Wires the already-present layer_sequencer.v into the SPI stack: - spi_engine.v: RUN_NETWORK opcode (0x23) + SET_BASE selectors for table_base/buf_a_base/buf_b_base; STATUS.busy/done extended to track the sequencer (seq_busy/seq_done) alongside neuron_memory directly, so done latches on the last layer only. - spi_neuron_top.v: instantiates layer_sequencer, muxes neuron_memory's control inputs between it (while seq_busy) and spi_engine's direct-drive path (legacy single-layer mode), wires the sequencer's own RAM master to mem_arbiter's Port C. Found and fixed a real race while writing the end-to-end test: STATUS's sticky/clear-on-read done bit read its value live/combinationally during transmission and cleared unconditionally on any STATUS read. A done_event landing mid-transmission of a STATUS response byte could be silently dropped -- the host would receive a stale byte while the sticky bit was cleared regardless, hanging any host polling STATUS in a loop. Present since Phase 4, not RUN_NETWORK-specific; only surfaced under this test's continuous polling. Fixed by latching a status_snapshot at opcode-accept time and gating the clear on what was actually transmitted. Tests: spi_engine_tb.v gains RUN_NETWORK/SET_BASE opcode tests (K/L); new layer_sequencer_tb.v unit-tests the sequencer FSM directly (descriptor table, ping-pong buffer addressing, byte-exact copy-out); new spi_neuron_top_runnetwork_tb.v drives a real 2-layer network over simulated SPI end to end (real neuron_memory + PSRAM, hand-computed expected output) and confirms the legacy single-layer path still works afterward. All existing testbenches still pass.
420 lines
15 KiB
Verilog
420 lines
15 KiB
Verilog
`timescale 1ns/1ps
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// ================================================================
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// LAYER_SEQUENCER TESTBENCH
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//
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// Direct unit test of rtl/layer_sequencer.v (Phase 5), same style
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// as sim/spi_engine_tb.v: a synthetic byte-RAM model (fixed 2-cycle
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// latency) for the descriptor table + ping-pong buffers, and a
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// manually-driven neuron_memory mock (nm_busy/nm_done/y_bus driven
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// by the test, nm_x_base/nm_w_base/nm_bias_addr/nm_start observed).
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//
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// Runs a 2-layer network (N_WIDTH=4) end to end and checks:
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// - the descriptor table (w_base/bias_addr per layer) is read
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// correctly and drives neuron_memory's w_base/bias_addr;
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// - layer 0 reads from the external x_base; layer 1 reads from
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// the ping-pong buffer layer 0 wrote to (the actual point of
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// the ping-pong scheme -- verified by address, not just value);
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// - each layer's y_bus is copied byte-for-byte into the correct
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// ping-pong buffer in RAM;
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// - seq_busy stays asserted for the whole 2-layer run and does
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// NOT drop between layers;
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// - seq_done pulses exactly once, after the LAST layer only (an
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// intermediate per-layer nm_done must not trigger it).
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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_WIDTH = 4;
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localparam N_LAYERS = 4;
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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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// DUT
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// ============================================================
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reg run_start;
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reg [7:0] run_num_layers;
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wire seq_busy;
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wire seq_done;
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reg [ADDR_WIDTH-1:0] x_base;
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reg [ADDR_WIDTH-1:0] table_base;
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reg [ADDR_WIDTH-1:0] buf_a_base;
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reg [ADDR_WIDTH-1:0] buf_b_base;
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wire [ADDR_WIDTH-1:0] nm_x_base;
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wire [ADDR_WIDTH-1:0] nm_w_base;
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wire [ADDR_WIDTH-1:0] nm_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_WIDTH-1:0] y_bus;
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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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layer_sequencer #(
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.ADDR_WIDTH(ADDR_WIDTH),
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.DATA_WIDTH(DATA_WIDTH),
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.N_WIDTH(N_WIDTH),
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.N_LAYERS(N_LAYERS)
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) u_dut (
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.clk(clk), .rst(rst),
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.run_start(run_start), .run_num_layers(run_num_layers),
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.seq_busy(seq_busy), .seq_done(seq_done),
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.x_base(x_base), .table_base(table_base),
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.buf_a_base(buf_a_base), .buf_b_base(buf_b_base),
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.nm_x_base(nm_x_base), .nm_w_base(nm_w_base),
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.nm_bias_addr(nm_bias_addr), .nm_start(nm_start),
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.nm_busy(nm_busy), .nm_done(nm_done),
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.y_bus(y_bus),
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.ram_req(ram_req), .ram_wr(ram_wr),
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.ram_addr(ram_addr), .ram_wdata(ram_wdata),
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.ram_rdata(ram_rdata), .ram_ready(ram_ready)
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);
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// ============================================================
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// SYNTHETIC BYTE-RAM MODEL (same pattern as spi_engine_tb.v)
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// ============================================================
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reg [7:0] ram_mem [0:4095];
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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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// neuron_memory MOCK
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//
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// On nm_start: goes busy for a few cycles, then pulses nm_done
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// for exactly one cycle with whatever y_bus the test has staged
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// via `stage_layer_output`.
