399 lines
11 KiB
Markdown
399 lines
11 KiB
Markdown
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# Phase 2b: TLS Cache Adaptive Sizing
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**Date**: 2025-11-08
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**Priority**: 🟡 HIGH - Performance optimization
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**Estimated Effort**: 3-5 days
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**Status**: Ready for implementation
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**Depends on**: Phase 2a (not blocking, can run in parallel)
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---
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## Executive Summary
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**Problem**: TLS Cache has fixed capacity (256-768 slots) → Cannot adapt to workload
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**Solution**: Implement adaptive sizing with high-water mark tracking
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**Expected Result**: Hot classes get more cache → Better hit rate → Higher throughput
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---
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## Current Architecture (INEFFICIENT)
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### Fixed Capacity
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```c
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// core/hakmem_tiny.c or similar
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#define TLS_SLL_CAP_DEFAULT 256
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static __thread int g_tls_sll_count[TINY_NUM_CLASSES];
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static __thread void* g_tls_sll_head[TINY_NUM_CLASSES];
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// Fixed capacity for all classes!
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// Hot class (e.g., class 4 in Larson) → cache thrashes
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// Cold class (e.g., class 0 rarely used) → wastes memory
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```
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### Why This is Inefficient
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**Scenario 1: Hot class (class 4 - 128B allocations)**
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```
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Larson 4T: 4000+ concurrent 128B allocations
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TLS cache capacity: 256 slots
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Hit rate: ~6% (256/4000)
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Result: Constant refill overhead → poor performance
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```
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**Scenario 2: Cold class (class 0 - 16B allocations)**
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```
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Usage: ~10 allocations per minute
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TLS cache capacity: 256 slots
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Waste: 246 slots × 16B = 3936B per thread wasted
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```
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---
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## Proposed Architecture (ADAPTIVE)
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### High-Water Mark Tracking
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```c
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typedef struct TLSCacheStats {
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size_t capacity; // Current capacity
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size_t high_water_mark; // Peak usage in recent window
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size_t refill_count; // Number of refills in recent window
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uint64_t last_adapt_time; // Timestamp of last adaptation
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} TLSCacheStats;
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static __thread TLSCacheStats g_tls_cache_stats[TINY_NUM_CLASSES];
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```
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### Adaptive Sizing Logic
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```c
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// Periodically adapt cache size based on usage
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void adapt_tls_cache_size(int class_idx) {
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TLSCacheStats* stats = &g_tls_cache_stats[class_idx];
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// Update high-water mark
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if (g_tls_sll_count[class_idx] > stats->high_water_mark) {
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stats->high_water_mark = g_tls_sll_count[class_idx];
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}
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// Adapt every N refills or M seconds
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uint64_t now = get_timestamp_ns();
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if (stats->refill_count < ADAPT_REFILL_THRESHOLD &&
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(now - stats->last_adapt_time) < ADAPT_TIME_THRESHOLD_NS) {
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return; // Too soon to adapt
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}
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// Decide: grow, shrink, or keep
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if (stats->high_water_mark > stats->capacity * 0.8) {
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// High usage → grow cache (2x)
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grow_tls_cache(class_idx);
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} else if (stats->high_water_mark < stats->capacity * 0.2) {
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// Low usage → shrink cache (0.5x)
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shrink_tls_cache(class_idx);
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}
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// Reset stats for next window
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stats->high_water_mark = g_tls_sll_count[class_idx];
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stats->refill_count = 0;
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stats->last_adapt_time = now;
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}
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```
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---
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## Implementation Tasks
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### Task 1: Add Adaptive Sizing Stats (1-2 hours)
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**File**: `core/hakmem_tiny.c` or TLS cache code
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```c
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// Per-class TLS cache statistics
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typedef struct TLSCacheStats {
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size_t capacity; // Current capacity
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size_t high_water_mark; // Peak usage in recent window
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size_t refill_count; // Refills since last adapt
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size_t shrink_count; // Shrinks (for debugging)
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size_t grow_count; // Grows (for debugging)
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uint64_t last_adapt_time; // Timestamp of last adaptation
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} TLSCacheStats;
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static __thread TLSCacheStats g_tls_cache_stats[TINY_NUM_CLASSES];
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// Configuration
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#define TLS_CACHE_MIN_CAPACITY 16 // Minimum cache size
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#define TLS_CACHE_MAX_CAPACITY 2048 // Maximum cache size
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#define TLS_CACHE_INITIAL_CAPACITY 64 // Initial size (reduced from 256)
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#define ADAPT_REFILL_THRESHOLD 10 // Adapt every 10 refills
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#define ADAPT_TIME_THRESHOLD_NS (1000000000ULL) // Or every 1 second
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// Growth thresholds
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#define GROW_THRESHOLD 0.8 // Grow if usage > 80% of capacity
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#define SHRINK_THRESHOLD 0.2 // Shrink if usage < 20% of capacity
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```
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### Task 2: Implement Grow/Shrink Functions (2-3 hours)
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**File**: `core/hakmem_tiny.c`
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```c
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// Grow TLS cache capacity (2x)
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static void grow_tls_cache(int class_idx) {
