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use crate::common::*;
pub trait SliceExt<T> {
fn concurrent_chunks(mut self, chunk_size: usize) -> ConcurrentChunks<Self, T>
where
Self: 'static + AsMut<[T]> + Sized + Send,
T: 'static + Send,
{
let len = self.as_mut().len();
let num_chunks = if len == 0 {
0
} else {
assert!(
chunk_size > 0,
"chunk_size must be positive for non-empty slice"
);
(len + chunk_size - 1) / chunk_size
};
unsafe { ConcurrentChunks::new_unchecked(self, chunk_size, num_chunks, len) }
}
fn concurrent_chunks_by_division(
mut self,
num_chunks: impl Into<Option<usize>>,
) -> ConcurrentChunks<Self, T>
where
Self: 'static + AsMut<[T]> + Sized + Send,
T: 'static + Send,
{
let len = self.as_mut().len();
let num_chunks = num_chunks.into().unwrap_or_else(|| num_cpus::get());
let chunk_size = if len == 0 {
0
} else {
assert!(num_chunks > 0, "num_chunks must be positive, but get zero");
(len + num_chunks - 1) / num_chunks
};
unsafe { ConcurrentChunks::new_unchecked(self, chunk_size, num_chunks, len) }
}
}
impl<S, T> SliceExt<T> for S {}
pub use concurrent_chunks::*;
mod concurrent_chunks {
use super::*;
#[derive(Debug)]
pub struct ConcurrentChunks<S, T>
where
S: 'static + Send,
T: 'static + Send,
{
pub(super) index: usize,
pub(super) chunk_size: usize,
pub(super) len: usize,
pub(super) ptr: NonNull<ChunkInner<S>>,
pub(super) _phantom: PhantomData<T>,
}
impl<S, T> ConcurrentChunks<S, T>
where
S: 'static + Send,
T: 'static + Send,
{
pub(super) unsafe fn new_unchecked(
mut owner: S,
chunk_size: usize,
num_chunks: usize,
len: usize,
) -> Self
where
S: AsMut<[T]>,
{
debug_assert!(
owner.as_mut().len() == len,
"expect {} sized slice, but get {}",
len,
owner.as_mut().len()
);
debug_assert!(if len == 0 {
chunk_size * num_chunks == 0
} else {
let residual = (chunk_size * num_chunks) as isize - len as isize;
(0..len as isize).contains(&residual)
});
let inner = Box::new(ChunkInner {
count: AtomicUsize::new(1),
data: owner,
});
let ptr = NonNull::new_unchecked(Box::into_raw(inner));
ConcurrentChunks {
index: 0,
chunk_size,
len,
ptr,
_phantom: PhantomData,
}
}
pub(super) fn inner(&self) -> &ChunkInner<S> {
unsafe { self.ptr.as_ref() }
}
}
impl<S, T> Iterator for ConcurrentChunks<S, T>
where
S: 'static + AsMut<[T]> + Send,
T: 'static + Send,
{
type Item = Chunk<S, T>;
fn next(&mut self) -> Option<Self::Item> {
if self.index >= self.len {
return None;
}
let start = self.index;
let end = cmp::min(start + self.chunk_size, self.len);
self.index = end;
self.inner().count.fetch_add(1, Relaxed);
let slice = unsafe {
NonNull::new_unchecked(&mut self.ptr.as_mut().data.as_mut()[start..end] as *mut [T])
};
Some(Chunk {
ptr: self.ptr,
slice,
})
}
}
impl<S, T> Drop for ConcurrentChunks<S, T>
where
S: 'static + Send,
T: 'static + Send,
{
fn drop(&mut self) {
if self.inner().count.fetch_sub(1, Release) != 1 {
return;
}
self.inner().count.load(Acquire);
unsafe {
let inner = Box::from_raw(self.ptr.as_mut());
drop(inner);
}
}
}
unsafe impl<S, T> Send for ConcurrentChunks<S, T>
where
S: 'static + Send,
T: 'static + Send,
{
}
}
pub use chunk::*;
mod chunk {
use super::*;
#[derive(Debug)]
pub(super) struct ChunkInner<S> {
pub(super) count: AtomicUsize,
pub(super) data: S,
}
unsafe impl<S> Send for ChunkInner<S> {}
#[derive(Debug)]
pub struct Chunk<S, T> {
pub(super) ptr: NonNull<ChunkInner<S>>,
pub(super) slice: NonNull<[T]>,
}
impl<S, T> Chunk<S, T> {
pub fn into_owner(chunks: impl IntoIterator<Item = Self>) -> S
where
S: AsMut<[T]>,
{
unsafe {
let mut chunks = chunks.into_iter();
let first = chunks.next().expect("the chunks must be non-empty");
let mut ptr = first.ptr;
let data = ptr.as_mut().data.as_mut();
let mut chunks: Vec<_> = iter::once(first)
.chain(chunks.inspect(|chunk| {
assert!(chunk.ptr == ptr, "inconsistent owner of the chunks");
}))
.collect();
assert_eq!(
ptr.as_ref().count.load(Acquire),
chunks.len(),
"the creating iterator of the chunks must be dropped before calling this method. try `drop(iterator)`"
);
chunks.sort_by_cached_key(|chunk| chunk.slice.as_ptr());
assert!(
chunks.first().unwrap().slice.as_ref().as_ptr_range().start
== data.as_ptr_range().start,
"the first chunk is missing"
);
assert!(
chunks.last().unwrap().slice.as_ref().as_ptr_range().end
== data.as_ptr_range().end,
"the last chunk is missing"
