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bit_set.rs
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use std::fmt;
use std::iter;
use std::marker::PhantomData;
use std::mem;
use std::ops::{BitAnd, BitAndAssign, BitOrAssign, Bound, Not, Range, RangeBounds, Shl};
use std::rc::Rc;
use std::slice;
use arrayvec::ArrayVec;
use smallvec::{smallvec, SmallVec};
#[cfg(feature = "nightly")]
use rustc_macros::{Decodable, Encodable};
use crate::{Idx, IndexVec};
use Chunk::*;
#[cfg(test)]
mod tests;
type Word = u64;
const WORD_BYTES: usize = mem::size_of::<Word>();
const WORD_BITS: usize = WORD_BYTES * 8;
// The choice of chunk size has some trade-offs.
//
// A big chunk size tends to favour cases where many large `ChunkedBitSet`s are
// present, because they require fewer `Chunk`s, reducing the number of
// allocations and reducing peak memory usage. Also, fewer chunk operations are
// required, though more of them might be `Mixed`.
//
// A small chunk size tends to favour cases where many small `ChunkedBitSet`s
// are present, because less space is wasted at the end of the final chunk (if
// it's not full).
const CHUNK_WORDS: usize = 32;
const CHUNK_BITS: usize = CHUNK_WORDS * WORD_BITS; // 2048 bits
/// ChunkSize is small to keep `Chunk` small. The static assertion ensures it's
/// not too small.
type ChunkSize = u16;
const _: () = assert!(CHUNK_BITS <= ChunkSize::MAX as usize);
pub trait BitRelations<Rhs> {
fn union(&mut self, other: &Rhs) -> bool;
fn subtract(&mut self, other: &Rhs) -> bool;
fn intersect(&mut self, other: &Rhs) -> bool;
}
#[inline]
fn inclusive_start_end<T: Idx>(
range: impl RangeBounds<T>,
domain: usize,
) -> Option<(usize, usize)> {
// Both start and end are inclusive.
let start = match range.start_bound().cloned() {
Bound::Included(start) => start.index(),
Bound::Excluded(start) => start.index() + 1,
Bound::Unbounded => 0,
};
let end = match range.end_bound().cloned() {
Bound::Included(end) => end.index(),
Bound::Excluded(end) => end.index().checked_sub(1)?,
Bound::Unbounded => domain - 1,
};
assert!(end < domain);
if start > end {
return None;
}
Some((start, end))
}
macro_rules! bit_relations_inherent_impls {
() => {
/// Sets `self = self | other` and returns `true` if `self` changed
/// (i.e., if new bits were added).
pub fn union<Rhs>(&mut self, other: &Rhs) -> bool
where
Self: BitRelations<Rhs>,
{
<Self as BitRelations<Rhs>>::union(self, other)
}
/// Sets `self = self - other` and returns `true` if `self` changed.
/// (i.e., if any bits were removed).
pub fn subtract<Rhs>(&mut self, other: &Rhs) -> bool
where
Self: BitRelations<Rhs>,
{
<Self as BitRelations<Rhs>>::subtract(self, other)
}
/// Sets `self = self & other` and return `true` if `self` changed.
/// (i.e., if any bits were removed).
pub fn intersect<Rhs>(&mut self, other: &Rhs) -> bool
where
Self: BitRelations<Rhs>,
{
<Self as BitRelations<Rhs>>::intersect(self, other)
}
};
}
/// A fixed-size bitset type with a dense representation.
///
/// NOTE: Use [`GrowableBitSet`] if you need support for resizing after creation.
///
/// `T` is an index type, typically a newtyped `usize` wrapper, but it can also
/// just be `usize`.
///
/// All operations that involve an element will panic if the element is equal
/// to or greater than the domain size. All operations that involve two bitsets
/// will panic if the bitsets have differing domain sizes.
