mirror of
https://github.com/mruby/mruby
synced 2026-06-08 16:11:16 +00:00
2121b6e689
This is to avoid the approximation of `Random#rand` when `seed`s are close together.
For example, the first `#rand` values after doing `Random#srand(0)` and `Random#srand(1)` are very similar.
Below is the sequence of mruby before this patch was given a `seed` of `0...20`:
```console
% bin/mruby -e 'r = Random.new; 20.times { |i| r.srand(i); puts "seed=%2d %s" % [i, 10.times.map { "%0.3f" % r.rand }.join(" ")] }'
seed= 0 0.643 0.585 0.198 0.732 0.087 0.605 0.548 0.468 0.573 0.966
seed= 1 0.643 0.585 0.198 0.607 0.370 0.605 0.633 0.593 0.395 0.439
seed= 2 0.643 0.585 0.197 0.981 0.652 0.730 0.875 0.713 0.529 0.269
seed= 3 0.643 0.585 0.198 0.857 0.934 0.730 0.960 0.216 0.286 0.523
seed= 4 0.643 0.585 0.197 0.231 0.217 0.605 0.959 0.958 0.478 0.482
seed= 5 0.643 0.585 0.197 0.106 0.249 0.605 0.044 0.330 0.925 0.047
seed= 6 0.643 0.585 0.197 0.481 0.781 0.731 0.285 0.960 0.804 0.725
seed= 7 0.643 0.585 0.197 0.356 0.813 0.731 0.370 0.711 0.937 0.448
seed= 8 0.643 0.585 0.198 0.732 0.329 0.108 0.243 0.974 0.766 0.936
seed= 9 0.643 0.585 0.198 0.607 0.611 0.108 0.827 0.102 0.962 0.597
seed=10 0.643 0.585 0.198 0.981 0.393 0.233 0.569 0.723 0.472 0.805
seed=11 0.643 0.585 0.198 0.857 0.676 0.233 0.154 0.222 0.603 0.371
seed=12 0.643 0.585 0.198 0.231 0.458 0.108 0.654 0.979 0.928 0.577
seed=13 0.643 0.585 0.198 0.106 0.490 0.108 0.239 0.355 0.749 0.831
seed=14 0.643 0.585 0.198 0.481 0.523 0.233 0.981 0.486 0.505 0.131
seed=15 0.643 0.585 0.198 0.356 0.555 0.234 0.565 0.233 0.011 0.666
seed=16 0.643 0.585 0.197 0.730 0.573 0.611 0.904 0.512 0.971 0.153
seed=17 0.643 0.585 0.197 0.605 0.855 0.611 0.240 0.636 0.041 0.509
seed=18 0.643 0.585 0.196 0.979 0.137 0.736 0.229 0.765 0.674 0.832
seed=19 0.643 0.585 0.197 0.855 0.420 0.736 0.566 0.268 0.183 0.219
```
383 lines
8.5 KiB
C
383 lines
8.5 KiB
C
/*
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** random.c - Random module
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**
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** See Copyright Notice in mruby.h
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*/
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#include <mruby.h>
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#include <mruby/variable.h>
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#include <mruby/class.h>
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#include <mruby/data.h>
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#include <mruby/array.h>
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#include <mruby/istruct.h>
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#include <mruby/presym.h>
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#include <time.h>
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/* Written in 2019 by David Blackman and Sebastiano Vigna (vigna@acm.org)
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To the extent possible under law, the author has dedicated all copyright
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and related and neighboring rights to this software to the public domain
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worldwide. This software is distributed without any warranty.
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See <https://creativecommons.org/publicdomain/zero/1.0/>. */
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/* This is xoshiro128++ 1.0, one of our 32-bit all-purpose, rock-solid
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generators. It has excellent speed, a state size (128 bits) that is
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large enough for mild parallelism, and it passes all tests we are aware
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of.
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For generating just single-precision (i.e., 32-bit) floating-point
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numbers, xoshiro128+ is even faster.
