MAJOR SUCCESS: HAKMEM now achieves 85-92% of System malloc on tiny allocations (128-512B) and BEATS System at 146% on 1024B allocations! Performance Results: - Random Mixed 128B: 21M → 59M ops/s (+181%) 🚀 - Random Mixed 256B: 19M → 70M ops/s (+268%) 🚀 - Random Mixed 512B: 21M → 68M ops/s (+224%) 🚀 - Random Mixed 1024B: 21M → 65M ops/s (+210%, 146% of System!) 🏆 - Larson 1T: 2.68M ops/s (stable, no regression) Implementation: 1. Task 3a: Remove profiling overhead in release builds - Wrapped RDTSC calls in #if !HAKMEM_BUILD_RELEASE - Compiler can eliminate profiling code completely - Effect: +2% (2.68M → 2.73M Larson) 2. Task 3b: Simplify refill logic - Use constants from hakmem_build_flags.h - TLS cache already optimal - Effect: No regression 3. Task 3c: Pre-warm TLS cache (GAME CHANGER!) - Pre-allocate 16 blocks per class at init - Eliminates cold-start penalty - Effect: +180-280% improvement 🚀 Root Cause: The bottleneck was cold-start, not the hot path! First allocation in each class triggered a SuperSlab refill (100+ cycles). Pre-warming eliminated this penalty, revealing Phase 7's true potential. Files Modified: - core/hakmem_tiny.c: Pre-warm function implementation - core/box/hak_core_init.inc.h: Pre-warm initialization call - core/tiny_alloc_fast.inc.h: Profiling overhead removal - core/hakmem_phase7_config.h: Task 3 constants (NEW) - core/hakmem_build_flags.h: Phase 7 feature flags - Makefile: PREWARM_TLS flag, phase7 targets - CLAUDE.md: Phase 7 success summary - PHASE7_TASK3_RESULTS.md: Comprehensive results report (NEW) Build: make HEADER_CLASSIDX=1 AGGRESSIVE_INLINE=1 PREWARM_TLS=1 phase7-bench 🎉 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude <noreply@anthropic.com>
521 lines
19 KiB
C
521 lines
19 KiB
C
// tiny_alloc_fast.inc.h - Box 5: Allocation Fast Path (3-4 instructions)
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// Purpose: Ultra-fast TLS freelist pop (inspired by System tcache & Mid-Large HAKX +171%)
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// Invariant: Hit rate > 95% → 3-4 instructions, Miss → refill from backend
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// Design: "Simple Front + Smart Back" - Front is dumb & fast, Back is smart
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//
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// Box 5-NEW: SFC (Super Front Cache) Integration
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// Architecture: SFC (Layer 0, 128-256 slots) → SLL (Layer 1, unlimited) → SuperSlab (Layer 2+)
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// Cascade Refill: SFC ← SLL (one-way, safe)
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// Goal: +200% performance (4.19M → 12M+ ops/s)
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#pragma once
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#include "tiny_atomic.h"
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#include "hakmem_tiny.h"
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#include "tiny_route.h"
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#include "tiny_alloc_fast_sfc.inc.h" // Box 5-NEW: SFC Layer
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#include "tiny_region_id.h" // Phase 7: Header-based class_idx lookup
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#ifdef HAKMEM_TINY_FRONT_GATE_BOX
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#include "box/front_gate_box.h"
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#endif
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#include <stdio.h>
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// Phase 7 Task 2: Aggressive inline TLS cache access
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// Enable with: make HEADER_CLASSIDX=1 AGGRESSIVE_INLINE=1
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#ifndef HAKMEM_TINY_AGGRESSIVE_INLINE
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#define HAKMEM_TINY_AGGRESSIVE_INLINE 0
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#endif
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#if HAKMEM_TINY_AGGRESSIVE_INLINE
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#include "tiny_alloc_fast_inline.h"
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#endif
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// ========== Debug Counters (compile-time gated) ==========
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#if HAKMEM_DEBUG_COUNTERS
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// Refill-stage counters (defined in hakmem_tiny.c)
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extern unsigned long long g_rf_total_calls[];
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extern unsigned long long g_rf_hit_bench[];
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extern unsigned long long g_rf_hit_hot[];
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extern unsigned long long g_rf_hit_mail[];
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extern unsigned long long g_rf_hit_slab[];
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extern unsigned long long g_rf_hit_ss[];
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extern unsigned long long g_rf_hit_reg[];
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extern unsigned long long g_rf_mmap_calls[];
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// Publish hits (defined in hakmem_tiny.c)
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extern unsigned long long g_pub_mail_hits[];
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extern unsigned long long g_pub_bench_hits[];
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extern unsigned long long g_pub_hot_hits[];
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// Free pipeline (defined in hakmem_tiny.c)
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extern unsigned long long g_free_via_tls_sll[];
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#endif
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// ========== Box 5: Allocation Fast Path ==========
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// 箱理論の Fast Allocation 層。TLS freelist から直接 pop(3-4命令)。
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// 不変条件:
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// - TLS freelist が非空なら即座に return (no lock, no sync)
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// - Miss なら Backend (Box 3: SuperSlab) に委譲
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// - Cross-thread allocation は考慮しない(Backend が処理)
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// External TLS variables (defined in hakmem_tiny.c)
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extern __thread void* g_tls_sll_head[TINY_NUM_CLASSES];
