#![forbid(unsafe_code)]
#![forbid(missing_docs)]
#![forbid(missing_debug_implementations)]
#![forbid(unused_results)]
#![no_std]
use core::ops::Range;
#[derive(Copy, Clone, Debug, PartialEq, Eq)]
pub struct Rand32 {
state: u64,
inc: u64,
}
impl Rand32 {
pub const DEFAULT_INC: u64 = 1442695040888963407;
pub(crate) const MULTIPLIER: u64 = 6364136223846793005;
pub fn new(seed: u64) -> Self {
Self::new_inc(seed, Self::DEFAULT_INC)
}
pub fn new_inc(seed: u64, increment: u64) -> Self {
let mut rng = Self {
state: 0,
inc: increment.wrapping_shl(1) | 1,
};
let _ = rng.rand_u32();
rng.state = rng.state.wrapping_add(seed);
let _ = rng.rand_u32();
rng
}
pub fn state(&self) -> (u64, u64) {
(self.state, self.inc)
}
pub fn from_state(state: (u64, u64)) -> Self {
let (state, inc) = state;
Self { state, inc }
}
pub fn rand_u32(&mut self) -> u32 {
let oldstate: u64 = self.state;
self.state = oldstate
.wrapping_mul(Self::MULTIPLIER)
.wrapping_add(self.inc);
let xorshifted: u32 = (((oldstate >> 18) ^ oldstate) >> 27) as u32;
let rot: u32 = (oldstate >> 59) as u32;
xorshifted.rotate_right(rot)
}
pub fn rand_i32(&mut self) -> i32 {
self.rand_u32() as i32
}
pub fn rand_float(&mut self) -> f32 {
const TOTAL_BITS: u32 = 32;
const PRECISION: u32 = core::f32::MANTISSA_DIGITS;
const MANTISSA_SCALE: f32 = 1.0 / ((1u32 << PRECISION) as f32);
let mut u = self.rand_u32();
u >>= TOTAL_BITS - PRECISION;
u as f32 * MANTISSA_SCALE
}
pub fn rand_range(&mut self, range: Range<u32>) -> u32 {
debug_assert!(range.start < range.end);
let range_starting_from_zero = 0..(range.end - range.start);
let s: u32 = range_starting_from_zero.end;
let mut m: u64 = u64::from(self.rand_u32()) * u64::from(s);
let mut leftover: u32 = (m & 0xFFFF_FFFF) as u32;
if leftover < s {
let threshold: u32 = s.wrapping_neg() % s;
while leftover < threshold {
m = u64::from(self.rand_u32()).wrapping_mul(u64::from(s));
leftover = (m & 0xFFFF_FFFF) as u32;
}
}
(m >> 32) as u32 + range.start
}
}
#[derive(Copy, Clone, Debug, PartialEq, Eq)]
pub struct Rand64 {
state: u128,
inc: u128,
}
impl Rand64 {
pub const DEFAULT_INC: u128 = 0x2FE0E169_FFBD06E3_5BC307BD_4D2F814F;
pub(crate) const MULTIPLIER: u128 = 47026247687942121848144207491837523525;
pub fn new(seed: u128) -> Self {
Self::new_inc(seed, Self::DEFAULT_INC)
}
pub fn new_inc(seed: u128, increment: u128) -> Self {
let mut rng = Self {
state: 0,
inc: increment.wrapping_shl(1) | 1,
};
let _ = rng.rand_u64();
rng.state = rng.state.wrapping_add(seed);
let _ = rng.rand_u64();
rng
}
pub fn state(&self) -> (u128, u128) {
(self.state, self.inc)
}
pub fn from_state(state: (u128, u128)) -> Self {
let (state, inc) = state;
Self { state, inc }
}
pub fn rand_u64(&mut self) -> u64 {
let oldstate: u128 = self.state;
self.state = oldstate
