53 Commits

Author SHA1 Message Date
81970c8b42 upd: new TB, sampler refactor 2026-07-21 16:54:06 +03:00
a528838741 fix: patch for sampler
upd: reflectometer TB readaout data task
2026-07-17 17:29:58 +03:00
04eb927a25 fix: encoding issues, generator explicit default state 2026-07-17 15:21:49 +03:00
4240604f26 sampler version with debugged OTR and debugged testbench 2026-07-17 13:38:47 +03:00
ef65dd1a97 upd: DUT fully working. TB tests WIP 2026-07-16 22:45:21 +03:00
71b825ef2c upd:
fix axi-stream interface definition;
successful TB DUT launch
2026-07-16 19:33:51 +03:00
d80f5ff31f fix: revert synchronizer changes (false changes) and sampler 2026-07-14 13:02:55 +03:00
493d6844c0 bug: TB tasks broken 2026-07-10 18:52:52 +03:00
11a9e97691 upd: reflectometer on axis bus iface + TB 2026-07-10 18:46:48 +03:00
0ba25a3541 add: vrtual DAC & ADC subsystem for TB
fix: makefile
upd: clocking wiz IP
2026-07-10 14:15:49 +03:00
64f94a90e6 add: virtual DAC (100%) and ADC (80%)
upd: makefile
2026-07-08 17:47:56 +03:00
7665afd50b add: half-baked reflectometer TB
fix: constraints port names;
ready: reflectometer top module
2026-07-08 14:56:51 +03:00
c3275d5b46 upd: ref 2026-07-07 15:12:48 +03:00
7b96fbddbf rtl: sampler modified 2026-07-07 15:05:14 +03:00
2282eb4e16 Merge branch 'dev/design' of https://git.radiophotonics.ru/baulin.fa/reflectometer_fpga_project into dev/design 2026-07-07 14:58:18 +03:00
287d855df4 rtl: sampler modified 2026-07-07 14:47:34 +03:00
725826b07c add: new reflectometer top design (not ready) 2026-07-03 16:32:48 +03:00
d878bac42a upd: new top design WIP 2026-06-30 17:21:49 +03:00
771225cd77 fix: post-implementation timing sim TB passed 2026-06-23 17:27:20 +03:00
b38a693676 fix: timing. New DAC-ADC line code 2026-06-20 09:33:33 +03:00
789255fa04 fix: add timing sim tricks 2026-06-20 04:05:37 +03:00
efcd6ef5d0 upd:
fast fix of sampler OTR.
fix debug.xdc
Major add of full automated testing for TB.
2026-06-20 03:07:05 +03:00
4fbecd5e30 upd: sync design log verbosity + optimal delay latency 2026-06-19 20:49:17 +03:00
d71aaf1650 fix: request/done protocol 2026-06-19 08:05:03 +03:00
035d02234c Merge branch 'dev/design' of https://git.radiophotonics.ru/baulin.fa/reflectometer_fpga_project into dev/design 2026-06-19 08:00:44 +03:00
4923f01322 upd: TB automation,
DA->AD delay line for signal integrity
2026-06-19 08:00:00 +03:00
45a57d57e4 sampler fix: made it beauty 2026-06-17 19:54:19 +03:00
29e1541ffb Merge branch 'dev/design' of https://git.radiophotonics.ru/baulin.fa/reflectometer_fpga_project into dev/design 2026-06-17 19:32:46 +03:00
fd9280737d fix: refactoring 2026-06-16 20:26:45 +03:00
64843b462d rtl: sampler validation changes 2026-06-10 17:07:40 +03:00
c0714f271e Merge remote-tracking branch 'refs/remotes/origin/dev/design' into dev/design 2026-06-10 16:44:00 +03:00
c165d346a0 update: new synchronizer + half-baked TB 2026-06-10 16:40:53 +03:00
753f4a2128 readme sampler modification 2026-06-10 16:31:02 +03:00
6155c6a9fb change: sampler remark 2 2026-06-10 16:23:20 +03:00
bb65aea4f1 change: sampler remarks 2026-06-10 16:22:05 +03:00
5d3b761b07 change: delete makefile 2026-06-10 16:16:33 +03:00
d7e46445d8 change: delete tb 2026-06-10 16:15:53 +03:00
cacfe04061 change: naming problem 2026-06-10 16:14:29 +03:00
4270c2fca8 rtl: final modified sampler 2026-06-10 15:50:39 +03:00
cf2985813a rtl: sampler synchronization modification 2026-06-10 13:10:50 +03:00
f670df9b54 Merge branch 'dev/design' of https://git.radiophotonics.ru/baulin.fa/reflectometer_fpga_project into dev/design 2026-06-10 12:01:57 +03:00
6542995930 change: remove DAC strobing generation. RTL+TB complete 2026-06-10 11:59:36 +03:00
b0e886893b rtl: sampler synchronization work, not totally ready 2026-06-09 21:07:09 +03:00
d90167984a update: doc 2026-06-09 16:47:16 +03:00
3a1d9c27e7 add: zero-level test. TB complete 2026-06-09 16:35:56 +03:00
c9aa2cde0f random config tests 2026-06-09 16:32:08 +03:00
ccd9964ada fix generator sync and complete randomized TB 2026-06-09 15:28:24 +03:00
1a3b811e75 add randomized tests for sync/rst/start longevity 2026-06-09 14:12:55 +03:00
9c74fe91e8 working generator and simple tb 2026-06-09 13:08:51 +03:00
c8e11a2a1f half-baked new generator 2026-05-29 18:16:43 +03:00
0a68a753be generator quick fix 2026-05-29 18:01:31 +03:00
906d5090cd reflectometer top testbench config update 2026-05-26 18:30:51 +03:00
dc761f31dc Add reflectometer testbench stable boilerplate with tasks 2026-05-22 17:07:15 +03:00
24 changed files with 2302 additions and 2277 deletions

4
.gitignore vendored
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@ -27,3 +27,7 @@ run_sim.tcl
*.xsa *.xsa
*.ltx *.ltx
*.bin *.bin
# slang files
.slang
files.f

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@ -27,6 +27,7 @@ XDC_FILES += ../../constraints/ax7102.xdc
XDC_FILES += debug.xdc XDC_FILES += debug.xdc
SYN_FILES += tb_sync_top.sv SYN_FILES += tb_sync_top.sv
SIM_TOP = tb_top SIM_TOP = tb_top

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@ -1,10 +1,12 @@
# Primary clocks # Primary clocks
create_clock -name eth_clk -period 8.000 [get_ports dac_clk_in] create_clock -name geneartor_clk -period 8.000 [get_ports clk_dac]
create_clock -name acc_clk -period 15.385 [get_ports adc_clk_in] create_clock -name sampler_clk -period 15.385 [get_ports clk_adc]
set_clock_groups -asynchronous -group [get_clocks geneartor_clk] -group [get_clocks sampler_clk]
# set_false_path -through [get_nets -hierarchical {*dac_signal* *internal_wire_singnal* *adc_singnal*}]
# set_false_path -through [get_nets {dac_done dac_done_stretched dac_request adc_done adc_request}]
# Asynchronous clock groups set_property DONT_TOUCH true [get_cells -hierarchical -filter {NAME =~ *generator_inst*pulse_height_reg*}]
set_property DONT_TOUCH true [get_cells -hierarchical -filter {NAME =~ *generator_inst*dac_out_reg*}]
set_clock_groups -name ASYNC_ETH_ACC -asynchronous \ # Применяем к самому проводу сигнала CE, чтобы Vivado не дробила его
-group [get_clocks eth_clk] \ # set_property DONT_TOUCH true [get_nets -of_objects [get_pins -hierarchical -filter {PIN_NAME =~ *CE} -of_objects [get_cells *pulse_height_reg*]]]
-group [get_clocks acc_clk]

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@ -2,113 +2,137 @@
module sync_top module sync_top
#( #(
parameter int unsigned DAC_DATA_WIDTH = 14, parameter int unsigned DAC_DATA_WIDTH = 14, // DAC bit-width
parameter int unsigned ADC_DATA_WIDTH = 12, parameter int unsigned ADC_DATA_WIDTH = 12, // ADC bit-width
parameter int unsigned PACK_FACTOR = 1, parameter int unsigned PACK_FACTOR = 1, // number of ADC readings per transaction
parameter int unsigned PROCESS_MODE = 0 parameter int unsigned PROCESS_MODE = 0, // representation format of ADC readings (0 - direct code, 1 - 2's completment)
parameter int unsigned ZERO_LEVEL = 0,
parameter int unsigned USE_DELAY_LINE = 0
) )
( (
input adc_clk_in, input clk_adc,
input adc_rst, input rst_adc,
input clk_dac,
input dac_clk_in, input rst_dac,
input dac_rst, input start,
input out_of_range,
input dac_start,
input [31:0] pulse_width, input [31:0] pulse_width,
input [31:0] pulse_period, input [31:0] pulse_period, // DAC counter limit
input [DAC_DATA_WIDTH-1:0] pulse_height, input [DAC_DATA_WIDTH-1:0] pulse_height,
input [15:0] pulse_num, input [15:0] pulse_num,
input [31:0] smp_num, input [31:0] smp_num, // ADC counter limit
output [ADC_DATA_WIDTH*PACK_FACTOR-1:0] m_axis_tdata,
output logic [ADC_DATA_WIDTH*PACK_FACTOR-1:0] m_axis_tdata, output m_axis_tvalid
output logic m_axis_tvalid
); );
//------------------------------------------------------------ //------------------------------------------------------------
// Internal signals // Internal signals
//------------------------------------------------------------ //------------------------------------------------------------
wire dac_done, dac_request, adc_done, adc_request;
wire [DAC_DATA_WIDTH-1:0] dac_signal;
wire [ADC_DATA_WIDTH-1:0] internal_wire_signal;
wire [ADC_DATA_WIDTH-1:0] adc_signal;
(* MARK_DEBUG="true" *) logic sample_req; // 1. Адаптация разрядности и «заземление» лишних бит
(* MARK_DEBUG="true" *) logic sample_req_sync1; generate
(* MARK_DEBUG="true" *) logic sample_req_sync2; if (ADC_DATA_WIDTH > DAC_DATA_WIDTH) begin : g_pad_zeros
(* MARK_DEBUG="true" *) logic sample_req_sync3; // АЦП шире ЦАП: добиваем нулями старшие биты
assign internal_wire_signal = { {(ADC_DATA_WIDTH - DAC_DATA_WIDTH){1'b0}}, dac_signal };
end
else if (ADC_DATA_WIDTH < DAC_DATA_WIDTH) begin : g_truncate
// ЦАП шире АЦП (например, 14 -> 12): забираем младшие биты
assign internal_wire_signal = dac_signal[DAC_DATA_WIDTH-1:DAC_DATA_WIDTH-ADC_DATA_WIDTH];
// (* mark_debug = "true" *) wire dummy;
// assign dummy = ^dac_signal;
end
else begin : g_match
// Разрядности равны
assign internal_wire_signal = dac_signal;
end
endgenerate
(* MARK_DEBUG="true" *) logic sample_done; generate
(* MARK_DEBUG="true" *) logic sample_done_sync1; if (USE_DELAY_LINE > 0) begin : g_delay_line
(* MARK_DEBUG="true" *) logic sample_done_sync2; localparam int DELAY_LENGTH = USE_DELAY_LINE;
(* MARK_DEBUG="true" *) logic sample_done_sync3; // Двумерный массив для линии задержки
logic [DELAY_LENGTH-1:0][ADC_DATA_WIDTH-1:0] signal_delay_line;
(* MARK_DEBUG="true" *) logic pulse; always_ff @(posedge clk_dac) begin
(* MARK_DEBUG="true" *) logic [DAC_DATA_WIDTH-1:0] pulse_height_out; signal_delay_line[0] <= internal_wire_signal;
for (int i = 0; i < DELAY_LENGTH-1; i++) begin
signal_delay_line[i+1] <= signal_delay_line[i];
end
end
//------------------------------------------------------------ // ИСПРАВЛЕНО: читаем из последнего элемента массива
// Simple DAC -> ADC test source assign adc_signal = signal_delay_line[DELAY_LENGTH-1];
// end
// generator output is directly connected to sampler input else begin : g_no_delay
// with width truncation: assign adc_signal = internal_wire_signal;
// end
// pulse_height_out[13:0] -> data_in[11:0] endgenerate
//------------------------------------------------------------
(* MARK_DEBUG="true" *) logic [ADC_DATA_WIDTH-1:0] data_in;
(* MARK_DEBUG="true" *) logic out_of_range;
assign data_in = pulse_height_out[ADC_DATA_WIDTH-1:0];
assign out_of_range = 1'b0;
//------------------------------------------------------------ //------------------------------------------------------------
// DAC -> ADC CDC // DAC -> ADC CDC
//------------------------------------------------------------ //------------------------------------------------------------
always_ff @(posedge adc_clk_in or posedge adc_rst) begin logic [2:0] stretch; // 125/65~=2. Чтобы поймать единичный импульс, растянем его во времени
if (adc_rst) begin logic [1:0] sync_DA;
sample_req <= 1'b0; wire dac_done_stretched;
sample_req_sync2 <= 1'b0;
sample_req_sync3 <= 1'b0; always_ff @(posedge clk_dac or posedge rst_dac)
end begin
if (rst_dac)
stretch <= 0;
else begin else begin
sample_req_sync2 <= sample_req_sync1; stretch[0] <= dac_done;
sample_req_sync3 <= sample_req_sync2; stretch[1] <= stretch[0];
sample_req <= sample_req_sync3; stretch[2] <= stretch[1];
end end
end end
assign dac_done_stretched = |stretch;
always_ff @(posedge clk_adc or posedge rst_adc) begin
if (rst_adc)
sync_DA <= 0;
else begin
sync_DA[0] <= dac_done_stretched;
sync_DA[1] <= sync_DA[0];
end
end
assign adc_request = sync_DA[1];
//------------------------------------------------------------ //------------------------------------------------------------
// ADC -> DAC CDC // ADC -> DAC CDC
//------------------------------------------------------------ //------------------------------------------------------------
always_ff @(posedge dac_clk_in or posedge dac_rst) begin logic [1:0] sync_AD;
if (dac_rst) begin
sample_done <= 1'b0; always_ff @(posedge clk_dac or posedge rst_dac) begin
sample_done_sync2 <= 1'b0; if (rst_dac)
sample_done_sync3 <= 1'b0; sync_AD <= 0;
end
else begin else begin
sample_done_sync2 <= sample_done_sync1; sync_AD[0] <= adc_done;
sample_done_sync3 <= sample_done_sync2; sync_AD[1] <= sync_AD[0];
sample_done <= sample_done_sync3;
end end
end end
assign dac_request = sync_AD[1];
//------------------------------------------------------------ //------------------------------------------------------------
// Generator // Generator
//------------------------------------------------------------ //------------------------------------------------------------
generator #( generator #(
.DATA_WIDTH(DAC_DATA_WIDTH) .DATA_WIDTH(DAC_DATA_WIDTH),
.ZERO_LEVEL(ZERO_LEVEL)
) generator_inst ( ) generator_inst (
.clk_in(dac_clk_in), .clk_dac(clk_dac),
.rst(dac_rst), .rst(rst_dac),
.start(dac_start), .start(start),
.pulse_width(pulse_width), .pulse_width(pulse_width),
.pulse_period(pulse_period), .pulse_period(pulse_period),
.pulse_height(pulse_height), .pulse_height(pulse_height),
.pulse_num(pulse_num), .pulse_num(pulse_num),
.dac_out(dac_signal),
.sample_done(sample_done), .request(dac_request),
.done(dac_done)
.pulse(pulse),
.pulse_height_out(pulse_height_out),
.sample_req(sample_req_sync1)
); );
//------------------------------------------------------------ //------------------------------------------------------------
@ -119,18 +143,15 @@ module sync_top
.PACK_FACTOR(PACK_FACTOR), .PACK_FACTOR(PACK_FACTOR),
.PROCESS_MODE(PROCESS_MODE) .PROCESS_MODE(PROCESS_MODE)
) sampler_inst ( ) sampler_inst (
.clk_in(adc_clk_in), .clk_in(clk_adc),
.rst(adc_rst), .rst(rst_adc),
.data_in(adc_signal),
.data_in(data_in),
.out_of_range(out_of_range), .out_of_range(out_of_range),
.smp_num(smp_num), .smp_num(smp_num),
.sample_req(sample_req),
.m_axis_tdata(m_axis_tdata), .m_axis_tdata(m_axis_tdata),
.m_axis_tvalid(m_axis_tvalid), .m_axis_tvalid(m_axis_tvalid),
.sample_done(sample_done_sync1) .request(adc_request),
.done(adc_done)
); );
endmodule endmodule

