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FPGA-Neural/hardware/v2/rtl/slot_mem_arbiter.v
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micheleandClaude Sonnet 5 e4a5540b6e perf(v2): word-level burst reads - 2.24-2.37x real wall-clock speedup (DEC-0015)
Implements optimization #1 from the final benchmark campaign's own
recommendation: exploit psram_controller.v's already-implemented
page-mode support (confirmed present by direct inspection) by
fetching multiple bytes per real backend transaction instead of one
at a time.

Root cause addressed: int8_memory_access.v (the byte-level backend
prefetch_engine.v originally sat on) already converts every 8-bit
logical request into a full 16-bit PSRAM word access internally
(mem_addr <= addr >> 1), discarding half of every word it already
paid for. prefetch_engine.v/memory_manager.v now speak
memory_interface.v's own 16-bit word protocol directly, bypassing
int8_memory_access.v entirely - which remains untouched, still frozen
V1 (§1/§34); V2 simply reuses the lower layer of the same frozen
chain instead of the byte-splitting layer on top of it, the same
"reuse what fits" precedent slot_mem_arbiter.v already set.
slot_mem_arbiter.v and neural_multiprocessor.v widened to match
(lb_n/ub_n added, master port wired directly to memory_interface.v).

Real, measured results: M4's own single-job testbench shows 49-56%
fewer cycles (166->84, 446->204, 728->322, all still bit-exact). The
full final-benchmark campaign (24/24 workload/config combinations)
re-verified bit-exact with D-Stress's real wall-clock time (cycles /
real POST-P&R Fmax) improving 2.24-2.37x across every N_SLOTS tested,
against a small real Fmax cost (unchanged at N=1, -6.2% at N=2, -1.2%
at N=4).

tb_neural_multiprocessor.v (M8) and tb_benchmark_suite.v (final
campaign) needed zero changes - both treat neural_multiprocessor.v as
a black box. Only tb_memory_manager.v (M4, rewired to skip
int8_memory_access.v) and tb_dataflow_core.v (M7, behavioral model
widened to word-level) needed updates.

The "real parallel scaling is flat beyond N_SLOTS=2" finding (DEC-0014)
still holds - this optimization made the shared PSRAM port more
efficient per transaction, not multi-ported - so N_SLOTS=2 remains
the recommended default.

Logged: simulation/synthesis/timing/benchmark/decisions (DEC-0015)/
experiments (EXP-0015)/development.log.

Co-Authored-By: Claude Sonnet 5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_013xXuuRUWZScuo1DeYJxs3v
2026-09-05 20:35:19 +02:00