.wrapping_mul(Self::MULTIPLIER)
.wrapping_add(self.inc);
let xorshifted: u64 = (((oldstate >> 29) ^ oldstate) >> 58) as u64;
let rot: u32 = (oldstate >> 122) as u32;
xorshifted.rotate_right(rot)
}
pub fn rand_i64(&mut self) -> i64 {
self.rand_u64() as i64
}
pub fn rand_float(&mut self) -> f64 {
const TOTAL_BITS: u32 = 64;
const PRECISION: u32 = core::f64::MANTISSA_DIGITS;
const MANTISSA_SCALE: f64 = 1.0 / ((1u64 << PRECISION) as f64);
let mut u = self.rand_u64();
u >>= TOTAL_BITS - PRECISION;
u as f64 * MANTISSA_SCALE
}
pub fn rand_range(&mut self, range: Range<u64>) -> u64 {
debug_assert!(range.start < range.end);
let range_starting_from_zero = 0..(range.end - range.start);
let s: u64 = range_starting_from_zero.end;
let mut m: u128 = u128::from(self.rand_u64()) * u128::from(s);
let mut leftover: u64 = (m & 0xFFFFFFFF_FFFFFFFF) as u64;
if leftover < s {
let threshold: u64 = s.wrapping_neg() % s;
while leftover < threshold {
m = u128::from(self.rand_u64()) * u128::from(s);
leftover = (m & 0xFFFFFFFF_FFFFFFFF) as u64;
}
}
(m.wrapping_shr(64)) as u64 + range.start
}
}
#[cfg(test)]
mod tests {
use super::*;
use randomize::{self, PCG32, PCG64};
#[test]
fn test_rand32_vs_randomize() {
{
let seed = 54321;
let mut r1 = Rand32::new(seed);
let mut r2 = PCG32::seed(seed, Rand32::DEFAULT_INC);
for _ in 0..1000 {
assert_eq!(r1.rand_u32(), r2.next_u32());
assert_eq!(r1.rand_i32(), r2.next_u32() as i32);
}
}
{
let seed = 3141592653;
let inc = 0xDEADBEEF;
let mut r1 = Rand32::new_inc(seed, inc);
let mut r2 = PCG32::seed(seed, inc);
for _ in 0..1000 {
assert_eq!(r1.rand_u32(), r2.next_u32());
assert_eq!(r1.rand_i32(), r2.next_u32() as i32);
}
}
}
#[test]
fn test_rand64_vs_randomize() {
{
let seed = 54321;
let mut r1 = Rand64::new(seed);
let mut r2 = PCG64::seed(seed, Rand64::DEFAULT_INC);
for _ in 0..1000 {
assert_eq!(r1.rand_u64(), r2.next_u64());
assert_eq!(r1.rand_i64(), r2.next_u64() as i64);
}
}
{
let seed = 3141592653;
let inc = 0xDEADBEEF;
let mut r1 = Rand64::new_inc(seed, inc);
let mut r2 = PCG64::seed(seed, inc);
for _ in 0..1000 {
assert_eq!(r1.rand_u64(), r2.next_u64());
assert_eq!(r1.rand_i64(), r2.next_u64() as i64);
}
}
}
#[test]
fn test_float32() {
{
let seed = 2718281828;
let mut r1 = Rand32::new(seed);
let mut r2 = PCG32::seed(seed, Rand32::DEFAULT_INC);
for _ in 0..1000 {
let i1 = r1.rand_u32();
let i2 = r2.next_u32();
assert_eq!(i1, i2);
let f1 = randomize::f32_half_open_right(i1);
let f2 = randomize::f32_half_open_right(i2);
assert_eq!(f1, f2);
assert!(f1 >= 0.0);
assert!(f1 < 1.0);
}
for _ in 0..1000 {
let f1 = r1.rand_float();
assert!(f1 >= 0.0);
assert!(f1 < 1.0);
}
}
}
#[test]
fn test_float64() {
{
let seed = 2718281828;
let mut r1 = Rand64::new(seed);
let mut r2 = PCG64::seed(seed, Rand64::DEFAULT_INC);
for _ in 0..1000 {