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@ -2,39 +2,50 @@
module tb_top; module tb_top;
localparam DAC_DATA_WIDTH = 14; //------------------------------------------------------------
localparam ADC_DATA_WIDTH = 12; // Параметры
localparam PACK_FACTOR = 1; //------------------------------------------------------------
localparam PROCESS_MODE = 0; parameter string ZERO_LEVEL_PARAM = "logic"; // "logic" VS "true"
parameter VERBOSE = 1;
localparam DAC_DATA_WIDTH = 14;
localparam ADC_DATA_WIDTH = 12;
localparam PACK_FACTOR = 1;
localparam PROCESS_MODE = 0;
localparam CLK_DAC_PERIOD = 8;
localparam CLK_ADC_PERIOD = 15.385;
localparam USE_DELAY_LINE = 0;
localparam LOGIC_ZERO_LEVEL = 0; // DAC -5V for logic zero
localparam VOLTAGE_ZERO_LEVEL = 2**(DAC_DATA_WIDTH-1); // DAC 0V for logic zero
localparam ZERO_LEVEL = (ZERO_LEVEL_PARAM == "logic") ? LOGIC_ZERO_LEVEL : VOLTAGE_ZERO_LEVEL;
localparam CLOCK_DEVIATION = 3; // Maximum clock deviation of pulse stats
//------------------------------------------------------------ //------------------------------------------------------------
// clocks / reset // Тактовые сигналы и сброс
//------------------------------------------------------------ //------------------------------------------------------------
logic adc_clk_in; logic clk_dac;
logic adc_rst; logic rst_dac;
logic clk_adc;
logic dac_clk_in; logic rst_adc;
logic dac_rst;
//------------------------------------------------------------ //------------------------------------------------------------
// control // Управление и конфиг
//------------------------------------------------------------ //------------------------------------------------------------
logic dac_start; logic dac_start;
logic [31:0] pulse_width;
logic [31:0] pulse_width; logic [31:0] pulse_period;
logic [31:0] pulse_period; logic [DAC_DATA_WIDTH-1:0] pulse_height;
logic [DAC_DATA_WIDTH-1:0] pulse_height; logic [15:0] pulse_num;
logic [15:0] pulse_num; logic [31:0] smp_num;
logic [31:0] smp_num;
//------------------------------------------------------------ //------------------------------------------------------------
// outputs // Входы
//------------------------------------------------------------ //------------------------------------------------------------
logic [ADC_DATA_WIDTH*PACK_FACTOR-1:0] m_axis_tdata; reg out_of_range;
logic m_axis_tvalid; //------------------------------------------------------------
// Выходы
integer valid_count; //------------------------------------------------------------
wire [ADC_DATA_WIDTH*PACK_FACTOR-1:0] m_axis_tdata;
wire m_axis_tvalid;
//------------------------------------------------------------ //------------------------------------------------------------
// DUT // DUT
//------------------------------------------------------------ //------------------------------------------------------------
@ -42,127 +53,521 @@ module tb_top;
.DAC_DATA_WIDTH(DAC_DATA_WIDTH), .DAC_DATA_WIDTH(DAC_DATA_WIDTH),
.ADC_DATA_WIDTH(ADC_DATA_WIDTH), .ADC_DATA_WIDTH(ADC_DATA_WIDTH),
.PACK_FACTOR(PACK_FACTOR), .PACK_FACTOR(PACK_FACTOR),
.PROCESS_MODE(PROCESS_MODE) .PROCESS_MODE(PROCESS_MODE),
.ZERO_LEVEL(ZERO_LEVEL),
.USE_DELAY_LINE(USE_DELAY_LINE)
) dut ( ) dut (
.adc_clk_in(adc_clk_in), .clk_adc(clk_adc),
.adc_rst(adc_rst), .clk_dac(clk_dac),
.rst_adc(rst_adc),
.dac_clk_in(dac_clk_in), .rst_dac(rst_dac),
.dac_rst(dac_rst), .start(dac_start),
.dac_start(dac_start),
.pulse_width(pulse_width), .pulse_width(pulse_width),
.pulse_period(pulse_period), .pulse_period(pulse_period),
.pulse_height(pulse_height), .pulse_height(pulse_height),
.pulse_num(pulse_num), .pulse_num(pulse_num),
.smp_num(smp_num), .smp_num(smp_num),
.m_axis_tdata(m_axis_tdata), .m_axis_tdata(m_axis_tdata),
.m_axis_tvalid(m_axis_tvalid) .m_axis_tvalid(m_axis_tvalid),
.out_of_range(out_of_range)
); );
//------------------------------------------------------------ // Тактовые сигналы
// ADC clock
//------------------------------------------------------------
initial begin initial begin
adc_clk_in = 1'b0; clk_adc = 0;
forever #5 adc_clk_in = ~adc_clk_in; // 100 MHz forever #(CLK_ADC_PERIOD/2) clk_adc = ~clk_adc;
end
initial begin
clk_dac = 0;
forever #(CLK_DAC_PERIOD/2) clk_dac = ~clk_dac;
end end
//------------------------------------------------------------ // === Таски для тестирования ===
// DAC clock // Функция модуля
//------------------------------------------------------------ function automatic real fabs(real val);
initial begin return (val < 0.0) ? -val : val;
dac_clk_in = 1'b0; endfunction
forever #8 dac_clk_in = ~dac_clk_in; // slower domain
end
//------------------------------------------------------------ `define MIN(x, y) (((x) < (y)) ? (x) : (y))
// monitor output stream
//------------------------------------------------------------
always @(posedge adc_clk_in) begin
if (m_axis_tvalid) begin
valid_count = valid_count + 1;
$display("[%0t] VALID: data=%0d", // Таска сброса DAC DUT
$time, task automatic reset_dut_dac(
m_axis_tdata); input int rst_duration // сколько тактов держать сброс
);
@(negedge clk_dac);
rst_dac <= 1;
repeat(rst_duration) @(negedge clk_dac);
rst_dac <= 0;
endtask
// Таска сброса ADC DUT
task automatic reset_dut_adc(
input int rst_duration // сколько тактов держать сброс
);
@(negedge clk_adc);
rst_adc <= 1;
repeat(rst_duration) @(negedge clk_adc);
rst_adc <= 0;
endtask
// Таска запуска DUT
task automatic start_dut(
input int start_duration // сколько тактов держать импульс
);
@(negedge clk_dac); // to make signal stable
dac_start <= 1;
repeat(start_duration) @(negedge clk_dac);
dac_start <= 0;
endtask
// Таска конфигурации DUT
task automatic set_config(
input logic [31:0] w, // ширина импульса
input logic [31:0] p, // период импульса
input logic [15:0] n, // количество импульсов
input logic [DAC_DATA_WIDTH-1:0] h, // высота импульса
input logic [31:0] sn // число сэмплов
);
// Задаем конфигурационные регистры
pulse_width <= w;
pulse_period <= p;
pulse_num <= n;
pulse_height <= h;
smp_num <= sn;
endtask
// Основная таска проверки DUT
task automatic run_test_case(
input int pulse_width,
input int pulse_period,
input int pulse_height,
input int pulse_num,
input int sample_num,
input bit skip_reset,
input bit randomize_start_timing,
input bit out_of_range_val,
input bit randomize_out_of_range
);
int error_flag = 0;
int start_hold_time = 1;
realtime sync_start_time, pulse_start_time, pulse_update_val_time;
realtime sync_time_stats[$], pulse_width_time_stats[$], pulse_period_time_stats[$], pulse_delay_time_stats[$];
realtime avearge_pulse_delay, average_pulse_width, average_pulse_period, average_sync_time;
out_of_range = out_of_range_val;
if (VERBOSE >= 2) begin
$display("[TB] -run_test_case- Starting test case");
end end
end
//------------------------------------------------------------ if (randomize_out_of_range)
// test fork
//------------------------------------------------------------ begin : randomize_out_of_range_proc
forever begin
@(posedge clk_adc);
out_of_range = $urandom_range(0, 1);
end
end
join_none
if (!skip_reset)
fork
reset_dut_adc(1);
reset_dut_dac(1);
join
set_config(
.w(pulse_width),
.p(pulse_period),
.n(pulse_num),
.h(pulse_height),
.sn(sample_num)
);
@(posedge clk_dac);
@(posedge clk_dac);
if (randomize_start_timing)
start_hold_time = $urandom_range(1, 15);
fork // warning: check not forever
start_dut(start_hold_time);
begin
@(posedge clk_dac);
// старт первой синхронизации
sync_start_time = $realtime;
end
join_none
if (VERBOSE >= 2) begin
$display("[TB] -run_test_case- Starting pulse generation");
end
for (int i = 0; i < pulse_num; i++) begin
if (VERBOSE >= 3) begin
$display("[TB] -run_test_case- Start sync for pulse #%d", i);
end
@(posedge m_axis_tvalid);
if (VERBOSE >= 3) begin
$display("[TB] -run_test_case- Found valid pulse response data positive front");
end
// Старт цикла. Завершение синхронизации
sync_time_stats.push_back($realtime - sync_start_time);
pulse_start_time = $realtime;
fork
// Поток будет запущен для ненулевых импульсов и гарантированно завершится как только зафиксирует статистику импульса
// Начало импульса
if (pulse_height != ZERO_LEVEL && pulse_width != 0) begin
if (VERBOSE >= 4) begin
$display("[TB] -run_test_case- Wait until pulse become high");
end
wait(m_axis_tdata != ZERO_LEVEL);
// Фактическое начало импульса. Поступление высокого уровня
pulse_update_val_time = $realtime;
pulse_delay_time_stats.push_back(pulse_update_val_time - pulse_start_time);
// Проверим что высота импульса совпала с заданной. Т.к. OTR != 0 влияет на выходные данные сэмплера, то не будем проверять такие случаи.
@(posedge clk_adc);
#1.5; // Ожидание завершения переходных процессов
// Будем считать что из-за OTR данные изменились (по условию OTR + MSB), проверка пропускается, т.к. сложно понять точное значение OTR в момент обработки данных от tdata
if (m_axis_tdata != (pulse_height >> 2) && (randomize_out_of_range || out_of_range_val)) begin
$display("[ERROR] -run_test_case- Wrong pulse height: %d. Must be: %d", m_axis_tdata, pulse_height >> 2);
$finish;
end
if (VERBOSE >= 4) begin
$display("[TB] -run_test_case- Wait until pulse become low");
end
wait(m_axis_tdata == ZERO_LEVEL);
pulse_width_time_stats.push_back($realtime - pulse_update_val_time);
end
// Конец импульса
join_none
@(negedge m_axis_tvalid);
if (VERBOSE >= 3) begin
$display("[TB] -run_test_case- Found valid pulse response data negative front");
end
// Завершение цикла. Старт синхронизации
pulse_period_time_stats.push_back($realtime - pulse_start_time);
sync_start_time = $realtime;
end
if (VERBOSE >= 2) begin
$display("[TB] -run_test_case- Stop pulse generation");
end
fork // Проверка с таймаутом на лишние циклы
@(posedge m_axis_tvalid);
repeat(30) @(posedge clk_adc);
join_any
if (m_axis_tvalid == 1) begin
$display("[ERROR] -run_test_case- Extra pulse cycle num. More than must be.");
$finish;
end
if (VERBOSE >= 2) begin
$display("[TB] -run_test_case- Exit waiting via timeout");
end
if (randomize_out_of_range) begin
disable randomize_out_of_range_proc;
if (VERBOSE >= 2) begin
$display("[TB] -run_test_case- Stop randomize_out_of_range_proc");
end
end
out_of_range = 0;
// Проверка по статистике. Подсчет средних значений
if (pulse_delay_time_stats.size() != pulse_num && pulse_height != ZERO_LEVEL && pulse_width != 0 && !(randomize_out_of_range || out_of_range_val)) begin // Detected with pulse level. Skip if pulse level undetectable
$display("[ERROR] -run_test_case- Size of pulse_delay_time_stats samples not equal to pulse_num: %d VS %d", pulse_delay_time_stats.size(), pulse_num);
$finish;
end
if (pulse_width_time_stats.size() != pulse_num && pulse_height != ZERO_LEVEL && pulse_width != 0 && !(randomize_out_of_range || out_of_range_val)) begin // Detected with pulse level. Skip if pulse level undetectable
$display("[ERROR] -run_test_case- Size of pulse_width_time_stats samples not equal to pulse_num: %d VS %d", pulse_width_time_stats.size(), pulse_num);
$finish;
end
if (pulse_period_time_stats.size() != pulse_num) begin
$display("[ERROR] -run_test_case- Size of pulse_period_time_stats samples not equal to pulse_num: %d VS %d", pulse_period_time_stats.size(), pulse_num);
$finish;
end
if (sync_time_stats.size() != pulse_num) begin
$display("[ERROR] -run_test_case- Size of sync_time_stats samples not equal to pulse_num: %d VS %d", sync_time_stats.size(), pulse_num);
$finish;
end
avearge_pulse_delay = 0;
foreach (pulse_delay_time_stats[i])
avearge_pulse_delay += pulse_delay_time_stats[i];
avearge_pulse_delay /= pulse_num;
average_pulse_width = 0;
foreach (pulse_width_time_stats[i])
average_pulse_width += pulse_width_time_stats[i];
average_pulse_width /= pulse_num;
average_pulse_period = 0;
foreach (pulse_period_time_stats[i])
average_pulse_period += pulse_period_time_stats[i];
average_pulse_period /= pulse_num;
average_sync_time = 0;
foreach (sync_time_stats[i])
average_sync_time += sync_time_stats[i];
average_sync_time /= pulse_num;
if (VERBOSE >= 1) begin
$display("[TB] -run_test_case- Pulse test stats:\n\tavearge_pulse_delay: %0.3f\n\taverage_pulse_width: %0.3f\n\taverage_pulse_period: %0.3f\n\taverage_sync_time: %0.3f", avearge_pulse_delay, average_pulse_width, average_pulse_period, average_sync_time);
end
if (avearge_pulse_delay > CLOCK_DEVIATION * CLK_ADC_PERIOD) begin
$display("[ERROR] -run_test_case- avearge_pulse_delay too big: %0.3f", avearge_pulse_delay);
error_flag = 1;
end
if (fabs(average_pulse_width - pulse_width * CLK_DAC_PERIOD * (pulse_height != ZERO_LEVEL)) > CLOCK_DEVIATION * CLK_ADC_PERIOD && sample_num * CLK_ADC_PERIOD >= pulse_width * CLK_DAC_PERIOD) begin
$display("[ERROR] -run_test_case- average_pulse_width deviates from choosen pulse_width. Deviation: %0.3f > %0.3f ns", fabs(average_pulse_width - pulse_width * CLK_DAC_PERIOD), CLOCK_DEVIATION * CLK_ADC_PERIOD);
error_flag = 1;
end
if (fabs(average_pulse_period - sample_num * CLK_ADC_PERIOD) > CLOCK_DEVIATION * CLK_ADC_PERIOD) begin
$display("[ERROR] -run_test_case- average_pulse_period deviates from choosen pulse_width. Deviation: %0.3f > %0.3f ns", fabs(average_pulse_period - sample_num * CLK_ADC_PERIOD), CLOCK_DEVIATION * CLK_ADC_PERIOD);
error_flag = 1;
end
if (VERBOSE >= 2) begin
$display("[TB] -run_test_case- Pass error processing");
end
if (error_flag)
$finish;
if (VERBOSE >= 2) begin
$display("[TB] -run_test_case- Passed checks");
end
endtask
// Таска
// --- ОСНОВНОЙ ПРОЦЕСС ТЕСТИРОВАНИЯ ---
initial begin initial begin
$display("[TB] Tests start");
adc_rst = 1'b1; // Инициализация
dac_rst = 1'b1; dac_start = 0;
dac_start = 1'b0;
pulse_width = 0; pulse_width = 0;
pulse_period = 0; pulse_period = 0;
pulse_height = 0; pulse_height = 0;
pulse_num = 0; pulse_num = 0;
smp_num = 0; smp_num = 0;
out_of_range = 0;
rst_adc = 0;
rst_dac = 0;
valid_count = 0; #100; // init
//-------------------------------------------------------- $display("[TB] Test 1. Simple test. (1/4)");
// reset run_test_case(
//-------------------------------------------------------- .pulse_width(50),
repeat (10) @(posedge adc_clk_in); .pulse_period(125),
repeat (10) @(posedge dac_clk_in); .pulse_height(2**DAC_DATA_WIDTH-1),
.pulse_num(5),
.sample_num(65),
.skip_reset(0),
.randomize_start_timing(1),
.out_of_range_val(0),
.randomize_out_of_range(0)
);
$display("[TB] Test 1. Simple test. (2/4)");
run_test_case(
.pulse_width(25),
.pulse_period(125),
.pulse_height(2**(ADC_DATA_WIDTH-1)),
.pulse_num(10),
.sample_num(65),
.skip_reset(1),
.randomize_start_timing(1),
.out_of_range_val(0),
.randomize_out_of_range(0)
);
$display("[TB] Test 1. Simple test. (3/4)");
run_test_case(
.pulse_width(10),
.pulse_period(50),
.pulse_height(ZERO_LEVEL),
.pulse_num(4),
.sample_num(25),
.skip_reset(1),
.randomize_start_timing(1),
.out_of_range_val(0),
.randomize_out_of_range(0)
);
adc_rst = 1'b0; $display("[TB] Test 1. Simple test. (4/4)");
dac_rst = 1'b0; run_test_case(
.pulse_width(25),
.pulse_period(125),
.pulse_height(2**(DAC_DATA_WIDTH-1)),
.pulse_num(10),
.sample_num(65),
.skip_reset(1),
.randomize_start_timing(1),
.out_of_range_val(0),
.randomize_out_of_range(0)
);
$display("[TB] Test 1 complete");
repeat (5) @(posedge dac_clk_in); $display("[TB] Test 2. Edge cases. Pulse width 0%%. (1/7)");
run_test_case(
.pulse_width(0),
.pulse_period(125),
.pulse_height(2**(ADC_DATA_WIDTH-1)),
.pulse_num(5),
.sample_num(65),
.skip_reset(1),
.randomize_start_timing(1),
.out_of_range_val(0),
.randomize_out_of_range(0)
);
$display("[TB] Test 2. Edge cases. Pulse width 100%%. (2/7)");
run_test_case(
.pulse_width(10),
.pulse_period(10),
.pulse_height(2**(ADC_DATA_WIDTH-1)),
.pulse_num(5),
.sample_num(65),
.skip_reset(1),
.randomize_start_timing(1),
.out_of_range_val(0),
.randomize_out_of_range(0)
);
$display("[TB] Test 2. Edge cases. Pulse height == ZERO_LEVEL. (3/7)");
run_test_case(
.pulse_width(10),
.pulse_period(125),
.pulse_height(ZERO_LEVEL),
.pulse_num(5),
.sample_num(65),
.skip_reset(1),
.randomize_start_timing(1),
.out_of_range_val(0),
.randomize_out_of_range(0)
);
$display("[TB] Test 2. Edge cases. Pulse num == 0. (4/7)");
run_test_case(
.pulse_width(10),
.pulse_period(125),
.pulse_height(2**(ADC_DATA_WIDTH-3)),
.pulse_num(0),
.sample_num(65),
.skip_reset(1),
.randomize_start_timing(1),
.out_of_range_val(0),
.randomize_out_of_range(0)
);
//-------------------------------------------------------- $display("[TB] Test 2. Edge cases. Sample num time << Pulse width time. (5/7)");
// config run_test_case(
//-------------------------------------------------------- .pulse_width(10),
pulse_width = 32'd3; .pulse_period(125),
pulse_period = 32'd8; .pulse_height(2**(ADC_DATA_WIDTH-1)),
pulse_height = 14'd200; .pulse_num(5),
pulse_num = 16'd4; .sample_num(2),
smp_num = 32'd8; .skip_reset(1),
.randomize_start_timing(1),
.out_of_range_val(0),
.randomize_out_of_range(0)
);
//-------------------------------------------------------- // Ожидание окончания работы генератора. Т.к. конец работы определяется по tvalid сэмплера, а он завершается сильно раньше. Чтобы не пропустить start следующей таски, ждем
// start wait(dut.generator_inst.enable == 0);
//-------------------------------------------------------- #50;
@(posedge dac_clk_in);
dac_start = 1'b1;
@(posedge dac_clk_in); $display("[TB] Test 2. Edge cases. Sample num == 0. (6/7)");
dac_start = 1'b0; // Запустим в работу вручную, т.к. run_test_case обязательно ждет pulse num циклов. Детекция цикла производится по активности сэплера. Ее не должно быть при sample num = 0
set_config(
.w(10),
.p(125),
.h(2**(ADC_DATA_WIDTH-1)),
.n(5),
.sn(0)
);
start_dut(3);
fork
begin : wait_sampler_active_proc
@(posedge m_axis_tvalid);
$display("[ERROR] Sampler active with sample num == 0");
$finish;
end
begin
@(negedge dut.generator_inst.enable);
end
join_any
disable wait_sampler_active_proc;
repeat(30) @(posedge clk_adc);
$display("=================================="); // Данный тест должен приводить к тому, что сэмплер будет давать крайние значения вместо заданного pulse height из-за OTR=1
$display("TEST START"); // Дописать авто тест
$display("=================================="); $display("[TB] Test 2. Edge cases. OTR == 1. (7/7)");
run_test_case(
.pulse_width(10),
.pulse_period(125),
.pulse_height(10), // goes to 0x0..
.pulse_num(5),
.sample_num(65),
.skip_reset(1),
.randomize_start_timing(1),
.out_of_range_val(1),
.randomize_out_of_range(0)
);
$display("[TB] Test 2. Edge cases. OTR == 1. (7-2/7)");
run_test_case(
.pulse_width(10),
.pulse_period(125),
.pulse_height(14'b11010000000000), // goes to 0xff..
.pulse_num(5),
.sample_num(65),
.skip_reset(1),
.randomize_start_timing(1),
.out_of_range_val(1),
.randomize_out_of_range(0)
);
$display("[TB] Test 2 complete");
//-------------------------------------------------------- $display("[TB] Test 3. Random tests");
// wait for (int i = 0; i < 100; i++) begin
//-------------------------------------------------------- int r_w, r_p, r_n, r_h, r_sn;
repeat (600) @(posedge adc_clk_in); bit r_skip, r_otr, r_otr_rand;
//-------------------------------------------------------- // Генерируем параметры
// check r_p = $urandom_range(50, 150); // Период от 5 до 50
//-------------------------------------------------------- r_w = $urandom_range(10, r_p); // Ширина не больше периода
if (valid_count > 0) begin r_n = $urandom_range(1, 10); // Количество импульсов
$display("=================================="); r_h = $urandom_range(0, 2**(`MIN(ADC_DATA_WIDTH, DAC_DATA_WIDTH))-1); // Высота импульса
$display("TEST PASSED"); r_sn = $urandom_range(2, 40); // Число сэмплов
$display("valid_count = %0d", valid_count); r_skip = $urandom_range(0, 1); // Случайный сброс (0 - сброс, 1 - пропуск)
$display("=================================="); r_otr = 0; // Out Of Range стартовое значение
end r_otr_rand = 0; // Сделать OTR случайным
else begin
$display("=================================="); if (VERBOSE >= 1)
$display("TEST FAILED"); $display("[TB] --- Test #%0d (Config: W=%0d, P=%0d, N=%0d, H=%0d, SN=%0d, SkipReset=%0b) ---",
$display("No valid output detected"); i+1, r_w, r_p, r_n, r_h, r_sn, r_skip);
$display("==================================");
run_test_case(
.pulse_width(r_w),
.pulse_period(r_p),
.pulse_height(r_h),
.pulse_num(r_n),
.sample_num(r_sn),
.skip_reset(r_skip),
.randomize_start_timing(0),
.out_of_range_val(r_otr),
.randomize_out_of_range(r_otr_rand)
);
wait(dut.generator_inst.enable == 0); // Проверка на завершение работы
#50;
end end
$display("[TB] Test 3 complete");
$display("[TB] ALL PASSED");
$display("[TB] Maximum clock deviation of stats %0.2f", CLOCK_DEVIATION);
$finish; $finish;
end end

View File

@ -10,13 +10,21 @@
FPGA_PART = xc7a100tfgg484-2 FPGA_PART = xc7a100tfgg484-2
FPGA_TOP = reflectometer_top FPGA_TOP = reflectometer_top
FPGA_ARCH = artix7 FPGA_ARCH = artix7
SIM_TOP = reflectometer_tb
RTL_DIR = ../../rtl RTL_DIR = ../../rtl
include ../../scripts/vivado.mk include ../../scripts/vivado.mk
INC_FILES += interfaces.svh
TB_FILES += reflectometer_tb.sv
SYN_FILES += reflectometer.sv SYN_FILES += reflectometer.sv
SYN_FILES += dac_model.sv
SYN_FILES += adc_model.sv
SYN_FILES += reflectometer_tb.sv
SYN_FILES += $(sort $(shell find ../../rtl -type f \( -name '*.v' -o -name '*.sv' \))) SYN_FILES += $(sort $(shell find ../../rtl -type f \( -name '*.v' -o -name '*.sv' \)))
XCI_FILES = $(sort $(shell find ../../rtl/ethernet-udp/src -type f -name '*.xci')) XCI_FILES = $(sort $(shell find ../../rtl/ethernet-udp/src -type f -name '*.xci'))

View File

@ -0,0 +1,59 @@
// AN9238 virtual ADC model (1 port)
module virtual_adc_model #(
parameter int unsigned ADC_DATA_WIDTH = 12,
// Bipolar input range: +/- VOLTAGE_RANGE
parameter real VOLTAGE_RANGE = 1.0,
// Analog input correction
parameter real VOLTAGE_GAIN = 0.2,
parameter real GROUND_BIAS = 0.0,
// ADC timing parameters
parameter time CONVERSION_DELAY = 250ps
)(
input logic clk_i,
input real voltage_i,
output logic otr_o,
output logic [ADC_DATA_WIDTH-1:0] data_o
);
localparam int unsigned ZERO_CODE = (1 << (ADC_DATA_WIDTH - 1));
localparam real VOLTAGE_STEP = (2 * VOLTAGE_RANGE) / real'((1 << ADC_DATA_WIDTH) - 1);
real voltage_corrected;
//------------------------------------------------------------
// Convert analog voltage to ADC code
//------------------------------------------------------------
function automatic logic [ADC_DATA_WIDTH-1:0] voltage_to_code( input real voltage );
if (voltage <= -VOLTAGE_RANGE) return '0;
if (voltage >= VOLTAGE_RANGE) return {ADC_DATA_WIDTH{1'b1}};
return $rtoi(voltage / VOLTAGE_STEP + real'((ZERO_CODE)) + 0.5);
endfunction
function automatic logic range_check( input real voltage );
real v_abs = (voltage < 0.0) ? -voltage : voltage;
return v_abs >= VOLTAGE_RANGE;
endfunction
//------------------------------------------------------------
// Initial state
//------------------------------------------------------------
initial begin
data_o = ZERO_CODE; // 0V
otr_o = 0;
end
//------------------------------------------------------------
// Update analog output
//------------------------------------------------------------
always @(posedge clk_i) begin
voltage_corrected = (voltage_i - GROUND_BIAS) * VOLTAGE_GAIN;
data_o <= #(CONVERSION_DELAY) voltage_to_code(voltage_corrected);
otr_o <= #(CONVERSION_DELAY) range_check(voltage_corrected);
end
endmodule

View File

@ -0,0 +1,58 @@
// AN9767 model (1 port)
module virtual_dac_model #(
parameter int unsigned DAC_DATA_WIDTH = 14,
// Bipolar output range: +/- VOLTAGE_RANGE
parameter real VOLTAGE_RANGE = 5.0,
// Analog output correction
parameter real VOLTAGE_GAIN = 1.0,
parameter real GROUND_BIAS = 0.0,
// DAC timing parameters
parameter time TRANSMISSION_DELAY = 150ps,
parameter time CONVERSION_DELAY = 150ps
)(
input logic clk_i,
input logic wrt_i,
input logic [DAC_DATA_WIDTH-1:0] data_i,
output real voltage_o
);
localparam int unsigned ZERO_CODE = (1 << (DAC_DATA_WIDTH - 1));
localparam real VOLTAGE_STEP = (2 * VOLTAGE_RANGE) / real'((1 << DAC_DATA_WIDTH) - 1);
logic [DAC_DATA_WIDTH-1:0] dac_code;
//------------------------------------------------------------
// Convert DAC code to analog voltage
//------------------------------------------------------------
function automatic real code_to_voltage( input logic [DAC_DATA_WIDTH-1:0] code);
return (int'(code) - int'(ZERO_CODE)) * VOLTAGE_STEP;
endfunction
//------------------------------------------------------------
// Initial state
//------------------------------------------------------------
initial begin
dac_code = '0;
voltage_o = code_to_voltage('0) * VOLTAGE_GAIN + GROUND_BIAS;
end
//------------------------------------------------------------
// Latch new DAC code
//------------------------------------------------------------
always @(posedge wrt_i) begin
dac_code <= #(TRANSMISSION_DELAY) data_i;
end
//------------------------------------------------------------
// Update analog output
//------------------------------------------------------------
always @(posedge clk_i) begin
voltage_o <= #(CONVERSION_DELAY) code_to_voltage(dac_code) * VOLTAGE_GAIN + GROUND_BIAS;
end
endmodule

View File

@ -1 +1,9 @@
set_clock_groups -name ASYNC_UDP_CTRL -asynchronous -group [get_clocks rgmii_rxc] -group [get_clocks clk_out1_clk_wiz_ctrl_inst] -group [get_clocks clk_out2_clk_wiz_ctrl_inst] # Primary clocks
create_clock -name ref_clock -period 5.000 [get_ports clk_in]
create_clock -name phy_rx_clock -period 8.000 [get_ports clk_m_axis]
create_clock -name phy_tx_clock -period 8.000 [get_ports clk_s_axis]
set clk_125_name [get_clocks -of_objects [get_pins generator_inst/clk_dac_125]]
set clk_65_name [get_clocks -of_objects [get_pins accumulator_top_dut/clk_adc_65]]
set_clock_groups -asynchronous -group $clk_125_name -group $clk_65_name

View File

@ -0,0 +1,130 @@
`ifndef AXIS_INTERFACE_SVH
`define AXIS_INTERFACE_SVH
interface axis_if #(
parameter int DATA_WIDTH = 8
)(
input logic clk,
input logic rst_n
);
// Сигналы шины AXI-Stream
logic [DATA_WIDTH-1:0] tdata;
logic tvalid;
logic tlast;
logic tready;
initial begin // Default values
tdata = 'x;
tvalid = 1'b0;
tlast = 1'b0;
tready = 1'b0;
end
// Master Clocking Block (для отправки данных из TB)
clocking drv_cb @(posedge clk);
default input #1step output #100ps;
output tdata, tvalid, tlast;
input tready;
endclocking
// Slave Clocking Block (для приема данных в TB с генерацией tready)
clocking slv_cb @(posedge clk);
default input #1step output #100ps;
input tdata, tvalid, tlast;
output tready;
endclocking
// Passive Monitor Clocking Block
clocking mon_cb @(posedge clk);
default input #1step;
input tdata, tvalid, tlast, tready;
endclocking
modport master (output tdata, tvalid, tlast, input tready);
modport slave (input tdata, tvalid, tlast, output tready);
// Модпорт для тестбенча с тасками
modport tb (
clocking drv_cb,
clocking slv_cb,
clocking mon_cb,
import master_send,
import slave_recv,
import monitor_recv
);
// Отправка пакета (Тестбенч выступает как Master)
task automatic master_send(input logic [DATA_WIDTH-1:0] payload[]);
if (payload.size() == 0) return;
@(drv_cb);
for (int i = 0; i < payload.size(); i++) begin
drv_cb.tdata <= payload[i];
drv_cb.tvalid <= 1'b1;
drv_cb.tlast <= (i == payload.size() - 1);
forever begin // Ждем подтверждение от слейва пока не получим
@(drv_cb);
if (drv_cb.tready === 1'b1) begin
break;
end
end
end
// Сбрасываем сигналы после отправки пакета
drv_cb.tvalid <= 1'b0;
drv_cb.tlast <= 1'b0;
drv_cb.tdata <= 'x;
endtask
// Прием пакета (Тестбенч выступает как Slave и управляет tready). Не применять если есть реальный Slave (его tready опустится насильно)
task automatic slave_recv(output logic [DATA_WIDTH-1:0] payload[]);
logic [DATA_WIDTH-1:0] local_queue[$]; // Внутри таски очередь использовать можно
slv_cb.tready <= 1'b1; // Показываем, что готовы принимать
forever begin
@(slv_cb);
if (slv_cb.tvalid === 1'b1) begin
local_queue.push_back(slv_cb.tdata);
if (slv_cb.tlast === 1'b1) begin
break; // Пакет закончился
end
end
end
slv_cb.tready <= 1'b0; // Снимаем готовность
// Перекладываем из очереди в динамический массив
payload = new[local_queue.size()](local_queue);
endtask
// Прием пакета (Тестбенч выступает как пассивный наблюдатель без tready)
task automatic monitor_recv(output logic [DATA_WIDTH-1:0] payload[]);
logic [DATA_WIDTH-1:0] local_queue[$]; // Внутри таски очередь использовать можно
forever begin
if (mon_cb.tready === 1'b1) begin
break; // Дождались слейва
end
@(slv_cb);
end
forever begin
@(mon_cb);
if (mon_cb.tvalid === 1'b1) begin
local_queue.push_back(mon_cb.tdata);
if (mon_cb.tlast === 1'b1) begin
break; // Пакет закончился
end
end
end
// Перекладываем из очереди в динамический массив
payload = new[local_queue.size()](local_queue);
endtask
endinterface
`endif // AXIS_INTERFACE_SVH`

