Files
FPGA-Neural/rtl/memory_interface.v
T
micheleandClaude Sonnet 5 7e2711fa27 feat: widen ADDR_WIDTH to 23 bits for full 8MB PSRAM addressing
Bumps ADDR_WIDTH's default from 22 to 23 bits across every RTL
module (neuron_memory, layer_sequencer, spi_engine, spi_neuron_top,
mem_arbiter, int8_memory_access, memory_interface, psram_controller,
memory_model) and every testbench that mirrors it, so the system's
byte-address space reaches the full 8 MiB the recommended PSRAM part
(ISSI IS66WVE4M16EBLL-70BLI, docs/FPGA-Neural-Hardware-Design.md §3)
actually provides -- previously only 4 MiB (half the chip) was
reachable, since int8_memory_access.v's byte->word address shift
(addr >> 1) turned the old 22-bit byte address into only 21 real word
bits, one short of the chip's real 22-bit word address (A0-A21). At
23 bits, that same shift lands exactly on all 22 chip address lines,
so the whole part is usable now instead of deferred to a future
widening.

Also fixes a stray 22'd11-sized literal in layer_sequencer.v's
descriptor-table address increment (numerically already safe via
Verilog's zero-extension, but now correctly unsized so it always
matches ADDR_WIDTH instead of silently assuming 22).

Updated docs/FPGA-NeuralNetwork-Engine.md's SPI protocol address-field
note (23 bits, top 1 reserved bit instead of 2) and
docs/FPGA-Neural-Hardware-Design.md's PSRAM section (the "chip has
one spare address line" framing is gone now that all 22 are wired
and used).

Full regression (all 11 ADDR_WIDTH-touching testbenches, plus a
Yosys elaboration check of spi_neuron_top with the new default and
no override) passes clean.

Co-Authored-By: Claude Sonnet 5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01WQV3vS9TXaGDJ5cRfnfidt
2026-09-02 21:00:46 +02:00

94 lines
2.4 KiB
Verilog

module memory_interface #(
parameter ADDR_WIDTH = 23,
parameter DATA_WIDTH = 16
)(
input wire clk,
input wire rst,
input wire req,
input wire wr,
input wire [ADDR_WIDTH-1:0] addr,
input wire [DATA_WIDTH-1:0] wdata,
input wire lb_n,
input wire ub_n,
output reg [DATA_WIDTH-1:0] rdata,
output reg ready,
output reg mem_req,
output reg mem_wr,
output reg [ADDR_WIDTH-1:0] mem_addr,
output reg [DATA_WIDTH-1:0] mem_wdata,
output reg mem_lb_n,
output reg mem_ub_n,
input wire [DATA_WIDTH-1:0] mem_rdata,
input wire mem_ready
);
localparam STATE_IDLE = 2'd0;
localparam STATE_WAIT = 2'd1;
reg [1:0] state;
always @(posedge clk) begin
if (rst) begin
state <= STATE_IDLE;
rdata <= {DATA_WIDTH{1'b0}};
ready <= 1'b0;
mem_lb_n <= 1'b1;
mem_ub_n <= 1'b1;
mem_req <= 1'b0;
mem_wr <= 1'b0;
mem_addr <= {ADDR_WIDTH{1'b0}};
mem_wdata <= {DATA_WIDTH{1'b0}};
end else begin
// Default: pulses
ready <= 1'b0;
mem_req <= 1'b0;
case (state)
STATE_IDLE: begin
if (req) begin
// Latch transaction
mem_wr <= wr;
mem_addr <= addr;
mem_wdata <= wdata;
mem_lb_n <= lb_n;
mem_ub_n <= ub_n;
// Issue exactly one-cycle request
mem_req <= 1'b1;
state <= STATE_WAIT;
end
end
STATE_WAIT: begin
// Wait for memory completion
if (mem_ready) begin
if (!mem_wr)
rdata <= mem_rdata;
ready <= 1'b1;
state <= STATE_IDLE;
end
end
default: begin
state <= STATE_IDLE;
end
endcase
end
end
endmodule