185 lines
8.2 KiB
Verilog

`timescale 1ns/1ps
// ================================================================
// FPGA-Neural V2 -- Slot Memory Arbiter (M8, docs/v2-description.md §15)
//
// Generic N_PORTS-way arbiter for dataflow_core.v's per-slot Memory
// Backend Interface ports (docs/v2-description.md §15's "Memory
// Manager -> Memory Backend Interface -> PSRAM Controller" layering),
// funneling N_SLOTS independent memory_manager backend ports down to
// the ONE physical PSRAM port a real chip actually has.
//
// WORD-level (16-bit, + lb_n/ub_n) post-M10 (decisions.log DEC-0015):
// arbitrates hardware/v1/rtl/memory_interface.v's own port shape
// directly (int8_memory_access.v is no longer in this datapath -- see
// memory_manager.v/prefetch_engine.v's own headers for why).
//
// Inspired by (NOT copied from -- see hardware/v2/logs/decisions.log
// DEC-0006's own note) hardware/v1/rtl/mem_arbiter.v: same
// single-owner-until-ready-pulse discipline (a port, once granted,
// holds the shared master port until ITS OWN transaction's m_ready
// pulse, then releases -- no queuing/pipelining needed, since every
// requester already issues a clean one-cycle req pulse matching
// memory_interface's own contract). Generalized from V1's fixed
// 4 named ports (A/B/C/D) to a parametric N_PORTS array, since
// dataflow_core.v's N_SLOTS is itself a parameter.
//
// Priority: fixed, lowest port index wins on a cycle where more than
// one port requests simultaneously while the arbiter is idle -- same
// "first-found, lowest index" convention already used by
// neural_director's free-slot scan and dependency_manager's
// first-ready scan (not fairness-balanced; see decisions.log DEC-0010
// for why that is an acceptable starting point, same rationale as
// neural_director's own "first-free, not load-balanced" choice).
//
// IMPORTANT (found via real concurrent-slot simulation, see
// hardware/v2/logs/errors.log ERR-0008): each port's own s_req is a
// FIRE-AND-FORGET single-cycle pulse (prefetch_engine.v/
// memory_manager.v's own backend protocol -- M4 verified it only
// against a DIRECT 1:1 connection to the backend, which is always
// free to accept it since there is exactly one requester). A naive
// "grant only while req is live" arbiter silently DROPS a pulse that
// arrives while the shared bus is owned by another port, hanging that
// slot's prefetch/writeback forever. Every incoming s_req is therefore
// LATCHED into a per-port `pending` register (capturing wr/addr/wdata/
// lb_n/ub_n the same cycle) regardless of arbiter state -- the same
// single-entry "queue, don't drop the request" idiom already used by
// memory_manager's own pf_pending register (ERR-0006 fix #1). Grants
// are drawn from `pending`, never from a live s_req directly, which
// adds a uniform minimum 1-cycle latency to every transaction (a real,
// measured cost of sharing one PSRAM port -- see timing.log/
// benchmark.log EXP-0009) but never drops a request.
// ================================================================
module slot_mem_arbiter #(
parameter ADDR_WIDTH = 23,
parameter N_PORTS = 4
)(
input wire clk,
input wire rst,
// ---- N_PORTS requester side (one per dataflow_core slot) ----
input wire [N_PORTS-1:0] s_req,
input wire [N_PORTS-1:0] s_wr,
input wire [ADDR_WIDTH*N_PORTS-1:0] s_addr, // WORD address
input wire [16*N_PORTS-1:0] s_wdata,
input wire [N_PORTS-1:0] s_lb_n,
input wire [N_PORTS-1:0] s_ub_n,
output reg [16*N_PORTS-1:0] s_rdata,
output reg [N_PORTS-1:0] s_ready,
// ---- single shared master port (-> memory_interface.v) ----
output reg m_req,
output reg m_wr,
output reg [ADDR_WIDTH-1:0] m_addr,
output reg [15:0] m_wdata,
output reg m_lb_n,
output reg m_ub_n,
input wire [15:0] m_rdata,
input wire m_ready
);
localparam PIDXW = $clog2(N_PORTS+1);
localparam OWNER_NONE = {PIDXW{1'b0}}; // 0 = no owner; port i owned = i+1
reg [PIDXW-1:0] owner;
// Per-port pending-request latch (see file header/ERR-0008): every
// s_req pulse is captured here, regardless of arbiter state, so it
// is never silently dropped while the bus is owned by another port.
reg [N_PORTS-1:0] pending;
reg [ADDR_WIDTH*N_PORTS-1:0] pending_addr;
reg [16*N_PORTS-1:0] pending_wdata;
reg [N_PORTS-1:0] pending_wr;
reg [N_PORTS-1:0] pending_lb_n;
reg [N_PORTS-1:0] pending_ub_n;
// Fixed lowest-index-wins priority scan over PENDING requests (not
// raw s_req -- see file header).
reg [PIDXW-1:0] grant_idx;
reg any_pending;
integer ri;
always @(*) begin
grant_idx = {PIDXW{1'b0}};
any_pending = 1'b0;
for (ri = N_PORTS-1; ri >= 0; ri = ri - 1) begin
if (pending[ri]) begin
grant_idx = ri[PIDXW-1:0];
any_pending = 1'b1;
end
end
end
integer pi;
always @(posedge clk) begin
if (rst) begin
owner <= OWNER_NONE;
pending <= {N_PORTS{1'b0}};
pending_addr <= {(ADDR_WIDTH*N_PORTS){1'b0}};
pending_wdata <= {(16*N_PORTS){1'b0}};
pending_wr <= {N_PORTS{1'b0}};
pending_lb_n <= {N_PORTS{1'b1}};
pending_ub_n <= {N_PORTS{1'b1}};
m_req <= 1'b0;
m_wr <= 1'b0;
m_addr <= {ADDR_WIDTH{1'b0}};
m_wdata <= 16'h0000;
m_lb_n <= 1'b1;
m_ub_n <= 1'b1;
s_rdata <= {(16*N_PORTS){1'b0}};
s_ready <= {N_PORTS{1'b0}};
end else begin
m_req <= 1'b0;
s_ready <= {N_PORTS{1'b0}};
// Latch every incoming request pulse. Safe against a
// same-cycle collision with the grant-clear write below:
// a port only ever becomes grant_idx while its OWN pending
// bit is already 1 (latched on an earlier cycle), and its
// requester (memory_manager/prefetch_engine) never issues
// a NEW s_req for that port until THIS transaction's
// s_ready arrives -- so s_req[grant_idx] is guaranteed low
// the cycle it is granted.
for (pi = 0; pi < N_PORTS; pi = pi + 1) begin
if (s_req[pi]) begin
pending[pi] <= 1'b1;
pending_wr[pi] <= s_wr[pi];
pending_lb_n[pi] <= s_lb_n[pi];
pending_ub_n[pi] <= s_ub_n[pi];
pending_addr[pi*ADDR_WIDTH +: ADDR_WIDTH] <= s_addr[pi*ADDR_WIDTH +: ADDR_WIDTH];
pending_wdata[pi*16 +: 16] <= s_wdata[pi*16 +: 16];
end
end
if (owner == OWNER_NONE) begin
if (any_pending) begin
owner <= grant_idx + 1'b1;
m_req <= 1'b1;
m_wr <= pending_wr[grant_idx];
m_lb_n <= pending_lb_n[grant_idx];
m_ub_n <= pending_ub_n[grant_idx];
m_addr <= pending_addr[grant_idx*ADDR_WIDTH +: ADDR_WIDTH];
m_wdata <= pending_wdata[grant_idx*16 +: 16];
pending[grant_idx] <= 1'b0;
end
end else begin
if (m_ready) begin
// owner is (port_index+1); vectorized single-write
// so exactly one s_rdata/s_ready lane updates (no
// per-bit loop last-write-wins hazard -- same class
// of bug already hit/fixed at ERR-0006/M2/M6).
for (pi = 0; pi < N_PORTS; pi = pi + 1) begin
if (owner == pi[PIDXW-1:0] + 1'b1) begin
s_rdata[pi*16 +: 16] <= m_rdata;
s_ready[pi] <= 1'b1;
end
end
owner <= OWNER_NONE;
end
end
end
end
endmodule