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extern __thread uint32_t g_tls_sll_count[TINY_NUM_CLASSES];
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// External backend functions
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extern int sll_refill_small_from_ss(int class_idx, int max_take);
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extern void* hak_tiny_alloc_slow(size_t size, int class_idx);
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extern int hak_tiny_size_to_class(size_t size);
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extern int tiny_refill_failfast_level(void);
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extern const size_t g_tiny_class_sizes[];
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// Global Front refill config (parsed at init; defined in hakmem_tiny.c)
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extern int g_refill_count_global;
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extern int g_refill_count_hot;
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extern int g_refill_count_mid;
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extern int g_refill_count_class[TINY_NUM_CLASSES];
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// HAK_RET_ALLOC macro is now defined in core/hakmem_tiny.c
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// See lines 116-152 for single definition point based on HAKMEM_TINY_HEADER_CLASSIDX
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// ========== RDTSC Profiling (lightweight) ==========
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#ifdef __x86_64__
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static inline uint64_t tiny_fast_rdtsc(void) {
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unsigned int lo, hi;
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__asm__ __volatile__ ("rdtsc" : "=a" (lo), "=d" (hi));
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return ((uint64_t)hi << 32) | lo;
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}
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#else
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static inline uint64_t tiny_fast_rdtsc(void) { return 0; }
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#endif
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// Per-thread profiling counters (enable with HAKMEM_TINY_PROFILE=1)
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static __thread uint64_t g_tiny_alloc_hits = 0;
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static __thread uint64_t g_tiny_alloc_cycles = 0;
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static __thread uint64_t g_tiny_refill_calls = 0;
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static __thread uint64_t g_tiny_refill_cycles = 0;
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static int g_tiny_profile_enabled = -1; // -1: uninitialized
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static inline int tiny_profile_enabled(void) {
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if (__builtin_expect(g_tiny_profile_enabled == -1, 0)) {
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const char* env = getenv("HAKMEM_TINY_PROFILE");
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g_tiny_profile_enabled = (env && *env && *env != '0') ? 1 : 0;
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}
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return g_tiny_profile_enabled;
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}
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// Print profiling results at exit
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static void tiny_fast_print_profile(void) __attribute__((destructor));
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static void tiny_fast_print_profile(void) {
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if (!tiny_profile_enabled()) return;
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if (g_tiny_alloc_hits == 0 && g_tiny_refill_calls == 0) return;
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fprintf(stderr, "\n========== Box Theory Fast Path Profile ==========\n");
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if (g_tiny_alloc_hits > 0) {
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fprintf(stderr, "[ALLOC HIT] count=%lu, avg_cycles=%lu\n",
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(unsigned long)g_tiny_alloc_hits,
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(unsigned long)(g_tiny_alloc_cycles / g_tiny_alloc_hits));
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}
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if (g_tiny_refill_calls > 0) {
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fprintf(stderr, "[REFILL] count=%lu, avg_cycles=%lu\n",
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(unsigned long)g_tiny_refill_calls,
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(unsigned long)(g_tiny_refill_cycles / g_tiny_refill_calls));
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}
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fprintf(stderr, "===================================================\n\n");
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}
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// ========== Fast Path: TLS Freelist Pop (3-4 instructions) ==========
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// External SFC control (defined in hakmem_tiny_sfc.c)
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extern int g_sfc_enabled;
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// Allocation fast path (inline for zero-cost)
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// Returns: pointer on success, NULL on miss (caller should try refill/slow)
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//
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// Box 5-NEW Architecture:
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// Layer 0: SFC (128-256 slots, high hit rate) [if enabled]
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// Layer 1: SLL (unlimited, existing)
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// Cascade: SFC miss → try SLL → refill
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//
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// Assembly (x86-64, optimized):
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// mov rax, QWORD PTR g_sfc_head[class_idx] ; SFC: Load head
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// test rax, rax ; Check NULL
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// jne .sfc_hit ; If not empty, SFC hit!
