## Root Cause Analysis (GPT5) **Physical Layout Constraints**: - Class 0: 8B = [1B header][7B payload] → offset 1 = 9B needed = ❌ IMPOSSIBLE - Class 1-6: >=16B = [1B header][15B+ payload] → offset 1 = ✅ POSSIBLE - Class 7: 1KB → offset 0 (compatibility) **Correct Specification**: - HAKMEM_TINY_HEADER_CLASSIDX != 0: - Class 0, 7: next at offset 0 (overwrites header when on freelist) - Class 1-6: next at offset 1 (after header) - HAKMEM_TINY_HEADER_CLASSIDX == 0: - All classes: next at offset 0 **Previous Bug**: - Attempted "ALL classes offset 1" unification - Class 0 with offset 1 caused immediate SEGV (9B > 8B block size) - Mixed 2-arg/3-arg API caused confusion ## Fixes Applied ### 1. Restored 3-Argument Box API (core/box/tiny_next_ptr_box.h) ```c // Correct signatures void tiny_next_write(int class_idx, void* base, void* next_value) void* tiny_next_read(int class_idx, const void* base) // Correct offset calculation size_t offset = (class_idx == 0 || class_idx == 7) ? 0 : 1; ``` ### 2. Updated 123+ Call Sites Across 34 Files - hakmem_tiny_hot_pop_v4.inc.h (4 locations) - hakmem_tiny_fastcache.inc.h (3 locations) - hakmem_tiny_tls_list.h (12 locations) - superslab_inline.h (5 locations) - tiny_fastcache.h (3 locations) - ptr_trace.h (macro definitions) - tls_sll_box.h (2 locations) - + 27 additional files Pattern: `tiny_next_read(base)` → `tiny_next_read(class_idx, base)` Pattern: `tiny_next_write(base, next)` → `tiny_next_write(class_idx, base, next)` ### 3. Added Sentinel Detection Guards - tiny_fast_push(): Block nodes with sentinel in ptr or ptr->next - tls_list_push(): Block nodes with sentinel in ptr or ptr->next - Defense-in-depth against remote free sentinel leakage ## Verification (GPT5 Report) **Test Command**: `./out/release/bench_random_mixed_hakmem --iterations=70000` **Results**: - ✅ Main loop completed successfully - ✅ Drain phase completed successfully - ✅ NO SEGV (previous crash at iteration 66151 is FIXED) - ℹ️ Final log: "tiny_alloc(1024) failed" is normal fallback to Mid/ACE layers **Analysis**: - Class 0 immediate SEGV: ✅ RESOLVED (correct offset 0 now used) - 66K iteration crash: ✅ RESOLVED (offset consistency fixed) - Box API conflicts: ✅ RESOLVED (unified 3-arg API) ## Technical Details ### Offset Logic Justification ``` Class 0: 8B block → next pointer (8B) fits ONLY at offset 0 Class 1: 16B block → next pointer (8B) fits at offset 1 (after 1B header) Class 2: 32B block → next pointer (8B) fits at offset 1 ... Class 6: 512B block → next pointer (8B) fits at offset 1 Class 7: 1024B block → offset 0 for legacy compatibility ``` ### Files Modified (Summary) - Core API: `box/tiny_next_ptr_box.h` - Hot paths: `hakmem_tiny_hot_pop*.inc.h`, `tiny_fastcache.h` - TLS layers: `hakmem_tiny_tls_list.h`, `hakmem_tiny_tls_ops.h` - SuperSlab: `superslab_inline.h`, `tiny_superslab_*.inc.h` - Refill: `hakmem_tiny_refill.inc.h`, `tiny_refill_opt.h` - Free paths: `tiny_free_magazine.inc.h`, `tiny_superslab_free.inc.h` - Documentation: Multiple Phase E3 reports ## Remaining Work None for Box API offset bugs - all structural issues resolved. Future enhancements (non-critical): - Periodic `grep -R '*(void**)' core/` to detect direct pointer access violations - Enforce Box API usage via static analysis - Document offset rationale in architecture docs 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude <noreply@anthropic.com>
484 lines
18 KiB
C
484 lines
18 KiB
C
// integrity_box.c - Box I: Integrity Verification System Implementation
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// Purpose: Complete implementation of modular integrity checks
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// Author: Claude + Task (2025-11-12)
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#include "integrity_box.h"
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#include "../hakmem_tiny.h"
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#include "../superslab/superslab_types.h"
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#include "../tiny_box_geometry.h"
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#include <stdio.h>
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#include <assert.h>
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#include <stdatomic.h>
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#include <string.h>
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// ============================================================================
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// TLS Canary Magic
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// ============================================================================
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#define TLS_CANARY_MAGIC 0xDEADBEEFDEADBEEFULL
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// External canaries from hakmem_tiny.c
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extern __thread uint64_t g_tls_canary_before_sll_head;
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extern __thread uint64_t g_tls_canary_after_sll_head;
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extern __thread uint64_t g_tls_canary_before_sll_count;
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extern __thread uint64_t g_tls_canary_after_sll_count;
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// ============================================================================
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// Global Statistics (atomic for thread safety)
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// ============================================================================
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static _Atomic uint64_t g_integrity_checks_performed = 0;
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static _Atomic uint64_t g_integrity_checks_passed = 0;
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static _Atomic uint64_t g_integrity_checks_failed = 0;
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static _Atomic uint64_t g_integrity_tls_bounds_checks = 0;
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static _Atomic uint64_t g_integrity_freelist_checks = 0;
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static _Atomic uint64_t g_integrity_metadata_checks = 0;
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static _Atomic uint64_t g_integrity_canary_checks = 0;
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static _Atomic uint64_t g_integrity_full_system_checks = 0;
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// ============================================================================
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// Initialization
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// ============================================================================
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void integrity_box_init(void) {