///
#[cfg_attr(feature = "nightly", derive(Decodable, Encodable))]
#[derive(Eq, PartialEq, Hash)]
pub struct BitSet<T> {
domain_size: usize,
words: SmallVec<[Word; 2]>,
marker: PhantomData<T>,
}
impl<T> BitSet<T> {
/// Gets the domain size.
pub fn domain_size(&self) -> usize {
self.domain_size
}
}
impl<T: Idx> BitSet<T> {
/// Creates a new, empty bitset with a given `domain_size`.
#[inline]
pub fn new_empty(domain_size: usize) -> BitSet<T> {
let num_words = num_words(domain_size);
BitSet { domain_size, words: smallvec![0; num_words], marker: PhantomData }
}
/// Creates a new, filled bitset with a given `domain_size`.
#[inline]
pub fn new_filled(domain_size: usize) -> BitSet<T> {
let num_words = num_words(domain_size);
let mut result =
BitSet { domain_size, words: smallvec![!0; num_words], marker: PhantomData };
result.clear_excess_bits();
result
}
/// Clear all elements.
#[inline]
pub fn clear(&mut self) {
self.words.fill(0);
}
/// Clear excess bits in the final word.
fn clear_excess_bits(&mut self) {
clear_excess_bits_in_final_word(self.domain_size, &mut self.words);
}
/// Count the number of set bits in the set.
pub fn count(&self) -> usize {
self.words.iter().map(|e| e.count_ones() as usize).sum()
}
/// Returns `true` if `self` contains `elem`.
#[inline]
pub fn contains(&self, elem: T) -> bool {
assert!(elem.index() < self.domain_size);
let (word_index, mask) = word_index_and_mask(elem);
(self.words[word_index] & mask) != 0
}
/// Is `self` is a (non-strict) superset of `other`?
#[inline]
pub fn superset(&self, other: &BitSet<T>) -> bool {
assert_eq!(self.domain_size, other.domain_size);
self.words.iter().zip(&other.words).all(|(a, b)| (a & b) == *b)
}
/// Is the set empty?
#[inline]
pub fn is_empty(&self) -> bool {
self.words.iter().all(|a| *a == 0)
}
/// Insert `elem`. Returns whether the set has changed.
#[inline]
pub fn insert(&mut self, elem: T) -> bool {
assert!(elem.index() < self.domain_size);
let (word_index, mask) = word_index_and_mask(elem);
let word_ref = &mut self.words[word_index];
let word = *word_ref;
let new_word = word | mask;
*word_ref = new_word;
new_word != word
}
#[inline]
pub fn insert_range(&mut self, elems: impl RangeBounds<T>) {
let Some((start, end)) = inclusive_start_end(elems, self.domain_size) else {
return;
};
let (start_word_index, start_mask) = word_index_and_mask(start);
let (end_word_index, end_mask) = word_index_and_mask(end);
// Set all words in between start and end (exclusively of both).
for word_index in (start_word_index + 1)..end_word_index {
self.words[word_index] = !0;
}
if start_word_index != end_word_index {
// Start and end are in different words, so we handle each in turn.
//
// We set all leading bits. This includes the start_mask bit.
self.words[start_word_index] |= !(start_mask - 1);
// And all trailing bits (i.e. from 0..=end) in the end word,
// including the end.
self.words[end_word_index] |= end_mask | (end_mask - 1);
} else {
self.words[start_word_index] |= end_mask | (end_mask - start_mask);
}
}
/// Sets all bits to true.
pub fn insert_all(&mut self) {
self.words.fill(!0);
self.clear_excess_bits();
}
/// Returns `true` if the set has changed.
#[inline]
pub fn remove(&mut self, elem: T) -> bool {
assert!(elem.index() < self.domain_size);
let (word_index, mask) = word_index_and_mask(elem);
let word_ref = &mut self.words[word_index];
let word = *word_ref;
let new_word = word & !mask;
*word_ref = new_word;
new_word != word
}
/// Iterates over the indices of set bits in a sorted order.