View File

@ -3,8 +3,8 @@
"ip_inst": { "ip_inst": {
"xci_name": "clk_wiz_ctrl_inst", "xci_name": "clk_wiz_ctrl_inst",
"component_reference": "xilinx.com:ip:clk_wiz:6.0", "component_reference": "xilinx.com:ip:clk_wiz:6.0",
"ip_revision": "16", "ip_revision": "17",
"gen_directory": "../../../../eth_generator_top.gen/sources_1/ip/clk_wiz_ctrl_inst", "gen_directory": "../../../../reflectometer_top.gen/sources_1/ip/clk_wiz_ctrl_inst",
"parameters": { "parameters": {
"component_parameters": { "component_parameters": {
"Component_Name": [ { "value": "clk_wiz_ctrl_inst", "resolve_type": "user", "usage": "all" } ], "Component_Name": [ { "value": "clk_wiz_ctrl_inst", "resolve_type": "user", "usage": "all" } ],
@ -31,7 +31,7 @@
"USE_MIN_POWER": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "USE_MIN_POWER": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"USE_DYN_PHASE_SHIFT": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "USE_DYN_PHASE_SHIFT": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"USE_DYN_RECONFIG": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "USE_DYN_RECONFIG": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"JITTER_SEL": [ { "value": "No_Jitter", "resolve_type": "user", "usage": "all" } ], "JITTER_SEL": [ { "value": "Min_O_Jitter", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"PRIM_IN_FREQ": [ { "value": "200.000", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ], "PRIM_IN_FREQ": [ { "value": "200.000", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"PRIM_IN_TIMEPERIOD": [ { "value": "10.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "PRIM_IN_TIMEPERIOD": [ { "value": "10.000", "resolve_type": "user", "format": "float", "usage": "all" } ],
"IN_FREQ_UNITS": [ { "value": "Units_MHz", "resolve_type": "user", "usage": "all" } ], "IN_FREQ_UNITS": [ { "value": "Units_MHz", "resolve_type": "user", "usage": "all" } ],
@ -52,12 +52,12 @@
"CLKIN2_JITTER_PS": [ { "value": "100.0", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKIN2_JITTER_PS": [ { "value": "100.0", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT1_USED": [ { "value": "true", "resolve_type": "user", "format": "bool", "usage": "all" } ], "CLKOUT1_USED": [ { "value": "true", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"CLKOUT2_USED": [ { "value": "true", "value_src": "user", "resolve_type": "user", "format": "bool", "usage": "all" } ], "CLKOUT2_USED": [ { "value": "true", "value_src": "user", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"CLKOUT3_USED": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "CLKOUT3_USED": [ { "value": "true", "value_src": "user", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"CLKOUT4_USED": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "CLKOUT4_USED": [ { "value": "true", "value_src": "user", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"CLKOUT5_USED": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "CLKOUT5_USED": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"CLKOUT6_USED": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "CLKOUT6_USED": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"CLKOUT7_USED": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "CLKOUT7_USED": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"NUM_OUT_CLKS": [ { "value": "2", "value_src": "user", "resolve_type": "user", "format": "long", "usage": "all" } ], "NUM_OUT_CLKS": [ { "value": "4", "value_src": "user", "resolve_type": "user", "format": "long", "usage": "all" } ],
"CLK_OUT1_USE_FINE_PS_GUI": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "CLK_OUT1_USE_FINE_PS_GUI": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"CLK_OUT2_USE_FINE_PS_GUI": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "CLK_OUT2_USE_FINE_PS_GUI": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"CLK_OUT3_USE_FINE_PS_GUI": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "CLK_OUT3_USE_FINE_PS_GUI": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
@ -65,11 +65,11 @@
"CLK_OUT5_USE_FINE_PS_GUI": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "CLK_OUT5_USE_FINE_PS_GUI": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"CLK_OUT6_USE_FINE_PS_GUI": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "CLK_OUT6_USE_FINE_PS_GUI": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"CLK_OUT7_USE_FINE_PS_GUI": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "CLK_OUT7_USE_FINE_PS_GUI": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"PRIMARY_PORT": [ { "value": "clk_in1", "resolve_type": "user", "usage": "all" } ], "PRIMARY_PORT": [ { "value": "clk_200", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"CLK_OUT1_PORT": [ { "value": "clk_out1", "resolve_type": "user", "usage": "all" } ], "CLK_OUT1_PORT": [ { "value": "clk_adc_65", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"CLK_OUT2_PORT": [ { "value": "clk_out2", "resolve_type": "user", "usage": "all" } ], "CLK_OUT2_PORT": [ { "value": "clk_adc_65_180", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"CLK_OUT3_PORT": [ { "value": "clk_out3", "resolve_type": "user", "usage": "all" } ], "CLK_OUT3_PORT": [ { "value": "clk_dac_125", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"CLK_OUT4_PORT": [ { "value": "clk_out4", "resolve_type": "user", "usage": "all" } ], "CLK_OUT4_PORT": [ { "value": "clk_dac_125_180", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"CLK_OUT5_PORT": [ { "value": "clk_out5", "resolve_type": "user", "usage": "all" } ], "CLK_OUT5_PORT": [ { "value": "clk_out5", "resolve_type": "user", "usage": "all" } ],
"CLK_OUT6_PORT": [ { "value": "clk_out6", "resolve_type": "user", "usage": "all" } ], "CLK_OUT6_PORT": [ { "value": "clk_out6", "resolve_type": "user", "usage": "all" } ],
"CLK_OUT7_PORT": [ { "value": "clk_out7", "resolve_type": "user", "usage": "all" } ], "CLK_OUT7_PORT": [ { "value": "clk_out7", "resolve_type": "user", "usage": "all" } ],
@ -84,17 +84,17 @@
"PSEN_PORT": [ { "value": "psen", "resolve_type": "user", "usage": "all" } ], "PSEN_PORT": [ { "value": "psen", "resolve_type": "user", "usage": "all" } ],
"PSINCDEC_PORT": [ { "value": "psincdec", "resolve_type": "user", "usage": "all" } ], "PSINCDEC_PORT": [ { "value": "psincdec", "resolve_type": "user", "usage": "all" } ],
"PSDONE_PORT": [ { "value": "psdone", "resolve_type": "user", "usage": "all" } ], "PSDONE_PORT": [ { "value": "psdone", "resolve_type": "user", "usage": "all" } ],
"CLKOUT1_REQUESTED_OUT_FREQ": [ { "value": "125", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT1_REQUESTED_OUT_FREQ": [ { "value": "65", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT1_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT1_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT1_REQUESTED_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT1_REQUESTED_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT2_REQUESTED_OUT_FREQ": [ { "value": "65.000", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT2_REQUESTED_OUT_FREQ": [ { "value": "65", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT2_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT2_REQUESTED_PHASE": [ { "value": "180", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT2_REQUESTED_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT2_REQUESTED_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT3_REQUESTED_OUT_FREQ": [ { "value": "100.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT3_REQUESTED_OUT_FREQ": [ { "value": "125", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT3_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT3_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT3_REQUESTED_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT3_REQUESTED_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT4_REQUESTED_OUT_FREQ": [ { "value": "100.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT4_REQUESTED_OUT_FREQ": [ { "value": "125", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT4_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT4_REQUESTED_PHASE": [ { "value": "180", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT4_REQUESTED_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT4_REQUESTED_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT5_REQUESTED_OUT_FREQ": [ { "value": "100.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT5_REQUESTED_OUT_FREQ": [ { "value": "100.000", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT5_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT5_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ],
@ -115,14 +115,14 @@
"CLKOUT6_MATCHED_ROUTING": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "CLKOUT6_MATCHED_ROUTING": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"CLKOUT7_MATCHED_ROUTING": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "CLKOUT7_MATCHED_ROUTING": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"PRIM_SOURCE": [ { "value": "Single_ended_clock_capable_pin", "resolve_type": "user", "usage": "all" } ], "PRIM_SOURCE": [ { "value": "Single_ended_clock_capable_pin", "resolve_type": "user", "usage": "all" } ],
"CLKOUT1_DRIVES": [ { "value": "BUFG", "resolve_type": "user", "usage": "all" } ], "CLKOUT1_DRIVES": [ { "value": "BUFGCE", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"CLKOUT2_DRIVES": [ { "value": "BUFG", "resolve_type": "user", "usage": "all" } ], "CLKOUT2_DRIVES": [ { "value": "BUFGCE", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"CLKOUT3_DRIVES": [ { "value": "BUFG", "resolve_type": "user", "usage": "all" } ], "CLKOUT3_DRIVES": [ { "value": "BUFGCE", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"CLKOUT4_DRIVES": [ { "value": "BUFG", "resolve_type": "user", "usage": "all" } ], "CLKOUT4_DRIVES": [ { "value": "BUFGCE", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"CLKOUT5_DRIVES": [ { "value": "BUFG", "resolve_type": "user", "usage": "all" } ], "CLKOUT5_DRIVES": [ { "value": "BUFGCE", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"CLKOUT6_DRIVES": [ { "value": "BUFG", "resolve_type": "user", "usage": "all" } ], "CLKOUT6_DRIVES": [ { "value": "BUFGCE", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"CLKOUT7_DRIVES": [ { "value": "BUFG", "resolve_type": "user", "usage": "all" } ], "CLKOUT7_DRIVES": [ { "value": "BUFGCE", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"FEEDBACK_SOURCE": [ { "value": "FDBK_AUTO", "resolve_type": "user", "usage": "all" } ], "FEEDBACK_SOURCE": [ { "value": "FDBK_AUTO", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"CLKFB_IN_SIGNALING": [ { "value": "SINGLE", "resolve_type": "user", "usage": "all" } ], "CLKFB_IN_SIGNALING": [ { "value": "SINGLE", "resolve_type": "user", "usage": "all" } ],
"CLKFB_IN_PORT": [ { "value": "clkfb_in", "resolve_type": "user", "usage": "all" } ], "CLKFB_IN_PORT": [ { "value": "clkfb_in", "resolve_type": "user", "usage": "all" } ],
"CLKFB_IN_P_PORT": [ { "value": "clkfb_in_p", "resolve_type": "user", "usage": "all" } ], "CLKFB_IN_P_PORT": [ { "value": "clkfb_in_p", "resolve_type": "user", "usage": "all" } ],
@ -141,7 +141,7 @@
"USE_CLK_VALID": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "USE_CLK_VALID": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"USE_INCLK_STOPPED": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "USE_INCLK_STOPPED": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"USE_CLKFB_STOPPED": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "USE_CLKFB_STOPPED": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"RESET_PORT": [ { "value": "reset", "resolve_type": "user", "usage": "all" } ], "RESET_PORT": [ { "value": "resetn", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"LOCKED_PORT": [ { "value": "locked", "resolve_type": "user", "usage": "all" } ], "LOCKED_PORT": [ { "value": "locked", "resolve_type": "user", "usage": "all" } ],
"POWER_DOWN_PORT": [ { "value": "power_down", "resolve_type": "user", "usage": "all" } ], "POWER_DOWN_PORT": [ { "value": "power_down", "resolve_type": "user", "usage": "all" } ],
"CLK_VALID_PORT": [ { "value": "CLK_VALID", "resolve_type": "user", "usage": "all" } ], "CLK_VALID_PORT": [ { "value": "CLK_VALID", "resolve_type": "user", "usage": "all" } ],
@ -154,34 +154,34 @@
"SS_MOD_TIME": [ { "value": "0.004", "resolve_type": "user", "format": "float", "usage": "all" } ], "SS_MOD_TIME": [ { "value": "0.004", "resolve_type": "user", "format": "float", "usage": "all" } ],
"OVERRIDE_MMCM": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "OVERRIDE_MMCM": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"MMCM_NOTES": [ { "value": "None", "resolve_type": "user", "usage": "all" } ], "MMCM_NOTES": [ { "value": "None", "resolve_type": "user", "usage": "all" } ],
"MMCM_DIVCLK_DIVIDE": [ { "value": "4", "value_src": "user", "resolve_type": "user", "format": "long", "usage": "all" } ], "MMCM_DIVCLK_DIVIDE": [ { "value": "5", "value_src": "user", "resolve_type": "user", "format": "long", "usage": "all" } ],
"MMCM_BANDWIDTH": [ { "value": "OPTIMIZED", "resolve_type": "user", "usage": "all" } ], "MMCM_BANDWIDTH": [ { "value": "HIGH", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"MMCM_CLKFBOUT_MULT_F": [ { "value": "16.875", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_CLKFBOUT_MULT_F": [ { "value": "34.125", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"MMCM_CLKFBOUT_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_CLKFBOUT_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ],
"MMCM_CLKFBOUT_USE_FINE_PS": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "MMCM_CLKFBOUT_USE_FINE_PS": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"MMCM_CLKIN1_PERIOD": [ { "value": "5.000", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_CLKIN1_PERIOD": [ { "value": "5.000", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"MMCM_CLKIN2_PERIOD": [ { "value": "10.0", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_CLKIN2_PERIOD": [ { "value": "10.000", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"MMCM_CLKOUT4_CASCADE": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "MMCM_CLKOUT4_CASCADE": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"MMCM_CLOCK_HOLD": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "MMCM_CLOCK_HOLD": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"MMCM_COMPENSATION": [ { "value": "ZHOLD", "resolve_type": "user", "usage": "all" } ], "MMCM_COMPENSATION": [ { "value": "ZHOLD", "resolve_type": "user", "usage": "all" } ],
"MMCM_REF_JITTER1": [ { "value": "0.010", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_REF_JITTER1": [ { "value": "0.010", "resolve_type": "user", "format": "float", "usage": "all" } ],
"MMCM_REF_JITTER2": [ { "value": "0.010", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_REF_JITTER2": [ { "value": "0.010", "resolve_type": "user", "format": "float", "usage": "all" } ],
"MMCM_STARTUP_WAIT": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "MMCM_STARTUP_WAIT": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"MMCM_CLKOUT0_DIVIDE_F": [ { "value": "6.750", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_CLKOUT0_DIVIDE_F": [ { "value": "21.000", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"MMCM_CLKOUT0_DUTY_CYCLE": [ { "value": "0.500", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_CLKOUT0_DUTY_CYCLE": [ { "value": "0.500", "resolve_type": "user", "format": "float", "usage": "all" } ],
"MMCM_CLKOUT0_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_CLKOUT0_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ],
"MMCM_CLKOUT0_USE_FINE_PS": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "MMCM_CLKOUT0_USE_FINE_PS": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"MMCM_CLKOUT1_DIVIDE": [ { "value": "13", "value_src": "user", "resolve_type": "user", "format": "long", "usage": "all" } ], "MMCM_CLKOUT1_DIVIDE": [ { "value": "21", "value_src": "user", "resolve_type": "user", "format": "long", "usage": "all" } ],
"MMCM_CLKOUT1_DUTY_CYCLE": [ { "value": "0.500", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_CLKOUT1_DUTY_CYCLE": [ { "value": "0.500", "resolve_type": "user", "format": "float", "usage": "all" } ],
"MMCM_CLKOUT1_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_CLKOUT1_PHASE": [ { "value": "180.000", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"MMCM_CLKOUT1_USE_FINE_PS": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "MMCM_CLKOUT1_USE_FINE_PS": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"MMCM_CLKOUT2_DIVIDE": [ { "value": "1", "resolve_type": "user", "format": "long", "usage": "all" } ], "MMCM_CLKOUT2_DIVIDE": [ { "value": "11", "value_src": "user", "resolve_type": "user", "format": "long", "usage": "all" } ],
"MMCM_CLKOUT2_DUTY_CYCLE": [ { "value": "0.500", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_CLKOUT2_DUTY_CYCLE": [ { "value": "0.500", "resolve_type": "user", "format": "float", "usage": "all" } ],
"MMCM_CLKOUT2_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_CLKOUT2_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ],
"MMCM_CLKOUT2_USE_FINE_PS": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "MMCM_CLKOUT2_USE_FINE_PS": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"MMCM_CLKOUT3_DIVIDE": [ { "value": "1", "resolve_type": "user", "format": "long", "usage": "all" } ], "MMCM_CLKOUT3_DIVIDE": [ { "value": "11", "value_src": "user", "resolve_type": "user", "format": "long", "usage": "all" } ],
"MMCM_CLKOUT3_DUTY_CYCLE": [ { "value": "0.500", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_CLKOUT3_DUTY_CYCLE": [ { "value": "0.500", "resolve_type": "user", "format": "float", "usage": "all" } ],
"MMCM_CLKOUT3_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_CLKOUT3_PHASE": [ { "value": "180.000", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"MMCM_CLKOUT3_USE_FINE_PS": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "MMCM_CLKOUT3_USE_FINE_PS": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"MMCM_CLKOUT4_DIVIDE": [ { "value": "1", "resolve_type": "user", "format": "long", "usage": "all" } ], "MMCM_CLKOUT4_DIVIDE": [ { "value": "1", "resolve_type": "user", "format": "long", "usage": "all" } ],
"MMCM_CLKOUT4_DUTY_CYCLE": [ { "value": "0.500", "resolve_type": "user", "format": "float", "usage": "all" } ], "MMCM_CLKOUT4_DUTY_CYCLE": [ { "value": "0.500", "resolve_type": "user", "format": "float", "usage": "all" } ],
@ -223,8 +223,8 @@
"PLL_CLKOUT5_DIVIDE": [ { "value": "1", "resolve_type": "user", "format": "long", "usage": "all" } ], "PLL_CLKOUT5_DIVIDE": [ { "value": "1", "resolve_type": "user", "format": "long", "usage": "all" } ],
"PLL_CLKOUT5_DUTY_CYCLE": [ { "value": "0.500", "resolve_type": "user", "format": "float", "usage": "all" } ], "PLL_CLKOUT5_DUTY_CYCLE": [ { "value": "0.500", "resolve_type": "user", "format": "float", "usage": "all" } ],
"PLL_CLKOUT5_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "PLL_CLKOUT5_PHASE": [ { "value": "0.000", "resolve_type": "user", "format": "float", "usage": "all" } ],
"RESET_TYPE": [ { "value": "ACTIVE_HIGH", "resolve_type": "user", "usage": "all" } ], "RESET_TYPE": [ { "value": "ACTIVE_LOW", "value_src": "user", "resolve_type": "user", "usage": "all" } ],
"USE_SAFE_CLOCK_STARTUP": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "USE_SAFE_CLOCK_STARTUP": [ { "value": "true", "value_src": "user", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"USE_CLOCK_SEQUENCING": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "USE_CLOCK_SEQUENCING": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"CLKOUT1_SEQUENCE_NUMBER": [ { "value": "1", "resolve_type": "user", "format": "long", "usage": "all" } ], "CLKOUT1_SEQUENCE_NUMBER": [ { "value": "1", "resolve_type": "user", "format": "long", "usage": "all" } ],
"CLKOUT2_SEQUENCE_NUMBER": [ { "value": "1", "resolve_type": "user", "format": "long", "usage": "all" } ], "CLKOUT2_SEQUENCE_NUMBER": [ { "value": "1", "resolve_type": "user", "format": "long", "usage": "all" } ],
@ -245,14 +245,14 @@
"CDDCREQ_PORT": [ { "value": "cddcreq", "resolve_type": "user", "usage": "all" } ], "CDDCREQ_PORT": [ { "value": "cddcreq", "resolve_type": "user", "usage": "all" } ],
"ENABLE_CLKOUTPHY": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ], "ENABLE_CLKOUTPHY": [ { "value": "false", "resolve_type": "user", "format": "bool", "usage": "all" } ],
"CLKOUTPHY_REQUESTED_FREQ": [ { "value": "600.000", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUTPHY_REQUESTED_FREQ": [ { "value": "600.000", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT1_JITTER": [ { "value": "162.582", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT1_JITTER": [ { "value": "137.256", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT1_PHASE_ERROR": [ { "value": "137.238", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT1_PHASE_ERROR": [ { "value": "148.044", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT2_JITTER": [ { "value": "185.296", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT2_JITTER": [ { "value": "137.256", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT2_PHASE_ERROR": [ { "value": "137.238", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT2_PHASE_ERROR": [ { "value": "148.044", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT3_JITTER": [ { "value": "0.0", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT3_JITTER": [ { "value": "123.850", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT3_PHASE_ERROR": [ { "value": "0.0", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT3_PHASE_ERROR": [ { "value": "148.044", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT4_JITTER": [ { "value": "0.0", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT4_JITTER": [ { "value": "123.850", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT4_PHASE_ERROR": [ { "value": "0.0", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT4_PHASE_ERROR": [ { "value": "148.044", "value_src": "user", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT5_JITTER": [ { "value": "0.0", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT5_JITTER": [ { "value": "0.0", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT5_PHASE_ERROR": [ { "value": "0.0", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT5_PHASE_ERROR": [ { "value": "0.0", "resolve_type": "user", "format": "float", "usage": "all" } ],
"CLKOUT6_JITTER": [ { "value": "0.0", "resolve_type": "user", "format": "float", "usage": "all" } ], "CLKOUT6_JITTER": [ { "value": "0.0", "resolve_type": "user", "format": "float", "usage": "all" } ],
@ -280,8 +280,8 @@
"C_Enable_PLL1": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_Enable_PLL1": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_REF_CLK_FREQ": [ { "value": "100.0", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_REF_CLK_FREQ": [ { "value": "100.0", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_PRECISION": [ { "value": "1", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_PRECISION": [ { "value": "1", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT3_USED": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_CLKOUT3_USED": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_CLKOUT4_USED": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_CLKOUT4_USED": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_CLKOUT5_USED": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_CLKOUT5_USED": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_CLKOUT6_USED": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_CLKOUT6_USED": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_CLKOUT7_USED": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_CLKOUT7_USED": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
@ -295,9 +295,9 @@
"C_USE_PHASE_ALIGNMENT": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_USE_PHASE_ALIGNMENT": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_PRIM_IN_JITTER": [ { "value": "0.010", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_PRIM_IN_JITTER": [ { "value": "0.010", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_SECONDARY_IN_JITTER": [ { "value": "0.010", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_SECONDARY_IN_JITTER": [ { "value": "0.010", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_JITTER_SEL": [ { "value": "No_Jitter", "resolve_type": "generated", "usage": "all" } ], "C_JITTER_SEL": [ { "value": "Min_O_Jitter", "resolve_type": "generated", "usage": "all" } ],
"C_USE_MIN_POWER": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_USE_MIN_POWER": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_USE_MIN_O_JITTER": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_USE_MIN_O_JITTER": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_USE_MAX_I_JITTER": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_USE_MAX_I_JITTER": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_USE_DYN_PHASE_SHIFT": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_USE_DYN_PHASE_SHIFT": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_OPTIMIZE_CLOCKING_STRUCTURE_EN": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_OPTIMIZE_CLOCKING_STRUCTURE_EN": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
@ -318,44 +318,44 @@
"C_SECONDARY_SOURCE": [ { "value": "Single_ended_clock_capable_pin", "resolve_type": "generated", "usage": "all" } ], "C_SECONDARY_SOURCE": [ { "value": "Single_ended_clock_capable_pin", "resolve_type": "generated", "usage": "all" } ],
"C_CLKFB_IN_SIGNALING": [ { "value": "SINGLE", "resolve_type": "generated", "usage": "all" } ], "C_CLKFB_IN_SIGNALING": [ { "value": "SINGLE", "resolve_type": "generated", "usage": "all" } ],
"C_USE_RESET": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_USE_RESET": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_RESET_LOW": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_RESET_LOW": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_USE_LOCKED": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_USE_LOCKED": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_USE_INCLK_STOPPED": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_USE_INCLK_STOPPED": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_USE_CLKFB_STOPPED": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_USE_CLKFB_STOPPED": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_USE_POWER_DOWN": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_USE_POWER_DOWN": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_USE_STATUS": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_USE_STATUS": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_USE_FREEZE": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_USE_FREEZE": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_NUM_OUT_CLKS": [ { "value": "2", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_NUM_OUT_CLKS": [ { "value": "4", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_CLKOUT1_DRIVES": [ { "value": "BUFG", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT1_DRIVES": [ { "value": "BUFGCE", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT2_DRIVES": [ { "value": "BUFG", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT2_DRIVES": [ { "value": "BUFGCE", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT3_DRIVES": [ { "value": "BUFG", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT3_DRIVES": [ { "value": "BUFGCE", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT4_DRIVES": [ { "value": "BUFG", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT4_DRIVES": [ { "value": "BUFGCE", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT5_DRIVES": [ { "value": "BUFG", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT5_DRIVES": [ { "value": "BUFGCE", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT6_DRIVES": [ { "value": "BUFG", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT6_DRIVES": [ { "value": "BUFGCE", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT7_DRIVES": [ { "value": "BUFG", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT7_DRIVES": [ { "value": "BUFGCE", "resolve_type": "generated", "usage": "all" } ],
"C_INCLK_SUM_ROW0": [ { "value": "Input Clock Freq (MHz) Input Jitter (UI)", "resolve_type": "generated", "usage": "all" } ], "C_INCLK_SUM_ROW0": [ { "value": "Input Clock Freq (MHz) Input Jitter (UI)", "resolve_type": "generated", "usage": "all" } ],
"C_INCLK_SUM_ROW1": [ { "value": "__primary_________200.000____________0.010", "resolve_type": "generated", "usage": "all" } ], "C_INCLK_SUM_ROW1": [ { "value": "__primary_________200.000____________0.010", "resolve_type": "generated", "usage": "all" } ],
"C_INCLK_SUM_ROW2": [ { "value": "no_secondary_input_clock ", "resolve_type": "generated", "usage": "all" } ], "C_INCLK_SUM_ROW2": [ { "value": "no_secondary_input_clock ", "resolve_type": "generated", "usage": "all" } ],
"C_OUTCLK_SUM_ROW0A": [ { "value": " Output Output Phase Duty Cycle Pk-to-Pk Phase", "resolve_type": "generated", "usage": "all" } ], "C_OUTCLK_SUM_ROW0A": [ { "value": " Output Output Phase Duty Cycle Pk-to-Pk Phase", "resolve_type": "generated", "usage": "all" } ],
"C_OUTCLK_SUM_ROW0B": [ { "value": " Clock Freq (MHz) (degrees) (%) Jitter (ps) Error (ps)", "resolve_type": "generated", "usage": "all" } ], "C_OUTCLK_SUM_ROW0B": [ { "value": " Clock Freq (MHz) (degrees) (%) Jitter (ps) Error (ps)", "resolve_type": "generated", "usage": "all" } ],
