#include "port/pg_bitutils.h"
#define SH_MAKE_PREFIX(a) CppConcat(a,_)
#define SH_MAKE_NAME(name) SH_MAKE_NAME_(SH_MAKE_PREFIX(SH_PREFIX),name)
#define SH_MAKE_NAME_(a,b) CppConcat(a,b)
#define SH_TYPE SH_MAKE_NAME(hash)
#define SH_STATUS SH_MAKE_NAME(status)
#define SH_STATUS_EMPTY SH_MAKE_NAME(SH_EMPTY)
#define SH_STATUS_IN_USE SH_MAKE_NAME(SH_IN_USE)
#define SH_ITERATOR SH_MAKE_NAME(iterator)
#define SH_CREATE SH_MAKE_NAME(create)
#define SH_DESTROY SH_MAKE_NAME(destroy)
#define SH_RESET SH_MAKE_NAME(reset)
#define SH_INSERT SH_MAKE_NAME(insert)
#define SH_INSERT_HASH SH_MAKE_NAME(insert_hash)
#define SH_DELETE SH_MAKE_NAME(delete)
#define SH_LOOKUP SH_MAKE_NAME(lookup)
#define SH_LOOKUP_HASH SH_MAKE_NAME(lookup_hash)
#define SH_GROW SH_MAKE_NAME(grow)
#define SH_START_ITERATE SH_MAKE_NAME(start_iterate)
#define SH_START_ITERATE_AT SH_MAKE_NAME(start_iterate_at)
#define SH_ITERATE SH_MAKE_NAME(iterate)
#define SH_ALLOCATE SH_MAKE_NAME(allocate)
#define SH_FREE SH_MAKE_NAME(free)
#define SH_STAT SH_MAKE_NAME(stat)
#define SH_COMPUTE_PARAMETERS SH_MAKE_NAME(compute_parameters)
#define SH_NEXT SH_MAKE_NAME(next)
#define SH_PREV SH_MAKE_NAME(prev)
#define SH_DISTANCE_FROM_OPTIMAL SH_MAKE_NAME(distance)
#define SH_INITIAL_BUCKET SH_MAKE_NAME(initial_bucket)
#define SH_ENTRY_HASH SH_MAKE_NAME(entry_hash)
#define SH_INSERT_HASH_INTERNAL SH_MAKE_NAME(insert_hash_internal)
#define SH_LOOKUP_HASH_INTERNAL SH_MAKE_NAME(lookup_hash_internal)
#ifdef SH_DECLARE
typedef struct SH_TYPE
{
uint64 size;
uint32 members;
uint32 sizemask;
uint32 grow_threshold;
SH_ELEMENT_TYPE *data;
#ifndef SH_RAW_ALLOCATOR
MemoryContext ctx;
#endif
void *private_data;
} SH_TYPE;
typedef enum SH_STATUS
{
SH_STATUS_EMPTY = 0x00,
SH_STATUS_IN_USE = 0x01
} SH_STATUS;
typedef struct SH_ITERATOR
{
uint32 cur;
uint32 end;
bool done;
} SH_ITERATOR;
#ifdef SH_RAW_ALLOCATOR
SH_SCOPE SH_TYPE *SH_CREATE(uint32 nelements, void *private_data);
#else
SH_SCOPE SH_TYPE *SH_CREATE(MemoryContext ctx, uint32 nelements,
void *private_data);
#endif
SH_SCOPE void SH_DESTROY(SH_TYPE * tb);
SH_SCOPE void SH_RESET(SH_TYPE * tb);
SH_SCOPE void SH_GROW(SH_TYPE * tb, uint32 newsize);
SH_SCOPE SH_ELEMENT_TYPE *SH_INSERT(SH_TYPE * tb, SH_KEY_TYPE key, bool *found);
SH_SCOPE SH_ELEMENT_TYPE *SH_INSERT_HASH(SH_TYPE * tb, SH_KEY_TYPE key,
uint32 hash, bool *found);
SH_SCOPE SH_ELEMENT_TYPE *SH_LOOKUP(SH_TYPE * tb, SH_KEY_TYPE key);
SH_SCOPE SH_ELEMENT_TYPE *SH_LOOKUP_HASH(SH_TYPE * tb, SH_KEY_TYPE key,
uint32 hash);
