#ifndef LLVM_LIBC_SRC___SUPPORT_HASHTABLE_TABLE_H
#define LLVM_LIBC_SRC___SUPPORT_HASHTABLE_TABLE_H
#include "include/llvm-libc-types/ENTRY.h"
#include "src/__support/CPP/bit.h"
#include "src/__support/CPP/new.h"
#include "src/__support/HashTable/bitmask.h"
#include "src/__support/hash.h"
#include "src/__support/macros/attributes.h"
#include "src/__support/macros/config.h"
#include "src/__support/macros/optimization.h"
#include "src/__support/memory_size.h"
#include "src/string/memset.h"
#include "src/string/strcmp.h"
#include "src/string/strlen.h"
#include <stddef.h>
#include <stdint.h>
namespace LIBC_NAMESPACE_DECL {
namespace internal {
LIBC_INLINE uint8_t secondary_hash(uint64_t hash) {
return static_cast<uint8_t>(hash >> 57);
}
struct ProbeSequence {
size_t position;
size_t stride;
size_t entries_mask;
LIBC_INLINE size_t next() {
position += stride;
position &= entries_mask;
stride += sizeof(Group);
return position;
}
};
LIBC_INLINE size_t capacity_to_entries(size_t cap) {
if (8 >= sizeof(Group) && cap < 8)
return 8;
if (16 >= sizeof(Group) && cap < 15)
return 16;
if (cap < sizeof(Group))
cap = sizeof(Group);
return cpp::bit_ceil(cap * 8 / 7);
}
struct HashTable {
HashState state;
size_t entries_mask;
size_t available_slots;
private:
LIBC_INLINE size_t num_of_entries() const { return entries_mask + 1; }
LIBC_INLINE size_t full_capacity() const { return num_of_entries() / 8 * 7; }
LIBC_INLINE constexpr static size_t table_alignment() {
size_t left_align = alignof(HashTable) > alignof(ENTRY) ? alignof(HashTable)
: alignof(ENTRY);
return left_align > alignof(Group) ? left_align : alignof(Group);
}
LIBC_INLINE bool is_full() const { return available_slots == 0; }
LIBC_INLINE size_t offset_from_entries() const {
size_t entries_size = num_of_entries() * sizeof(ENTRY);
return entries_size +
SafeMemSize::offset_to(entries_size, table_alignment());
}
LIBC_INLINE constexpr static size_t offset_to_groups() {
size_t header_size = sizeof(HashTable);
return header_size + SafeMemSize::offset_to(header_size, table_alignment());
}
LIBC_INLINE ENTRY &entry(size_t i) {
return reinterpret_cast<ENTRY *>(this)[-i - 1];
}
LIBC_INLINE const ENTRY &entry(size_t i) const {
return reinterpret_cast<const ENTRY *>(this)[-i - 1];
}
LIBC_INLINE uint8_t &control(size_t i) {
uint8_t *ptr = reinterpret_cast<uint8_t *>(this) + offset_to_groups();
return ptr[i];
}
LIBC_INLINE const uint8_t &control(size_t i) const {
const uint8_t *ptr =
reinterpret_cast<const uint8_t *>(this) + offset_to_groups();
return ptr[i];
}
LIBC_INLINE void set_ctrl(size_t index, uint8_t value) {
size_t index2 = ((index - sizeof(Group)) & entries_mask) + sizeof(Group);
control(index) = value;
control(index2) = value;
}
LIBC_INLINE size_t find(const char *key, uint64_t primary) {
uint8_t secondary = secondary_hash(primary);
ProbeSequence sequence{static_cast<size_t>(primary), 0, entries_mask};
while (true) {
size_t pos = sequence.next();
Group ctrls = Group::load(&control(pos));
IteratableBitMask masks = ctrls.match_byte(secondary);
for (size_t i : masks) {
size_t index = (pos + i) & entries_mask;
ENTRY &entry = this->entry(index);
if (LIBC_LIKELY(entry.key != nullptr && strcmp(entry.key, key) == 0))
return index;
}
BitMask available = ctrls.mask_available();
if (LIBC_LIKELY(available.any_bit_set())) {
size_t index =
(pos + available.lowest_set_bit_nonzero()) & entries_mask;
return index;
}
}
}
LIBC_INLINE uint64_t oneshot_hash(const char *key) const {
LIBC_NAMESPACE::internal::HashState hasher = state;
hasher.update(key, strlen(key));
return hasher.finish();
}
LIBC_INLINE ENTRY *unsafe_insert(ENTRY item) {
uint64_t primary = oneshot_hash(item.key);
uint8_t secondary = secondary_hash(primary);
ProbeSequence sequence{static_cast<size_t>(primary), 0, entries_mask};
while (true) {
size_t pos = sequence.next();