#[inline]
pub fn iter(&self) -> BitIter<'_, T> {
BitIter::new(&self.words)
}
/// Set `self = self | other`. In contrast to `union` returns `true` if the set contains at
/// least one bit that is not in `other` (i.e. `other` is not a superset of `self`).
///
/// This is an optimization for union of a hybrid bitset.
fn reverse_union_sparse(&mut self, sparse: &SparseBitSet<T>) -> bool {
assert!(sparse.domain_size == self.domain_size);
self.clear_excess_bits();
let mut not_already = false;
// Index of the current word not yet merged.
let mut current_index = 0;
// Mask of bits that came from the sparse set in the current word.
let mut new_bit_mask = 0;
for (word_index, mask) in sparse.iter().map(|x| word_index_and_mask(*x)) {
// Next bit is in a word not inspected yet.
if word_index > current_index {
self.words[current_index] |= new_bit_mask;
// Were there any bits in the old word that did not occur in the sparse set?
not_already |= (self.words[current_index] ^ new_bit_mask) != 0;
// Check all words we skipped for any set bit.
not_already |= self.words[current_index + 1..word_index].iter().any(|&x| x != 0);
// Update next word.
current_index = word_index;
// Reset bit mask, no bits have been merged yet.
new_bit_mask = 0;
}
// Add bit and mark it as coming from the sparse set.
// self.words[word_index] |= mask;
new_bit_mask |= mask;
}
self.words[current_index] |= new_bit_mask;
// Any bits in the last inspected word that were not in the sparse set?
not_already |= (self.words[current_index] ^ new_bit_mask) != 0;
// Any bits in the tail? Note `clear_excess_bits` before.
not_already |= self.words[current_index + 1..].iter().any(|&x| x != 0);
not_already
}
fn last_set_in(&self, range: impl RangeBounds<T>) -> Option<T> {
let (start, end) = inclusive_start_end(range, self.domain_size)?;
let (start_word_index, _) = word_index_and_mask(start);
let (end_word_index, end_mask) = word_index_and_mask(end);
let end_word = self.words[end_word_index] & (end_mask | (end_mask - 1));
if end_word != 0 {
let pos = max_bit(end_word) + WORD_BITS * end_word_index;
if start <= pos {
return Some(T::new(pos));
}
}
// We exclude end_word_index from the range here, because we don't want
// to limit ourselves to *just* the last word: the bits set it in may be
// after `end`, so it may not work out.
if let Some(offset) =
self.words[start_word_index..end_word_index].iter().rposition(|&w| w != 0)
{
let word_idx = start_word_index + offset;
let start_word = self.words[word_idx];
let pos = max_bit(start_word) + WORD_BITS * word_idx;
if start <= pos {
return Some(T::new(pos));
}
}
None
}
bit_relations_inherent_impls! {}
}
// dense REL dense
impl<T: Idx> BitRelations<BitSet<T>> for BitSet<T> {
fn union(&mut self, other: &BitSet<T>) -> bool {
assert_eq!(self.domain_size, other.domain_size);
bitwise(&mut self.words, &other.words, |a, b| a | b)
}
fn subtract(&mut self, other: &BitSet<T>) -> bool {
assert_eq!(self.domain_size, other.domain_size);
bitwise(&mut self.words, &other.words, |a, b| a & !b)
}
fn intersect(&mut self, other: &BitSet<T>) -> bool {
assert_eq!(self.domain_size, other.domain_size);
bitwise(&mut self.words, &other.words, |a, b| a & b)
}
}
impl<T: Idx> From<GrowableBitSet<T>> for BitSet<T> {
fn from(bit_set: GrowableBitSet<T>) -> Self {
bit_set.bit_set
}
}
/// A fixed-size bitset type with a partially dense, partially sparse
/// representation. The bitset is broken into chunks, and chunks that are all
/// zeros or all ones are represented and handled very efficiently.