let i1 = r1.rand_u64();
let i2 = r2.next_u64();
assert_eq!(i1, i2);
let f1 = randomize::f64_half_open_right(i1);
let f2 = randomize::f64_half_open_right(i2);
assert_eq!(f1, f2);
assert!(f1 >= 0.0);
assert!(f1 < 1.0);
}
for _ in 0..1000 {
let f1 = r1.rand_float();
assert!(f1 >= 0.0);
assert!(f1 < 1.0);
}
}
}
#[test]
fn test_randrange32() {
let seed = 2342_3141;
let mut r1 = Rand32::new(seed);
for _ in 0..1000 {
let a = r1.rand_u32();
let b = r1.rand_u32();
if a == b {
continue;
}
let (low, high) = if a < b { (a, b) } else { (b, a) };
let in_range = r1.rand_range(low..high);
assert!(in_range >= low);
assert!(in_range < high);
}
}
#[test]
fn test_randrange64() {
let seed = 2342_2718;
let mut r1 = Rand64::new(seed);
for _ in 0..1000 {
let a = r1.rand_u64();
let b = r1.rand_u64();
if a == b {
continue;
}
let (low, high) = if a < b { (a, b) } else { (b, a) };
let in_range = r1.rand_range(low..high);
assert!(in_range >= low);
assert!(in_range < high);
}
}
#[test]
fn test_rand32_vs_rand() {
use rand_core::RngCore;
use rand_pcg;
{
let seed = 54321;
let mut r1 = Rand32::new(seed);
let mut r2 = rand_pcg::Pcg32::new(seed, Rand32::DEFAULT_INC);
for _ in 0..1000 {
assert_eq!(r1.rand_u32(), r2.next_u32());
}
}
{
let seed = 3141592653;
let inc = 0xDEADBEEF;
let mut r1 = Rand32::new_inc(seed, inc);
let mut r2 = rand_pcg::Pcg32::new(seed, inc);
for _ in 0..1000 {
assert_eq!(r1.rand_u32(), r2.next_u32());
}
}
}
#[test]
fn test_rand32_vs_rfr() {
use random_fast_rng as rfr;
use rfr::Random;
{
let seed = 54321;
let mut r1 = Rand32::new(seed);
let mut r2 = rfr::FastRng::seed(seed, Rand32::DEFAULT_INC);
for _ in 0..1000 {
assert_eq!(r1.rand_u32(), r2.get_u32());
}
}
{
let seed = 3141592653;
let inc = 0xDEADBEEF;
let mut r1 = Rand32::new_inc(seed, inc);
let mut r2 = rfr::FastRng::seed(seed, inc);
for _ in 0..1000 {
assert_eq!(r1.rand_u32(), r2.get_u32());
}
}
}
#[test]
fn test_save_restore() {
{
let seed = 54321;
let mut r1 = Rand32::new(seed);
let s1 = r1.state();
let mut r2 = Rand32::from_state(s1);
assert_eq!(r1, r2);
for _ in 0..1000 {
assert_eq!(r1.rand_u32(), r2.rand_u32());
}
}
{
let seed = 3141592653;
let inc = 0xDEADBEEF;
let mut r1 = Rand32::new_inc(seed, inc);
let s1 = r1.state();
let mut r2 = Rand32::from_state(s1);
assert_eq!(r1, r2);
for _ in 0..1000 {
assert_eq!(r1.rand_u32(), r2.rand_u32());
}
}
{
let seed = 54321;
let mut r1 = Rand64::new(seed);
let s1 = r1.state();
let mut r2 = Rand64::from_state(s1);
assert_eq!(r1, r2);
for _ in 0..1000 {
assert_eq!(r1.rand_u64(), r2.rand_u64());
}
}
{
let seed = 3141592653;
let inc = 0xDEADBEEF;
let mut r1 = Rand64::new_inc(seed, inc);
let s1 = r1.state();
let mut r2 = Rand64::from_state(s1);
assert_eq!(r1, r2);
for _ in 0..1000 {
assert_eq!(r1.rand_u64(), r2.rand_u64());
}
}
}
}