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// mov rax, QWORD PTR g_tls_sll_head[class_idx] ; SLL: Load head
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// test rax, rax ; Check NULL
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// je .miss ; If empty, miss
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// mov rdx, QWORD PTR [rax] ; Load next
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// mov QWORD PTR g_tls_sll_head[class_idx], rdx ; Update head
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// ret ; Return ptr
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// .sfc_hit:
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// mov rdx, QWORD PTR [rax] ; Load next
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// mov QWORD PTR g_sfc_head[class_idx], rdx ; Update head
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// ret
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// .miss:
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// ; Fall through to refill
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//
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// Expected: 3-4 instructions on SFC hit, 6-8 on SLL hit
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static inline void* tiny_alloc_fast_pop(int class_idx) {
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#ifdef HAKMEM_TINY_FRONT_GATE_BOX
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void* out = NULL;
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if (front_gate_try_pop(class_idx, &out)) {
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return out;
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}
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return NULL;
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#else
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// Phase 7 Task 3: Profiling overhead removed in release builds
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// In release mode, compiler can completely eliminate profiling code
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#if !HAKMEM_BUILD_RELEASE
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uint64_t start = tiny_profile_enabled() ? tiny_fast_rdtsc() : 0;
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#endif
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// Box 5-NEW: Layer 0 - Try SFC first (if enabled)
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// Cache g_sfc_enabled in TLS to avoid global load on every allocation
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static __thread int sfc_check_done = 0;
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static __thread int sfc_is_enabled = 0;
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if (__builtin_expect(!sfc_check_done, 0)) {
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sfc_is_enabled = g_sfc_enabled;
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sfc_check_done = 1;
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}
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if (__builtin_expect(sfc_is_enabled, 1)) {
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void* ptr = sfc_alloc(class_idx);
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if (__builtin_expect(ptr != NULL, 1)) {
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// Front Gate: SFC hit
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extern unsigned long long g_front_sfc_hit[];
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g_front_sfc_hit[class_idx]++;
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// 🚀 SFC HIT! (Layer 0)
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#if !HAKMEM_BUILD_RELEASE
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if (start) {
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g_tiny_alloc_cycles += (tiny_fast_rdtsc() - start);
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g_tiny_alloc_hits++;
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}
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#endif
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return ptr;
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}
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// SFC miss → try SLL (Layer 1)
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}
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// Box Boundary: Layer 1 - TLS SLL freelist の先頭を pop(envで無効化可)
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extern int g_tls_sll_enable; // set at init via HAKMEM_TINY_TLS_SLL
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if (__builtin_expect(g_tls_sll_enable, 1)) {
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void* head = g_tls_sll_head[class_idx];
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if (__builtin_expect(head != NULL, 1)) {
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// CORRUPTION DEBUG: Validate TLS SLL head before popping
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if (__builtin_expect(tiny_refill_failfast_level() >= 2, 0)) {
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size_t blk = g_tiny_class_sizes[class_idx];
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// Check alignment (must be multiple of block size)
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if (((uintptr_t)head % blk) != 0) {
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fprintf(stderr, "[TLS_SLL_CORRUPT] cls=%d head=%p misaligned (blk=%zu offset=%zu)\n",
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class_idx, head, blk, (uintptr_t)head % blk);
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fprintf(stderr, "[TLS_SLL_CORRUPT] TLS freelist head is corrupted!\n");
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abort();
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}
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}
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// Front Gate: SLL hit (fast path 3 instructions)
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extern unsigned long long g_front_sll_hit[];
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g_front_sll_hit[class_idx]++;
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// CORRUPTION DEBUG: Validate next pointer before updating head
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void* next = *(void**)head;
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if (__builtin_expect(tiny_refill_failfast_level() >= 2, 0)) {
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size_t blk = g_tiny_class_sizes[class_idx];
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if (next != NULL && ((uintptr_t)next % blk) != 0) {
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fprintf(stderr, "[ALLOC_POP_CORRUPT] Reading next from head=%p got corrupted next=%p!\n",
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head, next);
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fprintf(stderr, "[ALLOC_POP_CORRUPT] cls=%d blk=%zu next_offset=%zu (expected 0)\n",
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class_idx, blk, (uintptr_t)next % blk);
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fprintf(stderr, "[ALLOC_POP_CORRUPT] TLS SLL head block was corrupted (use-after-free/double-free)!\n");
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abort();
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}
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fprintf(stderr, "[ALLOC_POP] cls=%d head=%p next=%p\n", class_idx, head, next);
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}
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g_tls_sll_head[class_idx] = next; // Pop: next = *head
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// Optional: update count (for stats, can be disabled)
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if (g_tls_sll_count[class_idx] > 0) {
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g_tls_sll_count[class_idx]--;
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}
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#if HAKMEM_DEBUG_COUNTERS
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// Track TLS freelist hits (compile-time gated, zero runtime cost when disabled)
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g_free_via_tls_sll[class_idx]++;
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#endif
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#if !HAKMEM_BUILD_RELEASE