);
chunks
.iter()
.zip(chunks.iter().skip(1))
.for_each(|(prev, next)| {
let prev_end = prev.slice.as_ref().as_ptr_range().end;
let next_start = next.slice.as_ref().as_ptr_range().start;
assert!(prev_end == next_start, "the chunks are not contiguous");
});
chunks.into_iter().map(ManuallyDrop::new).for_each(|_| {});
let inner = Box::from_raw(ptr.as_mut());
let ChunkInner { data, .. } = *inner;
data
}
}
pub fn cat(chunks: impl IntoIterator<Item = Self>) -> Self
where
S: AsMut<[T]>,
{
unsafe {
let mut chunks = chunks.into_iter();
let first = chunks.next().expect("the chunks must be non-empty");
let ptr = first.ptr;
let mut chunks: Vec<_> = iter::once(first)
.chain(chunks.inspect(|chunk| {
assert!(chunk.ptr == ptr, "inconsistent owner of the chunks");
}))
.collect();
chunks
.iter()
.zip(chunks.iter().skip(1))
.for_each(|(prev, next)| {
let prev_end = prev.slice.as_ref().as_ptr_range().end;
let next_start = next.slice.as_ref().as_ptr_range().start;
assert!(prev_end == next_start, "the chunks are not contiguous");
});
let num_chunks = chunks.len();
let len = chunks.iter().map(|chunk| chunk.slice.as_ref().len()).sum();
let slice_ptr: *mut T = chunks.first_mut().unwrap().as_mut().as_mut_ptr();
chunks.into_iter().map(ManuallyDrop::new).for_each(|_| {});
let slice = {
let slice = slice::from_raw_parts_mut(slice_ptr, len);
NonNull::new_unchecked(slice as *mut [T])
};
ptr.as_ref().count.fetch_sub(num_chunks - 1, Release);
Chunk { ptr, slice }
}
}
pub(super) fn inner(&self) -> &ChunkInner<S> {
unsafe { self.ptr.as_ref() }
}
}
unsafe impl<S, T> Send for Chunk<S, T> {}
impl<S, T> Drop for Chunk<S, T> {
fn drop(&mut self) {
if self.inner().count.fetch_sub(1, Release) != 1 {
return;
}
self.inner().count.load(Acquire);
unsafe {
drop(Box::from_raw(self.ptr.as_mut()));
}
}
}
impl<S, T> AsRef<[T]> for Chunk<S, T> {
fn as_ref(&self) -> &[T] {
self.deref()
}
}
impl<S, T> AsMut<[T]> for Chunk<S, T> {
fn as_mut(&mut self) -> &mut [T] {
self.deref_mut()
}
}
impl<S, T> Deref for Chunk<S, T> {
type Target = [T];
fn deref(&self) -> &Self::Target {
unsafe { self.slice.as_ref() }
}
}
impl<S, T> DerefMut for Chunk<S, T> {
fn deref_mut(&mut self) -> &mut Self::Target {
unsafe { self.slice.as_mut() }
}
}
impl<'a, S, T> IntoIterator for &'a Chunk<S, T> {
type Item = &'a T;
type IntoIter = slice::Iter<'a, T>;
fn into_iter(self) -> Self::IntoIter {
self.deref().into_iter()
}
}
impl<'a, S, T> IntoIterator for &'a mut Chunk<S, T> {
type Item = &'a mut T;
type IntoIter = slice::IterMut<'a, T>;
fn into_iter(self) -> Self::IntoIter {
self.deref_mut().into_iter()
}
}
}
#[cfg(test)]
mod tests {
use super::*;
use itertools::izip;
#[test]
fn merge_chunks_test() {
let orig: Vec<_> = (0..16).collect();
let mut chunks = orig.concurrent_chunks_by_division(3);
let chunk1 = chunks.next().unwrap();
let chunk2 = chunks.next().unwrap();
let chunk3 = chunks.next().unwrap();
drop(chunks);
let new = Chunk::into_owner(vec![chunk3, chunk1, chunk2]);
assert!(izip!(new, 0..16).all(|(lhs, rhs)| lhs == rhs));
}
#[test]
fn concat_chunks_test() {
let orig: Vec<_> = (0..25).collect();
let mut chunks = orig.concurrent_chunks_by_division(4);
let chunk1 = chunks.next().unwrap();
let chunk2 = chunks.next().unwrap();
let chunk3 = chunks.next().unwrap();
let chunk4 = chunks.next().unwrap();
drop(chunks);
let chunk12 = Chunk::cat(vec![chunk1, chunk2]);
assert!(izip!(&chunk12, 0..14).all(|(&lhs, rhs)| lhs == rhs));
let chunk34 = Chunk::cat(vec![chunk3, chunk4]);
assert!(izip!(&chunk34, 14..25).all(|(&lhs, rhs)| lhs == rhs));
let chunk1234 = Chunk::cat(vec![chunk12, chunk34]);
assert!(izip!(&chunk1234, 0..25).all(|(&lhs, rhs)| lhs == rhs));
let new = Chunk::into_owner(vec![chunk1234]);
assert!(izip!(&new, 0..25).all(|(&lhs, rhs)| lhs == rhs));
}
#[test]
fn concurrent_chunks_test() {
let vec: Vec<_> = (0..16).collect();
let chunks: Vec<_> = vec.concurrent_chunks_by_division(3).collect();
assert_eq!(chunks.len(), 3);
assert!(izip!(&chunks[0], 0..6).all(|(&lhs, rhs)| lhs == rhs));
assert!(izip!(&chunks[1], 6..12).all(|(&lhs, rhs)| lhs == rhs));
assert!(izip!(&chunks[2], 12..16).all(|(&lhs, rhs)| lhs == rhs));
}
#[test]
fn empty_concurrent_chunks_test() {
assert_eq!([(); 0].concurrent_chunks(2).count(), 0);
assert_eq!([(); 0].concurrent_chunks_by_division(None).count(), 0);
}
}