'b0;
rising0o1_req <= `D 1'b0;
falling0o1_req <= `D 1'b0;
end else begin
auto_req <= `D auto_req_nxt;
rising0_req <= `D rising0_req_nxt;
falling0_req <= `D falling0_req_nxt;
rising1_req <= `D rising1_req_nxt;
falling1_req <= `D falling1_req_nxt;
rising0a1_req <= `D rising0a1_req_nxt;
falling0a1_req <= `D falling0a1_req_nxt;
rising0o1_req <= `D rising0o1_req_nxt;
falling0o1_req <= `D falling0o1_req_nxt;
end
end
assign trigger_hit_nxt = (cfifo_wr & auto_req) ? 1'b1 :
(cfifo_wr & rising0_req & rising0_hit & cfifo_cnt >= dso_triggerPos) ? 1'b1 :
(cfifo_wr & falling0_req & falling0_hit & cfifo_cnt >= dso_triggerPos) ? 1'b1 :
(cfifo_wr & rising1_req & rising1_hit & cfifo_cnt >= dso_triggerPos) ? 1'b1 :
(cfifo_wr & falling1_req & falling1_hit & cfifo_cnt >= dso_triggerPos) ? 1'b1 :
(cfifo_wr & rising0a1_req & rising0_hit & rising1_hit & cfifo_cnt >= dso_triggerPos) ? 1'b1 :
(cfifo_wr & falling0a1_req & falling0_hit & falling1_hit & cfifo_cnt >= dso_triggerPos) ? 1'b1 :
(cfifo_wr & rising0o1_req & (rising0_hit | rising1_hit) & cfifo_cnt >= dso_triggerPos) ? 1'b1 :
(cfifo_wr & falling0o1_req & (falling0_hit | falling1_hit) & cfifo_cnt >= dso_triggerPos) ? 1'b1 :
(buf_rdy_1T & ~buf_rdy) ? 1'b0 : trigger_hit;
always @(posedge core_clk or posedge core_rst)
begin
if (core_rst) begin
trigger_hit <= `D 1'b0;
trigger_hit_1T <= `D 1'b0;
end else begin
trigger_hit <= `D trigger_hit_nxt;
trigger_hit_1T <= `D trigger_hit;
end
end
// -- trigger position processing
assign redunt_rd_nxt = ((trigger_hit & ~trigger_hit_1T) | (redunt_rd & redunt_cnt == 'b10)) ? 1'b0 :
((cfifo_almost_full & ~trigger_hit) | (trigger_hit_1T & redunt_cnt > 'b1)) ? 1'b1 : redunt_rd;
assign redunt_cnt_nxt = (sample_en & ~sample_en_1T) ? dso_triggerPos :
(trigger_hit & ~trigger_hit_1T) ? cfifo_cnt - dso_triggerPos :
(redunt_rd & trigger_hit_1T & redunt_cnt != 'b0) ? redunt_cnt - 1'b1 : redunt_cnt;
always @(posedge core_clk or posedge core_rst)
begin
if (core_rst) begin
redunt_rd <= `D 1'b0;
redunt_cnt <= `D 'b0;
end else begin
redunt_rd <= `D redunt_rd_nxt;
redunt_cnt <= `D redunt_cnt_nxt;
end
end
assign buf_rdy_nxt = (trigger_hit & redunt_cnt == 'b1 & cfifo_full) ? 1'b1 :
cfifo_empty ? 1'b0 : buf_rdy;
assign cfifo_rd = buf_rdy & ~afifo_prog_full & ~cfifo_empty & ~|fps_cnt;
assign fps_cnt_nxt = ((sample_en & ~sample_en_1T) | (~buf_rdy & buf_rdy_1T)) ? `FPS_MAX :
|fps_cnt ? fps_cnt - 1'b1 : fps_cnt;
always @(posedge core_clk or posedge core_rst)
begin
if (core_rst) begin
buf_rdy <= `D 1'b0;
buf_rdy_1T <= `D 1'b0;
cfifo_rd_1T <= `D 1'b0;
fps_cnt <= `D 'b0;
end else begin
buf_rdy <= `D buf_rdy_nxt;
buf_rdy_1T <= `D buf_rdy;
cfifo_rd_1T <= `D cfifo_rd;
fps_cnt <= `D fps_cnt_nxt;
end
end
reg [`DP_MAXBIT:0] cfifo_rd_cnt;
wire [`DP_MAXBIT:0] cfifo_rd_cnt_nxt;
