Files
addr2line
adler
adler32
ahash
aho_corasick
angle
approx
backtrace
bitflags
blender
bytemuck
byteorder
case
cast_trait
cfg_if
chrono
color
color_quant
const_fn
crc32fast
crossbeam
crossbeam_channel
crossbeam_deque
crossbeam_epoch
crossbeam_queue
crossbeam_skiplist
crossbeam_utils
darling
darling_core
darling_macro
dds
deflate
densevec
derive_builder
derive_builder_core
dot
downcast_rs
dual_quat
either
erased_serde
failure
failure_derive
fixedbitset
float_cmp
fnv
freeimage
freeimage_sys
freetype
freetype_gl_sys
freetype_sys
freetypegl
futures
futures_channel
futures_core
futures_executor
futures_io
futures_macro
futures_sink
futures_task
futures_util
async_await
future
io
lock
sink
stream
task
fxhash
generational_arena
generic_array
getrandom
gif
gimli
glfw
glfw_sys
glin
glin_derive
glsl
half
harfbuzz
harfbuzz_ft_sys
harfbuzz_sys
hashbrown
human_sort
ident_case
image
indexmap
instant
itertools
itoa
jpeg_decoder
lazy_static
libc
libm
lock_api
log
lut_parser
matrixmultiply
memchr
memoffset
meshopt
miniz_oxide
monotonic_clock
mopa
mutiny_derive
na
nalgebra
base
geometry
linalg
ncollide3d
bounding_volume
interpolation
partitioning
pipeline
procedural
query
algorithms
closest_points
contact
distance
nonlinear_time_of_impact
point
proximity
ray
time_of_impact
visitors
shape
transformation
utils
nom
num_complex
num_cpus
num_integer
num_iter
num_rational
num_traits
numext_constructor
numext_fixed_uint
numext_fixed_uint_core
numext_fixed_uint_hack
object
once_cell
parking_lot
parking_lot_core
pathfinding
pennereq
petgraph
pin_project_lite
pin_utils
png
polygon2
ppv_lite86
proc_macro2
proc_macro_crate
proc_macro_hack
proc_macro_nested
quote
rand
rand_chacha
rand_core
rand_distr
raw_window_handle
rawpointer
rayon
rayon_core
rect_packer
regex
regex_syntax
retain_mut
rin
rin_app
rin_blender
rin_core
rin_gl
rin_graphics
rin_gui
rin_material
rin_math
rin_postpo
rin_scene
rin_util
rin_window
rinblender
rinecs
rinecs_derive
rinecs_derive_utils
ringui_derive
rustc_demangle
rusty_pool
ryu
scopeguard
seitan
seitan_derive
semver
semver_parser
serde
serde_derive
serde_json
shaderdata_derive
simba
slab
slice_of_array
slotmap
smallvec
std140_data
streaming_iterator
strsim
syn
synstructure
thiserror
thiserror_impl
thread_local
tiff
time
toml
typenum
unchecked_unwrap
unicode_xid
vec2
vec3
weezl
x11
zlib_sys
  1
  2
  3
  4
  5
  6
  7
  8
  9
 10
 11
 12
 13
 14
 15
 16
 17
 18
 19
 20
 21
 22
 23
 24
 25
 26
 27
 28
 29
 30
 31
 32
 33
 34
 35
 36
 37
 38
 39
 40
 41
 42
 43
 44
 45
 46
 47
 48
 49
 50
 51
 52
 53
 54
 55
 56
 57
 58
 59
 60
 61
 62
 63
 64
 65
 66
 67
 68
 69
 70
 71
 72
 73
 74
 75
 76
 77
 78
 79
 80
 81
 82
 83
 84
 85
 86
 87
 88
 89
 90
 91
 92
 93
 94
 95
 96
 97
 98
 99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
205
206
207
208
209
210
211
212
213
214
215
216
217
218
219
220
221
222
223
224
225
226
227
228
229
230
231
232
233
234
235
236
237
238
239
240
241
242
243
244
245
246
247
248
249
250
251
252
253
254
255
256
257
258
259
260
261
262
263
264
265
266
267
268
269
270
271
272
273
274
275
276
277
278
279
280
281
282
283
284
285
286
287
288
289
290
291
292
293
294
295
296
297
298
299
300
301
302
303
304
305
306
307
308
309
310
311
312
313
314
315
316
317
318
319
320
321
322
323
324
325
326
327
328
329
330
331
332
333
334
335
336
337
338
339
340
341
342
343
344
345
346
347
348
349
350
351
352
353
354
355
356
357
358
359
360
361
362
363
364
365
366
367
368
369
370
371
372
373
374
375
376
377
378
379
380
381
382
383
384
385
386
387
388
389
390
391
392
393
394
395
396
397
398
399
400
401
402
403
404
405
406
407
408
409
410
411
412
413
414
415
416
417
418
419
420
421
422
423
424
425
426
427
428
429
430
431
432
433
434
435
436
437
// Copyright 2018 Developers of the Rand project.
//
// Licensed under the Apache License, Version 2.0 <LICENSE-APACHE or
// https://www.apache.org/licenses/LICENSE-2.0> or the MIT license
// <LICENSE-MIT or https://opensource.org/licenses/MIT>, at your
// option. This file may not be copied, modified, or distributed
// except according to those terms.