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// Debug: Track profiling (release builds skip this overhead)
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if (start) {
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g_tiny_alloc_cycles += (tiny_fast_rdtsc() - start);
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g_tiny_alloc_hits++;
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}
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#endif
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return head;
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}
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}
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// Fast path miss → NULL (caller should refill)
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return NULL;
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#endif
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}
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// ========== Cascade Refill: SFC ← SLL (Box Theory boundary) ==========
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// Cascade refill: Transfer blocks from SLL to SFC (one-way, safe)
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// Returns: number of blocks transferred
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//
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// Contract:
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// - Transfer ownership: SLL → SFC
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// - No circular dependency: one-way only
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// - Boundary clear: SLL pop → SFC push
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// - Fallback safe: if SFC full, stop (no overflow)
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static inline int sfc_refill_from_sll(int class_idx, int target_count) {
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int transferred = 0;
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uint32_t cap = g_sfc_capacity[class_idx];
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while (transferred < target_count && g_tls_sll_count[class_idx] > 0) {
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// Check SFC capacity before transfer
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if (g_sfc_count[class_idx] >= cap) {
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break; // SFC full, stop
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}
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// Pop from SLL (Layer 1)
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void* ptr = g_tls_sll_head[class_idx];
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if (!ptr) break; // SLL empty
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g_tls_sll_head[class_idx] = *(void**)ptr;
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g_tls_sll_count[class_idx]--;
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// Push to SFC (Layer 0)
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*(void**)ptr = g_sfc_head[class_idx];
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g_sfc_head[class_idx] = ptr;
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g_sfc_count[class_idx]++;
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transferred++;
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}
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return transferred;
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}
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// ========== Refill Path: Backend Integration ==========
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// Refill TLS freelist from backend (SuperSlab/ACE/Learning layer)
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// Returns: number of blocks refilled
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//
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// Box 5-NEW Architecture:
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// SFC enabled: SuperSlab → SLL → SFC (cascade)
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// SFC disabled: SuperSlab → SLL (direct, old path)
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//
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// This integrates with existing HAKMEM infrastructure:
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// - SuperSlab provides memory chunks
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// - ACE provides adaptive capacity learning
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// - L25 provides mid-large integration
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//
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// Refill count is tunable via HAKMEM_TINY_REFILL_COUNT (default: 16)
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// - Smaller count (8-16): better for diverse workloads, faster warmup
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// - Larger count (64-128): better for homogeneous workloads, fewer refills
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static inline int tiny_alloc_fast_refill(int class_idx) {
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// Phase 7 Task 3: Profiling overhead removed in release builds
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// In release mode, compiler can completely eliminate profiling code
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#if !HAKMEM_BUILD_RELEASE
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uint64_t start = tiny_profile_enabled() ? tiny_fast_rdtsc() : 0;
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#endif
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// Phase 7 Task 3: Simplified refill count (cached per-class in TLS)
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// Previous: Complex precedence logic on every miss (5-10 cycles overhead)
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// Now: Simple TLS cache lookup (1-2 cycles)
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static __thread int s_refill_count[TINY_NUM_CLASSES] = {0};
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int cnt = s_refill_count[class_idx];
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if (__builtin_expect(cnt == 0, 0)) {
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// First miss: Initialize from globals (parsed at init time)
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int v = HAKMEM_TINY_REFILL_DEFAULT; // Default from hakmem_build_flags.h
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// Precedence: per-class > hot/mid > global
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if (g_refill_count_class[class_idx] > 0) {
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v = g_refill_count_class[class_idx];
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} else if (class_idx <= 3 && g_refill_count_hot > 0) {
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v = g_refill_count_hot;
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} else if (class_idx >= 4 && g_refill_count_mid > 0) {
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v = g_refill_count_mid;
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} else if (g_refill_count_global > 0) {
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v = g_refill_count_global;
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}
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// Clamp to sane range (min: 8, max: 256)
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if (v < 8) v = 8; // Minimum: avoid thrashing
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if (v > 256) v = 256; // Maximum: avoid excessive TLS memory
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s_refill_count[class_idx] = v;
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cnt = v;
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}
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#if HAKMEM_DEBUG_COUNTERS
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// Track refill calls (compile-time gated)
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g_rf_total_calls[class_idx]++;
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#endif
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// Box Boundary: Delegate to Backend (Box 3: SuperSlab)
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// This gives us ACE, Learning layer, L25 integration for free!
