diff options
Diffstat (limited to 'coreutils/factor.c')
| -rw-r--r-- | coreutils/factor.c | 170 |
1 files changed, 95 insertions, 75 deletions
diff --git a/coreutils/factor.c b/coreutils/factor.c index 1f24784fd..30498c73b 100644 --- a/coreutils/factor.c +++ b/coreutils/factor.c | |||
| @@ -19,6 +19,7 @@ | |||
| 19 | //usage: "Print prime factors" | 19 | //usage: "Print prime factors" |
| 20 | 20 | ||
| 21 | #include "libbb.h" | 21 | #include "libbb.h" |
| 22 | #include "common_bufsiz.h" | ||
| 22 | 23 | ||
| 23 | #if 0 | 24 | #if 0 |
| 24 | # define dbg(...) bb_error_msg(__VA_ARGS__) | 25 | # define dbg(...) bb_error_msg(__VA_ARGS__) |
| @@ -42,6 +43,83 @@ typedef unsigned long half_t; | |||
| 42 | #error Cant find an integer type which is half as wide as ullong | 43 | #error Cant find an integer type which is half as wide as ullong |
| 43 | #endif | 44 | #endif |
| 44 | 45 | ||
| 46 | /* The trial divisor increment wheel. Use it to skip over divisors that | ||
| 47 | * are composites of 2, 3, 5, 7, or 11. | ||
| 48 | * Larger wheels improve sieving only slightly, but quickly grow in size | ||
| 49 | * (adding just one prime, 13, results in 5766 element sieve). | ||
| 50 | */ | ||
| 51 | #define R(a,b,c,d,e,f,g,h,i,j,A,B,C,D,E,F,G,H,I,J) \ | ||
| 52 | (((uint64_t)(a<<0) | (b<<3) | (c<<6) | (d<<9) | (e<<12) | (f<<15) | (g<<18) | (h<<21) | (i<<24) | (j<<27)) ) | \ | ||
| 53 | (((uint64_t)(A<<0) | (B<<3) | (C<<6) | (D<<9) | (E<<12) | (F<<15) | (G<<18) | (H<<21) | (I<<24) | (J<<27)) << 30) | \ | ||
| 54 | (((uint64_t)7 << 60)) | ||
| 55 | #define P(a,b,c,d,e,f,g,h,i,j,A,B,C,D,E,F,G,H,I,J) \ | ||
| 56 | R( (a/2-1),(b/2-1),(c/2-1),(d/2-1),(e/2-1),(f/2-1),(g/2-1),(h/2-1),(i/2-1),(j/2-1), \ | ||
| 57 | (A/2-1),(B/2-1),(C/2-1),(D/2-1),(E/2-1),(F/2-1),(G/2-1),(H/2-1),(I/2-1),(J/2-1) ) | ||
| 58 | static const uint64_t packed_wheel[] = { | ||
| 59 | /*1, 2, 2, 4, 2,*/ | ||
| 60 | P( 4, 2, 4, 6, 2, 6, 4, 2, 4, 6, 6, 2, 6, 4, 2, 6, 4, 6, 8, 4), //01 | ||
| 61 | P( 2, 4, 2, 4,14, 4, 6, 2,10, 2, 6, 6, 4, 2, 4, 6, 2,10, 2, 4), //02 | ||
| 62 | P( 2,12,10, 2, 4, 2, 4, 6, 2, 6, 4, 6, 6, 6, 2, 6, 4, 2, 6, 4), //03 | ||
| 63 | P( 6, 8, 4, 2, 4, 6, 8, 6,10, 2, 4, 6, 2, 6, 6, 4, 2, 4, 6, 2), //04 | ||
| 64 | P( 6, 4, 2, 6,10, 2,10, 2, 4, 2, 4, 6, 8, 4, 2, 4,12, 2, 6, 4), //05 | ||
| 65 | P( 2, 6, 4, 6,12, 2, 4, 2, 4, 8, 6, 4, 6, 2, 4, 6, 2, 6,10, 2), //06 | ||
| 66 | P( 4, 6, 2, 6, 4, 2, 4, 2,10, 2,10, 2, 4, 6, 6, 2, 6, 6, 4, 6), //07 | ||
| 67 | P( 6, 2, 6, 4, 2, 6, 4, 6, 8, 4, 2, 6, 4, 8, 6, 4, 6, 2, 4, 6), //08 | ||
| 68 | P( 8, 6, 4, 2,10, 2, 6, 4, 2, 4, 2,10, 2,10, 2, 4, 2, 4, 8, 6), //09 | ||
| 69 | P( 4, 2, 4, 6, 6, 2, 6, 4, 8, 4, 6, 8, 4, 2, 4, 2, 4, 8, 6, 4), //10 | ||
| 70 | P( 6, 6, 6, 2, 6, 6, 4, 2, 4, 6, 2, 6, 4, 2, 4, 2,10, 2,10, 2), //11 | ||
| 71 | P( 6, 4, 6, 2, 6, 4, 2, 4, 6, 6, 8, 4, 2, 6,10, 8, 4, 2, 4, 2), //12 | ||
| 72 | P( 4, 8,10, 6, 2, 4, 8, 6, 6, 4, 2, 4, 6, 2, 6, 4, 6, 2,10, 2), //13 | ||