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The state must be seeded so that it is not everywhere zero. */
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#ifdef MRB_32BIT
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# define XORSHIFT96
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# define NSEEDS 3
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# define SEEDPOS 2
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#else
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# define NSEEDS 4
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# define SEEDPOS 0
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#endif
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#define LASTSEED (NSEEDS-1)
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typedef struct rand_state {
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uint32_t seed[NSEEDS];
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} rand_state;
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static void
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rand_init(rand_state *t)
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{
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t->seed[0] = 123456789;
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t->seed[1] = 362436069;
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t->seed[2] = 521288629;
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#ifndef XORSHIFT96
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t->seed[3] = 88675123;
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#endif
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}
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static uint32_t rand_uint32(rand_state *state);
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static uint32_t
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rand_seed(rand_state *t, uint32_t seed)
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{
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uint32_t old_seed = t->seed[SEEDPOS];
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rand_init(t);
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t->seed[SEEDPOS] = seed;
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for (int i = 0; i < 10; i++) {
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rand_uint32(t);
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}
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return old_seed;
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}
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#ifndef XORSHIFT96
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static inline uint32_t
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rotl(const uint32_t x, int k) {
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return (x << k) | (x >> (32 - k));
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}
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#endif
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static uint32_t
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rand_uint32(rand_state *state)
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{
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#ifdef XORSHIFT96
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uint32_t *seed = state->seed;
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uint32_t x = seed[0];
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uint32_t y = seed[1];
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uint32_t z = seed[2];
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uint32_t t;
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t = (x ^ (x << 3)) ^ (y ^ (y >> 19)) ^ (z ^ (z << 6));
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x = y; y = z; z = t;
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seed[0] = x;
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seed[1] = y;
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seed[2] = z;
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return z;
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#else
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uint32_t *s = state->seed;
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const uint32_t result = rotl(s[0] + s[3], 7) + s[0];
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const uint32_t t = s[1] << 9;
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s[2] ^= s[0];
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s[3] ^= s[1];
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s[1] ^= s[2];
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s[0] ^= s[3];
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s[2] ^= t;
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s[3] = rotl(s[3], 11);
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return result;
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#endif /* XORSHIFT96 */
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}
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#ifndef MRB_NO_FLOAT
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static double
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rand_real(rand_state *t)
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{
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uint32_t x = rand_uint32(t);
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return x*(1.0/4294967296.0);
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}
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#endif
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static mrb_value
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random_rand(mrb_state *mrb, rand_state *t, mrb_int max)
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{
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if (max == 0) {
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#ifndef MRB_NO_FLOAT
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return mrb_float_value(mrb, rand_real(t));
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#else
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max = 100;
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#endif
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}
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return mrb_int_value(mrb, rand_uint32(t) % max);
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}
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static mrb_int
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random_rand_i(mrb_state *mrb, rand_state *t, mrb_int max)
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{
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return rand_uint32(t) % max;
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}
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static mrb_int
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get_opt(mrb_state* mrb)
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{
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mrb_int arg;
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arg = 0;
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mrb_get_args(mrb, "|i", &arg);
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if (arg < 0) {
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mrb_raise(mrb, E_ARGUMENT_ERROR, "invalid argument");
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}
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return arg;
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}
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static mrb_value
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random_default(mrb_state *mrb) {
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struct RClass *c = mrb_class_get_id(mrb, MRB_SYM(Random));
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mrb_value d = mrb_const_get(mrb, mrb_obj_value(c), MRB_SYM(DEFAULT));
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if (!mrb_obj_is_kind_of(mrb, d, c)) {
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mrb_raise(mrb, E_TYPE_ERROR, "Random::DEFAULT replaced");
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}
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return d;
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}
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#define random_ptr(v) (rand_state*)mrb_istruct_ptr(v)
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#define random_default_state(mrb) random_ptr(random_default(mrb))
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static mrb_value
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random_m_init(mrb_state *mrb, mrb_value self)
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{
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mrb_int seed;
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rand_state *t;
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t = random_ptr(self);
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if (mrb_get_args(mrb, "|i", &seed) == 0) {
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rand_init(t);
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}
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else {
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rand_seed(t, (uint32_t)seed);
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}
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return self;
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}
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static mrb_value
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random_m_rand(mrb_state *mrb, mrb_value self)
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{
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mrb_int max;
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rand_state *t = random_ptr(self);
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max = get_opt(mrb);
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return random_rand(mrb, t, max);
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}
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static mrb_value
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random_m_srand(mrb_state *mrb, mrb_value self)
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{
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uint32_t seed;
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uint32_t old_seed;
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mrb_int i;
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rand_state *t = random_ptr(self);
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if (mrb_get_args(mrb, "|i", &i) == 0) {
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seed = (uint32_t)time(NULL) + rand_uint32(t);
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}
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else {
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seed = (uint32_t)i;
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}
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old_seed = rand_seed(t, seed);
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return mrb_int_value(mrb, (mrb_int)old_seed);
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}
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/*
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* call-seq:
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* ary.shuffle! -> ary
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*
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* Shuffles elements in self in place.
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*/
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static mrb_value
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mrb_ary_shuffle_bang(mrb_state *mrb, mrb_value ary)
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{
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mrb_int i, max;
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rand_state *random;
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if (RARRAY_LEN(ary) > 1) {
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struct RClass *c = mrb_class_get_id(mrb, MRB_SYM(Random));
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if (mrb_get_args(mrb, "|I", &random, c) == 0) {
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random = random_default_state(mrb);
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}
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mrb_ary_modify(mrb, mrb_ary_ptr(ary));
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max = RARRAY_LEN(ary);
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for (i = RARRAY_LEN(ary) - 1; i > 0; i--) {
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mrb_int j;
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mrb_value *ptr = RARRAY_PTR(ary);
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mrb_value tmp;
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j = random_rand_i(mrb, random, max);
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tmp = ptr[i];
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ptr[i] = ptr[j];
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ptr[j] = tmp;
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}
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}
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return ary;
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}
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/*
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* call-seq:
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* ary.shuffle -> new_ary
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*
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* Returns a new array with elements of self shuffled.
