// ============================================================ // FPGA-Neural V3 (Artix-7 port) -- Neural Processor, DSP48-packed. // // Direct port of hardware/v2/rtl/neural_processor.v (M1), restructured // for the weight-stationary reuse pattern (layer_weight_buffer.v, // EXP-0057/0058): ONE resident weight tile is shared by TWO reuse // positions (job A, job B) processed in lockstep, each tap-lane packing // its two x*w multiplies into a single DSP48-shaped multiply instead of // two separate ones (see hardware/v3/rtl/mac2_dsp_packed.v, verified // exhaustively 16,777,216/16,777,216 bit-exact -- the packing math // here is the SAME formula, inlined per-lane rather than instantiated, // to keep this module's own pipeline depth/stage count identical to // the V2 original for a direct structural comparison). // // Pipeline stages match V2's neural_processor.v exactly, just doubled // on the accumulator side (one accumulate/bias/activation/saturation // path per job, A and B, sharing the SAME multiply/adder-tree stages // since they consume the SAME weight stream): // Stage 0 input alignment (x0_a, x0_b, w0 -- ONE shared weight) // Stage 1 P_IN packed-MAC lanes: p0[i]=x0_a[i]*w0[i], p1[i]=x0_b[i]*w0[i] // Stage 2..(1+TREE_LEVELS) TWO balanced adder trees (A and B) // Stage (2+TREE_LEVELS) TWO accumulators // Stage (3+TREE_LEVELS) bias add (shared bias/activation -- same // neuron/filter, different spatial position) // + activation, per job // Stage (4+TREE_LEVELS) INT8 saturation / output register, per job // // job_bias/job_activation are SHARED between A and B (same resident // neuron), matching this project's own weight-reuse semantics (a // neuron/filter's bias and activation type don't vary by spatial // position -- only its accumulated dot product does). node_id differs // per job (A and B are different output positions). // ============================================================ module neural_processor_packed #( parameter DATA_WIDTH = 8, parameter P_IN = 8, parameter ACC_WIDTH = 32 )( input clk, input rst, // ---- job descriptor (NP_LOAD_JOB) ---- input job_valid, output job_ready, input [15:0] job_node_id_a, input [15:0] job_node_id_b, input signed [DATA_WIDTH-1:0] job_bias, // shared (same neuron) input [1:0] job_activation, // shared (same neuron) // ---- operand stream: ONE shared weight stream, TWO activation streams ---- input operand_valid, output operand_ready, input signed [DATA_WIDTH*P_IN-1:0] input_data_a, input signed [DATA_WIDTH*P_IN-1:0] input_data_b, input signed [DATA_WIDTH*P_IN-1:0] weight_data, input tile_last, // ---- result stream: two results per job pair, same-cycle ---- output reg result_valid, input result_ready, output reg signed [DATA_WIDTH-1:0] result_data_a, output reg signed [DATA_WIDTH-1:0] result_data_b, output reg [15:0] result_node_id_a, output reg [15:0] result_node_id_b, output reg [3:0] np_state, output reg np_error ); localparam ACT_NONE = 2'd0; localparam ACT_RELU = 2'd1; localparam NP_IDLE = 4'd0; localparam NP_LOAD_JOB = 4'd1; localparam NP_WAIT_OPERANDS = 4'd2; localparam NP_FINISH = 4'd3; localparam NP_WRITE_RESULT = 4'd4; localparam NP_DONE = 4'd5; localparam NP_ERROR = 4'd6; localparam TREE_LEVELS = $clog2(P_IN); localparam PROD_WIDTH = 2 * DATA_WIDTH; reg signed [DATA_WIDTH-1:0] bias_reg; reg [1:0] activation_reg; reg [15:0] node_id_a_reg, node_id_b_reg; assign operand_ready = (np_state == NP_WAIT_OPERANDS); // ============================================================ // STAGE 0 -- input alignment // ============================================================ reg valid0, last0; reg signed [DATA_WIDTH-1:0] xa0 [0:P_IN-1]; reg signed [DATA_WIDTH-1:0] xb0 [0:P_IN-1]; reg signed [DATA_WIDTH-1:0] w0 [0:P_IN-1]; integer gi; always @(posedge clk) begin if (rst) begin