Files
FPGA-Neural/rtl/mem_arbiter.v
T
micheleandClaude Sonnet 5 97a21be240 feat: flash boot/persistence subsystem (SPI master, copy engine, CRC32 slot catalog)
Adds FPGA-exclusive access to the onboard W25Q128JV SPI NOR flash for
weights/bias/network persistence, layered as spi_flash_master (raw SPI,
USRMCLK-driven) -> flash_copy_engine (flash<->PSRAM streaming, erase-
before-write, Page Program loop) -> flash_slot_manager (16-slot catalog
with CRC32), exposed via 8 new SPI opcodes (0x40-0x47). Fixes two
pre-existing bugs found during bring-up: a psram_controller.v request
lost during power-up, and a one-cycle-pulse race in the PSRAM arbiter
request handshake. Full simulation + real Yosys/nextpnr-ecp5 synthesis
verification (0 errors, Fmax 66.68MHz) in WORKLOG.md and
docs/FPGA-Neural-Flash-Subsystem-Verification.md.

Also updates docs/pinout to reflect the 56-signal real .lpf (3 new
flash pins) and documents the WRITE_RAM/READ_RAM host backpressure
risk found while testing this subsystem.

Co-Authored-By: Claude Sonnet 5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_013xXuuRUWZScuo1DeYJxs3v
2026-09-04 08:37:19 +02:00

239 lines
7.6 KiB
Verilog

`timescale 1ns/1ps
// ================================================================
// MEM_ARBITER
//
// Arbitrates a single shared byte-level memory master port (feeding
// a shared int8_memory_access -> memory_interface -> psram_controller
// chain) between three byte-level requesters:
//
// Port A: spi_engine.v (WRITE_RAM / READ_RAM opcodes)
// Port B: neuron_memory.v (its own X/W/bias reads during a run)
// Port C: layer_sequencer.v (Phase 5: descriptor reads + output
// buffer writes between layers)
// Port D: flash_copy_engine.v (flash-subsystem F2: flash<->PSRAM
// block DMA, LOWEST priority -- see
// below)
//
// Fixed priority B > C > A > D when more than one requests on the
// same idle cycle (an in-progress inference is treated as more
// time-critical than the sequencer's own bookkeeping, which in turn
// is treated as more time-critical than a newly-arriving manual SPI
// RAM access, which in turn is treated as more time-critical than
// the flash copy engine -- flash operations are ms-scale and never
// meant to compete with inference for memory bandwidth, per the
// flash-subsystem phase-plan's explicit "priorita bassa" requirement:
// a flash load/save simply waits its turn, one byte-transaction at a
// time, behind anything else that wants the shared PSRAM port).
// In normal operation B and C are temporally disjoint anyway --
// neuron_memory only requests while running, and layer_sequencer
// only requests in the gaps between layers -- so priority among
// A/B/C mostly matters for the edge case of a manual
// WRITE_RAM/READ_RAM arriving while a Phase 5 run is in progress.
// Port D is expected to be active only during flash load/save,
// which this design assumes does not overlap real-time inference
// (the same "not the hot path" assumption the flash phase-plan
// states explicitly) -- if it ever did overlap, its lowest-priority
// placement here means it simply gets stretched out, never starves
// or corrupts A/B/C.
// Once a port is granted, the arbiter holds ownership until that
// single transaction's m_ready pulse, then releases -- all four
// masters already issue `req` as a clean one-cycle pulse (matching
// int8_memory_access's own contract), so a simple grant-and-forward
// design is sufficient; no request queuing/pipelining is needed.
// ================================================================
module mem_arbiter #(
parameter ADDR_WIDTH = 23
)(
input wire clk,
input wire rst,
// ------------------------------------------------------------
// Port A - spi_engine
// ------------------------------------------------------------
input wire a_req,
input wire a_wr,
input wire [ADDR_WIDTH-1:0] a_addr,
input wire signed [7:0] a_wdata,
output reg signed [7:0] a_rdata,
output reg a_ready,
// ------------------------------------------------------------
// Port B - neuron_memory
// ------------------------------------------------------------
input wire b_req,
input wire b_wr,
input wire [ADDR_WIDTH-1:0] b_addr,
input wire signed [7:0] b_wdata,
output reg signed [7:0] b_rdata,
output reg b_ready,
// ------------------------------------------------------------
// Port C - layer_sequencer
// ------------------------------------------------------------
input wire c_req,
input wire c_wr,
input wire [ADDR_WIDTH-1:0] c_addr,
input wire signed [7:0] c_wdata,
output reg signed [7:0] c_rdata,
output reg c_ready,
// ------------------------------------------------------------
// Port D - flash_copy_engine (F2, lowest priority)
// ------------------------------------------------------------
input wire d_req,
input wire d_wr,
input wire [ADDR_WIDTH-1:0] d_addr,
input wire signed [7:0] d_wdata,
output reg signed [7:0] d_rdata,
output reg d_ready,
// ------------------------------------------------------------
// Shared master port
// ------------------------------------------------------------
output reg m_req,
output reg m_wr,
output reg [ADDR_WIDTH-1:0] m_addr,
output reg signed [7:0] m_wdata,
input wire signed [7:0] m_rdata,
input wire m_ready
);
localparam SEL_NONE = 3'd0;
localparam SEL_A = 3'd1;
localparam SEL_B = 3'd2;
localparam SEL_C = 3'd3;
localparam SEL_D = 3'd4;
reg [2:0] owner;
always @(posedge clk) begin
if (rst) begin
owner <= SEL_NONE;
m_req <= 1'b0;
m_wr <= 1'b0;
m_addr <= {ADDR_WIDTH{1'b0}};
m_wdata <= 8'sd0;
a_rdata <= 8'sd0;
a_ready <= 1'b0;
b_rdata <= 8'sd0;
b_ready <= 1'b0;
c_rdata <= 8'sd0;
c_ready <= 1'b0;
d_rdata <= 8'sd0;
d_ready <= 1'b0;
end else begin
m_req <= 1'b0;
a_ready <= 1'b0;
b_ready <= 1'b0;
c_ready <= 1'b0;
d_ready <= 1'b0;
case (owner)
SEL_NONE: begin
if (b_req) begin
owner <= SEL_B;
m_req <= 1'b1;
m_wr <= b_wr;
m_addr <= b_addr;
m_wdata <= b_wdata;
end else if (c_req) begin
owner <= SEL_C;
m_req <= 1'b1;
m_wr <= c_wr;
m_addr <= c_addr;
m_wdata <= c_wdata;
end else if (a_req) begin
owner <= SEL_A;
m_req <= 1'b1;
m_wr <= a_wr;
m_addr <= a_addr;
m_wdata <= a_wdata;
end else if (d_req) begin
owner <= SEL_D;
m_req <= 1'b1;
m_wr <= d_wr;
m_addr <= d_addr;
m_wdata <= d_wdata;
end
end
SEL_A: begin
if (m_ready) begin
a_rdata <= m_rdata;
a_ready <= 1'b1;
owner <= SEL_NONE;
end
end
SEL_B: begin
if (m_ready) begin
b_rdata <= m_rdata;
b_ready <= 1'b1;
owner <= SEL_NONE;
end
end
SEL_C: begin
if (m_ready) begin
c_rdata <= m_rdata;
c_ready <= 1'b1;
owner <= SEL_NONE;
end
end
SEL_D: begin
if (m_ready) begin
d_rdata <= m_rdata;
d_ready <= 1'b1;
owner <= SEL_NONE;
end
end
default: begin
owner <= SEL_NONE;
end
endcase
end
end
endmodule