SH_SCOPE bool SH_DELETE(SH_TYPE * tb, SH_KEY_TYPE key);
SH_SCOPE void SH_START_ITERATE(SH_TYPE * tb, SH_ITERATOR * iter);
SH_SCOPE void SH_START_ITERATE_AT(SH_TYPE * tb, SH_ITERATOR * iter, uint32 at);
SH_SCOPE SH_ELEMENT_TYPE *SH_ITERATE(SH_TYPE * tb, SH_ITERATOR * iter);
SH_SCOPE void SH_STAT(SH_TYPE * tb);
#endif
#ifdef SH_DEFINE
#ifndef SH_RAW_ALLOCATOR
#include "utils/memutils.h"
#endif
#define SH_MAX_SIZE (((uint64) PG_UINT32_MAX) + 1)
#ifndef SH_FILLFACTOR
#define SH_FILLFACTOR (0.9)
#endif
#define SH_MAX_FILLFACTOR (0.98)
#ifndef SH_GROW_MAX_DIB
#define SH_GROW_MAX_DIB 25
#endif
#ifndef SH_GROW_MAX_MOVE
#define SH_GROW_MAX_MOVE 150
#endif
#ifndef SH_GROW_MIN_FILLFACTOR
#define SH_GROW_MIN_FILLFACTOR 0.1
#endif
#ifdef SH_STORE_HASH
#define SH_COMPARE_KEYS(tb, ahash, akey, b) (ahash == SH_GET_HASH(tb, b) && SH_EQUAL(tb, b->SH_KEY, akey))
#else
#define SH_COMPARE_KEYS(tb, ahash, akey, b) (SH_EQUAL(tb, b->SH_KEY, akey))
#endif
#ifndef SIMPLEHASH_H
#define SIMPLEHASH_H
#ifdef FRONTEND
#define sh_error(...) pg_log_error(__VA_ARGS__)
#define sh_log(...) pg_log_info(__VA_ARGS__)
#else
#define sh_error(...) elog(ERROR, __VA_ARGS__)
#define sh_log(...) elog(LOG, __VA_ARGS__)
#endif
#endif
static inline void
SH_COMPUTE_PARAMETERS(SH_TYPE * tb, uint32 newsize)
{
uint64 size;
size = Max(newsize, 2);
size = pg_nextpower2_64(size);
Assert(size <= SH_MAX_SIZE);
if ((((uint64) sizeof(SH_ELEMENT_TYPE)) * size) >= SIZE_MAX / 2)
sh_error("hash table too large");
tb->size = size;
if (tb->size == SH_MAX_SIZE)
tb->sizemask = 0;
else
tb->sizemask = tb->size - 1;
if (tb->size == SH_MAX_SIZE)
tb->grow_threshold = ((double) tb->size) * SH_MAX_FILLFACTOR;
else
tb->grow_threshold = ((double) tb->size) * SH_FILLFACTOR;
}
static inline uint32
SH_INITIAL_BUCKET(SH_TYPE * tb, uint32 hash)
{
return hash & tb->sizemask;
}
static inline uint32
SH_NEXT(SH_TYPE * tb, uint32 curelem, uint32 startelem)
{
curelem = (curelem + 1) & tb->sizemask;
Assert(curelem != startelem);
return curelem;
}
static inline uint32
SH_PREV(SH_TYPE * tb, uint32 curelem, uint32 startelem)
{
curelem = (curelem - 1) & tb->sizemask;
Assert(curelem != startelem);
return curelem;
}
static inline uint32
SH_DISTANCE_FROM_OPTIMAL(SH_TYPE * tb, uint32 optimal, uint32 bucket)
{
if (optimal <= bucket)
return bucket - optimal;
else
return (tb->size + bucket) - optimal;
}
static inline uint32
SH_ENTRY_HASH(SH_TYPE * tb, SH_ELEMENT_TYPE * entry)
{
#ifdef SH_STORE_HASH
return SH_GET_HASH(tb, entry);
#else
return SH_HASH_KEY(tb, entry->SH_KEY);
