85feba4087
Fourth daedalus-fourier kernel — VP9 8-tap inner loop filter wd=8 h_8_8 variant. Width extension of cycle 2's wd=4; completes VP9 inner-edge LPF coverage. Full cycle Phase 1-7 + M4'''' in one combined go (cycle compressed since incremental from cycle 2). Phase 5 review explicitly skipped (incremental ~30-line shader delta from cycle 2 + same geometry + cycle-2 RED-pattern checks still apply). Flagged in docs/k4_lpf8_phase4_7.md per dev_process.md "Skipping phases is a deliberate choice that should be flagged." Phase 6 v1 first-light: M1'''' 100.0000% bit-exact (65536/65536) first try. Shaderdb shows 231 inst, 4 hardware threads, 0 spills, 27 max-temps, 48 uniforms — compiler at the latency-hiding ceiling. Performance: M3'''' NEON (single-core) 52.382 Medge/s M2'''' QPU isolation 17.847 Medge/s R'''' 0.341 → ORANGE band 30fps floor margin 9.2x (isolation), 20.3x (mixed) M4'''' concurrent matrix: NEON 4-core 37.823 Medge/s <- baseline QPU only 14.867 Medge/s MIXED NEON-3 + QPU 39.389 Medge/s <- +4.1% PASS Verdict: YELLOW-via-M4'''' PASS. Deploy wd=8 LPF on QPU alongside cycle 2 wd=4. Combined VP9 inner-edge LPF coverage now complete. Cross-cycle LPF comparison: | | wd=4 (k2) | wd=8 (k4) | | M3 NEON | 48.3 | 52.4 | | M2 QPU iso | 19.6 | 17.8 | | R iso | 0.41 | 0.34 | | M4 delta | +6.9% | +4.1% | | 30fps mixed | 7.2x | 20.3x | | Verdict | GO QPU | GO QPU | NEW finding (Phase 9 lesson): NEON gets faster per edge as filter width grows (20.7 → 19.1 ns wd=4 → wd=8). The relative QPU loss grows with width. wd=16 would probably flip negative based on the trend line. Deployment recipe with cycle 4: IDCT 8x8 (k1) -> QPU (R=0.92, +7% mixed) LPF wd=4 (k2) -> QPU (R=0.41, +7% mixed) LPF wd=8 (k4) -> QPU (R=0.34, +4% mixed) MC 8h (k3) -> CPU (R=0.067, -19% mixed) Entropy -> CPU (structural) VP9 inner-edge LPF coverage complete. Project continues to higgs deployment plumbing or further kernels per user direction. New artifacts: - src/v3d_lpf_h_8_8.comp — GLSL shader - tests/vp9_lpf8_ref.c — standalone C ref - tests/bench_neon_lpf8.c — M1+M3 bench - tests/bench_v3d_lpf8.c — M1+M2 bench - tests/bench_concurrent_lpf8.c — M4 pthread bench - docs/k4_lpf8_phase1_3.md + phase4_7.md — combined cycle docs Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>
313 lines
11 KiB
C
313 lines
11 KiB
C
/*
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* Cycle 2 M4'''' — concurrent CPU(NEON LPF) + QPU(V3D LPF) throughput.
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*
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* Same pthread/barrier/timer pattern as bench_concurrent.c, but the
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* NEON worker calls ff_vp9_loop_filter_h_8_8_neon (per edge) and the
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* QPU worker dispatches v3d_lpf_h_8_8.spv.
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*
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* License: BSD-2-Clause; links FFmpeg NEON snapshot (LGPL-2.1+).