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// Initialize statistics (atomic init is implicit)
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atomic_store(&g_integrity_checks_performed, 0);
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atomic_store(&g_integrity_checks_passed, 0);
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atomic_store(&g_integrity_checks_failed, 0);
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atomic_store(&g_integrity_tls_bounds_checks, 0);
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atomic_store(&g_integrity_freelist_checks, 0);
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atomic_store(&g_integrity_metadata_checks, 0);
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atomic_store(&g_integrity_canary_checks, 0);
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atomic_store(&g_integrity_full_system_checks, 0);
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}
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// ============================================================================
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// Priority 1: TLS Bounds Validation
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// ============================================================================
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IntegrityResult integrity_validate_tls_bounds(
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uint8_t class_idx,
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const char* context) {
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atomic_fetch_add(&g_integrity_checks_performed, 1);
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atomic_fetch_add(&g_integrity_tls_bounds_checks, 1);
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if (class_idx >= TINY_NUM_CLASSES) {
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atomic_fetch_add(&g_integrity_checks_failed, 1);
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return (IntegrityResult){
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.passed = false,
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.check_name = "TLS_BOUNDS_OVERFLOW",
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.file = __FILE__,
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.line = __LINE__,
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.message = "class_idx out of bounds",
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.error_code = INTEGRITY_ERROR_TLS_BOUNDS_OVERFLOW
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};
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}
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atomic_fetch_add(&g_integrity_checks_passed, 1);
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return (IntegrityResult){
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.passed = true,
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.check_name = "TLS_BOUNDS_OK",
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.file = __FILE__,
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.line = __LINE__,
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.message = "TLS bounds check passed",
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.error_code = INTEGRITY_ERROR_OK
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};
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}
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// ============================================================================
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// Priority 2: Freelist Pointer Validation
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// ============================================================================
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IntegrityResult integrity_validate_freelist_ptr(
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void* ptr,
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void* slab_base,
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void* slab_end,
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uint8_t class_idx,
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const char* context) {
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atomic_fetch_add(&g_integrity_checks_performed, 1);
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atomic_fetch_add(&g_integrity_freelist_checks, 1);
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// NULL is valid (end of freelist)
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if (ptr == NULL) {
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atomic_fetch_add(&g_integrity_checks_passed, 1);
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return (IntegrityResult){
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.passed = true,
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.check_name = "FREELIST_PTR_NULL",
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.file = __FILE__,
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.line = __LINE__,
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.message = "NULL freelist pointer (valid)",
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.error_code = INTEGRITY_ERROR_OK
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};
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}
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// Check pointer is in valid range
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if (ptr < slab_base || ptr >= slab_end) {
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atomic_fetch_add(&g_integrity_checks_failed, 1);
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return (IntegrityResult){
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.passed = false,
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.check_name = "FREELIST_PTR_OUT_OF_BOUNDS",
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.file = __FILE__,
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.line = __LINE__,
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.message = "Freelist pointer outside slab bounds",
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.error_code = INTEGRITY_ERROR_FREELIST_PTR_OUT_OF_BOUNDS
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};
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}
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// Check stride alignment
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size_t stride = tiny_stride_for_class(class_idx);
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ptrdiff_t offset = (uint8_t*)ptr - (uint8_t*)slab_base;
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if (offset % stride != 0) {
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atomic_fetch_add(&g_integrity_checks_failed, 1);
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return (IntegrityResult){
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.passed = false,
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.check_name = "FREELIST_PTR_MISALIGNED",
