Files
ARSV/reimplement/newset.c
T
2026-07-17 02:09:29 +03:00

758 lines
23 KiB
C

#include <assert.h>
#include <stdlib.h>
#include <string.h>
#include "rpmlib.h"
#include "stdint.h"
#include "stdio.h"
#include "system.h"
struct set {
size_t cnt;
struct symbols {
const char* str;
int hash;
}* symbols_v;
};
struct set* set_new() {
struct set* set = xmalloc(sizeof *set);
set->cnt = 0;
set->symbols_v = NULL;
return set;
}
void set_add(struct set* set, const char* sym) {
const int delta = 1024;
if (set->cnt % delta == 0) {
set->symbols_v = xrealloc(set->symbols_v, sizeof(*set->symbols_v) * (set->cnt + delta));
}
set->symbols_v[set->cnt].str = xstrdup(sym);
set->symbols_v[set->cnt].hash = 0;
set->cnt++;
return;
}
struct set* set_free(struct set* set) {
if (set) {
for (size_t i = 0; i < set->cnt; ++i) {
_free((char*)set->symbols_v[i].str);
}
_free(set->symbols_v);
set = _free(set);
}
return NULL;
}
// ---
static unsigned hash(const char* str) {
unsigned hash = 0x9e3779b9;
const unsigned char* p = (const unsigned char*)str;
while (*p) {
hash += *p++;
hash += (hash << 10);
hash ^= (hash >> 6);
}
hash += (hash << 3);
hash ^= (hash >> 11);
hash += (hash << 15);
return hash;
}
int cmp(const void* arg1, const void* arg2) {
const struct symbols* s1 = arg1;
const struct symbols* s2 = arg2;
if (s1->hash > s2->hash) return 1;
if (s2->hash > s1->hash) return -1;
return 0;
}
// ---
static int log2i(int n) {
int m = 0;
while (n /= 2) m++;
return m;
}
// Calculate Mshift paramter for encoding.
static int encode_golomb_Mshift(int cnt, int bpp) {
// XXX Slightly better Mshift estimations are probably possible.
// Recheck "Compression and coding algorithms" by Moffat & Turpin.
int Mshift = bpp - log2i(cnt) - 1;
// Adjust out-of-range values.
Mshift = (Mshift < 7) ? 7 : Mshift;
Mshift = (Mshift > 31) ? 31 : Mshift;
assert(Mshift < bpp);
return Mshift;
}
// Estimate how many bits can be filled up.
static inline int encode_golomb_size(int cnt, int Mshift) {
// XXX No precise estimation. However, we do not expect unary-encoded bits
// to take more than binary-encoded Mshift bits.
return Mshift * 2 * cnt + 16;
}
// Estimate base62 buffer size required to encode a given number of bits.
static inline int encode_base62_size(int bit_cnt) {
// In the worst case, which is ZxZxZx..., five bits can make a character;
// the remaining bits can make a character, too. And the string must be
// null-terminated.
return bit_cnt / 5 + 2;
}
static int encode_set_size(int cnt, int bpp) {
int Mshift = encode_golomb_Mshift(cnt, bpp);
int bit_cnt = encode_golomb_size(cnt, Mshift);
// two leading characters are special
return 2 + encode_base62_size(bit_cnt);
}
// ---
static void encode_delta(int cnt, unsigned* hash_pt) {
assert(cnt > 0);
unsigned* end_pt = hash_pt + cnt;
unsigned prev_hash = *hash_pt++;
while (hash_pt < end_pt) {
*hash_pt -= prev_hash;
prev_hash += *hash_pt++;
}
return;
}
// Main golomb encoding routine: package integers into bits.
// http://algo2.iti.uni-karlsruhe.de/singler/publications/cacheefficientbloomfilters-wea2007.pdf
// The first integer is then stored in unary coding (which is a variable-length sequence of '0'
// followed by a terminating '1'); the second part is stored in normal binary coding (using Mshift
// bits).
static int encode_golomb(int cnt, const unsigned* delta_pt, int Mshift, char* bit_pt) {
char* start_pt = bit_pt;
const unsigned mask = (1 << Mshift) - 1;
for (int i = 0; i < cnt; ++i) {
unsigned elem = *delta_pt++;
// first part: variable-length sequence
unsigned q = elem >> Mshift;
for (int j = 0; j < (int)q; ++j) {
*bit_pt++ = 0;
}
*bit_pt++ = 1;
// second part: lower Mshift bits
unsigned r = elem & mask;
for (int j = 0; j < Mshift; ++j) {
*bit_pt++ = r & 1;
r >>= 1;
}
}
return bit_pt - start_pt;
}
// Main base62 encoding routine: pack bit_arr into base62 string.
/*
* Base62 routines - encode bits with alnum characters.