#endif
}
static inline void *SH_ALLOCATE(SH_TYPE * type, Size size);
static inline void SH_FREE(SH_TYPE * type, void *pointer);
#ifndef SH_USE_NONDEFAULT_ALLOCATOR
static inline void *
SH_ALLOCATE(SH_TYPE * type, Size size)
{
#ifdef SH_RAW_ALLOCATOR
return SH_RAW_ALLOCATOR(size);
#else
return MemoryContextAllocExtended(type->ctx, size,
MCXT_ALLOC_HUGE | MCXT_ALLOC_ZERO);
#endif
}
static inline void
SH_FREE(SH_TYPE * type, void *pointer)
{
pfree(pointer);
}
#endif
#ifdef SH_RAW_ALLOCATOR
SH_SCOPE SH_TYPE *
SH_CREATE(uint32 nelements, void *private_data)
#else
SH_SCOPE SH_TYPE *
SH_CREATE(MemoryContext ctx, uint32 nelements, void *private_data)
#endif
{
SH_TYPE *tb;
uint64 size;
#ifdef SH_RAW_ALLOCATOR
tb = SH_RAW_ALLOCATOR(sizeof(SH_TYPE));
#else
tb = MemoryContextAllocZero(ctx, sizeof(SH_TYPE));
tb->ctx = ctx;
#endif
tb->private_data = private_data;
size = Min((double) SH_MAX_SIZE, ((double) nelements) / SH_FILLFACTOR);
SH_COMPUTE_PARAMETERS(tb, size);
tb->data = SH_ALLOCATE(tb, sizeof(SH_ELEMENT_TYPE) * tb->size);
return tb;
}
SH_SCOPE void
SH_DESTROY(SH_TYPE * tb)
{
SH_FREE(tb, tb->data);
pfree(tb);
}
SH_SCOPE void
SH_RESET(SH_TYPE * tb)
{
memset(tb->data, 0, sizeof(SH_ELEMENT_TYPE) * tb->size);
tb->members = 0;
}
SH_SCOPE void
SH_GROW(SH_TYPE * tb, uint32 newsize)
{
uint64 oldsize = tb->size;
SH_ELEMENT_TYPE *olddata = tb->data;
SH_ELEMENT_TYPE *newdata;
uint32 i;
uint32 startelem = 0;
uint32 copyelem;
Assert(oldsize == pg_nextpower2_64(oldsize));
Assert(oldsize != SH_MAX_SIZE);
Assert(oldsize < newsize);
SH_COMPUTE_PARAMETERS(tb, newsize);
tb->data = SH_ALLOCATE(tb, sizeof(SH_ELEMENT_TYPE) * tb->size);
newdata = tb->data;
for (i = 0; i < oldsize; i++)
{
SH_ELEMENT_TYPE *oldentry = &olddata[i];
uint32 hash;
uint32 optimal;
if (oldentry->status != SH_STATUS_IN_USE)
{
startelem = i;
break;
}
hash = SH_ENTRY_HASH(tb, oldentry);
optimal = SH_INITIAL_BUCKET(tb, hash);
if (optimal == i)
{
startelem = i;
break;
}
}
copyelem = startelem;
for (i = 0; i < oldsize; i++)
{
SH_ELEMENT_TYPE *oldentry = &olddata[copyelem];
if (oldentry->status == SH_STATUS_IN_USE)
{
uint32 hash;
uint32 startelem;
uint32 curelem;
SH_ELEMENT_TYPE *newentry;
hash = SH_ENTRY_HASH(tb, oldentry);
startelem = SH_INITIAL_BUCKET(tb, hash);
curelem = startelem;
while (true)
{
newentry = &newdata[curelem];
if (newentry->status == SH_STATUS_EMPTY)
{
break;
}
curelem = SH_NEXT(tb, curelem, startelem);
}
memcpy(newentry, oldentry, sizeof(SH_ELEMENT_TYPE));
}
copyelem++;
if (copyelem >= oldsize)
{