"C_OUTCLK_SUM_ROW1": [ { "value": "clk_out1__125.00000______0.000______50.0______162.582____137.238", "resolve_type": "generated", "usage": "all" } ], "C_OUTCLK_SUM_ROW1": [ { "value": "clk_adc_65__65.00000______0.000______50.0______137.256____148.044", "resolve_type": "generated", "usage": "all" } ],
"C_OUTCLK_SUM_ROW2": [ { "value": "clk_out2__64.90385______0.000______50.0______185.296____137.238", "resolve_type": "generated", "usage": "all" } ], "C_OUTCLK_SUM_ROW2": [ { "value": "clk_adc_65_180__65.00000____180.000______50.0______137.256____148.044", "resolve_type": "generated", "usage": "all" } ],
"C_OUTCLK_SUM_ROW3": [ { "value": "no_CLK_OUT3_output", "resolve_type": "generated", "usage": "all" } ], "C_OUTCLK_SUM_ROW3": [ { "value": "clk_dac_125__124.09091______0.000______50.0______123.850____148.044", "resolve_type": "generated", "usage": "all" } ],
"C_OUTCLK_SUM_ROW4": [ { "value": "no_CLK_OUT4_output", "resolve_type": "generated", "usage": "all" } ], "C_OUTCLK_SUM_ROW4": [ { "value": "clk_dac_125_180__124.09091____180.000______50.0______123.850____148.044", "resolve_type": "generated", "usage": "all" } ],
"C_OUTCLK_SUM_ROW5": [ { "value": "no_CLK_OUT5_output", "resolve_type": "generated", "usage": "all" } ], "C_OUTCLK_SUM_ROW5": [ { "value": "no_CLK_OUT5_output", "resolve_type": "generated", "usage": "all" } ],
"C_OUTCLK_SUM_ROW6": [ { "value": "no_CLK_OUT6_output", "resolve_type": "generated", "usage": "all" } ], "C_OUTCLK_SUM_ROW6": [ { "value": "no_CLK_OUT6_output", "resolve_type": "generated", "usage": "all" } ],
"C_OUTCLK_SUM_ROW7": [ { "value": "no_CLK_OUT7_output", "resolve_type": "generated", "usage": "all" } ], "C_OUTCLK_SUM_ROW7": [ { "value": "no_CLK_OUT7_output", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT1_REQUESTED_OUT_FREQ": [ { "value": "125", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT1_REQUESTED_OUT_FREQ": [ { "value": "65", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT2_REQUESTED_OUT_FREQ": [ { "value": "65.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT2_REQUESTED_OUT_FREQ": [ { "value": "65", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT3_REQUESTED_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT3_REQUESTED_OUT_FREQ": [ { "value": "125", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT4_REQUESTED_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT4_REQUESTED_OUT_FREQ": [ { "value": "125", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT5_REQUESTED_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT5_REQUESTED_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT6_REQUESTED_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT6_REQUESTED_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT7_REQUESTED_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT7_REQUESTED_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT1_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT1_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT2_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT2_REQUESTED_PHASE": [ { "value": "180", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT3_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT3_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT4_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT4_REQUESTED_PHASE": [ { "value": "180", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT5_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT5_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT6_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT6_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT7_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT7_REQUESTED_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
@ -366,28 +366,28 @@
"C_CLKOUT5_REQUESTED_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT5_REQUESTED_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT6_REQUESTED_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT6_REQUESTED_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT7_REQUESTED_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT7_REQUESTED_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT1_OUT_FREQ": [ { "value": "125.00000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT1_OUT_FREQ": [ { "value": "65.00000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT2_OUT_FREQ": [ { "value": "64.90385", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT2_OUT_FREQ": [ { "value": "65.00000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT3_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT3_OUT_FREQ": [ { "value": "124.09091", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT4_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT4_OUT_FREQ": [ { "value": "124.09091", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT5_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT5_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT6_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT6_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT7_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT7_OUT_FREQ": [ { "value": "100.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT1_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT1_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT2_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT2_PHASE": [ { "value": "180.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT3_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT3_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT4_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT4_PHASE": [ { "value": "180.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT5_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT5_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT6_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT6_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT7_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT7_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT1_DUTY_CYCLE": [ { "value": "50.0", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT1_DUTY_CYCLE": [ { "value": "50.0", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT2_DUTY_CYCLE": [ { "value": "50.0", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT2_DUTY_CYCLE": [ { "value": "50.0", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT3_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT3_DUTY_CYCLE": [ { "value": "50.0", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT4_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT4_DUTY_CYCLE": [ { "value": "50.0", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT5_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT5_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT6_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT6_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_CLKOUT7_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_CLKOUT7_DUTY_CYCLE": [ { "value": "50.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_USE_SAFE_CLOCK_STARTUP": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_USE_SAFE_CLOCK_STARTUP": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_USE_CLOCK_SEQUENCING": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_USE_CLOCK_SEQUENCING": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_CLKOUT1_SEQUENCE_NUMBER": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_CLKOUT1_SEQUENCE_NUMBER": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_CLKOUT2_SEQUENCE_NUMBER": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_CLKOUT2_SEQUENCE_NUMBER": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ],
@ -397,21 +397,21 @@
"C_CLKOUT6_SEQUENCE_NUMBER": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_CLKOUT6_SEQUENCE_NUMBER": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_CLKOUT7_SEQUENCE_NUMBER": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_CLKOUT7_SEQUENCE_NUMBER": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_MMCM_NOTES": [ { "value": "None", "resolve_type": "generated", "usage": "all" } ], "C_MMCM_NOTES": [ { "value": "None", "resolve_type": "generated", "usage": "all" } ],
"C_MMCM_BANDWIDTH": [ { "value": "OPTIMIZED", "resolve_type": "generated", "usage": "all" } ], "C_MMCM_BANDWIDTH": [ { "value": "HIGH", "resolve_type": "generated", "usage": "all" } ],
"C_MMCM_CLKFBOUT_MULT_F": [ { "value": "16.875", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_MMCM_CLKFBOUT_MULT_F": [ { "value": "34.125", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_MMCM_CLKIN1_PERIOD": [ { "value": "5.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_MMCM_CLKIN1_PERIOD": [ { "value": "5.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_MMCM_CLKIN2_PERIOD": [ { "value": "10.0", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_MMCM_CLKIN2_PERIOD": [ { "value": "10.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_MMCM_CLKOUT4_CASCADE": [ { "value": "FALSE", "resolve_type": "generated", "format": "bool", "usage": "all" } ], "C_MMCM_CLKOUT4_CASCADE": [ { "value": "FALSE", "resolve_type": "generated", "format": "bool", "usage": "all" } ],
"C_MMCM_CLOCK_HOLD": [ { "value": "FALSE", "resolve_type": "generated", "format": "bool", "usage": "all" } ], "C_MMCM_CLOCK_HOLD": [ { "value": "FALSE", "resolve_type": "generated", "format": "bool", "usage": "all" } ],
"C_MMCM_COMPENSATION": [ { "value": "ZHOLD", "resolve_type": "generated", "usage": "all" } ], "C_MMCM_COMPENSATION": [ { "value": "ZHOLD", "resolve_type": "generated", "usage": "all" } ],
"C_MMCM_DIVCLK_DIVIDE": [ { "value": "4", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_MMCM_DIVCLK_DIVIDE": [ { "value": "5", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_MMCM_REF_JITTER1": [ { "value": "0.010", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_MMCM_REF_JITTER1": [ { "value": "0.010", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_MMCM_REF_JITTER2": [ { "value": "0.010", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_MMCM_REF_JITTER2": [ { "value": "0.010", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_MMCM_STARTUP_WAIT": [ { "value": "FALSE", "resolve_type": "generated", "usage": "all" } ], "C_MMCM_STARTUP_WAIT": [ { "value": "FALSE", "resolve_type": "generated", "usage": "all" } ],
"C_MMCM_CLKOUT0_DIVIDE_F": [ { "value": "6.750", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_MMCM_CLKOUT0_DIVIDE_F": [ { "value": "21.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_MMCM_CLKOUT1_DIVIDE": [ { "value": "13", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_MMCM_CLKOUT1_DIVIDE": [ { "value": "21", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_MMCM_CLKOUT2_DIVIDE": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_MMCM_CLKOUT2_DIVIDE": [ { "value": "11", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_MMCM_CLKOUT3_DIVIDE": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_MMCM_CLKOUT3_DIVIDE": [ { "value": "11", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_MMCM_CLKOUT4_DIVIDE": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_MMCM_CLKOUT4_DIVIDE": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_MMCM_CLKOUT5_DIVIDE": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_MMCM_CLKOUT5_DIVIDE": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_MMCM_CLKOUT6_DIVIDE": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_MMCM_CLKOUT6_DIVIDE": [ { "value": "1", "resolve_type": "generated", "format": "long", "usage": "all" } ],
@ -424,9 +424,9 @@
"C_MMCM_CLKOUT6_DUTY_CYCLE": [ { "value": "0.500", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_MMCM_CLKOUT6_DUTY_CYCLE": [ { "value": "0.500", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_MMCM_CLKFBOUT_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_MMCM_CLKFBOUT_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_MMCM_CLKOUT0_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_MMCM_CLKOUT0_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_MMCM_CLKOUT1_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_MMCM_CLKOUT1_PHASE": [ { "value": "180.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_MMCM_CLKOUT2_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_MMCM_CLKOUT2_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_MMCM_CLKOUT3_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_MMCM_CLKOUT3_PHASE": [ { "value": "180.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_MMCM_CLKOUT4_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_MMCM_CLKOUT4_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_MMCM_CLKOUT5_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_MMCM_CLKOUT5_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_MMCM_CLKOUT6_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_MMCM_CLKOUT6_PHASE": [ { "value": "0.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
@ -468,16 +468,16 @@
"C_CLOCK_MGR_TYPE": [ { "value": "NA", "resolve_type": "generated", "usage": "all" } ], "C_CLOCK_MGR_TYPE": [ { "value": "NA", "resolve_type": "generated", "usage": "all" } ],
"C_OVERRIDE_MMCM": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_OVERRIDE_MMCM": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_OVERRIDE_PLL": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ], "C_OVERRIDE_PLL": [ { "value": "0", "resolve_type": "generated", "format": "long", "usage": "all" } ],
"C_PRIMARY_PORT": [ { "value": "clk_in1", "resolve_type": "generated", "usage": "all" } ], "C_PRIMARY_PORT": [ { "value": "clk_200", "resolve_type": "generated", "usage": "all" } ],
"C_SECONDARY_PORT": [ { "value": "clk_in2", "resolve_type": "generated", "usage": "all" } ], "C_SECONDARY_PORT": [ { "value": "clk_in2", "resolve_type": "generated", "usage": "all" } ],
"C_CLK_OUT1_PORT": [ { "value": "clk_out1", "resolve_type": "generated", "usage": "all" } ], "C_CLK_OUT1_PORT": [ { "value": "clk_adc_65", "resolve_type": "generated", "usage": "all" } ],
"C_CLK_OUT2_PORT": [ { "value": "clk_out2", "resolve_type": "generated", "usage": "all" } ], "C_CLK_OUT2_PORT": [ { "value": "clk_adc_65_180", "resolve_type": "generated", "usage": "all" } ],
"C_CLK_OUT3_PORT": [ { "value": "clk_out3", "resolve_type": "generated", "usage": "all" } ], "C_CLK_OUT3_PORT": [ { "value": "clk_dac_125", "resolve_type": "generated", "usage": "all" } ],
"C_CLK_OUT4_PORT": [ { "value": "clk_out4", "resolve_type": "generated", "usage": "all" } ], "C_CLK_OUT4_PORT": [ { "value": "clk_dac_125_180", "resolve_type": "generated", "usage": "all" } ],
"C_CLK_OUT5_PORT": [ { "value": "clk_out5", "resolve_type": "generated", "usage": "all" } ], "C_CLK_OUT5_PORT": [ { "value": "clk_out5", "resolve_type": "generated", "usage": "all" } ],
"C_CLK_OUT6_PORT": [ { "value": "clk_out6", "resolve_type": "generated", "usage": "all" } ], "C_CLK_OUT6_PORT": [ { "value": "clk_out6", "resolve_type": "generated", "usage": "all" } ],
"C_CLK_OUT7_PORT": [ { "value": "clk_out7", "resolve_type": "generated", "usage": "all" } ], "C_CLK_OUT7_PORT": [ { "value": "clk_out7", "resolve_type": "generated", "usage": "all" } ],
"C_RESET_PORT": [ { "value": "reset", "resolve_type": "generated", "usage": "all" } ], "C_RESET_PORT": [ { "value": "resetn", "resolve_type": "generated", "usage": "all" } ],
"C_LOCKED_PORT": [ { "value": "locked", "resolve_type": "generated", "usage": "all" } ], "C_LOCKED_PORT": [ { "value": "locked", "resolve_type": "generated", "usage": "all" } ],
"C_CLKFB_IN_PORT": [ { "value": "clkfb_in", "resolve_type": "generated", "usage": "all" } ], "C_CLKFB_IN_PORT": [ { "value": "clkfb_in", "resolve_type": "generated", "usage": "all" } ],
"C_CLKFB_IN_P_PORT": [ { "value": "clkfb_in_p", "resolve_type": "generated", "usage": "all" } ], "C_CLKFB_IN_P_PORT": [ { "value": "clkfb_in_p", "resolve_type": "generated", "usage": "all" } ],
@ -540,12 +540,12 @@
"C_FILTER_1": [ { "value": "0000", "resolve_type": "generated", "usage": "all" } ], "C_FILTER_1": [ { "value": "0000", "resolve_type": "generated", "usage": "all" } ],
"C_FILTER_2": [ { "value": "0000", "resolve_type": "generated", "usage": "all" } ], "C_FILTER_2": [ { "value": "0000", "resolve_type": "generated", "usage": "all" } ],
"C_DIVIDE1_AUTO": [ { "value": "1", "resolve_type": "generated", "usage": "all" } ], "C_DIVIDE1_AUTO": [ { "value": "1", "resolve_type": "generated", "usage": "all" } ],
"C_DIVIDE2_AUTO": [ { "value": "1.9259259259259258", "resolve_type": "generated", "usage": "all" } ], "C_DIVIDE2_AUTO": [ { "value": "1.0", "resolve_type": "generated", "usage": "all" } ],
"C_DIVIDE3_AUTO": [ { "value": "0.14814814814814814", "resolve_type": "generated", "usage": "all" } ], "C_DIVIDE3_AUTO": [ { "value": "0.5238095238095238", "resolve_type": "generated", "usage": "all" } ],
"C_DIVIDE4_AUTO": [ { "value": "0.14814814814814814", "resolve_type": "generated", "usage": "all" } ], "C_DIVIDE4_AUTO": [ { "value": "0.5238095238095238", "resolve_type": "generated", "usage": "all" } ],
"C_DIVIDE5_AUTO": [ { "value": "0.14814814814814814", "resolve_type": "generated", "usage": "all" } ], "C_DIVIDE5_AUTO": [ { "value": "0.047619047619047616", "resolve_type": "generated", "usage": "all" } ],
"C_DIVIDE6_AUTO": [ { "value": "0.14814814814814814", "resolve_type": "generated", "usage": "all" } ], "C_DIVIDE6_AUTO": [ { "value": "0.047619047619047616", "resolve_type": "generated", "usage": "all" } ],
"C_DIVIDE7_AUTO": [ { "value": "0.14814814814814814", "resolve_type": "generated", "usage": "all" } ], "C_DIVIDE7_AUTO": [ { "value": "0.047619047619047616", "resolve_type": "generated", "usage": "all" } ],
"C_PLLBUFGCEDIV": [ { "value": "false", "resolve_type": "generated", "usage": "all" } ], "C_PLLBUFGCEDIV": [ { "value": "false", "resolve_type": "generated", "usage": "all" } ],
"C_MMCMBUFGCEDIV": [ { "value": "false", "resolve_type": "generated", "usage": "all" } ], "C_MMCMBUFGCEDIV": [ { "value": "false", "resolve_type": "generated", "usage": "all" } ],
"C_PLLBUFGCEDIV1": [ { "value": "false", "resolve_type": "generated", "usage": "all" } ], "C_PLLBUFGCEDIV1": [ { "value": "false", "resolve_type": "generated", "usage": "all" } ],
@ -566,66 +566,68 @@
"C_CLKOUT5_MATCHED_ROUTING": [ { "value": "false", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT5_MATCHED_ROUTING": [ { "value": "false", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT6_MATCHED_ROUTING": [ { "value": "false", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT6_MATCHED_ROUTING": [ { "value": "false", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT7_MATCHED_ROUTING": [ { "value": "false", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT7_MATCHED_ROUTING": [ { "value": "false", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT0_ACTUAL_FREQ": [ { "value": "125.00000", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT0_ACTUAL_FREQ": [ { "value": "65.00000", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT1_ACTUAL_FREQ": [ { "value": "64.90385", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT1_ACTUAL_FREQ": [ { "value": "65.00000", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT2_ACTUAL_FREQ": [ { "value": "100.000", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT2_ACTUAL_FREQ": [ { "value": "124.09091", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT3_ACTUAL_FREQ": [ { "value": "100.000", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT3_ACTUAL_FREQ": [ { "value": "124.09091", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT4_ACTUAL_FREQ": [ { "value": "100.000", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT4_ACTUAL_FREQ": [ { "value": "100.000", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT5_ACTUAL_FREQ": [ { "value": "100.000", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT5_ACTUAL_FREQ": [ { "value": "100.000", "resolve_type": "generated", "usage": "all" } ],
"C_CLKOUT6_ACTUAL_FREQ": [ { "value": "100.000", "resolve_type": "generated", "usage": "all" } ], "C_CLKOUT6_ACTUAL_FREQ": [ { "value": "100.000", "resolve_type": "generated", "usage": "all" } ],
"C_M_MAX": [ { "value": "64.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_M_MAX": [ { "value": "64.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_M_MIN": [ { "value": "2.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_M_MIN": [ { "value": "2.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_D_MAX": [ { "value": "80.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_D_MAX": [ { "value": "93.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_D_MIN": [ { "value": "1.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_D_MIN": [ { "value": "1.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_O_MAX": [ { "value": "128.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_O_MAX": [ { "value": "128.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_O_MIN": [ { "value": "1.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_O_MIN": [ { "value": "1.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_VCO_MIN": [ { "value": "600.000", "resolve_type": "generated", "format": "float", "usage": "all" } ], "C_VCO_MIN": [ { "value": "600.000", "resolve_type": "generated", "format": "float", "usage": "all" } ],
"C_VCO_MAX": [ { "value": "1200.000", "resolve_type": "generated", "format": "float", "usage": "all" } ] "C_VCO_MAX": [ { "value": "1440.000", "resolve_type": "generated", "format": "float", "usage": "all" } ]
}, },
"project_parameters": { "project_parameters": {
"ARCHITECTURE": [ { "value": "artix7" } ], "ARCHITECTURE": [ { "value": "artix7", "resolve_type": "generated", "usage": "all" } ],
"BASE_BOARD_PART": [ { "value": "" } ], "BASE_BOARD_PART": [ { "value": "", "resolve_type": "generated", "usage": "all" } ],
"BOARD_CONNECTIONS": [ { "value": "" } ], "BOARD_CONNECTIONS": [ { "value": "", "resolve_type": "generated", "usage": "all" } ],
"DEVICE": [ { "value": "xc7a35t" } ], "DEVICE": [ { "value": "xc7a100t", "resolve_type": "generated", "usage": "all" } ],
"PACKAGE": [ { "value": "fgg484" } ], "PACKAGE": [ { "value": "fgg484", "resolve_type": "generated", "usage": "all" } ],
"PREFHDL": [ { "value": "VERILOG" } ], "PREFHDL": [ { "value": "VERILOG", "resolve_type": "generated", "usage": "all" } ],
"SILICON_REVISION": [ { "value": "" } ], "SILICON_REVISION": [ { "value": "", "resolve_type": "generated", "usage": "all" } ],
"SIMULATOR_LANGUAGE": [ { "value": "MIXED" } ], "SIMULATOR_LANGUAGE": [ { "value": "MIXED", "resolve_type": "generated", "usage": "all" } ],
"SPEEDGRADE": [ { "value": "-1" } ], "SPEEDGRADE": [ { "value": "-2", "resolve_type": "generated", "usage": "all" } ],
"STATIC_POWER": [ { "value": "" } ], "STATIC_POWER": [ { "value": "", "resolve_type": "generated", "usage": "all" } ],
"TEMPERATURE_GRADE": [ { "value": "" } ] "TEMPERATURE_GRADE": [ { "value": "", "resolve_type": "generated", "usage": "all" } ]
}, },
"runtime_parameters": { "runtime_parameters": {
"IPCONTEXT": [ { "value": "IP_Flow" } ], "IPCONTEXT": [ { "value": "IP_Flow" } ],
"IPREVISION": [ { "value": "16" } ], "IPREVISION": [ { "value": "17" } ],
"MANAGED": [ { "value": "TRUE" } ], "MANAGED": [ { "value": "TRUE" } ],
"OUTPUTDIR": [ { "value": "../../../../eth_generator_top.gen/sources_1/ip/clk_wiz_ctrl_inst" } ], "OUTPUTDIR": [ { "value": "../../../../reflectometer_top.gen/sources_1/ip/clk_wiz_ctrl_inst" } ],
"SELECTEDSIMMODEL": [ { "value": "" } ], "SELECTEDSIMMODEL": [ { "value": "" } ],
"SHAREDDIR": [ { "value": "." } ], "SHAREDDIR": [ { "value": "." } ],
"SWVERSION": [ { "value": "2025.1" } ], "SWVERSION": [ { "value": "2025.2" } ],
"SYNTHESISFLOW": [ { "value": "OUT_OF_CONTEXT" } ] "SYNTHESISFLOW": [ { "value": "OUT_OF_CONTEXT" } ]
} }
}, },
"boundary": { "boundary": {
"ports": { "ports": {
"reset": [ { "direction": "in", "driver_value": "0" } ], "resetn": [ { "direction": "in", "driver_value": "0" } ],
"clk_in1": [ { "direction": "in" } ], "clk_200": [ { "direction": "in" } ],
"clk_out1": [ { "direction": "out" } ], "clk_adc_65": [ { "direction": "out" } ],
"clk_out2": [ { "direction": "out" } ], "clk_adc_65_180": [ { "direction": "out" } ],
"clk_dac_125": [ { "direction": "out" } ],
"clk_dac_125_180": [ { "direction": "out" } ],
"locked": [ { "direction": "out" } ] "locked": [ { "direction": "out" } ]
}, },
"interfaces": { "interfaces": {
"reset": { "resetn": {
"vlnv": "xilinx.com:signal:reset:1.0", "vlnv": "xilinx.com:signal:reset:1.0",
"abstraction_type": "xilinx.com:signal:reset_rtl:1.0", "abstraction_type": "xilinx.com:signal:reset_rtl:1.0",
"mode": "slave", "mode": "slave",
"parameters": { "parameters": {
"POLARITY": [ { "value": "ACTIVE_HIGH", "value_src": "constant", "usage": "all" } ], "POLARITY": [ { "value": "ACTIVE_LOW", "value_src": "constant", "usage": "all" } ],
"BOARD.ASSOCIATED_PARAM": [ { "value": "RESET_BOARD_INTERFACE", "value_src": "constant", "usage": "all" } ], "BOARD.ASSOCIATED_PARAM": [ { "value": "RESET_BOARD_INTERFACE", "value_src": "constant", "usage": "all" } ],
"INSERT_VIP": [ { "value": "0", "resolve_type": "user", "format": "long", "usage": "simulation.rtl", "is_ips_inferred": true, "is_static_object": false } ] "INSERT_VIP": [ { "value": "0", "resolve_type": "user", "format": "long", "usage": "simulation.rtl", "is_ips_inferred": true, "is_static_object": false } ]
}, },
"port_maps": { "port_maps": {
"RST": [ { "physical_name": "reset" } ] "RST": [ { "physical_name": "resetn" } ]
} }
}, },
"clock_CLK_IN1": { "clock_CLK_IN1": {
@ -644,7 +646,7 @@
"BOARD.ASSOCIATED_PARAM": [ { "value": "CLK_IN1_BOARD_INTERFACE", "usage": "all", "is_static_object": false } ] "BOARD.ASSOCIATED_PARAM": [ { "value": "CLK_IN1_BOARD_INTERFACE", "usage": "all", "is_static_object": false } ]
}, },
"port_maps": { "port_maps": {
"CLK_IN1": [ { "physical_name": "clk_in1" } ] "CLK_IN1": [ { "physical_name": "clk_200" } ]
} }
}, },
"clock_CLK_OUT1": { "clock_CLK_OUT1": {
@ -662,7 +664,7 @@
"INSERT_VIP": [ { "value": "0", "resolve_type": "user", "format": "long", "usage": "simulation.rtl", "is_ips_inferred": true, "is_static_object": false } ] "INSERT_VIP": [ { "value": "0", "resolve_type": "user", "format": "long", "usage": "simulation.rtl", "is_ips_inferred": true, "is_static_object": false } ]
}, },
"port_maps": { "port_maps": {
"CLK_OUT1": [ { "physical_name": "clk_out1" } ] "CLK_OUT1": [ { "physical_name": "clk_adc_65" } ]
} }
}, },
"clock_CLK_OUT2": { "clock_CLK_OUT2": {
@ -680,10 +682,47 @@
"INSERT_VIP": [ { "value": "0", "resolve_type": "user", "format": "long", "usage": "simulation.rtl", "is_ips_inferred": true, "is_static_object": false } ] "INSERT_VIP": [ { "value": "0", "resolve_type": "user", "format": "long", "usage": "simulation.rtl", "is_ips_inferred": true, "is_static_object": false } ]
}, },
"port_maps": { "port_maps": {
"CLK_OUT2": [ { "physical_name": "clk_out2" } ] "CLK_OUT2": [ { "physical_name": "clk_adc_65_180" } ]
}
},
"clock_CLK_OUT3": {
"vlnv": "xilinx.com:signal:clock:1.0",
"abstraction_type": "xilinx.com:signal:clock_rtl:1.0",
"mode": "master",
"parameters": {
"FREQ_HZ": [ { "value": "100000000", "resolve_type": "generated", "format": "long", "is_ips_inferred": true, "is_static_object": false } ],
"FREQ_TOLERANCE_HZ": [ { "value": "0", "resolve_type": "generated", "format": "long", "is_ips_inferred": true, "is_static_object": false } ],
"PHASE": [ { "value": "0.0", "resolve_type": "generated", "format": "float", "is_ips_inferred": true, "is_static_object": false } ],
"CLK_DOMAIN": [ { "value": "", "resolve_type": "generated", "is_ips_inferred": true, "is_static_object": false } ],
"ASSOCIATED_BUSIF": [ { "value": "", "resolve_type": "generated", "is_ips_inferred": true, "is_static_object": false } ],
"ASSOCIATED_PORT": [ { "value": "", "resolve_type": "generated", "is_ips_inferred": true, "is_static_object": false } ],
"ASSOCIATED_RESET": [ { "value": "", "resolve_type": "generated", "is_ips_inferred": true, "is_static_object": false } ],
"INSERT_VIP": [ { "value": "0", "resolve_type": "user", "format": "long", "usage": "simulation.rtl", "is_ips_inferred": true, "is_static_object": false } ]
},
"port_maps": {
"CLK_OUT3": [ { "physical_name": "clk_dac_125" } ]
}
},
"clock_CLK_OUT4": {
"vlnv": "xilinx.com:signal:clock:1.0",
"abstraction_type": "xilinx.com:signal:clock_rtl:1.0",
"mode": "master",
"parameters": {
"FREQ_HZ": [ { "value": "100000000", "resolve_type": "generated", "format": "long", "is_ips_inferred": true, "is_static_object": false } ],
"FREQ_TOLERANCE_HZ": [ { "value": "0", "resolve_type": "generated", "format": "long", "is_ips_inferred": true, "is_static_object": false } ],
"PHASE": [ { "value": "0.0", "resolve_type": "generated", "format": "float", "is_ips_inferred": true, "is_static_object": false } ],
"CLK_DOMAIN": [ { "value": "", "resolve_type": "generated", "is_ips_inferred": true, "is_static_object": false } ],
"ASSOCIATED_BUSIF": [ { "value": "", "resolve_type": "generated", "is_ips_inferred": true, "is_static_object": false } ],
"ASSOCIATED_PORT": [ { "value": "", "resolve_type": "generated", "is_ips_inferred": true, "is_static_object": false } ],
"ASSOCIATED_RESET": [ { "value": "", "resolve_type": "generated", "is_ips_inferred": true, "is_static_object": false } ],
"INSERT_VIP": [ { "value": "0", "resolve_type": "user", "format": "long", "usage": "simulation.rtl", "is_ips_inferred": true, "is_static_object": false } ]
},
"port_maps": {
"CLK_OUT4": [ { "physical_name": "clk_dac_125_180" } ]
} }
} }
} }
} }
} },
"checksum": "3ec15bbf"
} }