| 73 | P(10, 2, 4, 2, 4, 6, 2, 6, 4, 2, 4, 6, 6, 2, 6, 6, 6, 4, 6, 8), //14 | ||
| 74 | P( 4, 2, 4, 2, 4, 8, 6, 4, 8, 4, 6, 2, 6, 6, 4, 2, 4, 6, 8, 4), //15 | ||
| 75 | P( 2, 4, 2,10, 2,10, 2, 4, 2, 4, 6, 2,10, 2, 4, 6, 8, 6, 4, 2), //16 | ||
| 76 | P( 6, 4, 6, 8, 4, 6, 2, 4, 8, 6, 4, 6, 2, 4, 6, 2, 6, 6, 4, 6), //17 | ||
| 77 | P( 6, 2, 6, 6, 4, 2,10, 2,10, 2, 4, 2, 4, 6, 2, 6, 4, 2,10, 6), //18 | ||
| 78 | P( 2, 6, 4, 2, 6, 4, 6, 8, 4, 2, 4, 2,12, 6, 4, 6, 2, 4, 6, 2), //19 | ||
| 79 | P(12, 4, 2, 4, 8, 6, 4, 2, 4, 2,10, 2,10, 6, 2, 4, 6, 2, 6, 4), //20 | ||
| 80 | P( 2, 4, 6, 6, 2, 6, 4, 2,10, 6, 8, 6, 4, 2, 4, 8, 6, 4, 6, 2), //21 | ||
| 81 | P( 4, 6, 2, 6, 6, 6, 4, 6, 2, 6, 4, 2, 4, 2,10,12, 2, 4, 2,10), //22 | ||
| 82 | P( 2, 6, 4, 2, 4, 6, 6, 2,10, 2, 6, 4,14, 4, 2, 4, 2, 4, 8, 6), //23 | ||
| 83 | P( 4, 6, 2, 4, 6, 2, 6, 6, 4, 2, 4, 6, 2, 6, 4, 2, 4,12, 2,12), //24 | ||
| 84 | }; | ||
| 85 | #undef P | ||
| 86 | #undef r | ||
| 87 | #define WHEEL_START 5 | ||
| 88 | #define WHEEL_SIZE (5 + 24 * 20) | ||
| 89 | #define wheel_tab ((uint8_t*)&bb_common_bufsiz1) | ||
| 90 | /* | ||
| 91 | * Why, you ask? | ||
| 92 | * plain byte array: | ||
| 93 | * function old new delta | ||
| 94 | * wheel_tab - 485 +485 | ||
| 95 | * 3-bit-packed insanity: | ||
| 96 | * packed_wheel - 192 +192 | ||
| 97 | * factor_main 108 176 +68 | ||
| 98 | */ | ||
| 99 | static void unpack_wheel(void) | ||
| 100 | { | ||
| 101 | int i; | ||
| 102 | uint8_t *p; | ||
| 103 | |||
| 104 | setup_common_bufsiz(); | ||
| 105 | wheel_tab[0] = 1; | ||
| 106 | wheel_tab[1] = 2; | ||
| 107 | wheel_tab[2] = 2; | ||
| 108 | wheel_tab[3] = 4; | ||
| 109 | wheel_tab[4] = 2; | ||
| 110 | p = &wheel_tab[5]; | ||
| 111 | for (i = 0; i < ARRAY_SIZE(packed_wheel); i++) { | ||
| 112 | uint64_t v = packed_wheel[i]; | ||
| 113 | do { | ||
| 114 | *p = ((unsigned)(v & 7) + 1) * 2; | ||
| 115 | //printf("%2u,", *p); | ||
| 116 | p++; | ||
| 117 | v >>= 3; | ||
| 118 | } while ((unsigned)v != 7); | ||
| 119 | //printf("\n"); | ||
| 120 | } | ||
| 121 | } | ||
| 122 | |||
| 45 | static half_t isqrt_odd(wide_t N) | 123 | static half_t isqrt_odd(wide_t N) |
| 46 | { | 124 | { |
| 47 | half_t s = isqrt(N); | 125 | half_t s = isqrt(N); |
| @@ -53,43 +131,20 @@ static half_t isqrt_odd(wide_t N) | |||
| 53 | 131 | ||
| 54 | static NOINLINE void factorize(wide_t N) | 132 | static NOINLINE void factorize(wide_t N) |
| 55 | { | 133 | { |
| 134 | unsigned w; | ||
| 56 | half_t factor; | 135 | half_t factor; |
| 57 | half_t max_factor; | 136 | half_t max_factor; |
| 58 | // unsigned count3; | ||
| 59 | // unsigned count5; | ||
| 60 | // unsigned count7; | ||
| 61 | // ^^^^^^^^^^^^^^^ commented-out simple sieving code (easier to grasp). | ||
| 62 | // Faster sieving, using one word for potentially up to 6 counters: | ||
| 63 | // count upwards in each mask, counter "triggers" when it sets its mask to "100[0]..." | ||