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*/
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static mrb_value
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mrb_ary_shuffle(mrb_state *mrb, mrb_value ary)
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{
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mrb_value new_ary = mrb_ary_new_from_values(mrb, RARRAY_LEN(ary), RARRAY_PTR(ary));
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mrb_ary_shuffle_bang(mrb, new_ary);
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return new_ary;
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}
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/*
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* call-seq:
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* ary.sample -> obj
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* ary.sample(n) -> new_ary
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*
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* Choose a random element or +n+ random elements from the array.
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*
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* The elements are chosen by using random and unique indices into the array
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* in order to ensure that an element doesn't repeat itself unless the array
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* already contained duplicate elements.
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*
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* If the array is empty the first form returns +nil+ and the second form
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* returns an empty array.
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*/
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static mrb_value
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mrb_ary_sample(mrb_state *mrb, mrb_value ary)
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{
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mrb_int n = 0;
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mrb_bool given;
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rand_state *random;
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mrb_int len;
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struct RClass *c = mrb_class_get_id(mrb, MRB_SYM(Random));
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if (mrb_get_args(mrb, "|i?I", &n, &given, &random, c) < 2) {
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random = random_default_state(mrb);
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}
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len = RARRAY_LEN(ary);
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if (!given) { /* pick one element */
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switch (len) {
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case 0:
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return mrb_nil_value();
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case 1:
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return RARRAY_PTR(ary)[0];
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default:
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return RARRAY_PTR(ary)[rand_uint32(random) % len];
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}
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}
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else {
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mrb_value result;
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mrb_int i, j;
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if (n < 0) mrb_raise(mrb, E_ARGUMENT_ERROR, "negative sample number");
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if (n > len) n = len;
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result = mrb_ary_new_capa(mrb, n);
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for (i=0; i<n; i++) {
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mrb_int r;
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for (;;) {
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retry:
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r = (mrb_int)(rand_uint32(random) % len);
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for (j=0; j<i; j++) {
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if (mrb_integer(RARRAY_PTR(result)[j]) == r) {
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goto retry; /* retry if duplicate */
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}
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}
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break;
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}
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mrb_ary_push(mrb, result, mrb_int_value(mrb, r));
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}
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for (i=0; i<n; i++) {
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mrb_int idx = mrb_integer(RARRAY_PTR(result)[i]);
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mrb_value elem = RARRAY_PTR(ary)[idx];
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mrb_ary_set(mrb, result, i, elem);
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}
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return result;
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}
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}
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static mrb_value
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random_f_rand(mrb_state *mrb, mrb_value self)
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{
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rand_state *t = random_default_state(mrb);
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return random_rand(mrb, t, get_opt(mrb));
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}
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static mrb_value
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random_f_srand(mrb_state *mrb, mrb_value self)
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{
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mrb_value random = random_default(mrb);
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return random_m_srand(mrb, random);
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}
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void mrb_mruby_random_gem_init(mrb_state *mrb)
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{
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struct RClass *random;
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struct RClass *array = mrb->array_class;
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mrb_static_assert1(sizeof(rand_state) <= ISTRUCT_DATA_SIZE);
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mrb_define_method(mrb, mrb->kernel_module, "rand", random_f_rand, MRB_ARGS_OPT(1));
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mrb_define_method(mrb, mrb->kernel_module, "srand", random_f_srand, MRB_ARGS_OPT(1));
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random = mrb_define_class(mrb, "Random", mrb->object_class);
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MRB_SET_INSTANCE_TT(random, MRB_TT_ISTRUCT);
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mrb_define_class_method(mrb, random, "rand", random_f_rand, MRB_ARGS_OPT(1));
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mrb_define_class_method(mrb, random, "srand", random_f_srand, MRB_ARGS_OPT(1));
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mrb_define_method(mrb, random, "initialize", random_m_init, MRB_ARGS_OPT(1));
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mrb_define_method(mrb, random, "rand", random_m_rand, MRB_ARGS_OPT(1));
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mrb_define_method(mrb, random, "srand", random_m_srand, MRB_ARGS_OPT(1));
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mrb_define_method(mrb, array, "shuffle", mrb_ary_shuffle, MRB_ARGS_OPT(1));
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mrb_define_method(mrb, array, "shuffle!", mrb_ary_shuffle_bang, MRB_ARGS_OPT(1));
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mrb_define_method(mrb, array, "sample", mrb_ary_sample, MRB_ARGS_OPT(2));
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mrb_const_set(mrb, mrb_obj_value(random), MRB_SYM(DEFAULT),
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mrb_obj_new(mrb, random, 0, NULL));
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}
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void mrb_mruby_random_gem_final(mrb_state *mrb)
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{
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}
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