valid0 <= 1'b0; last0 <= 1'b0; end else begin valid0 <= operand_valid && operand_ready; last0 <= (operand_valid && operand_ready) ? tile_last : 1'b0; if (operand_valid && operand_ready) begin for (gi = 0; gi < P_IN; gi = gi + 1) begin xa0[gi] <= input_data_a[gi*DATA_WIDTH +: DATA_WIDTH]; xb0[gi] <= input_data_b[gi*DATA_WIDTH +: DATA_WIDTH]; w0[gi] <= weight_data[gi*DATA_WIDTH +: DATA_WIDTH]; end end end end // ============================================================ // STAGE 1 -- P_IN packed-MAC lanes (mac2_dsp_packed.v's own // verified combinational formula, inlined per lane) // ============================================================ reg valid1, last1; reg signed [ACC_WIDTH-1:0] proda1 [0:P_IN-1]; reg signed [ACC_WIDTH-1:0] prodb1 [0:P_IN-1]; localparam A_WIDTH = 3*DATA_WIDTH + 1; wire signed [PROD_WIDTH-1:0] pa_comb [0:P_IN-1]; wire signed [PROD_WIDTH-1:0] pb_comb [0:P_IN-1]; genvar gm; generate for (gm = 0; gm < P_IN; gm = gm + 1) begin : GEN_MAC_PACKED wire signed [A_WIDTH-1:0] x0_sext25 = {{(A_WIDTH-DATA_WIDTH){xa0[gm][DATA_WIDTH-1]}}, xa0[gm]}; wire signed [A_WIDTH-1:0] x1_shifted = $signed(xb0[gm]) <<< (2*DATA_WIDTH); wire signed [A_WIDTH-1:0] packed_a = x1_shifted + x0_sext25; wire signed [A_WIDTH+DATA_WIDTH-1:0] product = packed_a * w0[gm]; assign pa_comb[gm] = product[PROD_WIDTH-1:0]; wire signed [A_WIDTH+DATA_WIDTH-2*DATA_WIDTH-1:0] pb_raw = $signed(product) >>> (2*DATA_WIDTH); assign pb_comb[gm] = pb_raw[PROD_WIDTH-1:0] + (pa_comb[gm][PROD_WIDTH-1] ? 1'b1 : 1'b0); end endgenerate always @(posedge clk) begin if (rst) begin valid1 <= 1'b0; last1 <= 1'b0; end else begin valid1 <= valid0; last1 <= last0; for (gi = 0; gi < P_IN; gi = gi + 1) begin proda1[gi] <= {{(ACC_WIDTH-PROD_WIDTH){pa_comb[gi][PROD_WIDTH-1]}}, pa_comb[gi]}; prodb1[gi] <= {{(ACC_WIDTH-PROD_WIDTH){pb_comb[gi][PROD_WIDTH-1]}}, pb_comb[gi]}; end end end // ============================================================ // STAGES 2..(1+TREE_LEVELS) -- TWO balanced adder trees (A, B) // ============================================================ wire signed [ACC_WIDTH-1:0] level0a [0:P_IN-1]; wire signed [ACC_WIDTH-1:0] level0b [0:P_IN-1]; genvar gz; generate for (gz = 0; gz < P_IN; gz = gz + 1) begin : GEN_TREE_L0 assign level0a[gz] = proda1[gz]; assign level0b[gz] = prodb1[gz]; end endgenerate reg [TREE_LEVELS-1:0] valid_tree; reg [TREE_LEVELS-1:0] last_tree; reg signed [ACC_WIDTH-1:0] treea [1:TREE_LEVELS][0:P_IN-1]; reg signed [ACC_WIDTH-1:0] treeb [1:TREE_LEVELS][0:P_IN-1]; genvar gl, gn; generate for (gl = 0; gl < TREE_LEVELS; gl = gl + 1) begin : GEN_TREE_LEVEL always @(posedge clk) begin if (rst) begin valid_tree[gl] <= 1'b0; last_tree[gl] <= 1'b0; end else begin valid_tree[gl] <= (gl == 0) ? valid1 : valid_tree[gl-1]; last_tree[gl] <= (gl == 0) ? last1 : last_tree[gl-1]; end end for (gn = 0; gn < (P_IN >> (gl+1)); gn = gn + 1) begin : GEN_TREE_NODE if (gl == 0) begin : GEN_FROM_LEVEL0 always @(posedge clk) begin treea[1][gn] <= level0a[2*gn] + level0a[2*gn+1]; treeb[1][gn] <= level0b[2*gn] + level0b[2*gn+1]; end end else begin : GEN_FROM_TREE always @(posedge clk) begin treea[gl+1][gn] <= treea[gl][2*gn] + treea[gl][2*gn+1]; treeb[gl+1][gn] <= treeb[gl][2*gn] + treeb[gl][2*gn+1]; end end end end endgenerate wire valid_tree_out = (TREE_LEVELS == 0) ? valid1 : valid_tree[TREE_LEVELS-1]; wire last_tree_out = (TREE_LEVELS == 0) ? last1 : last_tree[TREE_LEVELS-1]; wire signed [ACC_WIDTH-1:0] tile_sum_a = (TREE_LEVELS == 0) ? proda1[0] : treea[TREE_LEVELS][0]; wire signed [ACC_WIDTH-1:0] tile_sum_b = (TREE_LEVELS == 0) ? prodb1[0] : treeb[TREE_LEVELS][0]; // ============================================================ // STAGE (2+TREE_LEVELS) -- TWO accumulators // ============================================================ reg signed [ACC_WIDTH-1:0] acc_reg_a, acc_reg_b; reg valid5, last5; always @(posedge clk) begin if (rst) begin acc_reg_a <= {ACC_WIDTH{1'b0}}; acc_reg_b <= {ACC_WIDTH{1'b0}}; valid5 <= 1'b0; last5 <= 1'b0; end else begin valid5 <= valid_tree_out; last5 <= last_tree_out; if (np_state == NP_LOAD_JOB) begin acc_reg_a <= {ACC_WIDTH{1'b0}}; acc_reg_b <= {ACC_WIDTH{1'b0}}; end else if (valid_tree_out) begin acc_reg_a <= acc_reg_a + tile_sum_a; acc_reg_b <= acc_reg_b + tile_sum_b; end end end // ============================================================ // STAGE (3+TREE_LEVELS) -- bias add + activation (shared bias/act) // ============================================================ wire signed [ACC_WIDTH-1:0] bias_ext = {{(ACC_WIDTH-DATA_WIDTH){bias_reg[DATA_WIDTH-1]}}, bias_reg}; reg valid6, last6; reg signed [ACC_WIDTH-1:0] final_acc_a, final_acc_b; always @(posedge clk) begin if (rst) begin valid6 <= 1'b0; last6 <= 1'b0; end else begin valid6 <= valid5; last6 <= last5; final_acc_a <= acc_reg_a + bias_ext; final_acc_b <= acc_reg_b + bias_ext; end end function automatic signed [DATA_WIDTH-1:0] saturate_activate( input signed [ACC_WIDTH-1:0] final_acc, input [1:0] activation ); reg sign; reg upper_all0, upper_all1, in_range, le_zero; reg signed [DATA_WIDTH-1:0] y_none, y_relu; begin sign = final_acc[ACC_WIDTH-1]; upper_all0 = ~(|final_acc[ACC_WIDTH-1:DATA_WIDTH-1]); upper_all1 = &final_acc[ACC_WIDTH-1:DATA_WIDTH-1]; in_range = upper_all0 | upper_all1; le_zero = sign | ~(|final_acc); y_none = in_range ? final_acc[DATA_WIDTH-1:0] : (sign ? {1'b1, {(DATA_WIDTH-1){1'b0}}} : {1'b0, {(DATA_WIDTH-1){1'b1}}}); y_relu = le_zero ? {DATA_WIDTH{1'b0}} : (upper_all0 ? final_acc[DATA_WIDTH-1:0] : {1'b0, {(DATA_WIDTH-1){1'b1}}}); saturate_activate = (activation == ACT_NONE) ? y_none : y_relu; end endfunction // ============================================================ // STAGE (4+TREE_LEVELS) -- output register / saturation, per job // ============================================================ reg valid7; reg signed [DATA_WIDTH-1:0] y7_a, y7_b; always @(posedge clk) begin if (rst) begin valid7 <= 1'b0; end else begin valid7 <= last6; y7_a <= saturate_activate(final_acc_a, activation_reg); y7_b <= saturate_activate(final_acc_b, activation_reg); end end wire pipeline_busy = valid0 || valid1 || (|valid_tree) || valid5 || valid6 || valid7; assign job_ready = (np_state == NP_IDLE) && !pipeline_busy; // ============================================================ // OUTER FSM -- identical shape to V2, both result channels together // ============================================================ always @(posedge clk) begin if (rst) begin np_state <= NP_IDLE; np_error <= 1'b0; result_valid <= 1'b0; result_data_a <= {DATA_WIDTH{1'b0}}; result_data_b <= {DATA_WIDTH{1'b0}}; result_node_id_a <= 16'h0; result_node_id_b <= 16'h0; bias_reg <= {DATA_WIDTH{1'b0}}; activation_reg <= ACT_RELU; node_id_a_reg <= 16'h0; node_id_b_reg <= 16'h0; end else begin case (np_state) NP_IDLE: begin if (job_valid && job_ready) begin bias_reg <= job_bias; activation_reg <= job_activation; node_id_a_reg <= job_node_id_a; node_id_b_reg <= job_node_id_b; np_state <= NP_LOAD_JOB; end end NP_LOAD_JOB: begin np_state <= NP_WAIT_OPERANDS; end NP_WAIT_OPERANDS: begin if (operand_valid && operand_ready && tile_last) begin np_state <= NP_FINISH; end end NP_FINISH: begin if (valid7) begin result_valid <= 1'b1; result_data_a <= y7_a; result_data_b <= y7_b; result_node_id_a <= node_id_a_reg; result_node_id_b <= node_id_b_reg; np_state <= NP_WRITE_RESULT; end end NP_WRITE_RESULT: begin if (result_valid && result_ready) begin result_valid <= 1'b0; np_state <= NP_DONE; end end NP_DONE: begin np_state <= NP_IDLE; end NP_ERROR: begin end default: np_state <= NP_ERROR; endcase end end endmodule