//! The `BlockRngCore` trait and implementation helpers
//!
//! The [`BlockRngCore`] trait exists to assist in the implementation of RNGs
//! which generate a block of data in a cache instead of returning generated
//! values directly.
//!
//! Usage of this trait is optional, but provides two advantages:
//! implementations only need to concern themselves with generation of the
//! block, not the various [`RngCore`] methods (especially [`fill_bytes`], where
//! the optimal implementations are not trivial), and this allows
//! `ReseedingRng` (see [`rand`](https://docs.rs/rand) crate) perform periodic
//! reseeding with very low overhead.
//!
//! # Example
//!
//! ```norun
//! use rand_core::block::{BlockRngCore, BlockRng};
//!
//! struct MyRngCore;
//!
//! impl BlockRngCore for MyRngCore {
//!     type Results = [u32; 16];
//!
//!     fn generate(&mut self, results: &mut Self::Results) {
//!         unimplemented!()
//!     }
//! }
//!
//! impl SeedableRng for MyRngCore {
//!     type Seed = unimplemented!();
//!     fn from_seed(seed: Self::Seed) -> Self {
//!         unimplemented!()
//!     }
//! }
//!
//! // optionally, also implement CryptoRng for MyRngCore
//!
//! // Final RNG.
//! type MyRng = BlockRng<u32, MyRngCore>;
//! ```
//!
//! [`BlockRngCore`]: crate::block::BlockRngCore
//! [`fill_bytes`]: RngCore::fill_bytes

use core::convert::AsRef;
use core::{fmt, ptr};
#[cfg(feature="serde1")] use serde::{Serialize, Deserialize};
use crate::{RngCore, CryptoRng, SeedableRng, Error};
use crate::impls::{fill_via_u32_chunks, fill_via_u64_chunks};

/// A trait for RNGs which do not generate random numbers individually, but in
/// blocks (typically `[u32; N]`). This technique is commonly used by
/// cryptographic RNGs to improve performance.
///
/// See the [module][crate::block] documentation for details.
pub trait BlockRngCore {
    /// Results element type, e.g. `u32`.
    type Item;

    /// Results type. This is the 'block' an RNG implementing `BlockRngCore`
    /// generates, which will usually be an array like `[u32; 16]`.
    type Results: AsRef<[Self::Item]> + AsMut<[Self::Item]> + Default;

    /// Generate a new block of results.
    fn generate(&mut self, results: &mut Self::Results);
}