*
* This is a base64-based base62 implementation. Values 0..61 are encoded
* with '0'..'9', 'a'..'z', and 'A'..'Z'. However, 'Z' is special: it will
* also encode 62 and 63. To achieve this, 'Z' will occupy two high bits in
* the next character. Thus 'Z' can be interpreted as an escape character
* (which indicates that the next character must be handled specially).
* Note that setting high bits to "00", "01" or "10" cannot contribute
* to another 'Z' (which would require high bits set to "11"). This is
* how multiple escapes are avoided.
*/
static char* bits_to_char(int c, char* base62) {
assert(c >= 0 && c <= 61);
if (c < 10) {
*base62++ = c + '0';
} else if (c < 36) {
*base62++ = c - 10 + 'a';
} else if (c < 62) {
*base62++ = c - 36 + 'A';
}
return base62;
}
// filling from the least significant bits, in case of Z - put in the most significant bits
static int encode_base62(int bit_cnt, const char* bit_pt, char* base62_str_pt) {
char* base62_start = base62_str_pt;
int bits2 = 0; // number of high bits set
int bits6 = 0; // number of regular bits set
int num6b = 0; // pending 6-bit number
while (bit_cnt-- > 0) {
num6b |= (*bit_pt++ << bits6++);
if (bits6 + bits2 < 6) continue;
if (num6b >= 61) { // 61 62 63 cases
base62_str_pt = bits_to_char(61, base62_str_pt);
bits2 = 2;
num6b = (num6b - 61) << 4; // (0|16|32) in high bits
} else {
assert(num6b < 61);
base62_str_pt = bits_to_char(num6b, base62_str_pt);
bits2 = 0;
num6b = 0;
}
bits6 = 0;
}
if (bits6 + bits2) {
assert(num6b < 61);
base62_str_pt = bits_to_char(num6b, base62_str_pt);
}
*base62_str_pt = '\0';
return base62_str_pt - base62_start;
}
// ---
static inline char encode_bpp(int bpp) { return bpp - 7 + 'a'; }
static int encode_set(int cnt, unsigned* hash_arr, int bpp, char* base62_str) {
int Mshift = encode_golomb_Mshift(cnt, bpp);
int bit_cnt = encode_golomb_size(cnt, Mshift);
char bit_arr[bit_cnt];
*base62_str++ = encode_bpp(bpp);
*base62_str++ = encode_bpp(Mshift);
// hash_arr -> delta_arr
encode_delta(cnt, hash_arr);
bit_cnt = encode_golomb(cnt, hash_arr, Mshift, bit_arr);
assert(bit_cnt >= 0);
size_t base62_len = encode_base62(bit_cnt, bit_arr, base62_str);
assert(base62_len > 0);
return 2 + base62_len;
}
const char* set_fini(struct set* set, int bpp) {
// Implementation for finalizing the set
assert(set != NULL);
assert(set->cnt > 0);
assert(bpp >= 10 && bpp <= 32);
int mask = (bpp < 32) ? (1u << bpp) - 1 : ~0u;
for (size_t i = 0; i < set->cnt; ++i) {
set->symbols_v[i].hash = hash(set->symbols_v[i].str) & mask;
}
qsort(set->symbols_v, set->cnt, sizeof *set->symbols_v, cmp);
// warn on hash collizions
for (size_t i = 0; i < set->cnt - 1; ++i) {
if (set->symbols_v[i].hash != set->symbols_v[i + 1].hash) continue;
if (!strcmp(set->symbols_v[i].str, set->symbols_v[i + 1].str)) continue;
fprintf(stderr, "warning: hash collision: %s %s\n", set->symbols_v[i].str,
set->symbols_v[i + 1].str);
}
int unique_hash[set->cnt];
size_t unique_cnt = 0;
// delete duplicates
for (size_t i = 0; i < set->cnt; ++i) {
while (i + 1 < set->cnt && set->symbols_v[i].hash == set->symbols_v[i + 1].hash) {
++i;
}
unique_hash[unique_cnt++] = set->symbols_v[i].hash;
}
char base62_str[encode_set_size(unique_cnt, bpp)];
encode_set(unique_cnt, unique_hash, bpp, base62_str);
return xstrdup(base62_str);
}
// ---
// decode bpp or Mshift value
static inline int decode_bpp(const char* str) { return *str++ + 7 - 'a'; }
static int decode_set_check(const char* str) {
// 7..32 values encoded with 'a'..'z'
int bpp = decode_bpp(str);
if (bpp < 10 || bpp > 32) return -1;
// golomb parameter
int Mshift = decode_bpp(str + 1);
if (Mshift < 7 || Mshift > 31) return -2;
if (Mshift >= bpp) return -3;
// no empty sets for now
if (*str == '\0') return -4;
return 0;
}
static int decode_set_size(const char* str) {
int bit_cnt = 6 * (strlen(str) - 2); // each base62 char can encode up to 6 bits
return bit_cnt / (decode_bpp(str + 1) + 1); // estimate number of values based on Mshift
}
static int char_to_num(char c) {
if (c == '\0') return 0xff; // end of string
if (c >= '0' && c <= '9') return c - '0';
if (c >= 'a' && c <= 'z') return c - 'a' + 10;
if (c >= 'A' && c <= 'Z') return c - 'A' + 36;
return 0xee; // invalid character
}
// надо посмотреть, насколько в действительности это делает хуже
static char* putnbits(int n, int c, char* bit_pt) {
for (int i = 0; i < n; ++i) {
*bit_pt++ = (c >> i) & 1;
}
return bit_pt;
}
// Main base62 decoding routine: unpack base62 string into bitv[].