copyelem = 0;
}
}
SH_FREE(tb, olddata);
}
static inline SH_ELEMENT_TYPE *
SH_INSERT_HASH_INTERNAL(SH_TYPE * tb, SH_KEY_TYPE key, uint32 hash, bool *found)
{
uint32 startelem;
uint32 curelem;
SH_ELEMENT_TYPE *data;
uint32 insertdist;
restart:
insertdist = 0;
if (unlikely(tb->members >= tb->grow_threshold))
{
if (tb->size == SH_MAX_SIZE)
{
sh_error("hash table size exceeded");
}
SH_GROW(tb, tb->size * 2);
}
data = tb->data;
startelem = SH_INITIAL_BUCKET(tb, hash);
curelem = startelem;
while (true)
{
uint32 curdist;
uint32 curhash;
uint32 curoptimal;
SH_ELEMENT_TYPE *entry = &data[curelem];
if (entry->status == SH_STATUS_EMPTY)
{
tb->members++;
entry->SH_KEY = key;
#ifdef SH_STORE_HASH
SH_GET_HASH(tb, entry) = hash;
#endif
entry->status = SH_STATUS_IN_USE;
*found = false;
return entry;
}
if (SH_COMPARE_KEYS(tb, hash, key, entry))
{
Assert(entry->status == SH_STATUS_IN_USE);
*found = true;
return entry;
}
curhash = SH_ENTRY_HASH(tb, entry);
curoptimal = SH_INITIAL_BUCKET(tb, curhash);
curdist = SH_DISTANCE_FROM_OPTIMAL(tb, curoptimal, curelem);
if (insertdist > curdist)
{
SH_ELEMENT_TYPE *lastentry = entry;
uint32 emptyelem = curelem;
uint32 moveelem;
int32 emptydist = 0;
while (true)
{
SH_ELEMENT_TYPE *emptyentry;
emptyelem = SH_NEXT(tb, emptyelem, startelem);
emptyentry = &data[emptyelem];
if (emptyentry->status == SH_STATUS_EMPTY)
{
lastentry = emptyentry;
break;
}
if (unlikely(++emptydist > SH_GROW_MAX_MOVE) &&
((double) tb->members / tb->size) >= SH_GROW_MIN_FILLFACTOR)
{
tb->grow_threshold = 0;
goto restart;
}
}
moveelem = emptyelem;
while (moveelem != curelem)
{
SH_ELEMENT_TYPE *moveentry;
moveelem = SH_PREV(tb, moveelem, startelem);
moveentry = &data[moveelem];
memcpy(lastentry, moveentry, sizeof(SH_ELEMENT_TYPE));
lastentry = moveentry;
}
tb->members++;
entry->SH_KEY = key;
#ifdef SH_STORE_HASH
SH_GET_HASH(tb, entry) = hash;
#endif
entry->status = SH_STATUS_IN_USE;
*found = false;
return entry;
}
curelem = SH_NEXT(tb, curelem, startelem);
insertdist++;
if (unlikely(insertdist > SH_GROW_MAX_DIB) &&
((double) tb->members / tb->size) >= SH_GROW_MIN_FILLFACTOR)
{
tb->grow_threshold = 0;
goto restart;
}
}
}
SH_SCOPE SH_ELEMENT_TYPE *
SH_INSERT(SH_TYPE * tb, SH_KEY_TYPE key, bool *found)
{
uint32 hash = SH_HASH_KEY(tb, key);
return SH_INSERT_HASH_INTERNAL(tb, key, hash, found);
}
SH_SCOPE SH_ELEMENT_TYPE *
SH_INSERT_HASH(SH_TYPE * tb, SH_KEY_TYPE key, uint32 hash, bool *found)
{
return SH_INSERT_HASH_INTERNAL(tb, key, hash, found);
}
static inline SH_ELEMENT_TYPE *