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// ============================================================
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reg [DATA_WIDTH*N_WIDTH-1:0] staged_y;
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task stage_layer_output;
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input [DATA_WIDTH*N_WIDTH-1:0] val;
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begin
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staged_y = val;
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end
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endtask
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integer nm_delay;
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always @(posedge clk) begin
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if (rst) begin
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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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end else begin
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nm_done <= 1'b0;
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if (nm_start && !nm_busy) begin
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nm_busy <= 1'b1;
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nm_delay <= 3;
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end else if (nm_busy) begin
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if (nm_delay == 0) begin
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nm_busy <= 1'b0;
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nm_done <= 1'b1;
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y_bus <= staged_y;
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end else begin
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nm_delay <= nm_delay - 1;
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end
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end
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end
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end
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// ============================================================
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// seq_busy / seq_done monitors
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// ============================================================
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integer seq_done_count;
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reg seq_busy_dropped_early;
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always @(posedge clk) begin
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if (rst) begin
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seq_done_count <= 0;
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seq_busy_dropped_early <= 1'b0;
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end else begin
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if (seq_done) seq_done_count <= seq_done_count + 1;
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end
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end
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// ============================================================
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// MAIN
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// ============================================================
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integer errors;
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integer errors_before;
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integer i;
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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 report;
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input [511:0] label;
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begin
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$display("");
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if (errors == errors_before)
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$display("%0s: PASS", label);
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else
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$display("%0s: FAIL", label);
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end
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endtask
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// Byte addresses used by this test.
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localparam [ADDR_WIDTH-1:0] TABLE_BASE = 22'h000100;
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localparam [ADDR_WIDTH-1:0] X_BASE = 22'h000010;
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localparam [ADDR_WIDTH-1:0] BUF_A_BASE = 22'h000200;
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localparam [ADDR_WIDTH-1:0] BUF_B_BASE = 22'h000300;
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localparam [ADDR_WIDTH-1:0] L0_W_BASE = 22'h001000;
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localparam [ADDR_WIDTH-1:0] L0_BIAS_ADDR = 22'h002000;
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localparam [ADDR_WIDTH-1:0] L1_W_BASE = 22'h003000;
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localparam [ADDR_WIDTH-1:0] L1_BIAS_ADDR = 22'h004000;
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initial begin
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$dumpfile("sim/layer_sequencer.vcd");
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$dumpvars(0, tb);
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rst = 1'b1;
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run_start = 1'b0;
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run_num_layers = 8'h00;
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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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x_base = X_BASE;
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table_base = TABLE_BASE;
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buf_a_base = BUF_A_BASE;
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buf_b_base = BUF_B_BASE;
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for (i = 0; i < 4096; i = i + 1)
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ram_mem[i] = 8'h00;
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// Descriptor table: 2 layers x 6 bytes (w_base(3B), bias_addr(3B)), MSB-first.