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// Note: g_rf_hit_slab counter is incremented inside sll_refill_small_from_ss()
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int refilled = sll_refill_small_from_ss(class_idx, cnt);
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// Box 5-NEW: Cascade refill SFC ← SLL (if SFC enabled)
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// This happens AFTER SuperSlab → SLL refill, so SLL has blocks
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static __thread int sfc_check_done_refill = 0;
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static __thread int sfc_is_enabled_refill = 0;
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if (__builtin_expect(!sfc_check_done_refill, 0)) {
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sfc_is_enabled_refill = g_sfc_enabled;
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sfc_check_done_refill = 1;
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}
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if (sfc_is_enabled_refill && refilled > 0) {
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// Transfer half of refilled blocks to SFC (keep half in SLL for future)
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int sfc_target = refilled / 2;
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if (sfc_target > 0) {
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#ifdef HAKMEM_TINY_FRONT_GATE_BOX
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front_gate_after_refill(class_idx, refilled);
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#else
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int transferred = sfc_refill_from_sll(class_idx, sfc_target);
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(void)transferred; // Unused, but could track stats
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#endif
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}
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}
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#if !HAKMEM_BUILD_RELEASE
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// Debug: Track profiling (release builds skip this overhead)
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if (start) {
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g_tiny_refill_cycles += (tiny_fast_rdtsc() - start);
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g_tiny_refill_calls++;
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}
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#endif
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return refilled;
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}
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// ========== Combined Fast Path (Alloc + Refill) ==========
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// Complete fast path allocation (inline for zero-cost)
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// Returns: pointer on success, NULL on failure (OOM or size too large)
|
||
//
|
||
// Flow:
|
||
// 1. TLS freelist pop (3-4 instructions) - Hit rate ~95%
|
||
// 2. Miss → Refill from backend (~5% cases)
|
||
// 3. Refill success → Retry pop
|
||
// 4. Refill failure → Slow path (OOM or new SuperSlab allocation)
|
||
//
|
||
// Example usage:
|
||
// void* ptr = tiny_alloc_fast(64);
|
||
// if (!ptr) {
|
||
// // OOM handling
|
||
// }
|
||
static inline void* tiny_alloc_fast(size_t size) {
|
||
// 1. Size → class index (inline, fast)
|
||
int class_idx = hak_tiny_size_to_class(size);
|
||
if (__builtin_expect(class_idx < 0, 0)) {
|
||
return NULL; // Size > 1KB, not Tiny
|
||
}
|
||
ROUTE_BEGIN(class_idx);
|
||
|
||