///
/// This type is especially efficient for sets that typically have a large
/// `domain_size` with significant stretches of all zeros or all ones, and also
/// some stretches with lots of 0s and 1s mixed in a way that causes trouble
/// for `IntervalSet`.
///
/// `T` is an index type, typically a newtyped `usize` wrapper, but it can also
/// just be `usize`.
///
/// All operations that involve an element will panic if the element is equal
/// to or greater than the domain size. All operations that involve two bitsets
/// will panic if the bitsets have differing domain sizes.
#[derive(PartialEq, Eq)]
pub struct ChunkedBitSet<T> {
domain_size: usize,
/// The chunks. Each one contains exactly CHUNK_BITS values, except the
/// last one which contains 1..=CHUNK_BITS values.
chunks: Box<[Chunk]>,
marker: PhantomData<T>,
}
// Note: the chunk domain size is duplicated in each variant. This is a bit
// inconvenient, but it allows the type size to be smaller than if we had an
// outer struct containing a chunk domain size plus the `Chunk`, because the
// compiler can place the chunk domain size after the tag.
#[derive(Clone, Debug, PartialEq, Eq)]
enum Chunk {
/// A chunk that is all zeros; we don't represent the zeros explicitly.
Zeros(ChunkSize),
/// A chunk that is all ones; we don't represent the ones explicitly.
Ones(ChunkSize),
/// A chunk that has a mix of zeros and ones, which are represented
/// explicitly and densely. It never has all zeros or all ones.
///
/// If this is the final chunk there may be excess, unused words. This
/// turns out to be both simpler and have better performance than
/// allocating the minimum number of words, largely because we avoid having
/// to store the length, which would make this type larger. These excess
/// words are always be zero, as are any excess bits in the final in-use
/// word.
///
/// The second field is the count of 1s set in the chunk, and must satisfy
/// `0 < count < chunk_domain_size`.
///
/// The words are within an `Rc` because it's surprisingly common to
/// duplicate an entire chunk, e.g. in `ChunkedBitSet::clone_from()`, or
/// when a `Mixed` chunk is union'd into a `Zeros` chunk. When we do need
/// to modify a chunk we use `Rc::make_mut`.
Mixed(ChunkSize, ChunkSize, Rc<[Word; CHUNK_WORDS]>),
}
// This type is used a lot. Make sure it doesn't unintentionally get bigger.
#[cfg(all(target_arch = "x86_64", target_pointer_width = "64"))]
crate::static_assert_size!(Chunk, 16);
impl<T> ChunkedBitSet<T> {
pub fn domain_size(&self) -> usize {
self.domain_size
}
#[cfg(test)]
fn assert_valid(&self) {
if self.domain_size == 0 {
assert!(self.chunks.is_empty());
return;
}
assert!((self.chunks.len() - 1) * CHUNK_BITS <= self.domain_size);
assert!(self.chunks.len() * CHUNK_BITS >= self.domain_size);
for chunk in self.chunks.iter() {
chunk.assert_valid();
}
}
}
impl<T: Idx> ChunkedBitSet<T> {
/// Creates a new bitset with a given `domain_size` and chunk kind.
fn new(domain_size: usize, is_empty: bool) -> Self {
let chunks = if domain_size == 0 {
Box::new([])
} else {
// All the chunks have a chunk_domain_size of `CHUNK_BITS` except
// the final one.
let final_chunk_domain_size = {
let n = domain_size % CHUNK_BITS;
if n == 0 { CHUNK_BITS } else { n }
};
let mut chunks =
vec![Chunk::new(CHUNK_BITS, is_empty); num_chunks(domain_size)].into_boxed_slice();
*chunks.last_mut().unwrap() = Chunk::new(final_chunk_domain_size, is_empty);
chunks
};
ChunkedBitSet { domain_size, chunks, marker: PhantomData }
}
/// Creates a new, empty bitset with a given `domain_size`.
#[inline]
pub fn new_empty(domain_size: usize) -> Self {
ChunkedBitSet::new(domain_size, /* is_empty */ true)
}
/// Creates a new, filled bitset with a given `domain_size`.