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*/
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#define _GNU_SOURCE
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#include <stdio.h>
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#include <stdlib.h>
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#include <stdint.h>
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#include <string.h>
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#include <stddef.h>
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#include <time.h>
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#include <getopt.h>
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#include <pthread.h>
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#include <sched.h>
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#include <assert.h>
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#include <vulkan/vulkan.h>
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#include "v3d_runner.h"
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extern void ff_vp9_loop_filter_h_8_8_neon(
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uint8_t *dst, ptrdiff_t stride, int E, int I, int H);
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/* --- RNG / edge gen (mirrors bench_neon_lpf.c) ------------------- */
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#define EDGE_STRIDE 8
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#define EDGE_BYTES 64
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static inline uint64_t xs_step(uint64_t *s) {
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uint64_t x = *s; x ^= x << 13; x ^= x >> 7; x ^= x << 17; return *s = x;
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}
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static uint64_t xs_init(uint64_t s) { return s ? s : 0xa57edbeef5717ULL; }
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static void gen_edge_pixels(uint8_t *buf, uint64_t *s) {
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int a = (int)(xs_step(s) % 200) + 20;
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int b = (int)(xs_step(s) % 200) + 20;
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int n = (int)(xs_step(s) % 30);
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for (int r = 0; r < 8; r++)
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for (int c = 0; c < 8; c++) {
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int base = (c < 4) ? a : b;
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int noise = ((int)(xs_step(s) % (2*n + 1))) - n;
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int v = base + noise;
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buf[r*EDGE_STRIDE + c] = (uint8_t)(v < 0 ? 0 : v > 255 ? 255 : v);
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}
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}
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static void gen_thresholds(int *E, int *I, int *H, uint64_t *s) {
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*E = (int)(xs_step(s) % 81);
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*I = (int)(xs_step(s) % 41);
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*H = (int)(xs_step(s) % 11);
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}
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static double now_s(void) {
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struct timespec t; clock_gettime(CLOCK_MONOTONIC_RAW, &t);
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return t.tv_sec + t.tv_nsec * 1e-9;
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}
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static volatile int g_stop = 0;
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static pthread_barrier_t g_start;
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/* --- NEON worker ------------------------------------------------- */
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#define NEON_BATCH 8192 /* edges held in memory per worker */
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typedef struct {
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int worker_id, affinity_core;
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uint64_t edges_done;
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double elapsed_s;
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} neon_args;
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static void *neon_worker(void *p)
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{
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neon_args *a = p;
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cpu_set_t cs; CPU_ZERO(&cs); CPU_SET(a->affinity_core, &cs);
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pthread_setaffinity_np(pthread_self(), sizeof(cs), &cs);
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uint64_t s = xs_init((uint64_t) a->worker_id * 0xc01dbeefULL);
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uint8_t *master = malloc((size_t) NEON_BATCH * EDGE_BYTES);
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uint8_t *work = malloc((size_t) NEON_BATCH * EDGE_BYTES);
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int *Es = malloc(NEON_BATCH * sizeof(int));
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int *Is = malloc(NEON_BATCH * sizeof(int));
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int *Hs = malloc(NEON_BATCH * sizeof(int));
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for (int i = 0; i < NEON_BATCH; i++) {
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gen_edge_pixels(master + (size_t)i * EDGE_BYTES, &s);
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gen_thresholds(&Es[i], &Is[i], &Hs[i], &s);
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}
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pthread_barrier_wait(&g_start);
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double t0 = now_s();
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uint64_t done = 0;
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while (!g_stop) {
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memcpy(work, master, (size_t) NEON_BATCH * EDGE_BYTES);
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for (int i = 0; i < NEON_BATCH; i++)
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ff_vp9_loop_filter_h_8_8_neon(work + (size_t)i * EDGE_BYTES + 4,
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EDGE_STRIDE, Es[i], Is[i], Hs[i]);
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done += NEON_BATCH;
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}
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a->elapsed_s = now_s() - t0;
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a->edges_done = done;
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free(master); free(work); free(Es); free(Is); free(Hs);
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return NULL;
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}
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/* --- QPU worker ------------------------------------------------- */
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typedef struct {
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int affinity_core;
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int n_edges;
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uint64_t edges_done;
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double elapsed_s;
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} qpu_args;
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typedef struct {