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.file = __FILE__,
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.line = __LINE__,
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.message = "Freelist pointer not stride-aligned",
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.error_code = INTEGRITY_ERROR_FREELIST_PTR_MISALIGNED
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};
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}
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atomic_fetch_add(&g_integrity_checks_passed, 1);
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return (IntegrityResult){
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.passed = true,
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.check_name = "FREELIST_PTR_OK",
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.file = __FILE__,
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.line = __LINE__,
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.message = "Freelist pointer valid",
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.error_code = INTEGRITY_ERROR_OK
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};
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}
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// ============================================================================
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// Priority 3: TLS Canary Validation
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// ============================================================================
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IntegrityResult integrity_validate_tls_canaries(const char* context) {
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atomic_fetch_add(&g_integrity_checks_performed, 1);
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atomic_fetch_add(&g_integrity_canary_checks, 1);
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// Check canary before sll_head array
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if (g_tls_canary_before_sll_head != TLS_CANARY_MAGIC) {
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atomic_fetch_add(&g_integrity_checks_failed, 1);
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return (IntegrityResult){
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.passed = false,
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.check_name = "CANARY_CORRUPTED_BEFORE_HEAD",
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.file = __FILE__,
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.line = __LINE__,
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.message = "Canary before g_tls_sll_head corrupted",
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.error_code = INTEGRITY_ERROR_CANARY_CORRUPTED_BEFORE_HEAD
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};
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}
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// Check canary after sll_head array
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if (g_tls_canary_after_sll_head != TLS_CANARY_MAGIC) {
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atomic_fetch_add(&g_integrity_checks_failed, 1);
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return (IntegrityResult){
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.passed = false,
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.check_name = "CANARY_CORRUPTED_AFTER_HEAD",
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.file = __FILE__,
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.line = __LINE__,
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.message = "Canary after g_tls_sll_head corrupted",
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.error_code = INTEGRITY_ERROR_CANARY_CORRUPTED_AFTER_HEAD
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};
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}
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// Check canary before sll_count array
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if (g_tls_canary_before_sll_count != TLS_CANARY_MAGIC) {
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atomic_fetch_add(&g_integrity_checks_failed, 1);
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return (IntegrityResult){
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.passed = false,
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.check_name = "CANARY_CORRUPTED_BEFORE_COUNT",
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.file = __FILE__,
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.line = __LINE__,
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.message = "Canary before g_tls_sll_count corrupted",
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.error_code = INTEGRITY_ERROR_CANARY_CORRUPTED_BEFORE_COUNT
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};
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}
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// Check canary after sll_count array
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if (g_tls_canary_after_sll_count != TLS_CANARY_MAGIC) {
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atomic_fetch_add(&g_integrity_checks_failed, 1);
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return (IntegrityResult){
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.passed = false,
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.check_name = "CANARY_CORRUPTED_AFTER_COUNT",
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.file = __FILE__,
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.line = __LINE__,
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.message = "Canary after g_tls_sll_count corrupted",
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.error_code = INTEGRITY_ERROR_CANARY_CORRUPTED_AFTER_COUNT
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};
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}
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atomic_fetch_add(&g_integrity_checks_passed, 1);
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return (IntegrityResult){
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.passed = true,
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.check_name = "CANARY_OK",
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.file = __FILE__,
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.line = __LINE__,
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.message = "All canaries intact",
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.error_code = INTEGRITY_ERROR_OK
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};
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}
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// ============================================================================
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// Priority ALPHA: Slab Metadata Validation (THE KEY!)