View File

@ -1,128 +1,111 @@
`timescale 1 ns / 1 ns `timescale 1 ns / 1 ns
`include "interfaces.svh"
module reflectometer_top #( module reflectometer_top #(
parameter int unsigned DAC_DATA_WIDTH = 14, parameter int unsigned DAC_DATA_WIDTH = 14,
parameter int unsigned ADC_DATA_WIDTH = 12, parameter int unsigned ADC_DATA_WIDTH = 12,
parameter PACK_FACTOR = 1, parameter int unsigned PACK_FACTOR = 1,
parameter PROCESS_MODE = 0, parameter int unsigned PROCESS_MODE = 0,
parameter ZERO_LEVEL = 8192, parameter int unsigned ZERO_LEVEL = 8192,
parameter ACCUM_WIDTH = 32, parameter int unsigned ACCUM_WIDTH = 32,
parameter N_MAX = 4096, parameter int unsigned N_MAX = 4096,
parameter WINDOW_SIZE = 65, parameter int unsigned WINDOW_SIZE = 65,
parameter PACKET_SIZE = 1024 parameter int unsigned PACKET_SIZE = 1024
)( )(
input sys_clk, input wire clk_in,
input rst_n, input wire rst_n,
output wire locked,
output [3:0] led, // Accumulator AXI-S bus
input wire clk_axis_accumulator, // GMII PHY RX clock
axis_if.master axis_accumulator,
input gmii_rx_clk, // Control AXI-S bus
input gmii_tx_clk, input wire clk_axis_control, // GMII PHY TX clock
axis_if.slave axis_control,
(* MARK_DEBUG="true" *) output logic [7:0] s_axis_tx_tdata, // RTL-MAC handshake
(* MARK_DEBUG="true" *) output logic s_axis_tx_tvalid, input wire request_ready,
(* MARK_DEBUG="true" *) input logic s_axis_tx_tready, output wire send_request,
(* MARK_DEBUG="true" *) output logic s_axis_tx_tlast,
(* MARK_DEBUG="true" *) input wire [7:0] m_axis_rx_tdata,
(* MARK_DEBUG="true" *) input wire m_axis_rx_tvalid,
(* MARK_DEBUG="true" *) input wire m_axis_rx_tlast,
(* MARK_DEBUG="true" *) output wire m_axis_rx_tready,
// axis_mac
(* MARK_DEBUG="true" *) input logic req_ready,
(* MARK_DEBUG="true" *) output logic send_req,
// DAC // DAC
output wire dac_clk_o,
output wire p2_clk, output wire [DAC_DATA_WIDTH-1:0] dac_data,
(* MARK_DEBUG="true" *) output wire [DAC_DATA_WIDTH-1:0] p2_data, output wire dac_wrt,
(* MARK_DEBUG="true" *) output wire p2_wrt,
// ADC // ADC
output ch2_clk, output wire adc_clk_o,
(* MARK_DEBUG="true" *) input [ADC_DATA_WIDTH-1:0] ch2_data, input wire [ADC_DATA_WIDTH-1:0] adc_data,
input ch2_otr input wire adc_otr
); );
// -------------------------------------------------------------------------
// IDELAYCTRL
// -------------------------------------------------------------------------
(* IODELAY_GROUP = "rgmii_idelay_group" *)
IDELAYCTRL IDELAYCTRL_inst (
.RDY (),
.REFCLK (sys_clk),
.RST (1'b0)
);
// ------------------------------------------------------------------------- // -------------------------------------------------------------------------
// Generated clocks for controller // Generated clocks for controller
// Need to create this IP in Vivado: // Need to create this IP in Vivado:
// input : 200 MHz // input resetn
// output0: 130 MHz // input clk_200 : 200 MHz : Reference clock
// output1: 65 MHz // output clk_adc_65 : 65 MHz : ADC RTL clock
// output clk_adc_65_180 : 65 MHz, phase 180 deg. : ADC PHY clock
// output clk_adc_125 : 125 MHz : DAC RTL clock
// output clk_adc_125_180 : 125 MHz, phase 180 deg. : DAC PHY clock
// output locked
// ------------------------------------------------------------------------- // -------------------------------------------------------------------------
wire dac_clk; wire clk_sampler, clk_generator, clk_locked;
wire adc_clk;
wire clk_wiz_locked;
clk_wiz_ctrl_inst clk_wiz_ctrl_inst ( clk_wiz_ctrl_inst clk_wiz_inst
.clk_in1 (sys_clk), (
.reset (~rst_n), // Clock in ports
.clk_out1 (dac_clk), // 130 MHz .clk_200(clk_in),
.clk_out2 (adc_clk), // 65 MHz // Clock out ports
.locked (clk_wiz_locked) .clk_adc_65(clk_sampler),
.clk_adc_65_180(adc_clk_o),
.clk_dac_125(clk_generator),
.clk_dac_125_180(dac_clk_o),
// Status and control signals
.resetn(rst_n),
.locked(clk_locked)
); );
// ------------------------------------------------------------------------- assign locked = clk_locked;
// axis_mac interface
// RX stream from Ethernet goes into controller
// TX stream is unused for now
// -------------------------------------------------------------------------
// ------------------------------------------------------------------------- // -------------------------------------------------------------------------
// Controller reset // Controller reset
// Use both external reset and clk_wiz lock // Use both external reset and clk_wiz lock
// ------------------------------------------------------------------------- // -------------------------------------------------------------------------
wire ctrl_rst_n = rst_n & clk_wiz_locked; wire ctrl_rst_n = rst_n & clk_locked;
(* MARK_DEBUG="true" *) logic finish;
// Controller outputs to debug
(* MARK_DEBUG="true" *) wire [31:0] dac_pulse_width;
(* MARK_DEBUG="true" *) wire [31:0] dac_pulse_period;
(* MARK_DEBUG="true" *) wire [DAC_DATA_WIDTH-1:0] dac_pulse_height;
(* MARK_DEBUG="true" *) wire [15:0] dac_pulse_num;
(* MARK_DEBUG="true" *) wire [31:0] adc_pulse_period;
(* MARK_DEBUG="true" *) wire [15:0] adc_pulse_num;
(* MARK_DEBUG="true" *) wire dac_start;
(* MARK_DEBUG="true" *) wire adc_start;
(* MARK_DEBUG="true" *) wire dac_rst;
(* MARK_DEBUG="true" *) wire adc_rst;
// ------------------------------------------------------------------------- // -------------------------------------------------------------------------
// Controller // Controller
// ETH domain = gmii_rx_clk, because RX AXI master comes from axis_mac RX side
// ------------------------------------------------------------------------- // -------------------------------------------------------------------------
wire [31:0] dac_pulse_width;
wire [31:0] dac_pulse_period;
wire [DAC_DATA_WIDTH-1:0] dac_pulse_height;
wire [15:0] dac_pulse_num;
wire [31:0] adc_pulse_period;
wire [15:0] adc_pulse_num;
wire dac_start;
wire adc_start;
wire dac_rst;
wire adc_rst;
wire finish;
control #( control #(
.DAC_DATA_WIDTH(DAC_DATA_WIDTH) .DAC_DATA_WIDTH(DAC_DATA_WIDTH)
) udp_ctrl_inst ( ) udp_ctrl_inst (
.eth_clk_in (gmii_rx_clk), .eth_clk_in (clk_axis_control),
.dac_clk_in (dac_clk), .dac_clk_in (clk_generator),
.adc_clk_in (adc_clk), .adc_clk_in (clk_sampler),
.rst_n (ctrl_rst_n), .rst_n (ctrl_rst_n),
.s_axis_tdata (m_axis_rx_tdata), .s_axis_tdata (axis_control.tdata),
.s_axis_tvalid (m_axis_rx_tvalid), .s_axis_tvalid (axis_control.tvalid),
.s_axis_tready (m_axis_rx_tready), .s_axis_tready (axis_control.tready),
.s_axis_tlast (m_axis_rx_tlast), .s_axis_tlast (axis_control.tlast),
.finish (finish), .finish (finish),
@ -141,180 +124,122 @@ module reflectometer_top #(
.adc_rst (adc_rst) .adc_rst (adc_rst)
); );
// ------------------------------------------------------------------------- //------------------------------------------------------------
// DAC
// -------------------------------------------------------------------------
(* MARK_DEBUG="true" *) logic sample_req;
(* MARK_DEBUG="true" *) logic sample_req_sync1;
(* MARK_DEBUG="true" *) logic sample_req_sync2;
(* MARK_DEBUG="true" *) logic sample_req_sync3;
(* MARK_DEBUG="true" *) logic sample_done;
(* MARK_DEBUG="true" *) logic sample_done_sync1;
(* MARK_DEBUG="true" *) logic sample_done_sync2;
(* MARK_DEBUG="true" *) logic sample_done_sync3;
//------------------------------------------------------------
// DAC -> ADC CDC // DAC -> ADC CDC
//------------------------------------------------------------ //------------------------------------------------------------
always_ff @(posedge adc_clk or posedge adc_rst) begin (* ASYNC_REG = "TRUE" *) logic [2:0] stretch; // 125/65~=2. Чтобы поймать единичный импульс, растянем его во времени
if (adc_rst) begin (* ASYNC_REG = "TRUE" *) logic [1:0] sync_DA;
sample_req <= 1'b0; wire dac_done_stretched;
sample_req_sync2 <= 1'b0;
sample_req_sync3 <= 1'b0; wire generator_done, generator_request;
end wire sampler_done, sampler_request;
always_ff @(posedge clk_generator or posedge dac_rst)
begin
if (dac_rst)
stretch <= 0;
else begin else begin
sample_req_sync2 <= sample_req_sync1; stretch[0] <= generator_done;
sample_req_sync3 <= sample_req_sync2; stretch[1] <= stretch[0];
sample_req <= sample_req_sync3; stretch[2] <= stretch[1];
end end
end end
assign dac_done_stretched = |stretch;
//------------------------------------------------------------ always_ff @(posedge clk_sampler or posedge adc_rst) begin
if (adc_rst)
sync_DA <= 0;
else begin
sync_DA[0] <= dac_done_stretched;
sync_DA[1] <= sync_DA[0];
end
end
assign sampler_request = sync_DA[1];
//------------------------------------------------------------
// ADC -> DAC CDC // ADC -> DAC CDC
//------------------------------------------------------------ //------------------------------------------------------------
always_ff @(posedge dac_clk or posedge dac_rst) begin (* ASYNC_REG = "TRUE" *) logic [1:0] sync_AD;
if (dac_rst) begin
sample_done <= 1'b0; always_ff @(posedge clk_generator or posedge dac_rst) begin
sample_done_sync2 <= 1'b0; if (dac_rst)
sample_done_sync3 <= 1'b0; sync_AD <= 0;
end
else begin else begin
sample_done_sync2 <= sample_done_sync1; sync_AD[0] <= sampler_done;
sample_done_sync3 <= sample_done_sync2; sync_AD[1] <= sync_AD[0];
sample_done <= sample_done_sync3;
end end
end end
assign generator_request = sync_AD[1];
//------------------------------------------------------------
// Generator
//------------------------------------------------------------ //------------------------------------------------------------
// Generator (DAC)
//------------------------------------------------------------
generator #( generator #(
.DATA_WIDTH(DAC_DATA_WIDTH), .DATA_WIDTH(DAC_DATA_WIDTH),
.ZERO_LEVEL(ZERO_LEVEL) .ZERO_LEVEL(ZERO_LEVEL)
) generator_inst ( ) generator_inst (
.clk_in(dac_clk), .clk_dac(clk_generator),
.rst(dac_rst), .rst(dac_rst),
.start(dac_start), .start(dac_start),
.pulse_width(dac_pulse_width), .pulse_width(dac_pulse_width),
.pulse_period(dac_pulse_period), .pulse_period(dac_pulse_period),
.pulse_height(dac_pulse_height), .pulse_height(dac_pulse_height),
.pulse_num(dac_pulse_num), .pulse_num(dac_pulse_num),
.pulse(p2_wrt), .dac_out(dac_data),
.pulse_height_out(p2_data), .done(generator_done),
.sample_done(sample_done), .request(generator_request)
.sample_req(sample_req_sync1)
); );
assign dac_wrt = dac_clk_o;
wire ch2_clk_oddr;
ODDR #(
.DDR_CLK_EDGE("SAME_EDGE"),
.INIT(1'b0),
.SRTYPE("SYNC")
) ODDR_ch2_clk (
.Q (ch2_clk_oddr),
.C (adc_clk),
.CE(1'b1),
.D1(1'b1),
.D2(1'b0),
.R (1'b0),
.S (1'b0)
);
OBUF OBUF_ch2_clk (
.I(ch2_clk_oddr),
.O(ch2_clk)
);
wire p2_clk_oddr;
ODDR #(
.DDR_CLK_EDGE("SAME_EDGE"),
.INIT(1'b0),
.SRTYPE("SYNC")
) ODDR_p2_clk (
.Q (p2_clk_oddr),
.C (dac_clk),
.CE(1'b1),
.D1(1'b1),
.D2(1'b0),
.R (1'b0),
.S (1'b0)
);
OBUF OBUF_p2_clk (
.I(p2_clk_oddr),
.O(p2_clk)
);
// -------------------------------------------------------------------------
// ADC
// ------------------------------------------------------------------------- // -------------------------------------------------------------------------
// Sampler (ADC)
// -------------------------------------------------------------------------
wire [ADC_DATA_WIDTH*PACK_FACTOR-1:0] sampler_m_axis_tdata;
wire sampler_m_axis_tvalid;
(* MARK_DEBUG="true" *) logic [ADC_DATA_WIDTH*PACK_FACTOR-1:0] accum_m_axis_tdata; sampler #(
(* MARK_DEBUG="true" *) logic acum_m_axis_tvalid;
sampler
#(
.DATA_WIDTH(ADC_DATA_WIDTH), .DATA_WIDTH(ADC_DATA_WIDTH),
.PACK_FACTOR(PACK_FACTOR), .PACK_FACTOR(PACK_FACTOR),
.PROCESS_MODE(PROCESS_MODE) .PROCESS_MODE(PROCESS_MODE)
) ) sampler_dut (
sampler_dut .clk_in(clk_sampler),
( .rst(adc_rst),
.clk_in(adc_clk), .data_in(adc_data),
.rst(adc_rst), .out_of_range(adc_otr),
.data_in(ch2_data), .m_axis_tdata(sampler_m_axis_tdata),
.out_of_range(ch2_otr), .m_axis_tvalid(sampler_m_axis_tvalid),
.m_axis_tdata(accum_m_axis_tdata),
.m_axis_tvalid(acum_m_axis_tvalid),
.smp_num(adc_pulse_period), .smp_num(adc_pulse_period),
.sample_req(sample_req), .done(sampler_done),
.sample_done(sample_done_sync1) .request(sampler_request)
); );
// ------------------------------------------------------------------------- // -------------------------------------------------------------------------
// Accumulator // Accumulator
// ------------------------------------------------------------------------- // -------------------------------------------------------------------------
accumulator_top #(
accumulator_top
#(
.DATA_WIDTH(ADC_DATA_WIDTH), .DATA_WIDTH(ADC_DATA_WIDTH),
.ACCUM_WIDTH(ACCUM_WIDTH), .ACCUM_WIDTH(ACCUM_WIDTH),
.N_MAX(N_MAX), .N_MAX(N_MAX),
.WINDOW_SIZE(WINDOW_SIZE), .WINDOW_SIZE(WINDOW_SIZE),
.PACKET_SIZE(PACKET_SIZE) .PACKET_SIZE(PACKET_SIZE)
) ) accumulator_top_dut (
accumulator_top_dut .clk_in(clk_sampler),
(
.clk_in(adc_clk),
.rst(adc_rst), .rst(adc_rst),
.s_axis_tdata(accum_m_axis_tdata), .s_axis_tdata(sampler_m_axis_tdata),
.s_axis_tvalid(acum_m_axis_tvalid), .s_axis_tvalid(sampler_m_axis_tvalid),
.start(adc_start), .start(adc_start),
.smp_num(adc_pulse_period), .smp_num(adc_pulse_period),
.seq_num(adc_pulse_num), .seq_num(adc_pulse_num),
.eth_clk_in(gmii_tx_clk), .req_ready(request_ready),
.req_ready(req_ready), .send_req(send_request),
.send_req(send_req), .eth_clk_in(clk_axis_accumulator),
.m_axis_tdata(s_axis_tx_tdata), .m_axis_tdata(axis_accumulator.tdata),
.m_axis_tvalid(s_axis_tx_tvalid), .m_axis_tvalid(axis_accumulator.tvalid),
.m_axis_tready(s_axis_tx_tready), .m_axis_tready(axis_accumulator.tready),
.m_axis_tlast(s_axis_tx_tlast), .m_axis_tlast(axis_accumulator.tlast),
.finish(finish) .finish(finish)
); );
// -------------------------------------------------------------------------
// Simple LED status
// -------------------------------------------------------------------------
assign led[0] = clk_wiz_locked;
assign led[1] = m_axis_rx_tvalid;
assign led[2] = dac_start;
endmodule endmodule

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@ -0,0 +1,285 @@
`timescale 1ns / 1ps
`include "interfaces.svh"
module reflectometer_tb;
//------------------------------------------------------------
// Параметры
//------------------------------------------------------------
localparam int unsigned DAC_DATA_WIDTH = 14;
localparam int unsigned ADC_DATA_WIDTH = 12;
localparam LOGIC_ZERO_LEVEL = 0; // DAC -5V for logic zero
localparam VOLTAGE_ZERO_LEVEL = 2**(DAC_DATA_WIDTH-1); // DAC 0V for logic zero
localparam PACK_FACTOR = 1; // not used in TB
localparam PROCESS_MODE = 1; // 0 - uint, 1 - int
localparam ACCUM_WIDTH = 32; // accumulator number bit witdth
localparam N_MAX = 4096; // max value of windows to average by experiments
localparam WINDOW_SIZE = 65; // fixed subwindow size to average by time
localparam PACKET_SIZE = 1024; // bytes per UDP packet
localparam ZERO_LEVEL = LOGIC_ZERO_LEVEL; // "logic" VS "voltage"
localparam CLK_ETH_PHY_PERIOD = 8.000; // 125 MHz
localparam CLK_REF_PERIOD = 5.000; // 200 MHz
//------------------------------------------------------------
// Тактовые сигналы и сброс
//------------------------------------------------------------
logic clk_ref = 1'b0; // 200 MHz
logic clk_eth_phy = 1'b0; // common for RX & TX
logic rst_n = 1'b0;
//------------------------------------------------------------
// Управление и конфиг
//------------------------------------------------------------
//------------------------------------------------------------
// Входы
//------------------------------------------------------------
//------------------------------------------------------------
// Выходы
//------------------------------------------------------------
wire mmcm_locked;
//------------------------------------------------------------
// Внутренние сигналы тестбенча
//------------------------------------------------------------
// AXI-S интерфейс для управления
axis_if axis_control_if (
.clk(clk_eth_phy),
.rst_n(rst_n)
);
// AXI-S интерфейс для данных
axis_if axis_accumulator_if (
.clk(clk_eth_phy),
.rst_n(rst_n)
);
// DAC интерфейс
wire clk_dac;
wire dac_wrt;
wire [DAC_DATA_WIDTH-1:0] dac_data;
// ADC интерфейс
wire clk_adc;
wire adc_otr;
wire [ADC_DATA_WIDTH-1:0] adc_data;
// Интерфейс хендшейка с MAC-PHY
wire send_request;
logic request_ready;
// Сигналы ЦАП и АЦП
real signal_voltage;
//------------------------------------------------------------
// Virtual DAC
//------------------------------------------------------------
virtual_dac_model #( // default voltage range is +/- 5V
.DAC_DATA_WIDTH(DAC_DATA_WIDTH)
// ,.VOLTAGE_GAIN(2)
) virtual_dac (
.clk_i(clk_dac),
.wrt_i(dac_wrt),
.data_i(dac_data),
.voltage_o(signal_voltage)
);
//------------------------------------------------------------
// Virtual ADC
//------------------------------------------------------------
virtual_adc_model #( // default voltage range is +/- 5V
.ADC_DATA_WIDTH(ADC_DATA_WIDTH)
) virtual_adc (
.clk_i(clk_adc),
.voltage_i(signal_voltage),
.otr_o(adc_otr),
.data_o(adc_data)
);
//------------------------------------------------------------
// Statistics monitor
//------------------------------------------------------------
//------------------------------------------------------------
// Config handler
//------------------------------------------------------------
//------------------------------------------------------------
// DUT
//------------------------------------------------------------
reflectometer_top #(
.DAC_DATA_WIDTH(DAC_DATA_WIDTH),
.ADC_DATA_WIDTH(ADC_DATA_WIDTH),
.PACK_FACTOR(PACK_FACTOR),
.PROCESS_MODE(PROCESS_MODE),
.ZERO_LEVEL(ZERO_LEVEL),
.ACCUM_WIDTH(ACCUM_WIDTH),
.N_MAX(N_MAX),
.WINDOW_SIZE(WINDOW_SIZE),
.PACKET_SIZE(PACKET_SIZE)
) DUT (
.clk_in(clk_ref),
.rst_n(rst_n),
.locked(mmcm_locked),
// Accumulator AXI-S bus
.clk_axis_accumulator(clk_eth_phy), // GMII PHY RX clock
.axis_accumulator(axis_accumulator_if.master),
// Control AXI-S bus
.clk_axis_control(clk_eth_phy), // GMII PHY TX clock
.axis_control(axis_control_if.slave),
// RTL-MAC handshake
.request_ready(request_ready),
.send_request(send_request),
// DAC
.dac_clk_o(clk_dac),
.dac_data(dac_data),
.dac_wrt(dac_wrt),
// ADC
.adc_clk_o(clk_adc),
.adc_data(adc_data),
.adc_otr(adc_otr)
);
//------------------------------------------------------------
// Тактовые сигналы
//------------------------------------------------------------
initial begin
forever #(CLK_REF_PERIOD/2) clk_ref = ~clk_ref;
end
initial begin
forever #(CLK_ETH_PHY_PERIOD/2) clk_eth_phy = ~clk_eth_phy;
end
//------------------------------------------------------------
// Таски для тестирования
//------------------------------------------------------------
// Таски работы с AXI-Stream
task automatic dut_soft_reset(virtual axis_if#(8).tb vif);
logic [7:0] tx_packet[];
tx_packet = '{8'h0f};
vif.master_send(tx_packet);
endtask
task automatic dut_start(virtual axis_if#(8).tb vif);
logic [7:0] tx_packet[];
tx_packet = '{8'hf0};
vif.master_send(tx_packet);
endtask
task automatic dut_send_system_config(
virtual axis_if#(8).tb vif,
input logic [31:0] pulse_width,
input logic [31:0] pulse_period,
input logic [15:0] pulse_num,
input logic [13:0] pulse_height, // achtung! p_height strictly must have 14 bits of width
input logic [31:0] pulse_period_adc
);
// Создаем временный фиксированный массив и упаковываем всё одной строкой
logic [7:0] tx_packet[];
tx_packet = '{
8'h88, // Команда
pulse_width[7:0], pulse_width[15:8], pulse_width[23:16], pulse_width[31:24],
pulse_period[7:0], pulse_period[15:8], pulse_period[23:16], pulse_period[31:24],
pulse_num[7:0], pulse_num[15:8], pulse_height[7:0], 8'({2'b00, pulse_height[13:8]}),
pulse_period_adc[7:0], pulse_period_adc[15:8], pulse_period_adc[23:16], pulse_period_adc[31:24]
};
vif.master_send(tx_packet);
endtask
// Таски сбора и обработки статистики
task automatic dut_read_output(
virtual axis_if#(8).tb vif,
input int sample_num,
input bit randomize_recv_delays,
output int output_data[]
);
logic [7:0] rx_packet[];
logic [ACCUM_WIDTH-1:0] data_packet[];
int packet_num = $ceil(real'(sample_num / WINDOW_SIZE) / real'(PACKET_SIZE));
int numbers_per_packet = PACKET_SIZE/(ACCUM_WIDTH/8);
int idx = 0;
if (sample_num % WINDOW_SIZE) begin
$display("[TB] -dut_read_output- Error, sample_num must be multiple of WINDOW_SIZE: %0d %% %0d = %0d", sample_num, WINDOW_SIZE, sample_num % WINDOW_SIZE);
$finish;
end
data_packet = new[numbers_per_packet];
output_data = new[numbers_per_packet * packet_num];
// count send_request posedge todo
// timeout todo
// recv loop
for (int i = 0; i < packet_num; i++) begin
// randomize_recv_delays todo
request_ready = 1;
vif.slave_recv(rx_packet);
request_ready = 0;
// unpack values
data_packet = {<< byte {rx_packet}};
data_packet = {<< ACCUM_WIDTH {data_packet}};
// copy and convert values
for (int j = 0; j < data_packet.size(); j++) begin
output_data[i * data_packet.size() + j] = int'(data_packet[j]);
end
end
// wait for dut.finish posedge todo
// timeout todo
// error handling todo
endtask
//------------------------------------------------------------
// ОСНОВНОЙ ПРОЦЕСС ТЕСТИРОВАНИЯ
//------------------------------------------------------------
initial begin
int output_data[];
automatic virtual axis_if.tb control_vif = axis_control_if.tb;
automatic virtual axis_if.tb accumulator_vif = axis_accumulator_if.tb;
$display("[TB] DUT initializaton");
// Инициализация
request_ready = 0;
rst_n = 0;
#100;
rst_n = 1;
wait(mmcm_locked === 1'b1);
#150;
$display("[TB] MMCM locked");
dut_soft_reset(control_vif);
#100;
// Тесты
$display("[TB] Tests start");
dut_send_system_config(
.vif(control_vif),
.pulse_width(32'd123),
.pulse_period(32'd5000),
.pulse_num(16'd1),
.pulse_height(14'd15000), // 0V
.pulse_period_adc(32'd2600)
);
#100;
dut_start(control_vif);
dut_read_output(
.vif(accumulator_vif),
.sample_num(2600),
.randomize_recv_delays(0),
.output_data(output_data)
);
$display("Received %0d numbers", output_data.size());
for (int i = 0; i < output_data.size(); i++) begin
$write("%0d ", output_data[i]);
end
$display("");
$display("[TB] ALL PASSED");
$finish;
end
endmodule