| 64 | // 10987654321098765432109876543210 - bits 31-0 in 32-bit word | ||
| 65 | // 17777713333311111777775555333 - bit masks for counters for primes 3,5,7,11,13,17 | ||
| 66 | // 100000100001000010001001 - value for adding 1 to each mask | ||
| 67 | // 10000010000010000100001000100 - value for checking that any mask reached msb | ||
| 68 | enum { | ||
| 69 | SHIFT_3 = 1 << 0, | ||
| 70 | SHIFT_5 = 1 << 3, | ||
| 71 | SHIFT_7 = 1 << 7, | ||
| 72 | INCREMENT_EACH = SHIFT_3 | SHIFT_5 | SHIFT_7, | ||
| 73 | MULTIPLE_OF_3 = 1 << 2, | ||
| 74 | MULTIPLE_OF_5 = 1 << 6, | ||
| 75 | MULTIPLE_OF_7 = 1 << 11, | ||
| 76 | MULTIPLE_DETECTED = MULTIPLE_OF_3 | MULTIPLE_OF_5 | MULTIPLE_OF_7, | ||
| 77 | }; | ||
| 78 | unsigned sieve_word; | ||
| 79 | 137 | ||
| 80 | if (N < 4) | 138 | if (N < 4) |
| 81 | goto end; | 139 | goto end; |
| 82 | 140 | ||
| 83 | while (!(N & 1)) { | ||
| 84 | printf(" 2"); | ||
| 85 | N >>= 1; | ||
| 86 | } | ||
| 87 | |||
| 88 | /* The code needs to be optimized for the case where | 141 | /* The code needs to be optimized for the case where |
| 89 | * there are large prime factors. For example, | 142 | * there are large prime factors. For example, |
| 90 | * this is not hard: | 143 | * this is not hard: |
| 91 | * 8262075252869367027 = 3 7 17 23 47 101 113 127 131 137 823 | 144 | * 8262075252869367027 = 3 7 17 23 47 101 113 127 131 137 823 |
| 92 | * (the largest factor to test is only ~sqrt(823) = 28) | 145 | * (the largest divisor to test for largest factor 823 |
| 146 | * is only ~sqrt(823) = 28, the entire factorization needs | ||
| 147 | * only ~33 trial divisions) | ||
| 93 | * but this is: | 148 | * but this is: |
| 94 | * 18446744073709551601 = 53 348051774975651917 | 149 | * 18446744073709551601 = 53 348051774975651917 |
| 95 | * the last factor requires testing up to | 150 | * the last factor requires testing up to |
| @@ -98,20 +153,11 @@ static NOINLINE void factorize(wide_t N) | |||
| 98 | * factor 18446744073709551557 (0xffffffffffffffc5). | 153 | * factor 18446744073709551557 (0xffffffffffffffc5). |
| 99 | */ | 154 | */ |
| 100 | max_factor = isqrt_odd(N); | 155 | max_factor = isqrt_odd(N); |
| 101 | // count3 = 3; | 156 | factor = 2; |
| 102 | // count5 = 6; | 157 | w = 0; |
| 103 | // count7 = 9; | ||
| 104 | sieve_word = 0 | ||
| 105 | /* initial count for SHIFT_n is (n-1)/2*3: */ | ||
| 106 | + (MULTIPLE_OF_3 - 3 * SHIFT_3) | ||
| 107 | + (MULTIPLE_OF_5 - 6 * SHIFT_5) | ||
| 108 | + (MULTIPLE_OF_7 - 9 * SHIFT_7) | ||
| 109 | //+ (MULTIPLE_OF_11 - 15 * SHIFT_11) | ||
| 110 | //+ (MULTIPLE_OF_13 - 18 * SHIFT_13) | ||
| 111 | //+ (MULTIPLE_OF_17 - 24 * SHIFT_17) | ||
| 112 | ; | ||
| 113 | factor = 3; | ||
| 114 | for (;;) { | 158 | for (;;) { |
| 159 | half_t fw; | ||
| 160 | |||
| 115 | /* The division is the most costly part of the loop. | 161 | /* The division is the most costly part of the loop. |