/// A wrapper type implementing [`RngCore`] for some type implementing
/// [`BlockRngCore`] with `u32` array buffer; i.e. this can be used to implement
/// a full RNG from just a `generate` function.
///
/// The `core` field may be accessed directly but the results buffer may not.
/// PRNG implementations can simply use a type alias
/// (`pub type MyRng = BlockRng<MyRngCore>;`) but might prefer to use a
/// wrapper type (`pub struct MyRng(BlockRng<MyRngCore>);`); the latter must
/// re-implement `RngCore` but hides the implementation details and allows
/// extra functionality to be defined on the RNG
/// (e.g. `impl MyRng { fn set_stream(...){...} }`).
///
/// `BlockRng` has heavily optimized implementations of the [`RngCore`] methods
/// reading values from the results buffer, as well as
/// calling [`BlockRngCore::generate`] directly on the output array when
/// [`fill_bytes`] / [`try_fill_bytes`] is called on a large array. These methods
/// also handle the bookkeeping of when to generate a new batch of values.
///
/// No whole generated `u32` values are thown away and all values are consumed
/// in-order. [`next_u32`] simply takes the next available `u32` value.
/// [`next_u64`] is implemented by combining two `u32` values, least
/// significant first. [`fill_bytes`] and [`try_fill_bytes`] consume a whole
/// number of `u32` values, converting each `u32` to a byte slice in
/// little-endian order. If the requested byte length is not a multiple of 4,
/// some bytes will be discarded.
///
/// See also [`BlockRng64`] which uses `u64` array buffers. Currently there is
/// no direct support for other buffer types.
///
/// For easy initialization `BlockRng` also implements [`SeedableRng`].
///
/// [`next_u32`]: RngCore::next_u32
/// [`next_u64`]: RngCore::next_u64
/// [`fill_bytes`]: RngCore::fill_bytes
/// [`try_fill_bytes`]: RngCore::try_fill_bytes
#[derive(Clone)]
#[cfg_attr(feature="serde1", derive(Serialize, Deserialize))]
pub struct BlockRng<R: BlockRngCore + ?Sized> {
    results: R::Results,
    index: usize,
    /// The *core* part of the RNG, implementing the `generate` function.
    pub core: R,
}

// Custom Debug implementation that does not expose the contents of `results`.
impl<R: BlockRngCore + fmt::Debug> fmt::Debug for BlockRng<R> {
    fn fmt(&self, fmt: &mut fmt::Formatter) -> fmt::Result {
        fmt.debug_struct("BlockRng")
           .field("core", &self.core)
           .field("result_len", &self.results.as_ref().len())
           .field("index", &self.index)
           .finish()
    }
}

impl<R: BlockRngCore> BlockRng<R> {
    /// Create a new `BlockRng` from an existing RNG implementing
    /// `BlockRngCore`. Results will be generated on first use.
    #[inline]
    pub fn new(core: R) -> BlockRng<R>{
        let results_empty = R::Results::default();
        BlockRng {
            core,
            index: results_empty.as_ref().len(),
            results: results_empty,
        }
    }

    /// Get the index into the result buffer.
    ///
    /// If this is equal to or larger than the size of the result buffer then
    /// the buffer is "empty" and `generate()` must be called to produce new
    /// results.
    #[inline(always)]
    pub fn index(&self) -> usize {
        self.index
    }

    /// Reset the number of available results.
    /// This will force a new set of results to be generated on next use.
    #[inline]
    pub fn reset(&mut self) {
        self.index = self.results.as_ref().len();
    }

    /// Generate a new set of results immediately, setting the index to the
    /// given value.
    #[inline]
    pub fn generate_and_set(&mut self, index: usize) {
        assert!(index < self.results.as_ref().len());
        self.core.generate(&mut self.results);
        self.index = index;
    }
}

impl<R: BlockRngCore<Item=u32>> RngCore for BlockRng<R>
where <R as BlockRngCore>::Results: AsRef<[u32]> + AsMut<[u32]>
{
    #[inline]
    fn next_u32(&mut self) -> u32 {
        if self.index >= self.results.as_ref().len() {
            self.generate_and_set(0);
        }

        let value = self.results.as_ref()[self.index];
        self.index += 1;
        value
    }