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// ============================================================================
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SlabMetadataState integrity_capture_slab_metadata(
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const void* meta_ptr,
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void* slab_base,
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uint8_t class_idx) {
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// Cast to TinySlabMeta type
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const TinySlabMeta* meta = (const TinySlabMeta*)meta_ptr;
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SlabMetadataState state = {0};
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if (meta == NULL) {
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// NULL metadata - return invalid state
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state.carved = 0xFFFF;
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state.used = 0xFFFF;
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state.capacity = 0;
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state.freelist = NULL;
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state.slab_base = NULL;
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state.class_idx = class_idx;
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state.free_count = 0xFFFF;
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state.is_virgin = false;
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state.is_full = false;
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state.is_empty = false;
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return state;
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}
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// Capture core fields
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state.carved = meta->carved;
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state.used = meta->used;
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state.capacity = meta->capacity;
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state.freelist = meta->freelist;
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state.slab_base = slab_base;
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state.class_idx = class_idx;
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// Compute derived fields
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if (state.carved >= state.used) {
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state.free_count = state.carved - state.used;
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} else {
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state.free_count = 0xFFFF; // Invalid!
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}
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state.is_virgin = (state.carved == 0);
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state.is_full = (state.carved == state.capacity && state.used == state.capacity);
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state.is_empty = (state.used == 0);
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return state;
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}
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IntegrityResult integrity_validate_slab_metadata(
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const SlabMetadataState* state,
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const char* context) {
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atomic_fetch_add(&g_integrity_checks_performed, 1);
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atomic_fetch_add(&g_integrity_metadata_checks, 1);
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// Check 1: carved <= capacity
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if (state->carved > state->capacity) {
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atomic_fetch_add(&g_integrity_checks_failed, 1);
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return (IntegrityResult){
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.passed = false,
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.check_name = "METADATA_CARVED_OVERFLOW",
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.file = __FILE__,
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.line = __LINE__,
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.message = "carved > capacity (slab corruption)",
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.error_code = INTEGRITY_ERROR_METADATA_CARVED_OVERFLOW
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};
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}
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// Check 2: used <= carved
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if (state->used > state->carved) {
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atomic_fetch_add(&g_integrity_checks_failed, 1);
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return (IntegrityResult){
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.passed = false,
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.check_name = "METADATA_USED_GT_CARVED",
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.file = __FILE__,
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.line = __LINE__,
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.message = "used > carved (double-free or corruption)",
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.error_code = INTEGRITY_ERROR_METADATA_USED_GT_CARVED
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};
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}
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// Check 3: used <= capacity
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if (state->used > state->capacity) {
