Implements the rest of the SPI interface (docs §8.1) on top of spi_slave.v from the previous commit: - rtl/spi_engine.v: opcode FSM + register bank, all 8 opcodes (NOP, WRITE_RAM, READ_RAM, RESET, SET_BASE, START, STATUS, READ_OUTPUT, READ_CONFIG). tx_byte is driven combinationally from live state (not reactively on tx_byte_req), applying the prefetch-vs-consume contract documented on spi_slave.v. STATUS.done is a sticky, clear-on-read latch. RAM master port uses the same byte-level convention as neuron_memory.v's external mem_* port. - rtl/mem_arbiter.v: fixed-priority (neuron_memory > spi_engine) grant-and-forward arbiter sharing one byte-level memory port between spi_engine's WRITE_RAM/READ_RAM and neuron_memory's own X/W/bias reads during a run. - rtl/spi_neuron_top.v: full integration -- spi_slave -> spi_engine -> mem_arbiter -> a single shared int8_memory_access -> memory_interface -> psram_controller -> PSRAM pins. neuron_memory's rst is global rst OR'd with the RESET opcode's soft-reset pulse. The host has no direct electrical path to the RAM, only through this chain. Testing: - sim/spi_engine_tb.v: 10 tests (one per opcode + WRITE_RAM/READ_RAM, START idle-vs-busy, STATUS sticky/clear-on-read, extra-MOSI-bytes- ignored, back-to-back transactions) against a synthetic 2-cycle- latency RAM model, isolating the opcode FSM from PSRAM timing. Found and fixed two testbench-only bugs (RTL needed no change): the same delta-zero clock-edge race as spi_slave_tb.v (blocking `nm_done=1` landing on the same sim time as a posedge -- fixed via negedge-based pulsing) and a missing RAM sentinel initialization. - sim/spi_neuron_top_tb.v: end-to-end test against the **real** psram_model.v (not a mock) -- RESET/READ_CONFIG/WRITE_RAM/ READ_RAM/SET_BASE/START/STATUS/READ_OUTPUT all driven purely over simulated SPI. 3/3 scenarios (sum, saturation, ReLU) pass on the first attempt; confirms the arbiter and shared byte<->word bridge are correct against real PSRAM timing, not just a synthetic mock. Real-toolchain verification (Yosys + nextpnr-ecp5 + ecppack): spi_slave.v and spi_engine.v synthesize clean and comfortably clear 80 MHz in isolation (403 MHz / 191 MHz, no DSP usage). The full spi_neuron_top.v integration, however, does NOT meet 80 MHz (~52-56 MHz depending on PARALLEL) -- the critical path is entirely inside neuron_parallel.v's existing saturation comparator (no contribution from the new SPI/arbiter logic), but its routed delay is ~57% worse than in the isolated benchmark due to placement/ routing congestion once SPI + PSRAM logic shares the fabric with it, not resource exhaustion (2% DSP usage). Documented as a Phase 4/7 finding in docs/FPGA-NeuralNetwork-Engine.md -- a floorplanning/ pipelining problem for Phase 7, not a functional-correctness issue (verified independently in simulation against real PSRAM timing). Co-Authored-By: Claude Sonnet 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01WQV3vS9TXaGDJ5cRfnfidt
596 lines
20 KiB
Verilog
596 lines
20 KiB
Verilog
`timescale 1ns/1ps
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// ================================================================
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// SPI_ENGINE TESTBENCH
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//
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// Drives spi_slave.v + spi_engine.v together through a simulated
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// SPI master (same clk-cycle-counted BFM proven in spi_slave_tb.v),
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// against a synthetic byte-RAM model (small fixed latency, isolates
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// the opcode FSM from the full PSRAM stack) and a manually-driven
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// neuron_memory mock (nm_busy/nm_done/y_bus driven by the test,
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// x_base/w_base/bias_addr/nm_start/nm_soft_rst observed).