#[inline]
pub fn new_filled(domain_size: usize) -> Self {
ChunkedBitSet::new(domain_size, /* is_empty */ false)
}
#[cfg(test)]
fn chunks(&self) -> &[Chunk] {
&self.chunks
}
/// Count the number of bits in the set.
pub fn count(&self) -> usize {
self.chunks.iter().map(|chunk| chunk.count()).sum()
}
/// Returns `true` if `self` contains `elem`.
#[inline]
pub fn contains(&self, elem: T) -> bool {
assert!(elem.index() < self.domain_size);
let chunk = &self.chunks[chunk_index(elem)];
match &chunk {
Zeros(_) => false,
Ones(_) => true,
Mixed(_, _, words) => {
let (word_index, mask) = chunk_word_index_and_mask(elem);
(words[word_index] & mask) != 0
}
}
}
#[inline]
pub fn iter(&self) -> ChunkedBitIter<'_, T> {
ChunkedBitIter::new(self)
}
/// Insert `elem`. Returns whether the set has changed.
pub fn insert(&mut self, elem: T) -> bool {
assert!(elem.index() < self.domain_size);
let chunk_index = chunk_index(elem);
let chunk = &mut self.chunks[chunk_index];
match *chunk {
Zeros(chunk_domain_size) => {
if chunk_domain_size > 1 {
#[cfg(feature = "nightly")]
let mut words = {
// We take some effort to avoid copying the words.
let words = Rc::<[Word; CHUNK_WORDS]>::new_zeroed();
// SAFETY: `words` can safely be all zeroes.
unsafe { words.assume_init() }
};
#[cfg(not(feature = "nightly"))]
let mut words = {
let words = mem::MaybeUninit::<[Word; CHUNK_WORDS]>::zeroed();
// SAFETY: `words` can safely be all zeroes.
let words = unsafe { words.assume_init() };
// Unfortunate possibly-large copy
Rc::new(words)
};
let words_ref = Rc::get_mut(&mut words).unwrap();
let (word_index, mask) = chunk_word_index_and_mask(elem);
words_ref[word_index] |= mask;
*chunk = Mixed(chunk_domain_size, 1, words);
} else {
*chunk = Ones(chunk_domain_size);
}
true
}
Ones(_) => false,
Mixed(chunk_domain_size, ref mut count, ref mut words) => {
// We skip all the work if the bit is already set.
let (word_index, mask) = chunk_word_index_and_mask(elem);
if (words[word_index] & mask) == 0 {
*count += 1;
if *count < chunk_domain_size {
let words = Rc::make_mut(words);
words[word_index] |= mask;
} else {
*chunk = Ones(chunk_domain_size);
}
true
} else {
false
}
}
}
}
/// Sets all bits to true.
pub fn insert_all(&mut self) {
for chunk in self.chunks.iter_mut() {
*chunk = match *chunk {
Zeros(chunk_domain_size)
| Ones(chunk_domain_size)
| Mixed(chunk_domain_size, ..) => Ones(chunk_domain_size),
}
}
}
/// Returns `true` if the set has changed.
pub fn remove(&mut self, elem: T) -> bool {
assert!(elem.index() < self.domain_size);
let chunk_index = chunk_index(elem);
let chunk = &mut self.chunks[chunk_index];
match *chunk {
Zeros(_) => false,
Ones(chunk_domain_size) => {
if chunk_domain_size > 1 {
#[cfg(feature = "nightly")]
let mut words = {
// We take some effort to avoid copying the words.
let words = Rc::<[Word; CHUNK_WORDS]>::new_zeroed();
// SAFETY: `words` can safely be all zeroes.
unsafe { words.assume_init() }
};
#[cfg(not(feature = "nightly"))]
let mut words = {
let words = mem::MaybeUninit::<[Word; CHUNK_WORDS]>::zeroed();
// SAFETY: `words` can safely be all zeroes.