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atomic_fetch_add(&g_integrity_checks_failed, 1);
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return (IntegrityResult){
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.passed = false,
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.check_name = "METADATA_USED_OVERFLOW",
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.file = __FILE__,
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.line = __LINE__,
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.message = "used > capacity (counter corruption)",
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.error_code = INTEGRITY_ERROR_METADATA_USED_OVERFLOW
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};
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}
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// Check 4: free_count consistency
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uint16_t expected_free = state->carved - state->used;
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if (state->free_count != expected_free) {
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atomic_fetch_add(&g_integrity_checks_failed, 1);
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return (IntegrityResult){
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.passed = false,
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.check_name = "METADATA_FREE_COUNT_MISMATCH",
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.file = __FILE__,
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.line = __LINE__,
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.message = "free_count != (carved - used)",
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.error_code = INTEGRITY_ERROR_METADATA_FREE_COUNT_MISMATCH
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};
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}
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// Check 5: Capacity is reasonable (not corrupted)
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// Phase E1-CORRECT FIX: Tiny classes have varying capacities:
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// - Class 0 (8B): 65536/8 = 8192 blocks per slab
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// - Class 1 (16B): 65536/16 = 4096
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// - Class 2 (32B): 65536/32 = 2048
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// - Class 3 (64B): 65536/64 = 1024
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// - Class 4 (128B): 65536/128 = 512
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// Use 10000 as safe upper bound (Class 0 max is 8192)
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if (state->capacity > 10000) {
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atomic_fetch_add(&g_integrity_checks_failed, 1);
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return (IntegrityResult){
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.passed = false,
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.check_name = "METADATA_CAPACITY_UNREASONABLE",
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.file = __FILE__,
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.line = __LINE__,
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.message = "capacity > 10000 (likely corrupted)",
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.error_code = INTEGRITY_ERROR_METADATA_CAPACITY_UNREASONABLE
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};
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}
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// Check 6: Freelist pointer validity
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// The freelist pointer should either be:
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// - NULL (linear carving mode or empty freelist)
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// - A valid pointer within the slab's address range
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// - NOT uninitialized garbage like 0xa2a2a2a2a2a2a2a2
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if (state->freelist != NULL && state->slab_base != NULL) {
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uintptr_t freelist_addr = (uintptr_t)state->freelist;
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uintptr_t slab_start = (uintptr_t)state->slab_base;
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// Detect obvious corruption patterns (0xa2, 0xcc, 0xdd, 0xfe are common debug fill patterns)
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uint8_t* freelist_bytes = (uint8_t*)&freelist_addr;
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bool is_pattern_fill = (freelist_bytes[0] == freelist_bytes[1] &&
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freelist_bytes[1] == freelist_bytes[2] &&
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freelist_bytes[2] == freelist_bytes[3] &&
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freelist_bytes[3] == freelist_bytes[4] &&
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freelist_bytes[4] == freelist_bytes[5] &&
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freelist_bytes[5] == freelist_bytes[6] &&
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freelist_bytes[6] == freelist_bytes[7]);
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if (is_pattern_fill && (freelist_bytes[0] == 0xa2 ||
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freelist_bytes[0] == 0xcc ||
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freelist_bytes[0] == 0xdd ||
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freelist_bytes[0] == 0xfe)) {
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atomic_fetch_add(&g_integrity_checks_failed, 1);