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//
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// Covers every opcode plus a few protocol edge cases:
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// A: WRITE_RAM then READ_RAM back
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// B: SET_BASE for X/W/BIAS
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// C: START (accepted when idle, ignored when busy)
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// D: STATUS (live busy bit, sticky done bit, clear-on-read)
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// E: RESET (pulses nm_soft_rst, clears sticky done)
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// F: READ_OUTPUT (N_NEURONS=3 bytes, neuron-major)
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// G: READ_CONFIG (8-byte hardware record)
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// H: NOP (no side effects)
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// I: WRITE_RAM with more MOSI bytes than len (extra bytes ignored)
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// J: back-to-back transactions (state resets cleanly via cs_end)
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// ================================================================
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module tb;
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localparam ADDR_WIDTH = 22;
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localparam DATA_WIDTH = 8;
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localparam N_INPUTS = 32;
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localparam N_NEURONS = 3;
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localparam PARALLEL = 8;
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localparam CLK_PERIOD = 12.5; // 80 MHz
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reg clk;
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reg rst;
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initial begin
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clk = 1'b0;
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forever #(CLK_PERIOD / 2.0) clk = ~clk;
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end
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// ============================================================
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// SPI PINS
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// ============================================================
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reg sclk;
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reg mosi;
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wire miso;
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reg cs_n;
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// ============================================================
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// spi_slave <-> spi_engine byte-level bus
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// ============================================================
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wire [7:0] rx_byte;
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wire rx_valid;
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wire cs_start;
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wire cs_end_w;
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wire [7:0] tx_byte;
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wire tx_byte_req;
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spi_slave u_slave (
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.clk(clk), .rst(rst),
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.sclk(sclk), .mosi(mosi), .miso(miso), .cs_n(cs_n),
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.rx_byte(rx_byte), .rx_valid(rx_valid),
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.tx_byte(tx_byte), .tx_byte_req(tx_byte_req),
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.cs_active(), .cs_start(cs_start), .cs_end(cs_end_w)
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);
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// ============================================================
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// spi_engine <-> synthetic RAM
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// ============================================================
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wire ram_req;
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wire ram_wr;
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wire [ADDR_WIDTH-1:0] ram_addr;
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wire signed [7:0] ram_wdata;
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reg signed [7:0] ram_rdata;
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reg ram_ready;
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wire [ADDR_WIDTH-1:0] x_base;
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wire [ADDR_WIDTH-1:0] w_base;
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wire [ADDR_WIDTH-1:0] bias_addr;
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wire nm_start;
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reg nm_busy;
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reg nm_done;
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reg signed [DATA_WIDTH*N_NEURONS-1:0] y_bus;
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wire nm_soft_rst;
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spi_engine #(
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.ADDR_WIDTH(ADDR_WIDTH),
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.DATA_WIDTH(DATA_WIDTH),
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.N_INPUTS(N_INPUTS),
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.N_NEURONS(N_NEURONS),
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.PARALLEL(PARALLEL)
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) u_engine (
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.clk(clk), .rst(rst),
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.rx_byte(rx_byte), .rx_valid(rx_valid),
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.cs_start(cs_start), .cs_end(cs_end_w),
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.tx_byte(tx_byte), .tx_byte_req(tx_byte_req),
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.ram_req(ram_req), .ram_wr(ram_wr), .ram_addr(ram_addr), .ram_wdata(ram_wdata),
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.ram_rdata(ram_rdata), .ram_ready(ram_ready),
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.x_base(x_base), .w_base(w_base), .bias_addr(bias_addr),
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.nm_start(nm_start), .nm_busy(nm_busy), .nm_done(nm_done),
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.y_bus(y_bus),
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.nm_soft_rst(nm_soft_rst)
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);
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// ============================================================
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// SYNTHETIC BYTE-RAM MODEL
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//
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// Fixed 2-cycle latency (req seen -> 1 extra cycle -> ready
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// pulse), independent of the real PSRAM stack, to isolate
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// spi_engine's own request/ready handshake correctness.