| 116 | * On 64bit CPUs, takes at best 12 cycles, often ~20. | 162 | * On 64bit CPUs, takes at best 12 cycles, often ~20. |
| 117 | */ | 163 | */ |
| @@ -120,44 +166,16 @@ static NOINLINE void factorize(wide_t N) | |||
| 120 | printf(" %"HALF_FMT"u", factor); | 166 | printf(" %"HALF_FMT"u", factor); |
| 121 | max_factor = isqrt_odd(N); | 167 | max_factor = isqrt_odd(N); |
| 122 | } | 168 | } |
| 123 | next_factor: | ||
| 124 | if (factor >= max_factor) | 169 | if (factor >= max_factor) |
| 125 | break; | 170 | break; |
| 126 | factor += 2; | 171 | fw = factor + wheel_tab[w]; |
| 127 | /* Rudimentary wheel sieving: skip multiples of 3, 5 and 7: | 172 | if (fw < factor) |
| 128 | * Every third odd number is divisible by three and thus isn't a prime: | 173 | break; /* overflow */ |
| 129 | * 5 7 9 11 13 15 17 19 21 23 25 27 29 31 33 35 37 39 41 43 45 47... | 174 | factor = fw; |
| 130 | * ^ ^ ^ ^ ^ ^ ^ _ ^ ^ _ ^ ^ ^ ^ | 175 | w++; |
| 131 | * (^ = primes, _ = would-be-primes-if-not-divisible-by-5) | 176 | if (w < WHEEL_SIZE) |
| 132 | * The numbers with space under them are excluded by sieve 3. | ||
| 133 | */ | ||
| 134 | // count7--; | ||
| 135 | // count5--; | ||
| 136 | // count3--; | ||
| 137 | // if (count3 && count5 && count7) | ||
| 138 | // continue; | ||
| 139 | sieve_word += INCREMENT_EACH; | ||
| 140 | if (!(sieve_word & MULTIPLE_DETECTED)) | ||
| 141 | continue; | 177 | continue; |
| 142 | /* | 178 | w = WHEEL_START; |
| 143 | * "factor" is multiple of 3 33% of the time (count3 reached 0), | ||
| 144 | * else, multiple of 5 13% of the time, | ||
| 145 | * else, multiple of 7 7.6% of the time. | ||
| 146 | * Cumulatively, with 3,5,7 sieving we are here 54.3% of the time. | ||
| 147 | */ | ||
| 148 | // if (count3 == 0) | ||
| 149 | // count3 = 3; | ||
| 150 | if (sieve_word & MULTIPLE_OF_3) | ||
| 151 | sieve_word -= SHIFT_3 * 3; | ||
| 152 | // if (count5 == 0) | ||
| 153 | // count5 = 5; | ||
| 154 | if (sieve_word & MULTIPLE_OF_5) | ||
| 155 | sieve_word -= SHIFT_5 * 5; | ||
| 156 | // if (count7 == 0) | ||
| 157 | // count7 = 7; | ||
| 158 | if (sieve_word & MULTIPLE_OF_7) | ||
| 159 | sieve_word -= SHIFT_7 * 7; | ||
| 160 | goto next_factor; | ||
| 161 | } | 179 | } |
| 162 | end: | 180 | end: |
| 163 | if (N > 1) | 181 | if (N > 1) |
| @@ -182,6 +200,8 @@ static void factorize_numstr(const char *numstr) | |||
| 182 | int factor_main(int argc, char **argv) MAIN_EXTERNALLY_VISIBLE; | 200 | int factor_main(int argc, char **argv) MAIN_EXTERNALLY_VISIBLE; |
| 183 | int factor_main(int argc UNUSED_PARAM, char **argv) | 201 | int factor_main(int argc UNUSED_PARAM, char **argv) |
| 184 | { | 202 | { |
| 203 | unpack_wheel(); | ||
| 204 | |||
| 185 | //// coreutils has undocumented option ---debug (three dashes) | 205 | //// coreutils has undocumented option ---debug (three dashes) |
| 186 | //getopt32(argv, ""); | 206 | //getopt32(argv, ""); |
| 187 | //argv += optind; | 207 | //argv += optind; |