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fprintf(stderr, "[BOX I] CRITICAL: Uninitialized freelist detected!\n");
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fprintf(stderr, "[BOX I] freelist=%p (pattern: 0x%02x repeated)\n",
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state->freelist, freelist_bytes[0]);
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fprintf(stderr, "[BOX I] carved=%u used=%u capacity=%u class=%u\n",
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state->carved, state->used, state->capacity, state->class_idx);
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fprintf(stderr, "[BOX I] This indicates the slab was used before proper initialization!\n");
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return (IntegrityResult){
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.passed = false,
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.check_name = "METADATA_FREELIST_UNINITIALIZED",
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.file = __FILE__,
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.line = __LINE__,
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.message = "freelist contains uninitialized pattern (0xa2/0xcc/0xdd/0xfe)",
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.error_code = 0xA090
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};
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}
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// Basic range check (freelist should be within reasonable address space)
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// Kernel space on x86-64 starts at 0xffff800000000000
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if (freelist_addr >= 0xffff800000000000UL) {
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atomic_fetch_add(&g_integrity_checks_failed, 1);
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return (IntegrityResult){
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.passed = false,
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.check_name = "METADATA_FREELIST_KERNEL_ADDR",
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.file = __FILE__,
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.line = __LINE__,
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.message = "freelist points to kernel space (corrupted)",
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.error_code = 0xA091
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};
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}
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}
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|
atomic_fetch_add(&g_integrity_checks_passed, 1);
|
|
return (IntegrityResult){
|
|
.passed = true,
|
|
.check_name = "METADATA_OK",
|
|
.file = __FILE__,
|
|
.line = __LINE__,
|
|
.message = "All metadata checks passed",
|
|
.error_code = INTEGRITY_ERROR_OK
|
|
};
|
|
}
|
|
|
|
// ============================================================================
|
|
// Periodic Full System Check
|
|
// ============================================================================
|
|
|
|
void integrity_periodic_full_check(const char* context) {
|
|
atomic_fetch_add(&g_integrity_full_system_checks, 1);
|
|
|
|
// Check all TLS canaries
|
|
IntegrityResult canary_result = integrity_validate_tls_canaries(context);
|
|
if (!canary_result.passed) {
|
|
fprintf(stderr, "[INTEGRITY FAILURE] Periodic check failed: %s\n",
|
|
canary_result.message);
|
|
abort();
|
|
}
|
|
|
|
// Check TLS bounds for all classes
|
|
for (uint8_t cls = 0; cls < TINY_NUM_CLASSES; cls++) {
|
|
IntegrityResult bounds_result = integrity_validate_tls_bounds(cls, context);
|
|
if (!bounds_result.passed) {
|
|
fprintf(stderr, "[INTEGRITY FAILURE] Periodic check failed for class %u: %s\n",
|
|
cls, bounds_result.message);
|
|
abort();
|
|
}
|
|
}
|
|
}
|
|
|
|
// ============================================================================
|
|
// Statistics API
|
|
// ============================================================================
|
|
|
|
IntegrityStatistics integrity_get_statistics(void) {
|
|
IntegrityStatistics stats;
|
|
stats.checks_performed = atomic_load(&g_integrity_checks_performed);
|
|
stats.checks_passed = atomic_load(&g_integrity_checks_passed);
|
|
stats.checks_failed = atomic_load(&g_integrity_checks_failed);
|
|
stats.tls_bounds_checks = atomic_load(&g_integrity_tls_bounds_checks);
|
|
stats.freelist_checks = atomic_load(&g_integrity_freelist_checks);
|
|
stats.metadata_checks = atomic_load(&g_integrity_metadata_checks);
|
|
stats.canary_checks = atomic_load(&g_integrity_canary_checks);
|
|
stats.full_system_checks = atomic_load(&g_integrity_full_system_checks);
|
|
return stats;
|
|
}
|
|
|
|
void integrity_print_statistics(void) {
|
|
IntegrityStatistics stats = integrity_get_statistics();
|
|
|
|
fprintf(stderr, "\n=== Box I: Integrity Statistics ===\n");
|
|
fprintf(stderr, "Total checks performed: %lu\n", stats.checks_performed);
|
|
fprintf(stderr, " Passed: %lu (%.2f%%)\n", stats.checks_passed,
|
|
stats.checks_performed > 0 ? 100.0 * stats.checks_passed / stats.checks_performed : 0.0);
|
|
fprintf(stderr, " Failed: %lu (%.2f%%)\n", stats.checks_failed,
|
|
stats.checks_performed > 0 ? 100.0 * stats.checks_failed / stats.checks_performed : 0.0);
|
|
fprintf(stderr, "\nBy check type:\n");
|
|
fprintf(stderr, " TLS bounds checks: %lu\n", stats.tls_bounds_checks);
|
|
fprintf(stderr, " Freelist checks: %lu\n", stats.freelist_checks);
|
|
fprintf(stderr, " Metadata checks: %lu (Priority ALPHA)\n", stats.metadata_checks);
|
|
fprintf(stderr, " Canary checks: %lu\n", stats.canary_checks);
|
|
fprintf(stderr, " Full system checks: %lu\n", stats.full_system_checks);
|
|
fprintf(stderr, "===================================\n\n");
|
|
}
|