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// ============================================================
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reg [7:0] ram_mem [0:1023];
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localparam RAM_IDLE = 1'b0;
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localparam RAM_WAIT = 1'b1;
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reg ram_state;
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reg [ADDR_WIDTH-1:0] ram_addr_latched;
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reg ram_wr_latched;
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reg signed [7:0] ram_wdata_latched;
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always @(posedge clk) begin
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if (rst) begin
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ram_state <= RAM_IDLE;
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ram_ready <= 1'b0;
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ram_rdata <= 8'sd0;
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end else begin
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ram_ready <= 1'b0;
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case (ram_state)
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RAM_IDLE: begin
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if (ram_req) begin
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ram_addr_latched <= ram_addr;
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ram_wr_latched <= ram_wr;
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ram_wdata_latched <= ram_wdata;
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ram_state <= RAM_WAIT;
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end
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end
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RAM_WAIT: begin
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if (ram_wr_latched)
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ram_mem[ram_addr_latched] <= ram_wdata_latched;
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else
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ram_rdata <= $signed(ram_mem[ram_addr_latched]);
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ram_ready <= 1'b1;
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ram_state <= RAM_IDLE;
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end
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endcase
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end
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end
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// ============================================================
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// SPI MASTER BFM (same pattern as sim/spi_slave_tb.v)
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// ============================================================
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task clk_wait;
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input integer n;
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integer k;
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begin
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for (k = 0; k < n; k = k + 1)
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@(posedge clk);
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end
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endtask
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task spi_begin;
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input integer half_bit_cycles;
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begin
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cs_n = 1'b1;
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sclk = 1'b0;
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mosi = 1'b0;
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clk_wait(half_bit_cycles * 2);
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cs_n = 1'b0;
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clk_wait(half_bit_cycles * 2);
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end
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endtask
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task spi_end;
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input integer half_bit_cycles;
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begin
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clk_wait(half_bit_cycles * 2);
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cs_n = 1'b1;
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clk_wait(half_bit_cycles * 2);
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end
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endtask
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task spi_xfer_byte;
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input [7:0] tx;
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input integer half_bit_cycles;
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output [7:0] rx;
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integer i;
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reg [7:0] rx_acc;
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begin
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rx_acc = 8'h00;
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for (i = 7; i >= 0; i = i - 1) begin
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mosi = tx[i];
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clk_wait(half_bit_cycles);
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sclk = 1'b1;
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rx_acc[i] = miso;
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clk_wait(half_bit_cycles);
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sclk = 1'b0;
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clk_wait(half_bit_cycles);
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end
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rx = rx_acc;
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end
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endtask
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localparam HB = 6; // half-bit cycles for all transfers in this bench
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// ============================================================
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// nm_start / nm_soft_rst pulse latches (declared here, ahead of
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// the main initial block below, since Icarus in -g2012 mode
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// still requires declaration-before-use for plain Verilog regs)
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// ============================================================
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reg nm_start_seen;
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reg nm_soft_rst_seen;
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always @(posedge clk) begin
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if (nm_start) nm_start_seen <= 1'b1;
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if (nm_soft_rst) nm_soft_rst_seen <= 1'b1;
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end
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reg [7:0] rx_tmp;
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integer errors;
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integer errors_before;
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integer i;
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// ============================================================
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// MAIN
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// ============================================================
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initial begin
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$dumpfile("sim/spi_engine.vcd");
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$dumpvars(0, tb);
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rst = 1'b1;
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cs_n = 1'b1;
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sclk = 1'b0;
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mosi = 1'b0;
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nm_busy = 1'b0;
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nm_done = 1'b0;
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y_bus = 0;
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errors = 0;
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for (i = 0; i < 1024; i = i + 1)
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ram_mem[i] = 8'h00;
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repeat (5) @(posedge clk);
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rst = 1'b0;
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repeat (5) @(posedge clk);
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$display("");
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$display("========================================");
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$display("SPI_ENGINE TEST");
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$display("========================================");
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// --------------------------------------------------------
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// TEST A: WRITE_RAM then READ_RAM back
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// WRITE_RAM opcode=0x01, addr=0x000010 (3B), len=0x0004 (2B),
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// data = 11 22 33 44.