static int decode_base62(const char* base62_str, char* bit_pt) {
char* bit_start = bit_pt;
unsigned num6b = char_to_num(*base62_str++); // pending 6-bit number
while (num6b != 0xff) {
if (num6b == 0xee) return -1;
if (num6b < 61) {
bit_pt = putnbits(6, num6b, bit_pt);
} else {
assert(num6b == 61);
// 61 62 63 cases
unsigned mask = (1 << 4) | (1 << 5); // high bits mask
int num4b = char_to_num(*base62_str++);
if (num4b == 0xff) return -2;
if (num4b == 0xee) return -3;
int num2b = num4b & mask; // high bits
num4b &= ~mask; // low bits
assert(num2b != mask); // not both bits set
bit_pt = putnbits(6, 61 + num2b >> 4, bit_pt); // 61 + (0|1|2) in high bits
bit_pt = putnbits(4, num4b, bit_pt);
}
num6b = char_to_num(*base62_str++);
}
return bit_pt - bit_start;
}
// Main golomb decoding routine: unpackage bits into values.
static int decode_golomb(int bit_cnt, const char* bit_pt, int Mshift, unsigned* golomb_pt) {
unsigned* golomb_start = golomb_pt;
// next value
while (bit_cnt > 0) {
// first part
unsigned q = 0;
char bit = 0;
while (bit_cnt > 0) {
bit_cnt--;
bit = *bit_pt++;
if (bit == 0) {
q++;
} else {
break;
}
}
// trailing zero bits in the input are okay
if (bit_cnt == 0 && bit == 0) {
// up to 5 bits can be used to complete last character
if (q > 5) {
return -10;
}
break;
}
// otherwise, incomplete value is not okay
if (bit_cnt < Mshift) {
return -11;
}
// second part
unsigned r = 0;
int i;
for (i = 0; i < Mshift; i++) {
bit_cnt--;
if (*bit_pt++) {
r |= (1 << i);
}
}
// the value
*golomb_pt++ = (q << Mshift) | r;
}
return golomb_pt - golomb_start;
}
static void decode_delta(int cnt, unsigned* delta_pt) {
assert(cnt > 0);
unsigned* delta_end = delta_pt + cnt;
unsigned prev = *delta_pt++;
while (delta_pt < delta_end) {
*delta_pt += prev;
prev = *delta_pt++;
}
return;
}
static int decode_set(const char* str, unsigned* hash_arr) {
int Mshift = decode_bpp(str + 1);
const char* base62_str = str + 2;
// base62
char bit_arr[6 * strlen(base62_str)]; // each base62 char can encode up to 6 bits
int bit_cnt = decode_base62(base62_str, bit_arr);
if (bit_cnt < 0) return bit_cnt;
// golomb
int cnt = decode_golomb(bit_cnt, bit_arr, Mshift, hash_arr);
if (cnt < 0) return cnt;
// delta
decode_delta(cnt, hash_arr);
return cnt;
}
// Reduce a set of (bpp + 1) values to a set of bpp values.