    #[inline]
    fn next_u64(&mut self) -> u64 {
        let read_u64 = |results: &[u32], index| {
            if cfg!(any(target_endian = "little")) {
                // requires little-endian CPU
                #[allow(clippy::cast_ptr_alignment)]  // false positive
                let ptr: *const u64 = results[index..=index+1].as_ptr() as *const u64;
                unsafe { ptr::read_unaligned(ptr) }
            } else {
                let x = u64::from(results[index]);
                let y = u64::from(results[index + 1]);
                (y << 32) | x
            }
        };

        let len = self.results.as_ref().len();

        let index = self.index;
        if index < len-1 {
            self.index += 2;
            // Read an u64 from the current index
            read_u64(self.results.as_ref(), index)
        } else if index >= len {
            self.generate_and_set(2);
            read_u64(self.results.as_ref(), 0)
        } else {
            let x = u64::from(self.results.as_ref()[len-1]);
            self.generate_and_set(1);
            let y = u64::from(self.results.as_ref()[0]);
            (y << 32) | x
        }
    }

    #[inline]
    fn fill_bytes(&mut self, dest: &mut [u8]) {
        let mut read_len = 0;
        while read_len < dest.len() {
            if self.index >= self.results.as_ref().len() {
                self.generate_and_set(0);
            }
            let (consumed_u32, filled_u8) =
                fill_via_u32_chunks(&self.results.as_ref()[self.index..],
                                    &mut dest[read_len..]);

            self.index += consumed_u32;
            read_len += filled_u8;
        }
    }

    #[inline(always)]
    fn try_fill_bytes(&mut self, dest: &mut [u8]) -> Result<(), Error> {
        self.fill_bytes(dest);
        Ok(())
    }
}

impl<R: BlockRngCore + SeedableRng> SeedableRng for BlockRng<R> {
    type Seed = R::Seed;

    #[inline(always)]
    fn from_seed(seed: Self::Seed) -> Self {
        Self::new(R::from_seed(seed))
    }

    #[inline(always)]
    fn seed_from_u64(seed: u64) -> Self {
        Self::new(R::seed_from_u64(seed))
    }

    #[inline(always)]
    fn from_rng<S: RngCore>(rng: S) -> Result<Self, Error> {
        Ok(Self::new(R::from_rng(rng)?))
    }
}



/// A wrapper type implementing [`RngCore`] for some type implementing
/// [`BlockRngCore`] with `u64` array buffer; i.e. this can be used to implement
/// a full RNG from just a `generate` function.
///
/// This is similar to [`BlockRng`], but specialized for algorithms that operate
/// on `u64` values.
///
/// No whole generated `u64` values are thrown away and all values are consumed
/// in-order. [`next_u64`] simply takes the next available `u64` value.
/// [`next_u32`] is however a bit special: half of a `u64` is consumed, leaving
/// the other half in the buffer. If the next function called is [`next_u32`]
/// then the other half is then consumed, however both [`next_u64`] and
/// [`fill_bytes`] discard the rest of any half-consumed `u64`s when called.
///
/// [`fill_bytes`] and [`try_fill_bytes`] consume a whole number of `u64`
/// values. If the requested length is not a multiple of 8, some bytes will be
/// discarded.
///
/// [`next_u32`]: RngCore::next_u32
/// [`next_u64`]: RngCore::next_u64
/// [`fill_bytes`]: RngCore::fill_bytes
/// [`try_fill_bytes`]: RngCore::try_fill_bytes
#[derive(Clone)]
#[cfg_attr(feature="serde1", derive(Serialize, Deserialize))]
pub struct BlockRng64<R: BlockRngCore + ?Sized> {
    results: R::Results,
    index: usize,
    half_used: bool, // true if only half of the previous result is used
    /// The *core* part of the RNG, implementing the `generate` function.
    pub core: R,
}