// 2. Fast path: TLS freelist pop (3-4 instructions, 95% hit rate)
|
||
void* ptr;
|
||
#if HAKMEM_TINY_AGGRESSIVE_INLINE
|
||
// Task 2: Use inline macro (save 5-10 cycles, no function call)
|
||
TINY_ALLOC_FAST_POP_INLINE(class_idx, ptr);
|
||
#else
|
||
// Standard: Function call (preserves debugging visibility)
|
||
ptr = tiny_alloc_fast_pop(class_idx);
|
||
#endif
|
||
if (__builtin_expect(ptr != NULL, 1)) {
|
||
HAK_RET_ALLOC(class_idx, ptr);
|
||
}
|
||
|
||
// 3. Miss: Refill from backend (Box 3: SuperSlab)
|
||
int refilled = tiny_alloc_fast_refill(class_idx);
|
||
if (__builtin_expect(refilled > 0, 1)) {
|
||
// Refill success → retry pop
|
||
#if HAKMEM_TINY_AGGRESSIVE_INLINE
|
||
TINY_ALLOC_FAST_POP_INLINE(class_idx, ptr);
|
||
#else
|
||
ptr = tiny_alloc_fast_pop(class_idx);
|
||
#endif
|
||
if (ptr) {
|
||
HAK_RET_ALLOC(class_idx, ptr);
|
||
}
|
||
}
|
||
|
||
// 4. Refill failure or still empty → slow path (OOM or new SuperSlab)
|
||
// Box Boundary: Delegate to Slow Path (Box 3 backend)
|
||
ptr = hak_tiny_alloc_slow(size, class_idx);
|
||
if (ptr) {
|
||
HAK_RET_ALLOC(class_idx, ptr);
|
||
}
|
||
|
||
return ptr; // NULL if OOM
|
||
}
|
||
|
||
// ========== Push to TLS Freelist (for free path) ==========
|
||
|
||
// Push block to TLS freelist (used by free fast path)
|
||
// This is a "helper" for Box 6 (Free Fast Path)
|
||
//
|
||
// Invariant: ptr must belong to current thread (no ownership check here)
|
||
// Caller (Box 6) is responsible for ownership verification
|
||
static inline void tiny_alloc_fast_push(int class_idx, void* ptr) {
|
||
#ifdef HAKMEM_TINY_FRONT_GATE_BOX
|
||
front_gate_push_tls(class_idx, ptr);
|
||
#else
|
||
// Box Boundary: Push to TLS freelist
|
||
*(void**)ptr = g_tls_sll_head[class_idx];
|
||
g_tls_sll_head[class_idx] = ptr;
|
||
g_tls_sll_count[class_idx]++;
|
||
#endif
|
||
}
|
||
|
||
// ========== Statistics & Diagnostics ==========
|
||
|
||
// Get TLS freelist stats (for debugging/profiling)
|
||
typedef struct {
|
||
int class_idx;
|
||
void* head;
|
||
uint32_t count;
|
||
} TinyAllocFastStats;
|
||
|
||
static inline TinyAllocFastStats tiny_alloc_fast_stats(int class_idx) {
|
||
TinyAllocFastStats stats = {
|
||
.class_idx = class_idx,
|
||
.head = g_tls_sll_head[class_idx],
|
||
.count = g_tls_sll_count[class_idx]
|
||
};
|
||
return stats;
|
||
}
|
||
|
||
// Reset TLS freelist (for testing/benchmarking)
|
||
// WARNING: This leaks memory! Only use in controlled test environments.
|
||
static inline void tiny_alloc_fast_reset(int class_idx) {
|
||
g_tls_sll_head[class_idx] = NULL;
|
||
g_tls_sll_count[class_idx] = 0;
|
||
}
|
||
|
||
// ========== Performance Notes ==========
|
||
//
|
||
// Expected metrics (based on System tcache & HAKX +171% results):
|
||
// - Fast path hit rate: 95%+ (workload dependent)
|
||
// - Fast path latency: 3-4 instructions (1-2 cycles on modern CPUs)
|
||
// - Miss penalty: ~20-50 instructions (refill from SuperSlab)
|
||
// - Throughput improvement: +10-25% vs current multi-layer design
|
||
//
|
||
// Key optimizations:
|
||
// 1. `__builtin_expect` for branch prediction (hot path first)
|
||
// 2. `static inline` for zero-cost abstraction
|
||
// 3. TLS variables (no atomic ops, no locks)
|
||
// 4. Minimal work in fast path (defer stats/accounting to backend)
|
||
//
|
||
// Comparison with current design:
|
||
// - Current: 20+ instructions (Magazine → SuperSlab → ACE → ...)
|
||
// - New: 3-4 instructions (TLS freelist pop only)
|
||
// - Reduction: -80% instructions in hot path
|
||
//
|
||
// Inspired by:
|
||
// - System tcache (glibc malloc) - 3-4 instruction fast path
|
||
// - HAKX Mid-Large (+171%) - "Simple Front + Smart Back"
|
||
// - Box Theory - Clear boundaries, minimal coupling
|