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// READ_RAM opcode=0x02, addr=0x000010 (3B), len=0x0004 (2B).
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// --------------------------------------------------------
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errors_before = errors;
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spi_begin(HB);
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spi_xfer_byte(8'h01, HB, rx_tmp); // WRITE_RAM
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spi_xfer_byte(8'h00, HB, rx_tmp); // addr[23:16]
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spi_xfer_byte(8'h00, HB, rx_tmp); // addr[15:8]
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spi_xfer_byte(8'h10, HB, rx_tmp); // addr[7:0]
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spi_xfer_byte(8'h00, HB, rx_tmp); // len[15:8]
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spi_xfer_byte(8'h04, HB, rx_tmp); // len[7:0]
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spi_xfer_byte(8'h11, HB, rx_tmp);
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spi_xfer_byte(8'h22, HB, rx_tmp);
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spi_xfer_byte(8'h33, HB, rx_tmp);
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spi_xfer_byte(8'h44, HB, rx_tmp);
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spi_end(HB);
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clk_wait(4);
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spi_begin(HB);
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spi_xfer_byte(8'h02, HB, rx_tmp); // READ_RAM
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spi_xfer_byte(8'h00, HB, rx_tmp); // addr[23:16]
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spi_xfer_byte(8'h00, HB, rx_tmp); // addr[15:8]
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spi_xfer_byte(8'h10, HB, rx_tmp); // addr[7:0]
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spi_xfer_byte(8'h00, HB, rx_tmp); // len[15:8]
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spi_xfer_byte(8'h04, HB, rx_tmp); // len[7:0]
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spi_xfer_byte(8'h00, HB, rx_tmp); miso_check(rx_tmp, 8'h11, "A: byte0");
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spi_xfer_byte(8'h00, HB, rx_tmp); miso_check(rx_tmp, 8'h22, "A: byte1");
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spi_xfer_byte(8'h00, HB, rx_tmp); miso_check(rx_tmp, 8'h33, "A: byte2");
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spi_xfer_byte(8'h00, HB, rx_tmp); miso_check(rx_tmp, 8'h44, "A: byte3");
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spi_end(HB);
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report("TEST A: WRITE_RAM / READ_RAM");
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// --------------------------------------------------------
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// TEST B: SET_BASE for X, W, BIAS
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// --------------------------------------------------------
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errors_before = errors;
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set_base(8'h00, 22'h000001); // X_BASE
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set_base(8'h01, 22'h000101); // W_BASE
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set_base(8'h02, 22'h000201); // BIAS_ADDR
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clk_wait(2);
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if (x_base !== 22'h000001) begin $display(" FAIL: x_base = 0x%06x", x_base); errors = errors + 1; end
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if (w_base !== 22'h000101) begin $display(" FAIL: w_base = 0x%06x", w_base); errors = errors + 1; end
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if (bias_addr !== 22'h000201) begin $display(" FAIL: bias_addr = 0x%06x", bias_addr); errors = errors + 1; end
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report("TEST B: SET_BASE (X/W/BIAS)");
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// --------------------------------------------------------
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// TEST C: START -- accepted when idle, ignored when busy