// Custom Debug implementation that does not expose the contents of `results`.
impl<R: BlockRngCore + fmt::Debug> fmt::Debug for BlockRng64<R> {
    fn fmt(&self, fmt: &mut fmt::Formatter) -> fmt::Result {
        fmt.debug_struct("BlockRng64")
           .field("core", &self.core)
           .field("result_len", &self.results.as_ref().len())
           .field("index", &self.index)
           .field("half_used", &self.half_used)
           .finish()
    }
}

impl<R: BlockRngCore> BlockRng64<R> {
    /// Create a new `BlockRng` from an existing RNG implementing
    /// `BlockRngCore`. Results will be generated on first use.
    #[inline]
    pub fn new(core: R) -> BlockRng64<R>{
        let results_empty = R::Results::default();
        BlockRng64 {
            core,
            index: results_empty.as_ref().len(),
            half_used: false,
            results: results_empty,
        }
    }

    /// Get the index into the result buffer.
    ///
    /// If this is equal to or larger than the size of the result buffer then
    /// the buffer is "empty" and `generate()` must be called to produce new
    /// results.
    #[inline(always)]
    pub fn index(&self) -> usize {
        self.index
    }

    /// Reset the number of available results.
    /// This will force a new set of results to be generated on next use.
    #[inline]
    pub fn reset(&mut self) {
        self.index = self.results.as_ref().len();
        self.half_used = false;
    }

    /// Generate a new set of results immediately, setting the index to the
    /// given value.
    #[inline]
    pub fn generate_and_set(&mut self, index: usize) {
        assert!(index < self.results.as_ref().len());
        self.core.generate(&mut self.results);
        self.index = index;
        self.half_used = false;
    }
}

impl<R: BlockRngCore<Item=u64>> RngCore for BlockRng64<R>
where <R as BlockRngCore>::Results: AsRef<[u64]> + AsMut<[u64]>
{
    #[inline]
    fn next_u32(&mut self) -> u32 {
        let mut index = self.index * 2 - self.half_used as usize;
        if index >= self.results.as_ref().len() * 2 {
            self.core.generate(&mut self.results);
            self.index = 0;
            // `self.half_used` is by definition `false`
            self.half_used = false;
            index = 0;
        }

        self.half_used = !self.half_used;
        self.index += self.half_used as usize;

        // Index as if this is a u32 slice.
        unsafe {
            let results =
                &*(self.results.as_ref() as *const [u64] as *const [u32]);
            if cfg!(target_endian = "little") {
                *results.get_unchecked(index)
            } else {
                *results.get_unchecked(index ^ 1)
            }
        }
    }

    #[inline]
    fn next_u64(&mut self) -> u64 {
        if self.index >= self.results.as_ref().len() {
            self.core.generate(&mut self.results);
            self.index = 0;
        }

        let value = self.results.as_ref()[self.index];
        self.index += 1;
        self.half_used = false;
        value
    }

    #[inline]
    fn fill_bytes(&mut self, dest: &mut [u8]) {
        let mut read_len = 0;
        self.half_used = false;
        while read_len < dest.len() {
            if self.index as usize >= self.results.as_ref().len() {
                self.core.generate(&mut self.results);
                self.index = 0;
            }

            let (consumed_u64, filled_u8) =
                fill_via_u64_chunks(&self.results.as_ref()[self.index as usize..],
                                    &mut dest[read_len..]);

            self.index += consumed_u64;
            read_len += filled_u8;
        }
    }

    #[inline(always)]
    fn try_fill_bytes(&mut self, dest: &mut [u8]) -> Result<(), Error> {
        self.fill_bytes(dest);
        Ok(())
    }
}

impl<R: BlockRngCore + SeedableRng> SeedableRng for BlockRng64<R> {
    type Seed = R::Seed;

    #[inline(always)]
    fn from_seed(seed: Self::Seed) -> Self {
        Self::new(R::from_seed(seed))
    }

    #[inline(always)]
    fn seed_from_u64(seed: u64) -> Self {
        Self::new(R::seed_from_u64(seed))
    }

    #[inline(always)]
    fn from_rng<S: RngCore>(rng: S) -> Result<Self, Error> {
        Ok(Self::new(R::from_rng(rng)?))
    }
}

impl<R: BlockRngCore + CryptoRng> CryptoRng for BlockRng<R> {}