assign cfifo_rd_cnt_nxt = cfifo_rd ? cfifo_rd_cnt + 1'b1 :
cfifo_full ? 'b0 : cfifo_rd_cnt;
always @(posedge core_clk or posedge core_rst)
begin
if (core_rst)
cfifo_rd_cnt <= `D 'b0;
else
cfifo_rd_cnt <= `D cfifo_rd_cnt_nxt;
end
// --
// continous buffer
// --
always @(posedge core_clk)
begin
sample_en_1T <= `D sample_en;
end
assign div_cnt_nxt = (sample_en & ~sample_en_1T) ? 23'b0 :
(capture_valid & (div_cnt == dso_sampleDivider)) ? 23'b0 :
buf_rdy ? 23'b0 :
(capture_valid & ~buf_rdy) ? div_cnt + 1'b1 : div_cnt;
assign capture_wr_nxt = capture_valid & (div_cnt == dso_sampleDivider);
assign cfifo_wr_nxt = capture_wr_nxt & ~buf_rdy;
assign cfifo_wr_cnt_nxt = (~buf_rdy & buf_rdy_1T) ? 'b0 :
(cfifo_wr & ~&cfifo_wr_cnt) ? cfifo_wr_cnt + 1'b1 : cfifo_wr_cnt;
assign cfifo_din_nxt = capture_data_1T;
always @(posedge core_clk or posedge core_rst)
begin
if (core_rst) begin
div_cnt <= `D 24'b0;
capture_wr <= `D 1'b0;
cfifo_wr <= `D 1'b0;
cfifo_wr_cnt <= `D 'b0;
cfifo_din <= `D 16'b0;
end else begin
div_cnt <= `D div_cnt_nxt;
capture_wr <= `D capture_wr_nxt;
cfifo_wr <= `D cfifo_wr_nxt;
cfifo_wr_cnt <= `D cfifo_wr_cnt_nxt;
cfifo_din <= `D cfifo_din_nxt;
end
end
cfifo cfifo (
.clk(core_clk), // input clk
.rst(core_rst), // input rst
.din(cfifo_din), // input [15 : 0] din
.wr_en(cfifo_wr), // input wr_en
.rd_en(redunt_rd | cfifo_rd), // input rd_en
.dout(cfifo_dout), // output [15 : 0] dout
.full(cfifo_full), // output full
.empty(cfifo_empty), // output empty
.prog_full(cfifo_almost_full),
.data_count(cfifo_cnt)
);
// --
// core --> sdram domain
// --
wire afifo_empty;
wire afifo_full;
wire afifo_prog_empty;
wire afifo_prog_full;
asyncfifo asyncfifo(
.wr_clk(core_clk), // input wr_clk
.wr_rst(core_rst), // input wr_rst
.rd_clk(sdram_clk), // input rd_clk
.rd_rst(sd_rst), // input rd_rst
.din(cfifo_dout), // input [15 : 0] din
.wr_en(cfifo_rd_1T), // input wr_en
.rd_en(rd_req & ~afifo_empty), // input rd_en
.dout(buf_rd_data), // output [15 : 0] dout
.full(afifo_full), // output full
.empty(afifo_empty), // output empty
.prog_full(afifo_prog_full), // output prog_full
.prog_empty(afifo_prog_empty) // output prog_empty
);
always @(posedge sdram_clk or posedge sd_rst)
begin
if (sd_rst) begin
buf_rd_valid <= `D 1'b0;
buf_rd_rdy <= `D 1'b0;
end else begin
buf_rd_valid <= `D rd_req & ~afifo_empty;
buf_rd_rdy <= `D rd_req & ~afifo_empty;
end
end
reg read_rdy;
wire read_rdy_nxt;
reg read_rdy_1T;
assign read_rdy_nxt = afifo_prog_full ? 1'b1 : read_rdy;
always @(posedge sdram_clk or posedge sd_rst)
begin
if (sd_rst) begin
read_rdy <= `D 1'b0;
read_rdy_1T <= `D 1'b0;
end else begin
read_rdy <= `D read_rdy_nxt;
read_rdy_1T <= `D read_rdy;
end
end
assign read_start = ~cons_mode ? wr_done : (read_rdy & ~read_rdy_1T);
endmodule /* module cons_buf (*/