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ram_mem[TABLE_BASE+0] = L0_W_BASE[23:16];
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ram_mem[TABLE_BASE+1] = L0_W_BASE[15:8];
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ram_mem[TABLE_BASE+2] = L0_W_BASE[7:0];
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ram_mem[TABLE_BASE+3] = L0_BIAS_ADDR[23:16];
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ram_mem[TABLE_BASE+4] = L0_BIAS_ADDR[15:8];
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ram_mem[TABLE_BASE+5] = L0_BIAS_ADDR[7:0];
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ram_mem[TABLE_BASE+6] = L1_W_BASE[23:16];
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ram_mem[TABLE_BASE+7] = L1_W_BASE[15:8];
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ram_mem[TABLE_BASE+8] = L1_W_BASE[7:0];
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ram_mem[TABLE_BASE+9] = L1_BIAS_ADDR[23:16];
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ram_mem[TABLE_BASE+10] = L1_BIAS_ADDR[15:8];
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ram_mem[TABLE_BASE+11] = L1_BIAS_ADDR[7:0];
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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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$display("LAYER_SEQUENCER TEST");
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$display("========================================");
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// --------------------------------------------------------
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// TEST A: 2-layer run, descriptor + ping-pong + copy-out
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// --------------------------------------------------------
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errors_before = errors;
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stage_layer_output({8'sd41, 8'sd31, 8'sd21, 8'sd11}); // layer 0 output (byte0=8'sd11 ... byte3=8'sd41)
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@(negedge clk);
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run_start = 1'b1;
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run_num_layers = 8'd2;
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@(negedge clk);
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run_start = 1'b0;
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// seq_busy must assert promptly.
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clk_wait(2);
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if (seq_busy !== 1'b1) begin $display(" FAIL: seq_busy not asserted after run_start"); errors = errors + 1; end
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// Wait for nm_start (layer 0) and check the descriptor was applied.
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wait (nm_start === 1'b1);
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if (nm_w_base !== L0_W_BASE) begin $display(" FAIL: layer0 nm_w_base = 0x%06x", nm_w_base); errors = errors + 1; end
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if (nm_bias_addr !== L0_BIAS_ADDR) begin $display(" FAIL: layer0 nm_bias_addr = 0x%06x", nm_bias_addr); errors = errors + 1; end
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if (nm_x_base !== X_BASE) begin $display(" FAIL: layer0 nm_x_base = 0x%06x, expected external x_base", nm_x_base); errors = errors + 1; end
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// seq_busy must NOT drop between layer 0's nm_done and layer 1 starting.
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wait (nm_done === 1'b1);
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@(posedge clk);
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if (seq_busy !== 1'b1) begin $display(" FAIL: seq_busy dropped between layers"); errors = errors + 1; end
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if (seq_done === 1'b1) begin $display(" FAIL: seq_done pulsed after layer 0 (intermediate), should only fire after the last layer"); errors = errors + 1; end
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// Wait for nm_start (layer 1) and check the descriptor + ping-pong input.
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wait (nm_start === 1'b1);
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if (nm_w_base !== L1_W_BASE) begin $display(" FAIL: layer1 nm_w_base = 0x%06x", nm_w_base); errors = errors + 1; end
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if (nm_bias_addr !== L1_BIAS_ADDR) begin $display(" FAIL: layer1 nm_bias_addr = 0x%06x", nm_bias_addr); errors = errors + 1; end
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if (nm_x_base !== BUF_A_BASE) begin $display(" FAIL: layer1 nm_x_base = 0x%06x, expected buf_a_base (layer0's output buffer)", nm_x_base); errors = errors + 1; end
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// Stage layer 1's output now that its own nm_start has fired
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// (the mock samples staged_y a few cycles later, when ITS
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// nm_delay reaches 0 -- staging any earlier would race with
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// layer 0's own sampling, since the mock has a single
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// staged_y register shared across calls).
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stage_layer_output({8'sd44, 8'sd33, 8'sd22, 8'sd11}); // layer 1 output
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// Wait for the whole run to finish.
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wait (seq_done === 1'b1);
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@(posedge clk);
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if (seq_busy !== 1'b0) begin $display(" FAIL: seq_busy still set after seq_done"); errors = errors + 1; end
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clk_wait(4);
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if (seq_done_count !== 1) begin $display(" FAIL: seq_done pulsed %0d times, expected exactly 1", seq_done_count); errors = errors + 1; end
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// Verify layer 0's output landed in buf_a_base, byte for byte.