SH_LOOKUP_HASH_INTERNAL(SH_TYPE * tb, SH_KEY_TYPE key, uint32 hash)
{
const uint32 startelem = SH_INITIAL_BUCKET(tb, hash);
uint32 curelem = startelem;
while (true)
{
SH_ELEMENT_TYPE *entry = &tb->data[curelem];
if (entry->status == SH_STATUS_EMPTY)
{
return NULL;
}
Assert(entry->status == SH_STATUS_IN_USE);
if (SH_COMPARE_KEYS(tb, hash, key, entry))
return entry;
curelem = SH_NEXT(tb, curelem, startelem);
}
}
SH_SCOPE SH_ELEMENT_TYPE *
SH_LOOKUP(SH_TYPE * tb, SH_KEY_TYPE key)
{
uint32 hash = SH_HASH_KEY(tb, key);
return SH_LOOKUP_HASH_INTERNAL(tb, key, hash);
}
SH_SCOPE SH_ELEMENT_TYPE *
SH_LOOKUP_HASH(SH_TYPE * tb, SH_KEY_TYPE key, uint32 hash)
{
return SH_LOOKUP_HASH_INTERNAL(tb, key, hash);
}
SH_SCOPE bool
SH_DELETE(SH_TYPE * tb, SH_KEY_TYPE key)
{
uint32 hash = SH_HASH_KEY(tb, key);
uint32 startelem = SH_INITIAL_BUCKET(tb, hash);
uint32 curelem = startelem;
while (true)
{
SH_ELEMENT_TYPE *entry = &tb->data[curelem];
if (entry->status == SH_STATUS_EMPTY)
return false;
if (entry->status == SH_STATUS_IN_USE &&
SH_COMPARE_KEYS(tb, hash, key, entry))
{
SH_ELEMENT_TYPE *lastentry = entry;
tb->members--;
while (true)
{
SH_ELEMENT_TYPE *curentry;
uint32 curhash;
uint32 curoptimal;
curelem = SH_NEXT(tb, curelem, startelem);
curentry = &tb->data[curelem];
if (curentry->status != SH_STATUS_IN_USE)
{
lastentry->status = SH_STATUS_EMPTY;
break;
}
curhash = SH_ENTRY_HASH(tb, curentry);
curoptimal = SH_INITIAL_BUCKET(tb, curhash);
if (curoptimal == curelem)
{
lastentry->status = SH_STATUS_EMPTY;
break;
}
memcpy(lastentry, curentry, sizeof(SH_ELEMENT_TYPE));
lastentry = curentry;
}
return true;
}
curelem = SH_NEXT(tb, curelem, startelem);
}
}
SH_SCOPE void
SH_START_ITERATE(SH_TYPE * tb, SH_ITERATOR * iter)
{
int i;
uint64 startelem = PG_UINT64_MAX;
for (i = 0; i < tb->size; i++)
{
SH_ELEMENT_TYPE *entry = &tb->data[i];
if (entry->status != SH_STATUS_IN_USE)
{
startelem = i;
break;
}
}
Assert(startelem < SH_MAX_SIZE);
iter->cur = startelem;
iter->end = iter->cur;
iter->done = false;
}
SH_SCOPE void
SH_START_ITERATE_AT(SH_TYPE * tb, SH_ITERATOR * iter, uint32 at)
{
iter->cur = at & tb->sizemask;
iter->end = iter->cur;
iter->done = false;
}
SH_SCOPE SH_ELEMENT_TYPE *
SH_ITERATE(SH_TYPE * tb, SH_ITERATOR * iter)
{
while (!iter->done)
{
SH_ELEMENT_TYPE *elem;
elem = &tb->data[iter->cur];
iter->cur = (iter->cur - 1) & tb->sizemask;
if ((iter->cur & tb->sizemask) == (iter->end & tb->sizemask))
iter->done = true;
if (elem->status == SH_STATUS_IN_USE)
{
return elem;
}
}