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uint32_t n_edges, dst_stride_u8, _pad0, _pad1;
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} push_consts;
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static void *qpu_worker(void *p)
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{
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qpu_args *a = p;
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cpu_set_t cs; CPU_ZERO(&cs); CPU_SET(a->affinity_core, &cs);
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pthread_setaffinity_np(pthread_self(), sizeof(cs), &cs);
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v3d_runner *r = v3d_runner_create();
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if (!r) return NULL;
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int n_edges = a->n_edges;
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size_t dst_bytes = (size_t) n_edges * EDGE_BYTES;
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size_t meta_bytes = (size_t) n_edges * 4 * sizeof(uint32_t);
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v3d_buffer buf_meta = {0}, buf_dst = {0};
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v3d_runner_create_buffer(r, meta_bytes, &buf_meta);
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v3d_runner_create_buffer(r, dst_bytes, &buf_dst);
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uint64_t s = 0xfeedfacecafebabeULL;
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uint8_t *master = malloc(dst_bytes);
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for (int i = 0; i < n_edges; i++) gen_edge_pixels(master + (size_t)i * EDGE_BYTES, &s);
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uint32_t *meta = buf_meta.mapped;
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assert(EDGE_STRIDE >= 4);
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for (int i = 0; i < n_edges; i++) {
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uint32_t mx = (uint32_t)((size_t)i * EDGE_BYTES + 4);
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assert(mx >= 4);
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int E, I, H; gen_thresholds(&E, &I, &H, &s);
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meta[4*i + 0] = mx;
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meta[4*i + 1] = (uint32_t) E;
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meta[4*i + 2] = (uint32_t) I;
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meta[4*i + 3] = (uint32_t) H;
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}
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memcpy(buf_dst.mapped, master, dst_bytes);
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v3d_pipeline pipe = {0};
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v3d_runner_create_pipeline(r, "v3d_lpf_h_8_8.spv", 2, sizeof(push_consts), &pipe);
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v3d_buffer bufs[2] = { buf_meta, buf_dst };
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v3d_runner_bind_buffers(r, &pipe, bufs, 2);
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const uint32_t edges_per_wg = 32;
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uint32_t gc = (uint32_t)((n_edges + edges_per_wg - 1) / edges_per_wg);
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push_consts pc = { .n_edges = (uint32_t) n_edges,
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.dst_stride_u8 = EDGE_STRIDE };
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VkCommandBuffer cb = v3d_runner_alloc_cmdbuf(r);
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VkCommandBufferBeginInfo cbbi = { .sType = VK_STRUCTURE_TYPE_COMMAND_BUFFER_BEGIN_INFO };
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vkBeginCommandBuffer(cb, &cbbi);
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vkCmdBindPipeline(cb, VK_PIPELINE_BIND_POINT_COMPUTE, pipe.pipeline);
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vkCmdBindDescriptorSets(cb, VK_PIPELINE_BIND_POINT_COMPUTE,
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pipe.layout, 0, 1, &pipe.desc_set, 0, NULL);
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vkCmdPushConstants(cb, pipe.layout, VK_SHADER_STAGE_COMPUTE_BIT,
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0, sizeof(pc), &pc);
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vkCmdDispatch(cb, gc, 1, 1);
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vkEndCommandBuffer(cb);
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for (int i = 0; i < 5; i++) v3d_runner_submit_wait(r, cb); /* warm */
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pthread_barrier_wait(&g_start);
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double t0 = now_s();
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uint64_t done = 0;
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while (!g_stop) {
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memcpy(buf_dst.mapped, master, dst_bytes);
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v3d_runner_submit_wait(r, cb);
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done += n_edges;
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}
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a->elapsed_s = now_s() - t0;
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a->edges_done = done;
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free(master);
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v3d_runner_destroy_pipeline(r, &pipe);
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v3d_runner_destroy_buffer(r, &buf_dst);
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v3d_runner_destroy_buffer(r, &buf_meta);
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v3d_runner_destroy(r);
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return NULL;
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}
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/* --- Timer ------------------------------------------------------ */
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typedef struct { double duration_s; } timer_args;
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static void *timer_thread(void *p) {
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timer_args *a = p;
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pthread_barrier_wait(&g_start);
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double end = now_s() + a->duration_s;
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while (now_s() < end) {
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struct timespec ts = {0, 1000000}; nanosleep(&ts, NULL);
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}
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g_stop = 1;
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return NULL;
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}
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/* --- Main ------------------------------------------------------- */
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enum mode { MODE_NEON, MODE_QPU, MODE_MIXED };
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int main(int argc, char **argv)
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{
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enum mode mode = MODE_NEON;
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int n_neon = 4;
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int qpu_core = 3;
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int qpu_n_edges = 65536;
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double duration = 8.0;