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// --------------------------------------------------------
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errors_before = errors;
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nm_busy = 1'b0;
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nm_start_seen = 1'b0;
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spi_begin(HB);
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spi_xfer_byte(8'h20, HB, rx_tmp); // START
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spi_end(HB);
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clk_wait(4);
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if (!nm_start_seen) begin
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$display(" FAIL: nm_start not pulsed while idle");
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errors = errors + 1;
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end
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// now busy: START must be ignored
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nm_busy = 1'b1;
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nm_start_seen = 1'b0;
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spi_begin(HB);
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spi_xfer_byte(8'h20, HB, rx_tmp); // START
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spi_end(HB);
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clk_wait(4);
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if (nm_start_seen) begin
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$display(" FAIL: nm_start pulsed while busy (should be ignored)");
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errors = errors + 1;
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end
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nm_busy = 1'b0;
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report("TEST C: START (idle vs busy)");
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// --------------------------------------------------------
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// TEST D: STATUS -- live busy, sticky/clear-on-read done
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// --------------------------------------------------------
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errors_before = errors;
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nm_busy = 1'b1;
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read_status(rx_tmp);
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if (rx_tmp[0] !== 1'b1) begin $display(" FAIL: busy bit not set while nm_busy=1"); errors = errors + 1; end
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if (rx_tmp[1] !== 1'b0) begin $display(" FAIL: done bit set before any nm_done pulse"); errors = errors + 1; end
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nm_busy = 1'b0;
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// pulse nm_done, then read STATUS well after the pulse: must still be set (sticky)
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@(negedge clk); nm_done = 1'b1; @(negedge clk); nm_done = 1'b0;
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clk_wait(10);
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read_status(rx_tmp);
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if (rx_tmp[1] !== 1'b1) begin $display(" FAIL: done bit not sticky after nm_done pulse"); errors = errors + 1; end
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// reading STATUS must clear done
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read_status(rx_tmp);
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if (rx_tmp[1] !== 1'b0) begin $display(" FAIL: done bit not cleared after STATUS read"); errors = errors + 1; end
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report("TEST D: STATUS (busy live, done sticky/clear-on-read)");
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// --------------------------------------------------------
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// TEST E: RESET -- pulses nm_soft_rst, clears sticky done
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// --------------------------------------------------------
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errors_before = errors;