static int downsample_set(int cnt, const unsigned* hash_pt, unsigned* ds_pt, int bpp) {
unsigned mask = (1 << bpp) - 1;
// find the first element with high bit set
int l = 0;
int u = cnt;
while (l < u) {
int i = (l + u) / 2;
if (hash_pt[i] <= mask) {
l = i + 1;
} else {
u = i;
}
}
// initialize parts
const unsigned* ds_start = ds_pt;
const unsigned *v1 = hash_pt + 0, *v1_end = hash_pt + u;
const unsigned *v2 = hash_pt + u, *v2_end = hash_pt + cnt;
// merge v1 and v2 into w
if (v1 < v1_end && v2 < v2_end) {
unsigned v1_val = *v1;
unsigned v2_val = *v2 & mask;
while (1) {
if (v1_val < v2_val) {
*ds_pt++ = v1_val;
v1++;
if (v1 == v1_end) break;
v1_val = *v1;
} else if (v2_val < v1_val) {
*ds_pt++ = v2_val;
v2++;
if (v2 == v2_end) break;
v2_val = *v2 & mask;
} else {
*ds_pt++ = v1_val;
v1++;
v2++;
if (v1 == v1_end) break;
if (v2 == v2_end) break;
v1_val = *v1;
v2_val = *v2 & mask;
}
}
}
// append what's left
while (v1 < v1_end) *ds_pt++ = *v1++;
while (v2 < v2_end) *ds_pt++ = *v2++ & mask;
return ds_pt - ds_start;
}
// main API routine
int rpmsetcmp(const char* str1, const char* str2) {
if (strncmp(str1, "set:", 4) == 0) str1 += 4;
if (strncmp(str2, "set:", 4) == 0) str2 += 4;
if (decode_set_check(str1) < 0) return -3;
if (decode_set_check(str2) < 0) return -4;
// decode set1
int cnt1 = decode_set_size(str1);
unsigned bufA1[cnt1];
unsigned bufB1[cnt1];
unsigned* hash_arr1 = bufA1;
cnt1 = decode_set(str1, hash_arr1);
if (cnt1 < 0) return -3;
// decode set2
int cnt2 = decode_set_size(str2);
unsigned bufA2[cnt2];
unsigned bufB2[cnt2];
unsigned* hash_arr2 = bufA2;
cnt2 = decode_set(str2, hash_arr2);
if (cnt2 < 0) return -4;
int bpp1 = decode_bpp(str1);
int bpp2 = decode_bpp(str2);
int min_bpp = (bpp1 < bpp2) ? bpp1 : bpp2;
while (bpp1 > min_bpp) {
unsigned* pt1 = bufA1;
if (hash_arr1 == pt1) {
pt1 = bufB1;
}
bpp1--;
cnt1 = downsample_set(cnt1, hash_arr1, pt1, bpp1);
hash_arr1 = pt1;
}
while (bpp2 > min_bpp) {
unsigned* pt2 = bufA2;
if (hash_arr2 == pt2) {
pt2 = bufB2;
}
bpp2--;
cnt2 = downsample_set(cnt2, hash_arr2, pt2, bpp2);
hash_arr2 = pt2;
}
for (int i = 0; i < cnt1; ++i) {
printf("%d ", hash_arr1[i]);
}
printf("\n");
printf("\n\n\n");
for (int i = 0; i < cnt2; ++i) {
printf("%d ", hash_arr2[i]);
}
printf("\n");
// compare
int ge = 1;
int le = 1;
const unsigned* end1 = hash_arr1 + cnt1;
const unsigned* end2 = hash_arr2 + cnt2;
while (hash_arr1 < end1 && hash_arr2 < end2) {
if (*hash_arr1 < *hash_arr2) {
le = 0;
hash_arr1++;
} else if (*hash_arr2 < *hash_arr1) {
ge = 0;
hash_arr2++;
} else {
hash_arr1++;
hash_arr2++;
}
}
if (hash_arr1 < end1) {
le = 0;
}
if (hash_arr2 < end2) {
ge = 0;
}
if (ge && le) {
return 0;
} else if (ge) {
return 1;
} else if (le) {
return -1;
}
return -2;
}
// ---
#ifdef SELF_TEST
int main(void) {
char* str1 =
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char* str2 =
"set:"
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"oCuW21EJxPkrx7fsfMOvyYUQrDfwipSpMk";
printf("cmp! %d\n", rpmsetcmp(str1, str2));
return 0;
struct set* set1 = set_new();
set_add(set1, "mama");
set_add(set1, "myla");
set_add(set1, "ramu");
const char* str10 = set_fini(set1, 16);
fprintf(stderr, "set10=%s\n", str10);
int cmp;
struct set* set2 = set_new();
set_add(set2, "myla");
set_add(set2, "mama");
const char* str20 = set_fini(set2, 16);
fprintf(stderr, "set20=%s\n", str20);
cmp = rpmsetcmp(str10, str20);
assert(cmp == 1);
set_add(set2, "ramu");
const char* str21 = set_fini(set2, 16);
fprintf(stderr, "set21=%s\n", str21);
cmp = rpmsetcmp(str10, str21);
assert(cmp == 0);
set_add(set2, "baba");
const char* str22 = set_fini(set2, 16);
cmp = rpmsetcmp(str10, str22);
assert(cmp == -1);
set_add(set1, "deda");
const char* str11 = set_fini(set1, 16);
cmp = rpmsetcmp(str11, str22);
assert(cmp == -2);
set1 = set_free(set1);
set2 = set_free(set2);
str10 = _free(str10);
str11 = _free(str11);
str20 = _free(str20);
str21 = _free(str21);
str22 = _free(str22);
fprintf(stderr, "%s: api test OK\n", __FILE__);
return 0;
}
#endif