Group ctrls = Group::load(&control(pos));
BitMask available = ctrls.mask_available();
if (available.any_bit_set()) {
size_t index =
(pos + available.lowest_set_bit_nonzero()) & entries_mask;
set_ctrl(index, secondary);
entry(index).key = item.key;
entry(index).data = item.data;
available_slots--;
return &entry(index);
}
}
}
LIBC_INLINE HashTable *grow() const {
size_t hint = full_capacity() + 1;
HashState state = this->state;
state.update(&hint, sizeof(hint));
HashTable *new_table = allocate(hint, state.finish());
if (new_table != nullptr)
for (ENTRY e : *this)
new_table->unsafe_insert(e);
return new_table;
}
LIBC_INLINE static ENTRY *insert(HashTable *&table, ENTRY item,
uint64_t primary) {
auto index = table->find(item.key, primary);
auto slot = &table->entry(index);
if (slot->key != nullptr)
return slot;
if (table->is_full()) {
HashTable *new_table = table->grow();
if (new_table == nullptr)
return nullptr;
deallocate(table);
table = new_table;
return table->unsafe_insert(item);
}
table->set_ctrl(index, secondary_hash(primary));
slot->key = item.key;
slot->data = item.data;
table->available_slots--;
return slot;
}
public:
LIBC_INLINE static void deallocate(HashTable *table) {
if (table) {
void *ptr =
reinterpret_cast<uint8_t *>(table) - table->offset_from_entries();
operator delete(ptr, std::align_val_t{table_alignment()});
}
}
LIBC_INLINE static HashTable *allocate(size_t capacity, uint64_t randomness) {
if (capacity > size_t{1} << (8 * sizeof(size_t) - 1 - 3))
return nullptr;
SafeMemSize entries{capacity_to_entries(capacity)};
SafeMemSize entries_size = entries * SafeMemSize{sizeof(ENTRY)};
SafeMemSize align_boundary = entries_size.align_up(table_alignment());
SafeMemSize ctrl_sizes = entries + SafeMemSize{sizeof(Group)};
SafeMemSize header_size{offset_to_groups()};
SafeMemSize total_size =
(align_boundary + header_size + ctrl_sizes).align_up(table_alignment());
if (!total_size.valid())
return nullptr;
AllocChecker ac;
void *mem = operator new(total_size, std::align_val_t{table_alignment()},
ac);
HashTable *table = reinterpret_cast<HashTable *>(
static_cast<uint8_t *>(mem) + align_boundary);
if (ac) {
table->entries_mask = entries - 1u;
table->available_slots = entries / 8 * 7;
table->state = HashState{randomness};
memset(&table->control(0), 0x80, ctrl_sizes);
memset(mem, 0, table->offset_from_entries());
}
return table;
}
struct FullTableIterator {
size_t current_offset;
size_t remaining;
IteratableBitMask current_mask;
const HashTable &table;
LIBC_INLINE bool operator==(const FullTableIterator &other) const {
return remaining == other.remaining;
}
LIBC_INLINE bool operator!=(const FullTableIterator &other) const {
return remaining != other.remaining;
}
LIBC_INLINE FullTableIterator &operator++() {
this->ensure_valid_group();
current_mask.remove_lowest_bit();
remaining--;
return *this;
}
LIBC_INLINE const ENTRY &operator*() {
this->ensure_valid_group();
return table.entry(
(current_offset + current_mask.lowest_set_bit_nonzero()) &
table.entries_mask);
}
private:
LIBC_INLINE void ensure_valid_group() {
while (!current_mask.any_bit_set()) {
current_offset += sizeof(Group);
current_mask =
Group::load_aligned(&table.control(current_offset)).occupied();
}
}
};
using value_type = ENTRY;
using iterator = FullTableIterator;
iterator begin() const {
return {0, full_capacity() - available_slots,
Group::load_aligned(&control(0)).occupied(), *this};
}
iterator end() const { return {0, 0, {BitMask{0}}, *this}; }
LIBC_INLINE ENTRY *find(const char *key) {
uint64_t primary = oneshot_hash(key);
ENTRY &entry = this->entry(find(key, primary));
if (entry.key == nullptr)
return nullptr;
return &entry;
}
LIBC_INLINE static ENTRY *insert(HashTable *&table, ENTRY item) {
uint64_t primary = table->oneshot_hash(item.key);
return insert(table, item, primary);
}
};
}
}
#endif