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@(negedge clk); nm_done = 1'b1; @(negedge clk); nm_done = 1'b0;
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clk_wait(4);
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nm_soft_rst_seen = 1'b0;
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spi_begin(HB);
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spi_xfer_byte(8'h0F, HB, rx_tmp); // RESET
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spi_end(HB);
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clk_wait(4);
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if (!nm_soft_rst_seen) begin
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$display(" FAIL: nm_soft_rst not pulsed by RESET opcode");
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errors = errors + 1;
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end
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clk_wait(4);
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read_status(rx_tmp);
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if (rx_tmp[1] !== 1'b0) begin $display(" FAIL: done bit still set after RESET"); errors = errors + 1; end
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report("TEST E: RESET");
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// --------------------------------------------------------
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// TEST F: READ_OUTPUT (N_NEURONS=3, neuron-major)
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// --------------------------------------------------------
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errors_before = errors;
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y_bus[0*DATA_WIDTH +: DATA_WIDTH] = 8'sd10;
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y_bus[1*DATA_WIDTH +: DATA_WIDTH] = -8'sd20;
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y_bus[2*DATA_WIDTH +: DATA_WIDTH] = 8'sd127;
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spi_begin(HB);
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spi_xfer_byte(8'h22, HB, rx_tmp); // READ_OUTPUT
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spi_xfer_byte(8'h00, HB, rx_tmp); miso_check(rx_tmp, 8'sd10, "F: neuron0");
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spi_xfer_byte(8'h00, HB, rx_tmp); miso_check(rx_tmp, -8'sd20, "F: neuron1");
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spi_xfer_byte(8'h00, HB, rx_tmp); miso_check(rx_tmp, 8'sd127, "F: neuron2");
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spi_end(HB);
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report("TEST F: READ_OUTPUT");
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// --------------------------------------------------------
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// TEST G: READ_CONFIG
|
|
// --------------------------------------------------------
|
|
|
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errors_before = errors;
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|
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spi_begin(HB);
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spi_xfer_byte(8'h30, HB, rx_tmp); // READ_CONFIG
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spi_xfer_byte(8'h00, HB, rx_tmp); miso_check(rx_tmp, ADDR_WIDTH[7:0], "G: ADDR_WIDTH");
|
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spi_xfer_byte(8'h00, HB, rx_tmp); miso_check(rx_tmp, N_INPUTS[15:8], "G: N_INPUTS hi");
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spi_xfer_byte(8'h00, HB, rx_tmp); miso_check(rx_tmp, N_INPUTS[7:0], "G: N_INPUTS lo");
|
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spi_xfer_byte(8'h00, HB, rx_tmp); miso_check(rx_tmp, N_NEURONS[7:0], "G: N_NEURONS");
|
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spi_xfer_byte(8'h00, HB, rx_tmp); miso_check(rx_tmp, PARALLEL[7:0], "G: PARALLEL");
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spi_xfer_byte(8'h00, HB, rx_tmp); miso_check(rx_tmp, DATA_WIDTH[7:0], "G: DATA_WIDTH");
|
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spi_xfer_byte(8'h00, HB, rx_tmp); miso_check(rx_tmp, 8'h00, "G: version hi");
|
|
spi_xfer_byte(8'h00, HB, rx_tmp); miso_check(rx_tmp, 8'h01, "G: version lo");
|
|
spi_end(HB);
|
|
|
|
report("TEST G: READ_CONFIG");
|
|
|
|
// --------------------------------------------------------