let words = unsafe { words.assume_init() };
// Unfortunate possibly-large copy
Rc::new(words)
};
let words_ref = Rc::get_mut(&mut words).unwrap();
// Set only the bits in use.
let num_words = num_words(chunk_domain_size as usize);
words_ref[..num_words].fill(!0);
clear_excess_bits_in_final_word(
chunk_domain_size as usize,
&mut words_ref[..num_words],
);
let (word_index, mask) = chunk_word_index_and_mask(elem);
words_ref[word_index] &= !mask;
*chunk = Mixed(chunk_domain_size, chunk_domain_size - 1, words);
} else {
*chunk = Zeros(chunk_domain_size);
}
true
}
Mixed(chunk_domain_size, ref mut count, ref mut words) => {
// We skip all the work if the bit is already clear.
let (word_index, mask) = chunk_word_index_and_mask(elem);
if (words[word_index] & mask) != 0 {
*count -= 1;
if *count > 0 {
let words = Rc::make_mut(words);
words[word_index] &= !mask;
} else {
*chunk = Zeros(chunk_domain_size);
}
true
} else {
false
}
}
}
}
bit_relations_inherent_impls! {}
}
impl<T: Idx> BitRelations<ChunkedBitSet<T>> for ChunkedBitSet<T> {
fn union(&mut self, other: &ChunkedBitSet<T>) -> bool {
assert_eq!(self.domain_size, other.domain_size);
debug_assert_eq!(self.chunks.len(), other.chunks.len());
let mut changed = false;
for (mut self_chunk, other_chunk) in self.chunks.iter_mut().zip(other.chunks.iter()) {
match (&mut self_chunk, &other_chunk) {
(_, Zeros(_)) | (Ones(_), _) => {}
(Zeros(self_chunk_domain_size), Ones(other_chunk_domain_size))
| (Mixed(self_chunk_domain_size, ..), Ones(other_chunk_domain_size))
| (Zeros(self_chunk_domain_size), Mixed(other_chunk_domain_size, ..)) => {
// `other_chunk` fully overwrites `self_chunk`
debug_assert_eq!(self_chunk_domain_size, other_chunk_domain_size);
*self_chunk = other_chunk.clone();
changed = true;
}
(
Mixed(
self_chunk_domain_size,
ref mut self_chunk_count,
ref mut self_chunk_words,
),
Mixed(_other_chunk_domain_size, _other_chunk_count, other_chunk_words),
) => {
// First check if the operation would change
// `self_chunk.words`. If not, we can avoid allocating some
// words, and this happens often enough that it's a
// performance win. Also, we only need to operate on the
// in-use words, hence the slicing.
let op = |a, b| a | b;
let num_words = num_words(*self_chunk_domain_size as usize);
if bitwise_changes(
&self_chunk_words[0..num_words],
&other_chunk_words[0..num_words],
op,
) {
let self_chunk_words = Rc::make_mut(self_chunk_words);
let has_changed = bitwise(
&mut self_chunk_words[0..num_words],
&other_chunk_words[0..num_words],
op,
);
debug_assert!(has_changed);
*self_chunk_count = self_chunk_words[0..num_words]
.iter()
.map(|w| w.count_ones() as ChunkSize)
.sum();
if *self_chunk_count == *self_chunk_domain_size {
*self_chunk = Ones(*self_chunk_domain_size);
}
changed = true;
}
}
}
}
changed
}
fn subtract(&mut self, _other: &ChunkedBitSet<T>) -> bool {
unimplemented!("implement if/when necessary");
}
fn intersect(&mut self, _other: &ChunkedBitSet<T>) -> bool {
unimplemented!("implement if/when necessary");
}
}
impl<T: Idx> BitRelations<HybridBitSet<T>> for ChunkedBitSet<T> {
fn union(&mut self, other: &HybridBitSet<T>) -> bool {
// FIXME: This is slow if `other` is dense, but it hasn't been a problem
// in practice so far.
