generated from saji/ecp5-template
152 lines
3.9 KiB
C++
152 lines
3.9 KiB
C++
// Project-specific cosimuluated devices.
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#pragma once
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#include "Vhub75e.h"
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#include "tests.hpp"
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// slices the RGB values for us.
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uint8_t rgb_slice(uint32_t rgb, uint8_t bit) {
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if (bit > 8) {
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// todo: panic
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return 0;
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}
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uint8_t r = (rgb >> (16 + bit)) & 1;
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uint8_t g = (rgb >> (8 + bit)) & 1;
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uint8_t b = (rgb >> bit) & 1;
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return (r << 2) & (g << 1) & (b << 1);
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}
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void rgb_unslice(unsigned int &rgb, uint8_t bits, uint8_t bitpos) {
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if (bitpos > 7 || bits > 0b111) {
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// TODO: panic.
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return;
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}
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auto r = (bits >> 2) & 1;
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auto g = (bits >> 1) & 1;
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auto b = (bits >> 0) & 1;
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rgb |= r << bitpos << 16;
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rgb |= g << bitpos << 8;
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rgb |= b << bitpos << 0;
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}
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class HUB75Reciever : public CosimulatedDevice {
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typedef std::vector<unsigned char> row_array;
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int xsize;
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int ysize;
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row_array row0{};
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row_array row1{};
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// the previous row values that were latched in.
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std::vector<std::pair<row_array, row_array>> past_rows{};
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// the pulse width for each output, in clock cycles.
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std::vector<int> pulse_widths{};
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int bit_position = 7; // the bit that is currently being shifted in
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int output_period_cnt;
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// if oe = 0, count clocks. when oe = 1, store value into
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// pulse_widths[display_bit];
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// previous latch value, used to identify when to latch.
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unsigned char prev_latch = 0;
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// previous display clock value, used to detect rising edge.
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unsigned char prev_display_clk = 0;
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unsigned char prev_clk = 0;
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unsigned char prev_oe = 1; // assuming starting high.
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// references to the panel driver signals.
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VL_IN8(&display_clk, 0, 0);
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VL_IN8(&out_enable, 0, 0);
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VL_IN8(&latch, 0, 0);
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VL_IN8(&rgb0, 2, 0);
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VL_IN8(&rgb1, 2, 0);
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VL_IN8(&clk, 0, 0);
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public:
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HUB75Reciever(int xsize, int ysize, const Vhub75e &dut)
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: clk(dut.clk), display_clk(dut.display_clk), out_enable(dut.out_enable),
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latch(dut.latch), rgb0(dut.panel_rgb0), rgb1(dut.panel_rgb1) {
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this->xsize = xsize;
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this->ysize = ysize;
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row0.clear();
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row1.clear();
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prev_oe = out_enable;
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prev_display_clk = display_clk;
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prev_latch = latch;
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prev_clk = clk;
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};
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// evaluates the reciever.
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virtual void tick() override {
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if (prev_display_clk == 0 && display_clk == 1) {
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// display clock rising edge.
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row0.push_back(rgb0);
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row1.push_back(rgb1);
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}
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if (prev_latch == 0 && latch == 1) {
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// latch in the data: reverse the rows, and pu
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std::reverse(row0.begin(), row0.end());
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std::reverse(row1.begin(), row1.end());
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past_rows.push_back(std::pair(row0, row1));
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row0.clear();
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row1.clear();
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}
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if (prev_clk == 0 && clk == 1) {
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if (out_enable == 0) {
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if (prev_oe == 1) {
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// falling edge.
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output_period_cnt = 1;
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} else {
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output_period_cnt++;
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}
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} else { // out_enable == 1
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if (prev_oe == 1) {
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// do nothing
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}
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if (prev_oe == 0) {
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// rising edge
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pulse_widths.push_back(output_period_cnt);
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}
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}
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}
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// update previous values
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prev_display_clk = display_clk;
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prev_latch = latch;
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prev_oe = out_enable;
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prev_clk = clk;
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}
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const auto &get_past_rows() { return this->past_rows; }
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const std::vector<int> &get_pulse_widths() { return this->pulse_widths; }
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// return the RGB version.
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std::pair<std::vector<unsigned int>, std::vector<unsigned int>> transpose() {
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auto r0rgb = std::vector<unsigned int>(xsize, 0);
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auto r1rgb = std::vector<unsigned int>(xsize, 0);
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auto bitdepth = pulse_widths.size();
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// TODO: use more sophisticated slicing.
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auto slice = bitdepth - 1;
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for (const auto &[row0slice, row1slice] : this->past_rows) {
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for (int i = 0; i < row0slice.size(); i++) {
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rgb_unslice(r0rgb[i], row0slice[i], slice);
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rgb_unslice(r1rgb[i], row1slice[i], slice);
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}
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slice--;
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}
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return std::pair(r0rgb, r1rgb);
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}
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};
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