return NULL;
}
SH_SCOPE void
SH_STAT(SH_TYPE * tb)
{
uint32 max_chain_length = 0;
uint32 total_chain_length = 0;
double avg_chain_length;
double fillfactor;
uint32 i;
uint32 *collisions = palloc0(tb->size * sizeof(uint32));
uint32 total_collisions = 0;
uint32 max_collisions = 0;
double avg_collisions;
for (i = 0; i < tb->size; i++)
{
uint32 hash;
uint32 optimal;
uint32 dist;
SH_ELEMENT_TYPE *elem;
elem = &tb->data[i];
if (elem->status != SH_STATUS_IN_USE)
continue;
hash = SH_ENTRY_HASH(tb, elem);
optimal = SH_INITIAL_BUCKET(tb, hash);
dist = SH_DISTANCE_FROM_OPTIMAL(tb, optimal, i);
if (dist > max_chain_length)
max_chain_length = dist;
total_chain_length += dist;
collisions[optimal]++;
}
for (i = 0; i < tb->size; i++)
{
uint32 curcoll = collisions[i];
if (curcoll == 0)
continue;
curcoll--;
total_collisions += curcoll;
if (curcoll > max_collisions)
max_collisions = curcoll;
}
if (tb->members > 0)
{
fillfactor = tb->members / ((double) tb->size);
avg_chain_length = ((double) total_chain_length) / tb->members;
avg_collisions = ((double) total_collisions) / tb->members;
}
else
{
fillfactor = 0;
avg_chain_length = 0;
avg_collisions = 0;
}
sh_log("size: " UINT64_FORMAT ", members: %u, filled: %f, total chain: %u, max chain: %u, avg chain: %f, total_collisions: %u, max_collisions: %i, avg_collisions: %f",
tb->size, tb->members, fillfactor, total_chain_length, max_chain_length, avg_chain_length,
total_collisions, max_collisions, avg_collisions);
}
#endif
#undef SH_PREFIX
#undef SH_KEY_TYPE
#undef SH_KEY
#undef SH_ELEMENT_TYPE
#undef SH_HASH_KEY
#undef SH_SCOPE
#undef SH_DECLARE
#undef SH_DEFINE
#undef SH_GET_HASH
#undef SH_STORE_HASH
#undef SH_USE_NONDEFAULT_ALLOCATOR
#undef SH_EQUAL
#undef SH_MAKE_PREFIX
#undef SH_MAKE_NAME
#undef SH_MAKE_NAME_
#undef SH_FILLFACTOR
#undef SH_MAX_FILLFACTOR
#undef SH_GROW_MAX_DIB
#undef SH_GROW_MAX_MOVE
#undef SH_GROW_MIN_FILLFACTOR
#undef SH_MAX_SIZE
#undef SH_TYPE
#undef SH_STATUS
#undef SH_STATUS_EMPTY
#undef SH_STATUS_IN_USE
#undef SH_ITERATOR
#undef SH_CREATE
#undef SH_DESTROY
#undef SH_RESET
#undef SH_INSERT
#undef SH_INSERT_HASH
#undef SH_DELETE
#undef SH_LOOKUP
#undef SH_LOOKUP_HASH
#undef SH_GROW
#undef SH_START_ITERATE
#undef SH_START_ITERATE_AT
#undef SH_ITERATE
#undef SH_ALLOCATE
#undef SH_FREE
#undef SH_STAT
#undef SH_COMPUTE_PARAMETERS
#undef SH_COMPARE_KEYS
#undef SH_INITIAL_BUCKET
#undef SH_NEXT
#undef SH_PREV
#undef SH_DISTANCE_FROM_OPTIMAL
#undef SH_ENTRY_HASH
#undef SH_INSERT_HASH_INTERNAL
#undef SH_LOOKUP_HASH_INTERNAL