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@ -0,0 +1,117 @@
<?xml version="1.0" encoding="UTF-8"?>
<wave_config>
<wave_state>
</wave_state>
<db_ref_list>
<db_ref path="reflectometer_tb_behav.wdb" id="1">
<top_modules>
<top_module name="glbl" />
<top_module name="reflectometer_tb" />
</top_modules>
</db_ref>
</db_ref_list>
<zoom_setting>
<ZoomStartTime time="0.000 ns"></ZoomStartTime>
<ZoomEndTime time="1,506.001 ns"></ZoomEndTime>
<Cursor1Time time="1,000.000 ns"></Cursor1Time>
</zoom_setting>
<column_width_setting>
<NameColumnWidth column_width="196"></NameColumnWidth>
<ValueColumnWidth column_width="76"></ValueColumnWidth>
</column_width_setting>
<WVObjectSize size="7" />
<wvobject type="logic" fp_name="/reflectometer_tb/rst_n">
<obj_property name="ElementShortName">rst_n</obj_property>
<obj_property name="ObjectShortName">rst_n</obj_property>
</wvobject>
<wvobject type="logic" fp_name="/reflectometer_tb/mmcm_locked">
<obj_property name="ElementShortName">mmcm_locked</obj_property>
<obj_property name="ObjectShortName">mmcm_locked</obj_property>
</wvobject>
<wvobject type="group" fp_name="group28">
<obj_property name="label">Signal</obj_property>
<obj_property name="DisplayName">label</obj_property>
<wvobject type="array" fp_name="/reflectometer_tb/dac_data">
<obj_property name="ElementShortName">dac_data[13:0]</obj_property>
<obj_property name="ObjectShortName">dac_data[13:0]</obj_property>
</wvobject>
<wvobject type="other" fp_name="/reflectometer_tb/signal_voltage">
<obj_property name="ElementShortName">signal_voltage</obj_property>
<obj_property name="ObjectShortName">signal_voltage</obj_property>
</wvobject>
<wvobject type="array" fp_name="/reflectometer_tb/adc_data">
<obj_property name="ElementShortName">adc_data[11:0]</obj_property>
<obj_property name="ObjectShortName">adc_data[11:0]</obj_property>
</wvobject>
<wvobject type="logic" fp_name="/reflectometer_tb/adc_otr">
<obj_property name="ElementShortName">adc_otr</obj_property>
<obj_property name="ObjectShortName">adc_otr</obj_property>
</wvobject>
</wvobject>
<wvobject type="logic" fp_name="/reflectometer_tb/send_request">
<obj_property name="ElementShortName">send_request</obj_property>
<obj_property name="ObjectShortName">send_request</obj_property>
</wvobject>
<wvobject type="logic" fp_name="/reflectometer_tb/request_ready">
<obj_property name="ElementShortName">request_ready</obj_property>
<obj_property name="ObjectShortName">request_ready</obj_property>
</wvobject>
<wvobject type="group" fp_name="group51">
<obj_property name="label">Controller</obj_property>
<obj_property name="DisplayName">label</obj_property>
<obj_property name="isExpanded"></obj_property>
<wvobject type="logic" fp_name="/reflectometer_tb/axis_control_if/clk">
<obj_property name="ElementShortName">clk</obj_property>
<obj_property name="ObjectShortName">clk</obj_property>
</wvobject>
<wvobject type="logic" fp_name="/reflectometer_tb/axis_control_if/rst_n">
<obj_property name="ElementShortName">rst_n</obj_property>
<obj_property name="ObjectShortName">rst_n</obj_property>
</wvobject>
<wvobject type="array" fp_name="/reflectometer_tb/axis_control_if/tdata">
<obj_property name="ElementShortName">tdata[7:0]</obj_property>
<obj_property name="ObjectShortName">tdata[7:0]</obj_property>
</wvobject>
<wvobject type="logic" fp_name="/reflectometer_tb/axis_control_if/tvalid">
<obj_property name="ElementShortName">tvalid</obj_property>
<obj_property name="ObjectShortName">tvalid</obj_property>
</wvobject>
<wvobject type="logic" fp_name="/reflectometer_tb/axis_control_if/tlast">
<obj_property name="ElementShortName">tlast</obj_property>
<obj_property name="ObjectShortName">tlast</obj_property>
</wvobject>
<wvobject type="logic" fp_name="/reflectometer_tb/axis_control_if/tready">
<obj_property name="ElementShortName">tready</obj_property>
<obj_property name="ObjectShortName">tready</obj_property>
</wvobject>
</wvobject>
<wvobject type="group" fp_name="group52">
<obj_property name="label">Accumulator</obj_property>
<obj_property name="DisplayName">label</obj_property>
<obj_property name="isExpanded"></obj_property>
<wvobject type="logic" fp_name="/reflectometer_tb/axis_accumulator_if/clk">
<obj_property name="ElementShortName">clk</obj_property>
<obj_property name="ObjectShortName">clk</obj_property>
</wvobject>
<wvobject type="logic" fp_name="/reflectometer_tb/axis_accumulator_if/rst_n">
<obj_property name="ElementShortName">rst_n</obj_property>
<obj_property name="ObjectShortName">rst_n</obj_property>
</wvobject>
<wvobject type="array" fp_name="/reflectometer_tb/axis_accumulator_if/tdata">
<obj_property name="ElementShortName">tdata[7:0]</obj_property>
<obj_property name="ObjectShortName">tdata[7:0]</obj_property>
</wvobject>
<wvobject type="logic" fp_name="/reflectometer_tb/axis_accumulator_if/tvalid">
<obj_property name="ElementShortName">tvalid</obj_property>
<obj_property name="ObjectShortName">tvalid</obj_property>
</wvobject>
<wvobject type="logic" fp_name="/reflectometer_tb/axis_accumulator_if/tlast">
<obj_property name="ElementShortName">tlast</obj_property>
<obj_property name="ObjectShortName">tlast</obj_property>
</wvobject>
<wvobject type="logic" fp_name="/reflectometer_tb/axis_accumulator_if/tready">
<obj_property name="ElementShortName">tready</obj_property>
<obj_property name="ObjectShortName">tready</obj_property>
</wvobject>
</wvobject>
</wave_config>

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@ -1,7 +1,7 @@
# Генератор # Генератор
Модуль выполняет задачу формирования последовательности импульсов заданной амплитуды, длительности и периода. Модуль выполняет задачу формирования последовательности импульсов заданной амплитуды, длительности и периода.
Дополнительно реализован механизм синхронизации с модулем сэмплера через сигналы `sample_req` и `sample_done`, позволяющий запускать сбор данных для каждого импульса и ожидать подтверждения завершения выборки перед переходом к следующему импульсу. Дополнительно реализован механизм синхронизации с модулем сэмплера через сигналы `request` и `done`, позволяющий запускать сбор данных для каждого импульса и ожидать подтверждения завершения выборки перед переходом к следующему импульсу.
--- ---
@ -22,7 +22,7 @@
## Список входных портов ## Список входных портов
### clk_in ### clk_dac
Сигнал тактирования модуля. Сигнал тактирования модуля.
### rst ### rst
@ -47,25 +47,25 @@
### [15:0] pulse_num ### [15:0] pulse_num
Количество импульсов, которое необходимо сгенерировать. Количество импульсов, которое необходимо сгенерировать.
### sample_done ### request
Сигнал подтверждения от сэмплера о завершении выборки данных для текущего импульса. Сигнал запроса на синхронизацию от сэмплера для текущего импульса.
--- ---
## Список выходных портов ## Список выходных портов
pulse ### dac_wrt
Выходной сигнал разрешения записи сигнала Выходной сигнал разрешения записи сигнала
[DATA_WIDTH-1:0] pulse_height_out ### [DATA_WIDTH-1:0] dac_out
Выходное значение амплитуды сигнала. Выходное значение амплитуды сигнала.
Во время активной части импульса равно `pulse_height`, вне импульса — `ZERO_LEVEL`. Во время активной части импульса равно `pulse_height`, вне импульса — `ZERO_LEVEL`.
sample_req ### done
Сигнал запроса на запуск выборки в модуле сэмплера. Сигнал запроса на запуск синхронизации с сэмплером для текущего импульса.
Поднимается в начале каждого нового импульса и снимается после получения `sample_done`. Поднимается в начале каждого нового импульса и снимается после получения `request`.
--- ---
@ -74,11 +74,11 @@ sample_req
После прихода сигнала `start` модуль: После прихода сигнала `start` модуль:
- фиксирует входные параметры генерации - фиксирует входные параметры генерации
- сбрасывает внутренние счетчики
- поднимает `enable = 1` - поднимает `enable = 1`
- формирует первый `sample_req` - выполняет `pulse_num` циклов работы
- - типичный цикл состоит в ожидании синхронизации (`synced`), после чего запуск генерации импульса
После этого начинается последовательная генерация импульсов. Синхронизация представляет из себя простое рукопожатие с внешним модулем, имеющим сигналы `request`/`done` работающими в соответствии с этими сигналами генератора. Один из модулей, входит в ожидание и ставит на свой done активный уровень, после чего ждет, пока второй, запаздывающий модуль не войдет в свой режим ожидания, и не выставит для своего done активный уровень. Для каждого из модулей, на следующий такт после выставления активного уровня, производится проверка своего request. Так, при получении активного request (иными словами активного done от внешнего модуля), модуль незамедлительно опускает уровень своего done и начинает работать. Done подымается до активного уровня хотя-бы на один такт работы соответствующего модуля.
--- ---

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@ -1,105 +1,95 @@
`timescale 1ns / 1ps `timescale 1ns / 1ps
module generator module generator
#( #(
parameter DATA_WIDTH = 14, parameter DATA_WIDTH = 14,
parameter ZERO_LEVEL = 8192 // 8192 or 0 parameter ZERO_LEVEL = 8192 // 8192 or 0
) )
( (
input clk_in, input clk_dac,
input rst, input rst,
input start, input start,
input [31:0] pulse_width, input [31:0] pulse_width,
input [31:0] pulse_period, input [31:0] pulse_period,
input [DATA_WIDTH-1:0] pulse_height, input [DATA_WIDTH-1:0] pulse_height,
input [15:0] pulse_num, input [15:0] pulse_num,
input sample_done, input request,
output pulse, output logic [DATA_WIDTH-1:0] dac_out,
output[DATA_WIDTH-1:0] pulse_height_out, output logic done
output logic sample_req );
logic [DATA_WIDTH-1:0] pulse_height_reg;
logic [31:0] pulse_width_reg, pulse_period_reg;
logic [15:0] pulse_num_reg;
); logic [15:0] cnt_pulse_num;
logic [31:0] cnt_pulse_period;
(* MARK_DEBUG="true" *) logic [DATA_WIDTH-1:0] pulse_height_reg, pulse_height_out_reg; logic enable, synced;
(* MARK_DEBUG="true" *) logic [31:0] pulse_width_reg, pulse_period_reg; initial begin
(* MARK_DEBUG="true" *) logic [15:0] pulse_num_reg; cnt_pulse_period = '0;
cnt_pulse_num = '0;
enable = 0;
synced = 0;
dac_out = ZERO_LEVEL;
end
(* MARK_DEBUG="true" *) logic enable; always @(posedge clk_dac) begin
(* MARK_DEBUG="true" *) logic [15:0] cnt_pulse_num;
(* MARK_DEBUG="true" *) logic [31:0] cnt_period;
always @(posedge clk_in) begin
if (rst) begin if (rst) begin
pulse_height_reg <= ZERO_LEVEL; pulse_height_reg <= ZERO_LEVEL;
pulse_height_out_reg <= ZERO_LEVEL; pulse_width_reg <= 0;
pulse_width_reg <= '0; pulse_period_reg <= 0;
pulse_period_reg <= '0; pulse_num_reg <= 0;
pulse_num_reg <= '0; cnt_pulse_num <= 0;
enable <= 0; cnt_pulse_period <= 0;
cnt_pulse_num <= '0; dac_out <= ZERO_LEVEL;
cnt_period <= '0; done <= 0;
sample_req <= 0; enable <= 0;
end else begin synced <= 0;
end
else begin
// wait start for updating registers
if (start & !enable) begin if (start & !enable) begin
enable <= 1'b1; enable <= 1;
cnt_pulse_num <= '0; pulse_width_reg <= pulse_width;
cnt_period <= '0; pulse_period_reg <= pulse_period;
pulse_num_reg <= pulse_num;
sample_req <= 1; pulse_height_reg <= pulse_height;
pulse_width_reg <= pulse_width;
pulse_period_reg <= pulse_period;
pulse_num_reg <= pulse_num;
pulse_height_reg <= pulse_height;
end end
// main work cycle
if (enable) begin if (enable) begin
if (cnt_pulse_num != pulse_num_reg) begin
if (!sample_req && (cnt_period == 0)) begin // wait for synchronization with sampler
pulse_height_out_reg <= ZERO_LEVEL; if (!synced) begin
if (sample_done) begin if (request & done) begin
sample_req <= 1'b0; synced <= 1;
done <= 0;
end
else
done <= 1;
end end
else begin
if (!sample_done) begin if (cnt_pulse_period != pulse_period_reg) begin
if (cnt_pulse_num == pulse_num_reg - 1) begin if (cnt_pulse_period < pulse_width_reg)
enable <= 1'b0; dac_out <= pulse_height_reg;
else
dac_out <= ZERO_LEVEL;
cnt_pulse_period++;
end end
else begin else begin
cnt_pulse_num <= cnt_pulse_num + 1; cnt_pulse_num++;
sample_req <= 1'b1; cnt_pulse_period <= 0;
cnt_period <= 1; synced <= 0;
dac_out <= ZERO_LEVEL;
end end
end end
end end
else begin else begin
cnt_pulse_num <= 0;
if (cnt_period <= pulse_width_reg) begin enable <= 0;
pulse_height_out_reg <= pulse_height_reg;
end else begin
pulse_height_out_reg <= ZERO_LEVEL;
end
if (cnt_period == pulse_period_reg) begin
cnt_period <= 0;
end else begin
cnt_period <= cnt_period + 1;
end
if (sample_req && sample_done) begin
sample_req <= 0;
end
end end
end end
end end
end end
OBUF OBUF_pulse_clk (
.I(clk_in),
.O(pulse)
);
assign pulse_height_out = pulse_height_out_reg;
endmodule endmodule

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@ -1,114 +1,360 @@
`timescale 1ns / 1ps `timescale 1ns / 1ps
module generator_tb; module generator_tb;
// === Параметры ===
localparam DATA_WIDTH = 14;
localparam LOGIC_ZERO_LEVEL = 0; // DAC -5V for logic zero
localparam VOLTAGE_ZERO_LEVEL = 2**(DATA_WIDTH-1); // DAC 0V for logic zero
localparam CLK_PERIOD = 8;
parameter string ZERO_LEVEL = "logic"; // "logic" VS "true"
parameter DATA_WIDTH = 14; // === Сигналы ===
parameter ZERO_LEVEL = 8192; // Системные сигналы
parameter CLK_PERIOD = 16;
logic clk; logic clk;
logic rst; logic rst;
logic start; logic start;
// Входные сигналы
logic [31:0] pulse_width; // config reg
logic [31:0] pulse_period; // config reg
logic [DATA_WIDTH-1:0] pulse_height; // config reg
logic [15:0] pulse_num; // config reg
logic sampler_done; // sampler request for synchronization
// Выходные сигналы
wire [DATA_WIDTH-1:0] dac_out; // DAC input logic signal
wire generator_done; // generator request for synchronization
logic [31:0] pulse_width; // === Переменные ===
logic [31:0] pulse_period; int current_zero_level;
logic [DATA_WIDTH-1:0] pulse_height; initial begin
logic [15:0] pulse_num; if (ZERO_LEVEL == "true")
current_zero_level = VOLTAGE_ZERO_LEVEL;
logic pulse; else
logic [DATA_WIDTH-1:0] pulse_height_out; current_zero_level = LOGIC_ZERO_LEVEL;
end
// DUT // DUT
generator #( generate
.DATA_WIDTH(DATA_WIDTH) if (ZERO_LEVEL == "true") begin : gen_dut_true
) dut ( generator #(
.clk_in(clk), .DATA_WIDTH(DATA_WIDTH),
.rst(rst), .ZERO_LEVEL(VOLTAGE_ZERO_LEVEL)
.start(start), ) dut (
.pulse_width(pulse_width), .clk_dac(clk),
.pulse_period(pulse_period), .rst(rst),
.pulse_height(pulse_height), .start(start),
.pulse_num(pulse_num), .pulse_width(pulse_width),
.pulse(pulse), .pulse_period(pulse_period),
.pulse_height_out(pulse_height_out) .pulse_height(pulse_height),
); .pulse_num(pulse_num),
.dac_out(dac_out),
.done(generator_done),
.request(sampler_done)
);
initial $display("[TB] Generator compiled. ZERO_LEVEL: TRUE");
end
else if (ZERO_LEVEL == "logic") begin : gen_dut_logic
generator #(
.DATA_WIDTH(DATA_WIDTH),
.ZERO_LEVEL(LOGIC_ZERO_LEVEL)
) dut (
.clk_dac(clk),
.rst(rst),
.start(start),
.pulse_width(pulse_width),
.pulse_period(pulse_period),
.pulse_height(pulse_height),
.pulse_num(pulse_num),
.dac_out(dac_out),
.done(generator_done),
.request(sampler_done)
);
initial $display("[TB] Generator compiled. ZERO_LEVEL: LOGIC");
end
else begin : gen_dut_error
// Защита от дурака
initial begin
$display("[ERROR] Unknown value ZERO_LEVEL: %s", ZERO_LEVEL);
$finish;
end
end
endgenerate
// Clock // Тактовые сигналы
initial begin initial begin
clk = 0; clk = 0;
forever #(CLK_PERIOD/2) clk = ~clk; forever #(CLK_PERIOD/2) clk = ~clk;
end end
initial begin // === Таски для тестипрования ===
$display("\n=== GENERATOR TEST ===\n"); // Таска синхронизации, одно рукопожатие
task automatic synchronize(
input bit sampler_first, // 1 - выставить sampler_done ДО генератора, 0 - ПОСЛЕ
input int delay_before_ack, // Если sampler_first=0: задержка ПОСЛЕ gen_done. Если 1: задержка от НАЧАЛА цикла.
input int ack_duration // сколько тактов удерживать sampler_done после встречи сигналов
);
if (sampler_first) begin
// --- сэмплер готов до генератора ---
repeat(delay_before_ack) @(posedge clk);
sampler_done <= 1;
wait(generator_done == 1);
repeat(ack_duration) @(posedge clk);
sampler_done <= 0;
end
else begin
// --- генератора готов до сэмплер ---
wait(generator_done == 1);
repeat(delay_before_ack) @(posedge clk);
sampler_done <= 1;
repeat(ack_duration) @(posedge clk);
sampler_done <= 0;
end
endtask
// Таска сброса DUT
task automatic reset_dut(
input int rst_duration // сколько тактов держать сброс
);
rst <= 1;
repeat(rst_duration) @(posedge clk);
rst <= 0;
endtask
// Таска запуска DUT
task automatic start_dut(
input int start_duration // сколько тактов держать импульс
);
start <= 1;
repeat(start_duration) @(posedge clk);
start <= 0;
endtask
// Таска конфигурации DUT
task automatic set_config(
input logic [31:0] w, // ширина импульса
input logic [31:0] p, // период импульса
input logic [15:0] n, // количество импульсов
input logic [DATA_WIDTH-1:0] h // высота импульса
);
// Задаем конфигурационные регистры
@(posedge clk);
pulse_width <= w;
pulse_period <= p;
pulse_num <= n;
pulse_height <= h;
endtask
// Таска проверки устойчивости к долгим управляющим импульсам
task automatic check_impulses;
// Локальные переменные для хранения случайных параметров
int rand_start_duration;
int rand_delay;
int rand_ack;
bit rand_first;
int total_impulse_cycles = 0;
int pulse_w = 11;
int pulse_p = 31;
int pulse_n = 5;
int pulse_h = 1024;
$display("[TB] -check_impulses- Check system stability under random latencies");
// Установка конфигурации
set_config(
.w(pulse_w),
.p(pulse_p),
.n(pulse_n),
.h(pulse_h)
);
reset_dut(5);
repeat(2) @(posedge clk);
// Старт норме 1 такт. Сделаем случайным от 5 до 25 тактов.
rand_start_duration = $urandom_range(5, 25);
$display("[TB] Long start: %0d clocks", rand_start_duration);
// Фоновый процесс подсчета тактов импульса
fork
begin : counter_proc
forever begin
@(negedge clk); // 180 deg. phase shift for "DAC strobing signal"
if (dac_out == pulse_h) begin
total_impulse_cycles++;
end
end
end
join_none
// Параллельный запуск длинного старта и обработки синхронизации
fork
// Поток 1: Удерживаем старт аномально долго
begin
start_dut(rand_start_duration);
end
// Поток 2: Обслуживаем n=4 циклов синхронизации со случайными задержками
begin
repeat(pulse_n) begin
// Рандомизируем параметры для каждого из 4-х рукопожатий
rand_first = $urandom; // Случайно: Самплер первый (1) или Генератор первый (0)
rand_delay = $urandom_range(1, 8); // Случайная задержка ожидания (1..8 тактов)
rand_ack = $urandom_range(5, 10); // Аномально долгий удерживаемый импульс sampler_done (10..30 тактов)
synchronize(
.sampler_first(rand_first),
.delay_before_ack(rand_delay),
.ack_duration(rand_ack)
);
end
end
join
repeat(pulse_p+5) @(posedge clk);
disable counter_proc;
// Ожидание завершения переходных процессов
repeat(10) @(posedge clk);
if (total_impulse_cycles == pulse_w*pulse_n)
$display("[TB] -check_impulses- Pulse generation CORRECT");
else begin
$display("[ERROR] -check_impulses- Pulse generation INCORRECT. Total number of pulses: %d, must be: %d", total_impulse_cycles, pulse_w*pulse_n);
$finish;
end
$display("[TB] -check_impulses- Done");
endtask
task automatic run_test_case(
input int pulse_w,
input int pulse_p,
input int pulse_n,
input int pulse_h,
input bit skip_reset, // skip reset sequence on demand
input bit count_level // count ticks of amplitude == pulse_h or amplitude != pulse_h
);
int total_impulse_cycles = 0;
if (!skip_reset) begin
reset_dut(1);
@(posedge clk);
end
set_config(
.w(pulse_w),
.p(pulse_p),
.n(pulse_n),
.h(pulse_h)
);
@(posedge clk);
start_dut(1);
// Фоновый процесс подсчета тактов импульса
fork
begin : counter_proc
forever begin
@(negedge clk); // 180 deg. phase shift for "DAC strobing signal"
if (count_level) begin
if (dac_out == pulse_h) begin
total_impulse_cycles++;
end
end
else begin
if (dac_out != current_zero_level) begin
total_impulse_cycles++;
end
end
end
end
join_none
repeat(pulse_n) begin
synchronize(
.sampler_first(0),
.delay_before_ack(1),
.ack_duration(2)
);
end
repeat(pulse_p+5) @(posedge clk);
disable counter_proc;
repeat(10) @(posedge clk);
if (count_level) begin
if (total_impulse_cycles == pulse_w*pulse_n)
$display("[TB] -run_test_case- Pulse generation CORRECT");
else begin
$display("[ERROR] -run_test_case- Pulse generation INCORRECT. Total number of pulses: %d, must be: %d", total_impulse_cycles, pulse_w*pulse_n);
$finish;
end
end
else begin
if (total_impulse_cycles == 0)
$display("[TB] -run_test_case- Pulse generation CORRECT");
else begin
$display("[ERROR] -run_test_case- Pulse generation INCORRECT. Total number of pulses: %d, must be: %d", total_impulse_cycles, 0);
$finish;
end
end
endtask
// --- ОСНОВНОЙ ПРОЦЕСС ТЕСТИРОВАНИЯ ---
initial begin
$display("[TB] Tests start");
// Инициализация
rst = 1; rst = 1;
start = 0; start = 0;
pulse_width = 0; pulse_width = 0;
pulse_period = 0; pulse_period = 0;
pulse_height = 0; pulse_height = 0;
pulse_num = 0; pulse_num = 0;
sampler_done = 0;
repeat(5) @(posedge clk); $display("[TB] Test 1. Random latency for control signals");
rst = 0; check_impulses();
$display("[TB] Test 1 complete");
// --- Test 1 --- $display("[TB] Test 2. Random configs");
// 3 clk 1, 5 clk 0, 4 pulses for (int i = 0; i < 25; i++) begin
repeat(2) @(posedge clk); int r_w, r_p, r_n, r_h;
pulse_width = 3; bit r_skip;
pulse_period = 8;
pulse_num = 4;
pulse_height = 14'h3FF;
start = 1;
repeat(1) @(posedge clk); // Генерируем параметры
start = 0; r_p = $urandom_range(5, 50); // Период от 5 до 50
r_w = $urandom_range(0, r_p); // Ширина не больше периода
r_n = $urandom_range(1, 10); // Количество импульсов
r_h = $urandom_range(1, 2**DATA_WIDTH-1); // Высота (для 14 бит)
r_skip = $urandom_range(0, 1); // Случайный сброс (0 - сброс, 1 - пропуск)
repeat(50) @(posedge clk); // Защита от "нулевого" импульса. Невозможно проверить длительность.
if (r_h == current_zero_level) begin
r_h += $urandom_range(1, 10);
end
// --- Test 2 --- $display("[TB] --- Test #%0d (Config: W=%0d, P=%0d, N=%0d, H=%0d, SkipReset=%0b) ---",
$display("\n--- SECOND RUN ---\n"); i+1, r_w, r_p, r_n, r_h, r_skip);
@(posedge clk); run_test_case(
pulse_width = 2; .pulse_w(r_w),
pulse_period = 5; .pulse_p(r_p),
pulse_num = 3; .pulse_n(r_n),
pulse_height = 14'h155; .pulse_h(r_h),
start = 1; .skip_reset(r_skip),
.count_level(1)
);
end
$display("[TB] Test 2 complete");
@(posedge clk); $display("[TB] Test 3. Zero level of pulse height");
start = 0; run_test_case(
.pulse_w(77),
.pulse_p(131),
.pulse_n(13),
.pulse_h(current_zero_level),
.skip_reset(0),
.count_level(0)
);
$display("[TB] Test 3 complete");
repeat(40) @(posedge clk); $display("[TB] ALL PASSED");
pulse_width = 3;
pulse_period = 8;
pulse_num = 4;
pulse_height = 14'h3FF;
start = 1;
repeat(1) @(posedge clk);
start = 0;
repeat(5) @(posedge clk);
start = 1;
pulse_height = 14'h155;
repeat(1) @(posedge clk);
start = 0;
repeat(50) @(posedge clk);
$display("\n=== TEST FINISHED ===");
$finish; $finish;
end end
// Display
always @(posedge clk) begin
$display("t=%0t | pulse=%0b | height=%h",
$time, pulse, pulse_height_out);
end
endmodule endmodule