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TLSCacheStats* stats = &g_tls_cache_stats[class_idx];
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size_t new_capacity = stats->capacity * 2;
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if (new_capacity > TLS_CACHE_MAX_CAPACITY) {
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new_capacity = TLS_CACHE_MAX_CAPACITY;
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}
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if (new_capacity == stats->capacity) {
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return; // Already at max
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}
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stats->capacity = new_capacity;
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stats->grow_count++;
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fprintf(stderr, "[TLS_CACHE] Grow class %d: %zu → %zu slots (grow_count=%zu)\n",
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class_idx, stats->capacity / 2, stats->capacity, stats->grow_count);
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}
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// Shrink TLS cache capacity (0.5x)
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static void shrink_tls_cache(int class_idx) {
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TLSCacheStats* stats = &g_tls_cache_stats[class_idx];
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size_t new_capacity = stats->capacity / 2;
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if (new_capacity < TLS_CACHE_MIN_CAPACITY) {
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new_capacity = TLS_CACHE_MIN_CAPACITY;
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}
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if (new_capacity == stats->capacity) {
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return; // Already at min
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}
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// Evict excess blocks if current count > new_capacity
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if (g_tls_sll_count[class_idx] > new_capacity) {
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// Drain excess blocks back to SuperSlab
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int excess = g_tls_sll_count[class_idx] - new_capacity;
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drain_excess_blocks(class_idx, excess);
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}
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stats->capacity = new_capacity;
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stats->shrink_count++;
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fprintf(stderr, "[TLS_CACHE] Shrink class %d: %zu → %zu slots (shrink_count=%zu)\n",
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class_idx, stats->capacity * 2, stats->capacity, stats->shrink_count);
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}
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// Drain excess blocks back to SuperSlab
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static void drain_excess_blocks(int class_idx, int count) {
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void** head = &g_tls_sll_head[class_idx];
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int drained = 0;
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while (*head && drained < count) {
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void* block = *head;
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*head = *(void**)block; // Pop from TLS list
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// Return to SuperSlab (or freelist)
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return_block_to_superslab(block, class_idx);
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drained++;
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g_tls_sll_count[class_idx]--;
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}
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fprintf(stderr, "[TLS_CACHE] Drained %d excess blocks from class %d\n", drained, class_idx);
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}
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```
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### Task 3: Integrate Adaptation into Refill Path (2-3 hours)
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**File**: `core/tiny_alloc_fast.inc.h` or refill code
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```c
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static inline int tiny_alloc_fast_refill(int class_idx) {
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// ... existing refill logic ...
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// Track refill for adaptive sizing
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TLSCacheStats* stats = &g_tls_cache_stats[class_idx];
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stats->refill_count++;
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// Update high-water mark
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if (g_tls_sll_count[class_idx] > stats->high_water_mark) {
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stats->high_water_mark = g_tls_sll_count[class_idx];
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}
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// Periodically adapt cache size
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adapt_tls_cache_size(class_idx);
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// ... rest of refill ...
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}
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```
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### Task 4: Implement Adaptation Logic (2-3 hours)
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**File**: `core/hakmem_tiny.c`
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```c
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// Adapt TLS cache size based on usage patterns
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static void adapt_tls_cache_size(int class_idx) {
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TLSCacheStats* stats = &g_tls_cache_stats[class_idx];
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// Adapt every N refills or M seconds
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uint64_t now = get_timestamp_ns();
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bool should_adapt = (stats->refill_count >= ADAPT_REFILL_THRESHOLD) ||
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((now - stats->last_adapt_time) >= ADAPT_TIME_THRESHOLD_NS);
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if (!should_adapt) {
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return; // Too soon to adapt
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}
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// Calculate usage ratio
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double usage_ratio = (double)stats->high_water_mark / (double)stats->capacity;
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// Decide: grow, shrink, or keep
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if (usage_ratio > GROW_THRESHOLD) {
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// High usage (>80%) → grow cache
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grow_tls_cache(class_idx);
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} else if (usage_ratio < SHRINK_THRESHOLD) {
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// Low usage (<20%) → shrink cache
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shrink_tls_cache(class_idx);
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} else {
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// Moderate usage (20-80%) → keep current size
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fprintf(stderr, "[TLS_CACHE] Keep class %d at %zu slots (usage=%.1f%%)\n",
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class_idx, stats->capacity, usage_ratio * 100.0);
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}
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// Reset stats for next window
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stats->high_water_mark = g_tls_sll_count[class_idx];
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stats->refill_count = 0;
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stats->last_adapt_time = now;
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}
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// Helper: Get timestamp in nanoseconds
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static inline uint64_t get_timestamp_ns(void) {
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struct timespec ts;
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clock_gettime(CLOCK_MONOTONIC, &ts);
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return (uint64_t)ts.tv_sec * 1000000000ULL + (uint64_t)ts.tv_nsec;
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}
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```
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### Task 5: Initialize Adaptive Stats (1 hour)
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**File**: `core/hakmem_tiny.c`
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```c
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void hak_tiny_init(void) {
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// ... existing init ...