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static struct option opts[] = {
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{"mode", required_argument, 0, 'm'},
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{"neon-threads", required_argument, 0, 'n'},
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{"qpu-core", required_argument, 0, 'c'},
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{"qpu-edges", required_argument, 0, 'e'},
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{"duration", required_argument, 0, 'd'},
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{0,0,0,0}
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};
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for (int c; (c = getopt_long(argc, argv, "m:n:c:e:d:", opts, 0)) != -1;) {
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switch (c) {
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case 'm':
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if (!strcmp(optarg, "neon-only")) mode = MODE_NEON;
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else if (!strcmp(optarg, "qpu-only")) mode = MODE_QPU;
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else if (!strcmp(optarg, "mixed")) mode = MODE_MIXED;
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else { fprintf(stderr, "bad mode\n"); return 2; }
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break;
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case 'n': n_neon = atoi(optarg); break;
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case 'c': qpu_core = atoi(optarg); break;
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case 'e': qpu_n_edges = atoi(optarg); break;
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case 'd': duration = atof(optarg); break;
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default: return 2;
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}
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}
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int has_qpu = (mode == MODE_QPU || mode == MODE_MIXED);
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int has_neon = (mode == MODE_NEON || mode == MODE_MIXED);
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int n_workers = (has_neon ? n_neon : 0) + (has_qpu ? 1 : 0);
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int barrier_count = n_workers + 1 /* timer */ + 1 /* main */;
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printf("=== M4'''' concurrent LPF wd=8 bench ===\n");
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printf(" mode: %s\n", mode == MODE_NEON ? "neon-only" : mode == MODE_QPU ? "qpu-only" : "mixed");
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printf(" neon threads: %d (cores 0..%d)\n", has_neon ? n_neon : 0, has_neon ? n_neon - 1 : -1);
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printf(" qpu host: core %d, %d edges/dispatch\n",
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has_qpu ? qpu_core : -1, has_qpu ? qpu_n_edges : 0);
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printf(" duration: %.1f s\n\n", duration);
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pthread_barrier_init(&g_start, NULL, barrier_count);
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pthread_t timer_tid; timer_args ta = { .duration_s = duration };
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pthread_create(&timer_tid, NULL, timer_thread, &ta);
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pthread_t neon_tids[16] = {0};
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neon_args n_args[16] = {0};
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if (has_neon) {
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for (int i = 0; i < n_neon; i++) {
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n_args[i] = (neon_args){ .worker_id = i, .affinity_core = i };
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pthread_create(&neon_tids[i], NULL, neon_worker, &n_args[i]);
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}
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}
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pthread_t qpu_tid = 0;
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qpu_args q_args = {0};
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if (has_qpu) {
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q_args = (qpu_args){ .affinity_core = qpu_core, .n_edges = qpu_n_edges };
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pthread_create(&qpu_tid, NULL, qpu_worker, &q_args);
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}
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pthread_barrier_wait(&g_start);
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pthread_join(timer_tid, NULL);
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if (has_neon) for (int i = 0; i < n_neon; i++) pthread_join(neon_tids[i], NULL);
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if (has_qpu) pthread_join(qpu_tid, NULL);
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uint64_t total_edges = 0; double max_elapsed = 0;
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if (has_neon) {
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printf("NEON per-thread:\n");
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for (int i = 0; i < n_neon; i++) {
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double mes = n_args[i].edges_done / n_args[i].elapsed_s / 1e6;
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printf(" core %d: %.3f Medge/s (%llu edges / %.3f s)\n",
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n_args[i].affinity_core, mes,
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(unsigned long long) n_args[i].edges_done, n_args[i].elapsed_s);
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total_edges += n_args[i].edges_done;
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if (n_args[i].elapsed_s > max_elapsed) max_elapsed = n_args[i].elapsed_s;
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}
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}
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if (has_qpu) {
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double mes = q_args.edges_done / q_args.elapsed_s / 1e6;
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printf("QPU (host core %d): %.3f Medge/s (%llu edges / %.3f s)\n",
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q_args.affinity_core, mes,
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(unsigned long long) q_args.edges_done, q_args.elapsed_s);
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total_edges += q_args.edges_done;
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if (q_args.elapsed_s > max_elapsed) max_elapsed = q_args.elapsed_s;
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}
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double total_mes = total_edges / max_elapsed / 1e6;
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printf("\n=== AGGREGATE ===\n");
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printf(" total edges : %llu\n", (unsigned long long) total_edges);
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printf(" wall-clock : %.3f s\n", max_elapsed);
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printf(" Medge/s : %.3f\n", total_mes);
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pthread_barrier_destroy(&g_start);
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return 0;
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}
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