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@ -1,7 +1,7 @@
# Сэмплер # Сэмплер
Модуль выполняет задачу сбора данных с выхода АЦП, их обработки, упаковки и передачи дальше с помощью AXI Stream интерфейса. Модуль выполняет задачу сбора данных с выхода АЦП, их обработки, упаковки и передачи дальше с помощью AXI Stream интерфейса.
Дополнительно реализован механизм синхронизации с внешним генератором через сигналы `sample_req` и `sample_done`, позволяющий запускать сбор строго по запросу и подтверждать завершение выборки. Дополнительно реализован механизм синхронизации с внешним генератором через сигналы `request` и `done`, позволяющий запускать сбор строго по запросу и подтверждать завершение выборки.
--- ---
@ -41,9 +41,8 @@ out_of_range
[31:0] smp_num [31:0] smp_num
Количество валидных отсчетов, которое необходимо собрать после получения запроса на выборку. Количество валидных отсчетов, которое необходимо собрать после получения запроса на выборку.
sample_req request
Сигнал запроса на запуск выборки. Сигнал запроса на синхронизацию от генератора для текущего импульса.
При его активации модуль начинает сбор данных и переходит в активное состояние (`enable = 1`).
--- ---
@ -57,9 +56,10 @@ m_axis_tvalid
Урезанный AXI Stream формат, сигнал валидности выходных данных. Урезанный AXI Stream формат, сигнал валидности выходных данных.
Формируется при готовности очередного пакета. Формируется при готовности очередного пакета.
sample_done done
Сигнал завершения выборки. Сигнал запроса на запуск синхронизации с генератором для текущего импульса.
Поднимается после того, как модуль собрал количество валидных отсчетов, равное `smp_num`.
Поднимается в начале каждого нового импульса и снимается после получения `request`.
--- ---
@ -86,7 +86,7 @@ sample_done
### Запуск выборки ### Запуск выборки
Сбор данных начинается только после прихода сигнала `sample_req`. Сбор данных начинается только после прихода сигнала `request`.
При этом: При этом:
@ -94,7 +94,9 @@ sample_done
- внутренний счетчик собранных отсчетов обнуляется - внутренний счетчик собранных отсчетов обнуляется
- модуль переходит в активное состояние (`enable = 1`) - модуль переходит в активное состояние (`enable = 1`)
Пока `enable = 1`, модуль принимает только валидные отсчеты и считает их. Пока `enable = 1`, модуль принимает только валидные отсчеты.
Синхронизация представляет из себя простое рукопожатие с внешним модулем, имеющим сигналы `request`/`done` работающими в соответствии с этими сигналами сэмплера. Один из модулей, входит в ожидание и ставит на свой done активный уровень, после чего ждет, пока второй, запаздывающий модуль не войдет в свой режим ожидания, и не выставит для своего done активный уровень. Для каждого из модулей, на следующий такт после выставления активного уровня, производится проверка своего request. Так, при получении активного request (иными словами активного done от внешнего модуля), модуль незамедлительно опускает уровень своего done и начинает работать. Done подымается до активного уровня хотя-бы на один такт работы соответствующего модуля.
--- ---
@ -126,7 +128,6 @@ sample_done
Когда количество собранных валидных отсчетов достигает значения `smp_num`: Когда количество собранных валидных отсчетов достигает значения `smp_num`:
- поднимается сигнал `sample_done`
- внутренние счетчики сбрасываются - внутренние счетчики сбрасываются
- буфер очищается - буфер очищается
- `enable` сбрасывается в `0` - `enable` сбрасывается в `0`
@ -141,4 +142,3 @@ sample_done
cd tests cd tests
make sim make sim
``` ```
При успешном завершении теста высвечивается "ALL PASSED".

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@ -1,154 +1,87 @@
`timescale 1ns / 1ps `timescale 1ns / 1ps
module sampler module sampler
#( #(
parameter DATA_WIDTH = 12, parameter DATA_WIDTH = 12,
parameter PACK_FACTOR = 1, parameter PACK_FACTOR = 1,
parameter PROCESS_MODE = 0 parameter PROCESS_MODE = 0
) ) (
(
input clk_in, input clk_in,
input rst, input rst,
input [DATA_WIDTH-1:0] data_in, input [DATA_WIDTH-1:0] data_in,
input out_of_range, input out_of_range,
input [31:0] smp_num, input [31:0] smp_num,
input sample_req, input request,
output logic [DATA_WIDTH*PACK_FACTOR-1:0] m_axis_tdata, output logic [DATA_WIDTH*PACK_FACTOR-1:0] m_axis_tdata,
output logic m_axis_tvalid, output logic m_axis_tvalid,
output logic sample_done output logic done
); );
(* MARK_DEBUG="true" *) logic [DATA_WIDTH-1:0] data_converted; // WARNING: number of samples smp_num must be multiple of PACK_FACTOR
(* MARK_DEBUG="true" *) logic out_of_range_reg; // Last (smp_num % PACK_FACTOR) will be lost and not transmitted
(* MARK_DEBUG="true" *) logic [31:0] smp_num_reg, cnt_smp_num; logic [DATA_WIDTH-1:0] data_converted;
(* MARK_DEBUG="true" *) logic enable; logic [31:0] smp_num_reg, cnt_smp_num;
logic synced;
logic [$clog2(PACK_FACTOR):0] pack_cnt;
generate always_comb begin
if (PROCESS_MODE) begin if (PROCESS_MODE) begin
if (out_of_range) begin
always @(posedge clk_in) begin data_converted = {~data_in[DATA_WIDTH-1], {(DATA_WIDTH-1){data_in[DATA_WIDTH-1]}}};
if (rst) begin end else begin
data_converted <= '0; data_converted = {~data_in[DATA_WIDTH-1], data_in[DATA_WIDTH-2:0]};
out_of_range_reg <= 0;
end
else begin
out_of_range_reg <= out_of_range;
if (data_in == {1'b1, {(DATA_WIDTH-1){1'b0}}})
data_converted <= data_in;
else
data_converted <= data_in[DATA_WIDTH-1] ?{1'b1, (~data_in[DATA_WIDTH-2:0] + 1'b1)}:data_in;
end
end
end else begin
always @(posedge clk_in) begin
if (rst) begin
data_converted <= '0;
out_of_range_reg <= 0;
end
else begin
out_of_range_reg <= out_of_range;
data_converted <= data_in;
end
end
end
endgenerate
(* MARK_DEBUG="true" *) logic [DATA_WIDTH*PACK_FACTOR-1:0] buffer;
(* MARK_DEBUG="true" *) logic buffer_ready;
logic [$clog2(PACK_FACTOR):0] cnt;
generate
if (PACK_FACTOR == 1) begin
always @(posedge clk_in) begin
if (rst) begin
buffer <= '0;
buffer_ready <= 0;
cnt_smp_num <= '0;
smp_num_reg <= '0;
enable <= '0;
sample_done <= 0;
end
else begin
buffer_ready <= 0;
if (sample_done && !sample_req) begin
sample_done <= 1'b0;
end end
if (!enable && sample_req && !sample_done) begin end else begin
enable <= 1; if (out_of_range) begin
data_converted = {DATA_WIDTH{data_in[DATA_WIDTH-1]}};
end else begin
data_converted = data_in;
end
end
end
initial begin
synced = 0;
m_axis_tdata = '0;
m_axis_tvalid = 0;
end
always_ff @(posedge clk_in) begin
if (rst) begin
m_axis_tdata <= '0;
m_axis_tvalid <= 0;
cnt_smp_num <= '0;
smp_num_reg <= '0;
pack_cnt <= '0;
synced <= 0;
done <= 0;
end else begin
if (!synced) begin
if (done && request) begin
synced <= 1;
done <= 0;
cnt_smp_num <= 0; cnt_smp_num <= 0;
smp_num_reg <= smp_num; smp_num_reg <= smp_num;
end else begin
done <= 1;
end end
if (enable) begin end else begin
if (!out_of_range_reg) begin if (cnt_smp_num != smp_num_reg) begin
if (cnt_smp_num != smp_num_reg) begin cnt_smp_num++;
buffer <= data_converted; m_axis_tdata[pack_cnt*DATA_WIDTH +: DATA_WIDTH] <= data_converted;
buffer_ready <= 1; if (pack_cnt == PACK_FACTOR-1) begin
cnt_smp_num <= cnt_smp_num +1; pack_cnt <= 0;
end m_axis_tvalid <= 1;
else begin end else begin
cnt_smp_num <= '0; pack_cnt++;
sample_done <= 1'b1; m_axis_tvalid <= 0;
buffer_ready <= 0;
buffer <= '0;
enable <= 0;
end
end end
end else begin
pack_cnt <= '0;
synced <= 0;
m_axis_tvalid <= 0;
end end
end end
end end
end else begin end
always @(posedge clk_in) begin
if (rst) begin
buffer <= '0;
cnt <= '0; //
buffer_ready <= 0;
cnt_smp_num <= '0;
smp_num_reg <= '0;
enable <= 0;
sample_done <= 0;
end
else begin
buffer_ready <= 0;
if (sample_done && !sample_req) begin
sample_done <= 1'b0;
end
if (!enable && sample_req && !sample_done) begin
enable <= 1;
cnt_smp_num <= 0;
smp_num_reg <= smp_num;
end
if (enable) begin
if (!out_of_range_reg) begin
if (cnt_smp_num != smp_num_reg) begin
cnt_smp_num <= cnt_smp_num +1;
buffer <= {buffer[DATA_WIDTH*(PACK_FACTOR-1)-1:0], data_converted};
if (cnt == PACK_FACTOR-1) begin
cnt <= 0;
buffer_ready <= 1;
buffer <= {buffer[DATA_WIDTH*(PACK_FACTOR-1)-1:0], data_converted};
end
else begin
cnt <= cnt + 1;
end
end
else begin
sample_done <= 1'b1;
cnt_smp_num <= '0;
buffer_ready <= 0;
buffer <= '0;
enable <= 0;
end
end
end
end
end
end
endgenerate
assign m_axis_tdata = buffer;
assign m_axis_tvalid = buffer_ready;
endmodule endmodule

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@ -1,51 +0,0 @@
# SPDX-License-Identifier: MIT
#
# Copyright (c) 2025 FPGA Ninja, LLC
#
# Authors:
# - Alex Forencich
#
# FPGA settings
FPGA_PART = xc7a35tfgg484-1
FPGA_TOP = sampler
FPGA_ARCH = artix7
RTL_DIR = ../src
include ../../../scripts/vivado.mk
SYN_FILES += $(sort $(shell find ../src -type f \( -name '*.v' -o -name '*.sv' \)))
XCI_FILES = $(sort $(shell find ../src -type f -name '*.xci'))
XDC_FILES += ../../../constraints/ax7a035b.xdc
SYN_FILES += sampler_main_tb.sv
SIM_TOP = sampler_tb
program: $(PROJECT).bit
echo "open_hw_manager" > program.tcl
echo "connect_hw_server" >> program.tcl
echo "open_hw_target" >> program.tcl
echo "current_hw_device [lindex [get_hw_devices] 0]" >> program.tcl
echo "refresh_hw_device -update_hw_probes false [current_hw_device]" >> program.tcl
echo "set_property PROGRAM.FILE {$(PROJECT).bit} [current_hw_device]" >> program.tcl
echo "program_hw_devices [current_hw_device]" >> program.tcl
echo "exit" >> program.tcl
vivado -nojournal -nolog -mode batch -source program.tcl
$(PROJECT).mcs $(PROJECT).prm: $(PROJECT).bit
echo "write_cfgmem -force -format mcs -size 16 -interface SPIx4 -loadbit {up 0x0000000 $*.bit} -checksum -file $*.mcs" > generate_mcs.tcl
echo "exit" >> generate_mcs.tcl
vivado -nojournal -nolog -mode batch -source generate_mcs.tcl
mkdir -p rev
COUNT=100; \
while [ -e rev/$*_rev$$COUNT.bit ]; \
do COUNT=$$((COUNT+1)); done; \
COUNT=$$((COUNT-1)); \
for x in .mcs .prm; \
do cp $*$$x rev/$*_rev$$COUNT$$x; \
echo "Output: rev/$*_rev$$COUNT$$x"; done;

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@ -1,132 +0,0 @@
`timescale 1ns / 1ps
module sampler_tb;
parameter DATA_WIDTH = 12;
parameter PROCESS_MODE = 0;
parameter CLK_PERIOD = 15.3846;
parameter TEST_NUM = 1000;
logic clk;
logic rst;
logic [DATA_WIDTH-1:0] data_in;
logic out_of_range;
logic [DATA_WIDTH-1:0] m_axis_tdata;
logic m_axis_tvalid;
integer errors = 0;
sampler #(
.DATA_WIDTH(DATA_WIDTH),
.PROCESS_MODE(PROCESS_MODE)
) dut (
.clk_in(clk),
.rst(rst),
.data_in(data_in),
.out_of_range(out_of_range),
.m_axis_tdata(m_axis_tdata),
.m_axis_tvalid(m_axis_tvalid)
);
initial begin
clk = 0;
forever #(CLK_PERIOD/2) clk = ~clk;
end
function automatic [DATA_WIDTH-1:0] ref_convert(input [DATA_WIDTH-1:0] din);
if (PROCESS_MODE == 0)
return din;
else if (din == {1'b1, {(DATA_WIDTH-1){1'b0}}})
return din;
else
return din[DATA_WIDTH-1] ?
{1'b1, (~din[DATA_WIDTH-2:0] + 1'b1)} :
din;
endfunction
task send(input [DATA_WIDTH-1:0] word, input bit oor);
@(posedge clk);
data_in <= word;
out_of_range <= oor;
endtask
logic [DATA_WIDTH-1:0] exp_d0, exp_d1, exp_d2;
logic oor_d0, oor_d1, oor_d2;
initial begin
$display("\n=== RANDOM SAMPLER TEST===\n");
rst = 1;
data_in = 0;
out_of_range = 0;
exp_d0 = 0;
exp_d1 = 0;
exp_d2 = 0;
oor_d0 = 1;
oor_d1 = 1;
oor_d2 = 1;
repeat(5) @(posedge clk);
rst = 0;
repeat(2) @(posedge clk);
repeat (TEST_NUM) begin
logic [DATA_WIDTH-1:0] rand_data;
bit rand_oor;
rand_data = $urandom_range(0, (1 << DATA_WIDTH) - 1);
rand_oor = ($urandom_range(0, 99) < 20);
@(negedge clk);
if (!oor_d2) begin
if (m_axis_tvalid !== 1) begin
$display("ERROR: valid=0");
errors++;
end
if (m_axis_tdata !== exp_d2) begin
$display("ERROR: data mismatch");
$display(" expected = %h", exp_d2);
$display(" got = %h", m_axis_tdata);
errors++;
end
end
send(rand_data, rand_oor);
exp_d2 = exp_d1;
exp_d1 = exp_d0;
exp_d0 = ref_convert(rand_data);
oor_d2 = oor_d1;
oor_d1 = oor_d0;
oor_d0 = rand_oor;
end
@(posedge clk);
if (!oor_d2) begin
if (m_axis_tdata !== exp_d2) begin
$display("ERROR: final mismatch");
$display(" expected = %h", exp_d2);
$display(" got = %h", m_axis_tdata);
errors++;
end
end
if (errors == 0)
$display("\n========== ALL PASSED ==========\n");
else
$display("\n========== FAILED: %0d errors ==========\n", errors);
$finish;
end
endmodule

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@ -0,0 +1,218 @@
`timescale 1ns / 1ps
module sampler_tb;
localparam DATA_WIDTH = 12;
localparam PACK_FACTOR = 7;
localparam PROCESS_MODE = 0;
localparam CLK_PERIOD = 15.3846;
localparam OTR_OFFSET = 0;
logic clk;
logic rst_dut;
logic rst_gen;
wire [DATA_WIDTH-1:0] data_in;
wire out_of_range;
logic [31:0] smp_num;
logic done;
logic request;
logic [DATA_WIDTH*PACK_FACTOR-1:0] m_axis_tdata;
logic m_axis_tvalid;
sampler #(
.DATA_WIDTH (DATA_WIDTH),
.PACK_FACTOR (PACK_FACTOR),
.PROCESS_MODE(PROCESS_MODE)
) dut (
.clk_in (clk),
.rst (rst_dut),
.data_in (data_in),
.out_of_range (out_of_range),
.smp_num (smp_num),
.done (done),
.m_axis_tdata (m_axis_tdata),
.m_axis_tvalid(m_axis_tvalid),
.request (request)
);
// =====================================================
// CLOCK
// =====================================================
initial begin
clk = 0;
forever #(CLK_PERIOD/2) clk = ~clk;
end
// =====================================================
// RESET
// =====================================================
task automatic reset_dut();
@(posedge clk);
rst_dut = 1;
@(posedge clk);
rst_dut = 0;
endtask
// =====================================================
// FEED DATA
// =====================================================
triangle_wave_gen #(
.DATA_WIDTH(DATA_WIDTH),
.OFFSET(OTR_OFFSET), // offset of bits from '0 and '1 for OTR
.STEP(1) // LSB bit per clock
) signal_gen (
.clk(clk),
.rst(rst_gen),
.signal(data_in),
.otr(out_of_range)
);
// =====================================================
// TEST TASKS
// =====================================================
task automatic run_test_case(
input int sample_num
);
logic [DATA_WIDTH-1:0] input_values[$];
logic [DATA_WIDTH-1:0] output_values[$];
bit flag;
// Startup sequence
rst_gen <= 1;
smp_num <= sample_num;
request <= 1;
@(posedge clk);
// syncronize
while (!done)
@(posedge clk);
request <= 0;
// Wait for sync and start signal generator
// while (!dut.synced)
// @(posedge clk);
wait(dut.synced === 1);
rst_gen <= 0;
// Wait for valid data
fork
begin : stat_mon_proc
forever begin
@(posedge clk);
input_values.push_back(data_in);
if (m_axis_tvalid) begin
for (int i = 0; i < PACK_FACTOR; i++)
output_values.push_back(m_axis_tdata[DATA_WIDTH*i +: DATA_WIDTH]);
end
end
end
join_none
// Wait until end
// while (dut.synced)
// @(posedge clk);
wait(dut.synced === 0);
disable stat_mon_proc;
// Pop last input value. Signal is ahead of tdata for 1 cycle
input_values.pop_back();
// check data
if (input_values.size() != output_values.size()) begin
$display("[ERROR] -run_test_case- Input queue size don't equal to output queue size: %0d vs %0d", input_values.size(), output_values.size());
$finish;
end
flag = 0;
for (int i = 0; i < input_values.size(); i++) begin
$write(" %0d", input_values[i]);
if (input_values[i] != output_values[i])
flag = 1;
end
$write("\n");
for (int i = 0; i < input_values.size(); i++) begin
$write(" %0d", output_values[i]);
end
$write("\n");
$display("Total: %0d", output_values.size());
if (flag) $display("FUCK");
else $display("SUCKASS");
endtask
// =====================================================
// MAIN
// =====================================================
initial begin
$display("\n=== BASIC TEST ===");
rst_dut = 1;
rst_gen = 1;
smp_num = 0;
repeat(2) @(posedge clk);
rst_dut = 0;
repeat(2) @(posedge clk);
run_test_case(100);
$display("\n=== RANDOM STRESS TEST ===");
// todo
$display("\n=== TEST FINISHED ===");
$finish;
end
endmodule
module triangle_wave_gen #(
parameter DATA_WIDTH = 12,
parameter OFFSET = 100, // offset of bits from '0 and '1 for OTR
parameter STEP = 1 // LSB bit per clock
) (
input clk,
input rst,
output logic [DATA_WIDTH-1:0] signal,
output logic otr
);
logic [DATA_WIDTH:0] counter;
logic direction;
initial begin
counter = '0;
direction = 1;
end
assign signal = counter > (2**DATA_WIDTH-1) ? (2**DATA_WIDTH-1) : counter;
always_comb begin
if (signal < OFFSET || (2**DATA_WIDTH - signal) <= OFFSET)
otr <= 1;
else
otr <= 0;
end
always @(posedge clk) begin
if (rst) begin
counter = 0;
direction = 1;
end else begin
if (direction)
counter += STEP;
else
counter -= STEP;
if (counter >= 2**DATA_WIDTH-1 || counter <= 0)
direction <= ~direction;
end
end
endmodule

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@ -1,736 +0,0 @@
# shitpost
import sys
import math
import socket
import platform
from PyQt6 import uic
from dataclasses import dataclass
from PyQt6.QtCore import QProcess, QTimer
from PyQt6.QtCore import QObject, QThread, pyqtSignal
from PyQt6.QtCore import Qt
import pyqtgraph as pg
from PyQt6.QtWidgets import QApplication, QMainWindow
@dataclass
class ReflectometerConfig:
ip: str
send_port: int
recv_port: int
dac_bits: int
data_width: int
window_size: int
packet_size: int
pulse_width: int
pulse_period: int
pulse_height: int
pulse_num: int
adc_dac_ratio: float = 0.52
socket_timeout_sec: float = 2.0
class ReflectometerWorker(QObject):
data_ready = pyqtSignal(list)
status = pyqtSignal(str)
error = pyqtSignal(str)
finished = pyqtSignal()
def __init__(self, config: ReflectometerConfig):
super().__init__()
self.config = config
self._stop_requested = False
self._sock = None
def stop(self):
self._stop_requested = True
if self._sock is not None:
try:
self._sock.close()
except OSError:
pass
def run(self):
try:
self._validate_config()
self.status.emit("Открытие UDP-сокета...")
self._sock = socket.socket(socket.AF_INET, socket.SOCK_DGRAM)
self._sock.setsockopt(socket.SOL_SOCKET, socket.SO_REUSEADDR, 1)
self._sock.settimeout(self.config.socket_timeout_sec)
self._sock.bind(("0.0.0.0", self.config.recv_port))
dest = (self.config.ip, self.config.send_port)
self.status.emit("Отправка soft reset...")
self._sock.sendto((0x0F00).to_bytes(2, "big"), dest)
self.status.emit("Отправка параметров...")
ctrl_data = self._format_ctrl_data()
self._sock.sendto(ctrl_data, dest)
self.status.emit("Отправка start...")
self._sock.sendto((0xF000).to_bytes(2, "big"), dest)
self.status.emit("Приём данных...")
data = self._recv_data()
if self._stop_requested:
self.status.emit("Операция остановлена")
return
self.data_ready.emit(data)
self.status.emit(f"Получено samples: {len(data)}")
except Exception as e:
if not self._stop_requested:
self.error.emit(str(e))
finally:
if self._sock is not None:
try:
self._sock.close()
except OSError:
pass
self.finished.emit()
def _format_ctrl_data(self) -> bytes:
output = bytearray()
output += 0b10001000.to_bytes(1, "little")
pulse_period_adc = (
int(self.config.pulse_period * self.config.adc_dac_ratio)
// self.config.window_size
) * self.config.window_size
output += self.config.pulse_width.to_bytes(4, "little")
output += self.config.pulse_period.to_bytes(4, "little")
output += self.config.pulse_num.to_bytes(2, "little")
output += self.config.pulse_height.to_bytes(2, "little")
output += pulse_period_adc.to_bytes(4, "little")
if len(output) != 17:
raise ValueError("Config data should be 128 bits + 8 bit header")
return bytes(output)
def _recv_data(self) -> list[int]:
packet_count = math.ceil(
(
self.config.adc_dac_ratio
* self.config.pulse_period
/ self.config.window_size
* self.config.data_width
)
/ self.config.packet_size
)
expected_length = math.ceil(
self.config.adc_dac_ratio
* self.config.pulse_period
/ self.config.window_size
)
recv_buf = []
for pkt_cnt in range(packet_count):
if self._stop_requested:
break
try:
packet, _ = self._sock.recvfrom(65536)
except socket.timeout:
raise TimeoutError(f"Таймаут приёма UDP-пакета #{pkt_cnt + 1}")
if len(packet) % self.config.data_width != 0:
raise ValueError(
f"Некорректный размер UDP-пакета: {len(packet)} байт"
)
for i in range(0, len(packet), self.config.data_width):
sample = int.from_bytes(
packet[i:i + self.config.data_width],
"little",
)
recv_buf.append(sample)
if len(recv_buf) < expected_length:
raise ValueError(
f"Data underflow: получено {len(recv_buf)}, ожидалось {expected_length}"
)
return recv_buf[:expected_length - 1]
def _validate_config(self):
if self.config.pulse_period <= 0:
raise ValueError("pulse_period должен быть больше 0")
if self.config.pulse_num <= 0:
raise ValueError("pulse_num должен быть больше 0")
if self.config.window_size <= 0:
raise ValueError("window_size должен быть больше 0")
if self.config.packet_size <= 0:
raise ValueError("packet_size должен быть больше 0")
if self.config.data_width <= 0:
raise ValueError("data_width должен быть больше 0")
if self.config.pulse_period % self.config.window_size != 0:
raise ValueError("pulse_period должен быть кратен window_size")
if self.config.pulse_width >= 2**32 - 1:
raise ValueError("pulse_width слишком большой")
if self.config.pulse_period >= 2**32 - 1:
raise ValueError("pulse_period слишком большой")
if self.config.pulse_num >= 2**16 - 1:
raise ValueError("pulse_num слишком большой")
if self.config.pulse_height > 2**self.config.dac_bits - 1:
raise ValueError("pulse_height слишком большой")
class MainWindow(QMainWindow):
def __init__(self):
super().__init__()
uic.loadUi("reflectometer.ui", self)
self.ping_process = None
self.ping_timeout_timer = QTimer(self)
self.ping_timeout_timer.setSingleShot(True)
self.ping_timeout_timer.timeout.connect(self.on_ping_timeout)
self.button_ping.clicked.connect(self.check_ping)
# settings
self.pulse_period = 0
self.pulse_height = 0
self.pulse_width = 0
self.pulse_num = 0
self.dac_dw = 14
self.adc_dw = 12
self.nmax = 4096
self.packet_size = 1024
self.window_size = 65