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// Initialize TLS cache stats for each class
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for (int class_idx = 0; class_idx < TINY_NUM_CLASSES; class_idx++) {
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TLSCacheStats* stats = &g_tls_cache_stats[class_idx];
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stats->capacity = TLS_CACHE_INITIAL_CAPACITY; // Start with 64 slots
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stats->high_water_mark = 0;
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stats->refill_count = 0;
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stats->shrink_count = 0;
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stats->grow_count = 0;
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stats->last_adapt_time = get_timestamp_ns();
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// Initialize TLS cache head/count
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g_tls_sll_head[class_idx] = NULL;
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g_tls_sll_count[class_idx] = 0;
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}
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}
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```
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### Task 6: Add Capacity Enforcement (2-3 hours)
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**File**: `core/tiny_alloc_fast.inc.h`
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```c
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static inline int tiny_alloc_fast_refill(int class_idx) {
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TLSCacheStats* stats = &g_tls_cache_stats[class_idx];
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// Don't refill beyond current capacity
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int current_count = g_tls_sll_count[class_idx];
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int available_slots = stats->capacity - current_count;
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if (available_slots <= 0) {
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// Cache is full, don't refill
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fprintf(stderr, "[TLS_CACHE] Class %d cache full (%d/%zu), skipping refill\n",
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class_idx, current_count, stats->capacity);
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return -1; // Signal caller to try again or use slow path
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}
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// Refill only up to capacity
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int want_count = HAKMEM_TINY_REFILL_DEFAULT; // e.g., 16
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int refill_count = (want_count < available_slots) ? want_count : available_slots;
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// ... existing refill logic with refill_count ...
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}
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```
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---
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## Testing Strategy
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### Test 1: Adaptive Behavior Verification
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```bash
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# Enable debug logging
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HAKMEM_LOG=1 ./larson_hakmem 10 8 128 1024 1 12345 4 2>&1 | grep "TLS_CACHE"
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# Should see:
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# [TLS_CACHE] Grow class 4: 64 → 128 slots (grow_count=1)
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# [TLS_CACHE] Grow class 4: 128 → 256 slots (grow_count=2)
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# [TLS_CACHE] Grow class 4: 256 → 512 slots (grow_count=3)
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# [TLS_CACHE] Keep class 0 at 64 slots (usage=5.2%)
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```
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### Test 2: Performance Improvement
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```bash
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# Before (fixed capacity)
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./larson_hakmem 1 1 128 1024 1 12345 1
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# Baseline: 2.71M ops/s
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|
|
|||
|
|
# After (adaptive capacity)
|
|||
|
|
./larson_hakmem 1 1 128 1024 1 12345 1
|
|||
|
|
# Expected: 2.8-3.0M ops/s (+3-10%)
|
|||
|
|
```
|
|||
|
|
|
|||
|
|
### Test 3: Memory Efficiency
|
|||
|
|
|
|||
|
|
```bash
|
|||
|
|
# Run with memory profiling
|
|||
|
|
valgrind --tool=massif ./larson_hakmem 1 1 128 1024 1 12345 1
|
|||
|
|
|
|||
|
|
# Compare peak memory usage
|
|||
|
|
# Fixed: 256 slots × 8 classes × 8B = ~16KB per thread
|
|||
|
|
# Adaptive: ~8KB per thread (cold classes shrink to 16 slots)
|
|||
|
|
```
|
|||
|
|
|
|||
|
|
---
|
|||
|
|
|
|||
|
|
## Success Criteria
|
|||
|
|
|
|||
|
|
✅ **Adaptive behavior**: Logs show grow/shrink based on usage
|
|||
|
|
✅ **Hot class expansion**: Class 4 grows to 512+ slots under load
|
|||
|
|
✅ **Cold class shrinkage**: Class 0 shrinks to 16-32 slots
|
|||
|
|
✅ **Performance improvement**: +3-10% on Larson benchmark
|
|||
|
|
✅ **Memory efficiency**: -30-50% TLS cache memory usage
|
|||
|
|
|
|||
|
|
---
|
|||
|
|
|
|||
|
|
## Deliverable
|
|||
|
|
|
|||
|
|
**Report file**: `/mnt/workdisk/public_share/hakmem/PHASE2B_IMPLEMENTATION_REPORT.md`
|
|||
|
|
|
|||
|
|
**Required sections**:
|
|||
|
|
1. **Adaptive sizing behavior** (logs showing grow/shrink)
|
|||
|
|
2. **Performance comparison** (before/after)
|
|||
|
|
3. **Memory usage comparison** (TLS cache overhead)
|
|||
|
|
4. **Per-class capacity evolution** (graph if possible)
|
|||
|
|
5. **Production readiness** (YES/NO verdict)
|
|||
|
|
|
|||
|
|
---
|
|||
|
|
|
|||
|
|
**Let's make TLS cache adaptive! 🎯**
|