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if (ram_mem[BUF_A_BASE+0] !== 8'sd11) begin $display(" FAIL: buf_a[0] = 0x%02x, expected 0x0b", ram_mem[BUF_A_BASE+0]); errors = errors + 1; end
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if (ram_mem[BUF_A_BASE+1] !== 8'sd21) begin $display(" FAIL: buf_a[1] = 0x%02x, expected 0x15", ram_mem[BUF_A_BASE+1]); errors = errors + 1; end
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if (ram_mem[BUF_A_BASE+2] !== 8'sd31) begin $display(" FAIL: buf_a[2] = 0x%02x, expected 0x1f", ram_mem[BUF_A_BASE+2]); errors = errors + 1; end
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if (ram_mem[BUF_A_BASE+3] !== 8'sd41) begin $display(" FAIL: buf_a[3] = 0x%02x, expected 0x29", ram_mem[BUF_A_BASE+3]); errors = errors + 1; end
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// Verify layer 1's (final) output landed in buf_b_base.
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if (ram_mem[BUF_B_BASE+0] !== 8'sd11) begin $display(" FAIL: buf_b[0] = 0x%02x, expected 0x0b", ram_mem[BUF_B_BASE+0]); errors = errors + 1; end
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if (ram_mem[BUF_B_BASE+1] !== 8'sd22) begin $display(" FAIL: buf_b[1] = 0x%02x, expected 0x16", ram_mem[BUF_B_BASE+1]); errors = errors + 1; end
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if (ram_mem[BUF_B_BASE+2] !== 8'sd33) begin $display(" FAIL: buf_b[2] = 0x%02x, expected 0x21", ram_mem[BUF_B_BASE+2]); errors = errors + 1; end
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if (ram_mem[BUF_B_BASE+3] !== 8'sd44) begin $display(" FAIL: buf_b[3] = 0x%02x, expected 0x2c", ram_mem[BUF_B_BASE+3]); errors = errors + 1; end
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report("TEST A: 2-layer run (descriptor / ping-pong / copy-out)");
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// --------------------------------------------------------
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// TEST B: run_start ignored while seq_busy
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// --------------------------------------------------------
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errors_before = errors;
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stage_layer_output({8'sd4, 8'sd3, 8'sd2, 8'sd1});
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@(negedge clk);
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run_start = 1'b1;
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run_num_layers = 8'd1;
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@(negedge clk);
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run_start = 1'b0;
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clk_wait(2);
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if (seq_busy !== 1'b1) begin $display(" FAIL: seq_busy not asserted for single-layer run"); errors = errors + 1; end
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// A second run_start while busy must be ignored by whoever
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// gates it (spi_engine, per its own test) -- here we confirm
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// the sequencer itself has no re-entrancy hazard: pulsing
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// run_start again mid-run must not corrupt layer_idx/state.
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@(negedge clk);
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run_start = 1'b1;
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run_num_layers = 8'd3;
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@(negedge clk);
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run_start = 1'b0;
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wait (seq_done === 1'b1);
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@(posedge clk);
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clk_wait(4);
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if (seq_done_count !== 2) begin $display(" FAIL: seq_done total count = %0d, expected 2 (1 from TEST A + 1 here)", seq_done_count); errors = errors + 1; end
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if (seq_busy !== 1'b0) begin $display(" FAIL: seq_busy stuck after single-layer run"); errors = errors + 1; end
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report("TEST B: run_start re-pulse mid-run does not corrupt state");
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// --------------------------------------------------------
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// SUMMARY
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// --------------------------------------------------------
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$display("");
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$display("========================================");
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if (errors == 0)
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$display("LAYER_SEQUENCER TEST PASSED");
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else
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$display("LAYER_SEQUENCER TEST FAILED: %0d errors", errors);
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$display("========================================");
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$display("");
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$finish;
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end
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// Safety timeout so a stuck FSM fails fast instead of hanging.
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initial begin
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#200000;
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$display("TIMEOUT: simulation did not finish in time");
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$finish;
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end
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endmodule
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