self.adc_dac_ration = 0.52
self.accum_width = 32
# setup
self.setup_pulse_controls()
self.setup_global_settings()
self.update_pulse_limits()
self.data = []
self.adc_dac_ratio = 0.52
self.measurement_thread = None
self.measurement_worker = None
self.setup_graph()
self.setup_network_settings()
self.button_start.clicked.connect(self.run_measurement)
self.button_graph_autoscale.clicked.connect(self.reset_graph_autoscale)
# ping utils
def check_ping(self):
ip = self.line_ip.text().strip()
if not ip:
self.label_ping_status.setText("set ip!!")
return
if "_" in self.line_ip.displayText():
self.label_ping_status.setText("IP invalid")
return
if self.ping_process is not None:
if self.ping_process.state() != QProcess.ProcessState.NotRunning:
self.label_ping_status.setText("Ping inflight")
return
self.label_ping_status.setText("ping...")
self.button_ping.setEnabled(False)
self.ping_process = QProcess(self)
self.ping_process.finished.connect(self.on_ping_finished)
self.ping_process.errorOccurred.connect(self.on_ping_error)
system_name = platform.system().lower()
if system_name == "windows":
program = "ping"
arguments = ["-n", "1", "-w", "2000", ip]
else:
program = "ping"
arguments = ["-c", "1", "-W", "2", ip]
self.ping_process.start(program, arguments)
# fallback
self.ping_timeout_timer.start(2000)
def on_ping_finished(self, exit_code, exit_status):
self.ping_timeout_timer.stop()
self.button_ping.setEnabled(True)
if exit_code == 0:
self.label_ping_status.setText("алё✅")
else:
self.label_ping_status.setText("не алё❌")
def on_ping_error(self):
self.ping_timeout_timer.stop()
self.button_ping.setEnabled(True)
self.label_ping_status.setText("ping unavail")
def on_ping_timeout(self):
if self.ping_process is not None:
if self.ping_process.state() != QProcess.ProcessState.NotRunning:
self.ping_process.kill()
self.button_ping.setEnabled(True)
# pulse controls
def setup_pulse_controls(self):
self._bind_slider_and_spinbox(
name="pulse_period",
slider=self.slider_pulse_period,
box=self.box_pulse_period,
normalize_value=self.normalize_pulse_period,
)
self._bind_slider_and_spinbox(
name="pulse_height",
slider=self.slider_pulse_height,
box=self.box_pulse_height,
)
self._bind_slider_and_spinbox(
name="pulse_width",
slider=self.slider_pulse_width,
box=self.box_pulse_width,
)
self._bind_slider_and_spinbox(
name="pulse_num",
slider=self.slider_pulse_num,
box=self.box_pulse_num,
)
def _bind_slider_and_spinbox(self, name, slider, box, normalize_value=None):
"""
Связывает QSlider и QSpinBox по значению.
Значение автоматически записывается в self.<name>.
"""
minimum = min(slider.minimum(), box.minimum())
maximum = max(slider.maximum(), box.maximum())
slider.setRange(minimum, maximum)
box.setRange(minimum, maximum)
def normalize(value):
if normalize_value is None:
return value
return normalize_value(value)
value = normalize(box.value())
slider.setValue(value)
box.setValue(value)
setattr(self, name, value)
def update_value(new_value):
new_value = normalize(new_value)
if slider.value() != new_value:
slider.setValue(new_value)
if box.value() != new_value:
box.setValue(new_value)
setattr(self, name, new_value)
slider.valueChanged.connect(update_value)
box.valueChanged.connect(update_value)
def normalize_pulse_period(self, value):
step = max(1, getattr(self, "window_size",
self.box_window_size.value()))
snapped_value = round(value / step) * step
minimum = self.box_pulse_period.minimum()
maximum = self.box_pulse_period.maximum()
return max(minimum, min(snapped_value, maximum))
def _set_max_for_pair(self, slider, box, maximum):
slider.setMaximum(maximum)
box.setMaximum(maximum)
value = min(box.value(), maximum)
box.setValue(value)
slider.setValue(value)
def set_max_pulse_period(self, maximum):
self._set_max_for_pair(
slider=self.slider_pulse_period,
box=self.box_pulse_period,
maximum=maximum,
)
self.pulse_period = self.box_pulse_period.value()
def set_max_pulse_height(self, maximum):
self._set_max_for_pair(
slider=self.slider_pulse_height,
box=self.box_pulse_height,
maximum=maximum,
)
self.pulse_height = self.box_pulse_height.value()
def set_max_pulse_width(self, maximum):
self._set_max_for_pair(
slider=self.slider_pulse_width,
box=self.box_pulse_width,
maximum=maximum,
)
self.pulse_width = self.box_pulse_width.value()
def set_max_pulse_num(self, maximum):
self._set_max_for_pair(
slider=self.slider_pulse_num,
box=self.box_pulse_num,
maximum=maximum,
)
self.pulse_num = self.box_pulse_num.value()
# settings
def setup_global_settings(self):
self._bind_spinbox_setting(
name="dac_dw",
box=self.box_dac_dw,
)
self._bind_spinbox_setting(
name="adc_dw",
box=self.box_adc_dw,
)
self._bind_spinbox_setting(
name="nmax",
box=self.box_nmax,
)
self._bind_spinbox_setting(
name="window_size",
box=self.box_window_size,
after_change=self.on_window_size_changed,
)
self._bind_spinbox_setting(
name="packet_size",
box=self.box_packet_size,
)
self._bind_spinbox_setting(
name="adc_dac_ratio",
box=self.box_adc_dac_ratio,
)
self._bind_spinbox_setting(
name="accum_width",
box=self.box_accum_width,
)
self._bind_spinbox_setting(
name="recv_port",
box=self.box_recv_port,
)
self._bind_spinbox_setting(
name="send_port",
box=self.box_send_port,
)
# применяем шаг для pulse_period сразу при старте
self.update_pulse_period_step()
def _bind_spinbox_setting(self, name, box, after_change=None):
"""
Связывает QSpinBox с полем self.<name>.
Например:
box_dac_dw -> self.dac_dw
box_window_size -> self.window_size
"""
value = box.value()
setattr(self, name, value)
def on_value_changed(new_value):
setattr(self, name, new_value)
self.update_pulse_limits()
if after_change is not None:
after_change(new_value)
box.valueChanged.connect(on_value_changed)
def update_pulse_limits(self):
# re-calc limits
# nmax -> pulse_period limit
self.set_max_pulse_period(self.nmax * self.window_size)
self.set_max_pulse_width(self.nmax * self.window_size)
# accum_width + adc_width -> max pulse num
self.set_max_pulse_num(
2 ** (self.accum_width - self.adc_dw - math.ceil(math.log2(self.window_size))) - 1)
# dac_width -> max pulse height
self.set_max_pulse_height(2 ** self.dac_dw - 1)
self.slider_pulse_period.setMinimum(self.window_size)
self.box_pulse_period.setMinimum(self.window_size)
def on_window_size_changed(self, new_value):
self.update_pulse_period_step()
def update_pulse_period_step(self):
# set window_size step
step = max(1, self.window_size)
self.box_pulse_period.setSingleStep(step)
self.slider_pulse_period.setSingleStep(step)
self.slider_pulse_period.setPageStep(step)
self.snap_pulse_period_to_step(step)
def snap_pulse_period_to_step(self, step):
"""
Подгоняет текущее значение pulse_period к ближайшему кратному window_size.
Это нужно потому, что QSlider при перетаскивании мышкой
всё равно может дать любое промежуточное значение.
"""
current_value = self.box_pulse_period.value()
snapped_value = round(current_value / step) * step
minimum = self.box_pulse_period.minimum()
maximum = self.box_pulse_period.maximum()
snapped_value = max(minimum, min(snapped_value, maximum))
self.box_pulse_period.setValue(snapped_value)
self.slider_pulse_period.setValue(snapped_value)
self.pulse_period = snapped_value
# graph
def setup_graph(self):
self.graph_widget = pg.PlotWidget()
self.graph_widget.setLabel("left", "ADC value")
self.graph_widget.setLabel("bottom", "Sample")
self.graph_widget.showGrid(x=True, y=True)
self.graph_curve = self.graph_widget.plot(
[],
name="Data",
)
self.reference_curve = self.graph_widget.plot(
[],
name="Reference",
)
self.graph_layout.addWidget(self.graph_widget)
self.graph_curve = self.graph_widget.plot(
[], pen=pg.mkPen(width=2, color="b"))
self.reference_curve = self.graph_widget.plot(
[], pen=pg.mkPen(style=Qt.PenStyle.DashLine, color="g"))
self.checkbox_draw_reference.stateChanged.connect(
self.update_reference_graph)
def setup_network_settings(self):
self._bind_spinbox_setting(
name="recv_port",
box=self.box_recv_port,
)
self._bind_spinbox_setting(
name="send_port",
box=self.box_send_port,
)
def run_measurement(self):
if self.measurement_thread is not None:
if self.measurement_thread.isRunning():
self.set_measurement_status("Измерение выполняется")
return
config = self.build_reflectometer_config()
self.data = []
self.graph_curve.setData([])
self.measurement_thread = QThread(self)
self.measurement_worker = ReflectometerWorker(config)
self.measurement_worker.moveToThread(self.measurement_thread)
self.measurement_thread.started.connect(self.measurement_worker.run)
self.measurement_worker.status.connect(self.set_measurement_status)
self.measurement_worker.error.connect(self.on_measurement_error)
self.measurement_worker.data_ready.connect(self.on_data_received)
self.measurement_worker.finished.connect(self.measurement_thread.quit)
self.measurement_worker.finished.connect(
self.measurement_worker.deleteLater)
self.measurement_thread.finished.connect(
self.measurement_thread.deleteLater)
self.measurement_thread.finished.connect(self.on_measurement_finished)
self.measurement_thread.start()
def build_reflectometer_config(self) -> ReflectometerConfig:
ip = self.line_ip.text().strip()
if not ip:
raise ValueError("IP адрес не задан")
data_width = self.accum_width // 8
return ReflectometerConfig(
ip=ip,
send_port=self.send_port,
recv_port=self.recv_port,
dac_bits=self.dac_dw,
data_width=data_width,
window_size=self.window_size,
packet_size=self.packet_size,
pulse_width=self.pulse_width,
pulse_period=self.pulse_period,
pulse_height=self.pulse_height,
pulse_num=self.pulse_num,
adc_dac_ratio=self.adc_dac_ratio,
)
def on_data_received(self, data: list[int]):
self.data = data
# normalize
for i in range(len(data)):
self.data[i] /= (self.window_size * self.pulse_num)
self.data[i] -= 2 ** (self.adc_dw - 1) + 1
self.draw_main_graph()
self.update_reference_graph()
if data:
self.set_measurement_status(
f"Готово. smp: {len(data)}, min: {min(data)}, max: {max(data)}"
)
else:
self.set_measurement_status("Данные пустые")
def on_measurement_error(self, message: str):
self.set_measurement_status(f"Ошибка: {message}")
def on_measurement_finished(self):
self.measurement_worker = None
self.measurement_thread = None
def stop_measurement(self):
if self.measurement_worker is not None:
self.measurement_worker.stop()
def set_measurement_status(self, text: str):
self.label_status.setText(text)
def draw_main_graph(self):
if not self.data:
self.graph_curve.setData([])
return
x = list(range(len(self.data)))
self.graph_curve.setData(x, self.data)
def update_reference_graph(self):
"""
Рисует или очищает эталонный график.
Вызывается после получения данных и при переключении checkbox_draw_reference.
"""
if not self.checkbox_draw_reference.isChecked():
self.reference_curve.setData([])
return
if not self.data:
self.reference_curve.setData([])
return
reference_data = self.build_reference_data(len(self.data))
if not reference_data:
self.reference_curve.setData([])
return
x = list(range(len(reference_data)))
self.reference_curve.setData(x, reference_data)
def build_reference_data(self, length: int) -> list[int]:
reference = [0] * length
actual_pulse_width = round(
(self.pulse_width * self.adc_dac_ratio) / self.window_size)
reference[0:actual_pulse_width] = [
(self.pulse_height / 2 ** (self.dac_dw - self.adc_dw)) - 2 ** (self.adc_dw - 1), ] * (actual_pulse_width - 1)
return reference
def reset_graph_autoscale(self):
self.graph_widget.enableAutoRange(axis="xy", enable=True)
self.graph_widget.autoRange()
def main():
app = QApplication(sys.argv)
window = MainWindow()
window.show()
sys.exit(app.exec())
if __name__ == "__main__":
main()

View File

@ -1,505 +0,0 @@
<?xml version="1.0" encoding="UTF-8"?>
<ui version="4.0">
<class>MainWindow</class>
<widget class="QMainWindow" name="MainWindow">
<property name="geometry">
<rect>
<x>0</x>
<y>0</y>
<width>1023</width>
<height>708</height>
</rect>
</property>
<property name="windowTitle">
<string>Reflectometer PREMIUM</string>
</property>
<widget class="QWidget" name="centralwidget">
<layout class="QHBoxLayout" name="horizontalLayout" stretch="4,2">
<item>
<layout class="QVBoxLayout" name="graph_layout"/>
</item>
<item>
<layout class="QVBoxLayout" name="settings_layout">
<item>
<widget class="QTabWidget" name="tabWidget">
<property name="currentIndex">
<number>1</number>
</property>
<widget class="QWidget" name="tab">
<attribute name="title">
<string>Настройки</string>
</attribute>
<layout class="QVBoxLayout" name="verticalLayout_2">
<item>
<widget class="QScrollArea" name="scrollArea">
<property name="widgetResizable">
<bool>true</bool>
</property>
<widget class="QWidget" name="scrollAreaWidgetContents">
<property name="geometry">
<rect>
<x>0</x>
<y>0</y>
<width>294</width>
<height>621</height>
</rect>
</property>
<layout class="QVBoxLayout" name="verticalLayout">
<item>
<widget class="QLabel" name="label_2">
<property name="font">
<font>
<pointsize>12</pointsize>
</font>
</property>
<property name="text">
<string>Аппаратные параметры</string>
</property>
</widget>
</item>
<item>
<widget class="QSpinBox" name="box_dac_dw">
<property name="suffix">
<string> bits</string>
</property>
<property name="prefix">
<string>DAC data width: </string>
</property>
<property name="minimum">
<number>8</number>
</property>
<property name="maximum">
<number>32</number>
</property>
<property name="value">
<number>14</number>
</property>
</widget>
</item>
<item>
<widget class="QSpinBox" name="box_adc_dw">
<property name="suffix">
<string> bits</string>
</property>
<property name="prefix">
<string>ADC data width: </string>
</property>
<property name="minimum">
<number>8</number>
</property>
<property name="maximum">
<number>32</number>
</property>
<property name="value">
<number>12</number>
</property>
</widget>
</item>
<item>
<widget class="QSpinBox" name="box_accum_width">
<property name="suffix">
<string> bits</string>
</property>
<property name="prefix">
<string>Accum width: </string>
</property>
<property name="minimum">
<number>16</number>
</property>
<property name="maximum">
<number>64</number>
</property>
<property name="singleStep">
<number>8</number>
</property>
<property name="value">
<number>32</number>
</property>
</widget>
</item>
<item>
<widget class="QDoubleSpinBox" name="box_adc_dac_ratio">
<property name="prefix">
<string>ADC:DAC clk ratio: </string>
</property>
<property name="minimum">
<double>0.200000000000000</double>
</property>
<property name="maximum">
<double>3.000000000000000</double>
</property>
<property name="singleStep">
<double>0.010000000000000</double>
</property>
<property name="value">
<double>0.520000000000000</double>
</property>
</widget>
</item>
<item>
<widget class="QSpinBox" name="box_nmax">
<property name="prefix">
<string>N Max: </string>
</property>
<property name="minimum">
<number>512</number>
</property>
<property name="maximum">
<number>65536</number>
</property>
<property name="value">
<number>4096</number>
</property>
</widget>
</item>
<item>
<widget class="QSpinBox" name="box_window_size">
<property name="prefix">
<string>Window size: </string>
</property>
<property name="minimum">
<number>1</number>
</property>
<property name="maximum">
<number>1024</number>
</property>
<property name="value">
<number>65</number>
</property>
</widget>
</item>
<item>
<widget class="QSpinBox" name="box_packet_size">
<property name="suffix">
<string> bytes</string>
</property>
<property name="prefix">
<string>Packet size: </string>
</property>
<property name="minimum">
<number>1</number>
</property>
<property name="maximum">
<number>1572</number>
</property>
<property name="value">
<number>1024</number>
</property>
</widget>
</item>
<item>
<widget class="Line" name="line_2">
<property name="orientation">
<enum>Qt::Orientation::Horizontal</enum>
</property>
</widget>
</item>
<item>
<widget class="QLabel" name="label">
<property name="font">
<font>
<pointsize>12</pointsize>
</font>
</property>
<property name="text">
<string>Подключение</string>
</property>
</widget>
</item>
<item>
<widget class="QLabel" name="label_3">
<property name="text">
<string>IP устройства:</string>
</property>
</widget>
</item>
<item>
<widget class="QLineEdit" name="line_ip">
<property name="inputMask">
<string>999.999.999.999</string>
</property>
<property name="text">
<string>192.168.0.2</string>
</property>
</widget>
</item>
<item>
<widget class="QLabel" name="label_4">
<property name="text">
<string>Порт отправки:</string>
</property>
</widget>
</item>
<item>
<widget class="QSpinBox" name="box_send_port">
<property name="minimum">
<number>80</number>
</property>
<property name="maximum">
<number>65536</number>
</property>
<property name="value">
<number>8080</number>
</property>
</widget>
</item>
<item>
<widget class="QLabel" name="label_5">
<property name="text">
<string>Порт приёма:</string>
</property>
</widget>
</item>
<item>
<widget class="QSpinBox" name="box_recv_port">
<property name="minimum">
<number>80</number>
</property>
<property name="maximum">
<number>65536</number>
</property>
<property name="value">
<number>8080</number>
</property>
</widget>
</item>
<item>
<widget class="QLabel" name="label_6">
<property name="font">
<font>
<pointsize>12</pointsize>
</font>
</property>
<property name="text">
<string>Тест</string>
</property>
</widget>
</item>
<item>
<widget class="QPushButton" name="button_ping">
<property name="text">
<string>алё</string>
</property>
</widget>
</item>
<item>
<widget class="QLabel" name="label_ping_status">
<property name="text">
<string>...</string>
</property>
<property name="alignment">
<set>Qt::AlignmentFlag::AlignCenter</set>
</property>
</widget>
</item>
<item>
<spacer name="verticalSpacer">
<property name="orientation">
<enum>Qt::Orientation::Vertical</enum>
</property>
<property name="sizeHint" stdset="0">
<size>
<width>20</width>
<height>40</height>
</size>
</property>
</spacer>
</item>
</layout>
</widget>
</widget>
</item>
</layout>
</widget>
<widget class="QWidget" name="tab_2">
<attribute name="title">
<string>Управление</string>
</attribute>
<layout class="QVBoxLayout" name="verticalLayout_3">
<item>
<widget class="QLabel" name="label_7">
<property name="font">
<font>
<pointsize>12</pointsize>
</font>
</property>
<property name="text">
<string>Импульс</string>
</property>
</widget>
</item>
<item>
<layout class="QHBoxLayout" name="horizontalLayout_2" stretch="1,1,2">
<item>
<widget class="QLabel" name="label_8">
<property name="text">
<string>Период</string>
</property>
</widget>
</item>
<item>
<widget class="QSpinBox" name="box_pulse_period">
<property name="minimum">
<number>1</number>
</property>
</widget>
</item>
<item>
<widget class="QSlider" name="slider_pulse_period">
<property name="orientation">
<enum>Qt::Orientation::Horizontal</enum>
</property>
</widget>
</item>
</layout>
</item>
<item>
<layout class="QHBoxLayout" name="horizontalLayout_3" stretch="1,1,2">
<item>
<widget class="QLabel" name="label_9">
<property name="text">
<string>Ширина</string>
</property>
</widget>
</item>
<item>
<widget class="QSpinBox" name="box_pulse_width"/>
</item>
<item>
<widget class="QSlider" name="slider_pulse_width">
<property name="orientation">
<enum>Qt::Orientation::Horizontal</enum>
</property>
</widget>
</item>
</layout>
</item>
<item>
<layout class="QHBoxLayout" name="horizontalLayout_4" stretch="1,1,2">
<item>
<widget class="QLabel" name="label_10">
<property name="text">
<string>Высота</string>
</property>
</widget>
</item>
<item>
<widget class="QSpinBox" name="box_pulse_height"/>
</item>
<item>
<widget class="QSlider" name="slider_pulse_height">
<property name="orientation">
<enum>Qt::Orientation::Horizontal</enum>
</property>
</widget>
</item>
</layout>
</item>
<item>
<layout class="QHBoxLayout" name="horizontalLayout_5" stretch="1,1,2">
<item>
<widget class="QLabel" name="label_11">
<property name="text">
<string>Количество</string>
</property>
</widget>
</item>
<item>
<widget class="QSpinBox" name="box_pulse_num">
<property name="minimum">
<number>1</number>
</property>
</widget>
</item>
<item>
<widget class="QSlider" name="slider_pulse_num">
<property name="minimum">
<number>1</number>
</property>
<property name="orientation">
<enum>Qt::Orientation::Horizontal</enum>
</property>
</widget>
</item>
</layout>
</item>
<item>
<widget class="QPushButton" name="button_start">
<property name="text">
<string>start!</string>
</property>
</widget>
</item>
<item>
<layout class="QHBoxLayout" name="horizontalLayout_6" stretch="1,3">
<item>
<widget class="QLabel" name="label_13">
<property name="font">
<font>
<bold>true</bold>
</font>
</property>
<property name="text">
<string>Статус:</string>
</property>
</widget>
</item>
<item>
<widget class="QLabel" name="label_status">
<property name="text">
<string>-</string>
</property>
</widget>
</item>
</layout>
</item>
<item>
<widget class="QCheckBox" name="checkbox_draw_reference">
<property name="text">
<string>Отрисовка эталона</string>
</property>
</widget>
</item>
<item>
<spacer name="verticalSpacer_2">
<property name="orientation">
<enum>Qt::Orientation::Vertical</enum>
</property>
<property name="sizeHint" stdset="0">
<size>
<width>20</width>
<height>40</height>
</size>
</property>
</spacer>
</item>
<item>
<widget class="QPushButton" name="button_graph_autoscale">
<property name="text">
<string>Сброс масштаба</string>
</property>
</widget>
</item>
</layout>
</widget>
</widget>
</item>
</layout>
</item>
</layout>
</widget>
<widget class="QMenuBar" name="menubar">
<property name="geometry">
<rect>
<x>0</x>
<y>0</y>
<width>1023</width>
<height>30</height>
</rect>
</property>
</widget>
<widget class="QStatusBar" name="statusbar"/>
</widget>
<resources/>
<connections/>
</ui>