|
|
// TEST H: NOP -- no side effects
|
|
// --------------------------------------------------------
|
|
|
|
errors_before = errors;
|
|
|
|
spi_begin(HB);
|
|
spi_xfer_byte(8'h00, HB, rx_tmp); // NOP
|
|
spi_end(HB);
|
|
clk_wait(4);
|
|
|
|
if (x_base !== 22'h000001 || w_base !== 22'h000101 || bias_addr !== 22'h000201) begin
|
|
$display(" FAIL: NOP changed base registers");
|
|
errors = errors + 1;
|
|
end
|
|
|
|
report("TEST H: NOP");
|
|
|
|
// --------------------------------------------------------
|
|
// TEST I: WRITE_RAM with more MOSI bytes than len
|
|
// len=2 but 4 data bytes sent; only the first 2 must land.
|
|
// --------------------------------------------------------
|
|
|
|
errors_before = errors;
|
|
|
|
ram_mem[16'h0300] = 8'hFF; // sentinel: must NOT be overwritten
|
|
ram_mem[16'h0301] = 8'hFF;
|
|
ram_mem[16'h0302] = 8'hFF; // sentinel: extra byte must not land here
|
|
|
|
spi_begin(HB);
|
|
spi_xfer_byte(8'h01, HB, rx_tmp); // WRITE_RAM
|
|
spi_xfer_byte(8'h00, HB, rx_tmp);
|
|
spi_xfer_byte(8'h03, HB, rx_tmp);
|
|
spi_xfer_byte(8'h00, HB, rx_tmp); // addr = 0x000300
|
|
spi_xfer_byte(8'h00, HB, rx_tmp);
|
|
spi_xfer_byte(8'h02, HB, rx_tmp); // len = 2
|
|
spi_xfer_byte(8'hAA, HB, rx_tmp); // byte 0 (written)
|
|
spi_xfer_byte(8'hBB, HB, rx_tmp); // byte 1 (written)
|
|
spi_xfer_byte(8'hCC, HB, rx_tmp); // byte 2 (must be ignored)
|
|
spi_xfer_byte(8'hDD, HB, rx_tmp); // byte 3 (must be ignored)
|
|
spi_end(HB);
|
|
|
|
clk_wait(4);
|
|
|
|
if (ram_mem[16'h0300] !== 8'hAA) begin $display(" FAIL: ram[0x300]=0x%02x expected 0xAA", ram_mem[16'h0300]); errors = errors + 1; end
|
|
if (ram_mem[16'h0301] !== 8'hBB) begin $display(" FAIL: ram[0x301]=0x%02x expected 0xBB", ram_mem[16'h0301]); errors = errors + 1; end
|
|
if (ram_mem[16'h0302] !== 8'hFF) begin $display(" FAIL: ram[0x302] was overwritten (extra byte not ignored)"); errors = errors + 1; end
|
|
|
|
report("TEST I: WRITE_RAM extra MOSI bytes ignored");
|
|
|
|
// --------------------------------------------------------
|
|
// TEST J: back-to-back transactions
|
|
// --------------------------------------------------------
|
|
|
|
errors_before = errors;
|
|
|
|
set_base(8'h00, 22'h000005);
|
|
set_base(8'h01, 22'h000006);
|
|
|
|
if (x_base !== 22'h000005) begin $display(" FAIL: x_base after back-to-back = 0x%06x", x_base); errors = errors + 1; end
|
|
if (w_base !== 22'h000006) begin $display(" FAIL: w_base after back-to-back = 0x%06x", w_base); errors = errors + 1; end
|
|
|
|
report("TEST J: back-to-back transactions");
|
|
|
|
// --------------------------------------------------------
|
|
// SUMMARY
|
|
// --------------------------------------------------------
|
|
|
|
$display("");
|
|
$display("========================================");
|
|
if (errors == 0)
|
|
$display("SPI_ENGINE TEST PASSED");
|
|
else
|
|
$display("SPI_ENGINE TEST FAILED: %0d errors", errors);
|
|
$display("========================================");
|
|
$display("");
|
|
|
|
$finish;
|
|
|
|
end
|
|
|
|
// ============================================================
|
|
// HELPER TASKS
|
|
// ============================================================
|
|
|
|
task set_base;
|
|
input [7:0] sel;
|
|
input [ADDR_WIDTH-1:0] addr;
|
|
begin
|
|
spi_begin(HB);
|
|
spi_xfer_byte(8'h10, HB, rx_tmp); // SET_BASE
|
|
spi_xfer_byte(sel, HB, rx_tmp); // selector
|
|
spi_xfer_byte(addr[23:16], HB, rx_tmp);
|
|
spi_xfer_byte(addr[15:8], HB, rx_tmp);
|
|
spi_xfer_byte(addr[7:0], HB, rx_tmp);
|
|
spi_end(HB);
|
|
end
|
|
endtask
|
|
|
|
task read_status;
|
|
output [7:0] status;
|
|
begin
|
|
spi_begin(HB);
|
|
spi_xfer_byte(8'h21, HB, rx_tmp); // STATUS
|
|
spi_xfer_byte(8'h00, HB, status);
|
|
spi_end(HB);
|
|
end
|
|
endtask
|
|
|
|
task miso_check;
|
|
input [7:0] got;
|
|
input [7:0] expected;
|
|
input [511:0] label;
|
|
begin
|
|
if (got !== expected) begin
|
|
$display(" FAIL %0s: got 0x%02x expected 0x%02x", label, got, expected);
|
|
errors = errors + 1;
|
|
end
|
|
end
|
|
endtask
|
|
|
|
task report;
|
|
input [511:0] label;
|
|
begin
|
|
$display("");
|
|
if (errors == errors_before)
|
|
$display("%0s: PASS", label);
|
|
else
|
|
$display("%0s: FAIL", label);
|
|
end
|
|
endtask
|
|
|
|
initial begin
|
|
nm_start_seen = 1'b0;
|
|
nm_soft_rst_seen = 1'b0;
|
|
end
|
|
|
|
endmodule
|