// If a faster implementation of this operation is required, consider
// reopening https://github.com/rust-lang/rust/pull/94625
assert_eq!(self.domain_size, other.domain_size());
sequential_update(|elem| self.insert(elem), other.iter())
}
fn subtract(&mut self, other: &HybridBitSet<T>) -> bool {
// FIXME: This is slow if `other` is dense, but it hasn't been a problem
// in practice so far.
// If a faster implementation of this operation is required, consider
// reopening https://github.com/rust-lang/rust/pull/94625
assert_eq!(self.domain_size, other.domain_size());
sequential_update(|elem| self.remove(elem), other.iter())
}
fn intersect(&mut self, _other: &HybridBitSet<T>) -> bool {
unimplemented!("implement if/when necessary");
}
}
impl<T: Idx> BitRelations<ChunkedBitSet<T>> for BitSet<T> {
fn union(&mut self, other: &ChunkedBitSet<T>) -> bool {
sequential_update(|elem| self.insert(elem), other.iter())
}
fn subtract(&mut self, _other: &ChunkedBitSet<T>) -> bool {
unimplemented!("implement if/when necessary");
}
fn intersect(&mut self, other: &ChunkedBitSet<T>) -> bool {
assert_eq!(self.domain_size(), other.domain_size);
let mut changed = false;
for (i, chunk) in other.chunks.iter().enumerate() {
let mut words = &mut self.words[i * CHUNK_WORDS..];
if words.len() > CHUNK_WORDS {
words = &mut words[..CHUNK_WORDS];
}
match chunk {
Chunk::Zeros(..) => {
for word in words {
if *word != 0 {
changed = true;
*word = 0;
}
}
}
Chunk::Ones(..) => (),
Chunk::Mixed(_, _, data) => {
for (i, word) in words.iter_mut().enumerate() {
let new_val = *word & data[i];
if new_val != *word {
changed = true;
*word = new_val;
}
}
}
}
}
changed
}
}
impl<T> Clone for ChunkedBitSet<T> {
fn clone(&self) -> Self {
ChunkedBitSet {
domain_size: self.domain_size,
chunks: self.chunks.clone(),
marker: PhantomData,
}
}
/// WARNING: this implementation of clone_from will panic if the two
/// bitsets have different domain sizes. This constraint is not inherent to
/// `clone_from`, but it works with the existing call sites and allows a
/// faster implementation, which is important because this function is hot.
fn clone_from(&mut self, from: &Self) {
assert_eq!(self.domain_size, from.domain_size);
debug_assert_eq!(self.chunks.len(), from.chunks.len());
self.chunks.clone_from(&from.chunks)
}
}
pub struct ChunkedBitIter<'a, T: Idx> {
index: usize,
bitset: &'a ChunkedBitSet<T>,
}
impl<'a, T: Idx> ChunkedBitIter<'a, T> {
#[inline]
fn new(bitset: &'a ChunkedBitSet<T>) -> ChunkedBitIter<'a, T> {
ChunkedBitIter { index: 0, bitset }
}
}
impl<'a, T: Idx> Iterator for ChunkedBitIter<'a, T> {
type Item = T;
fn next(&mut self) -> Option<T> {
while self.index < self.bitset.domain_size() {
let elem = T::new(self.index);
let chunk = &self.bitset.chunks[chunk_index(elem)];
match &chunk {
Zeros(chunk_domain_size) => {
self.index += *chunk_domain_size as usize;
}
Ones(_chunk_domain_size) => {
self.index += 1;
return Some(elem);
}
Mixed(_chunk_domain_size, _, words) => loop {
let elem = T::new(self.index);
self.index += 1;
let (word_index, mask) = chunk_word_index_and_mask(elem);
if (words[word_index] & mask) != 0 {
return Some(elem);
}
if self.index % CHUNK_BITS == 0 {
break;
}
},
}
}
None
}
fn fold<B, F>(mut self, mut init: B, mut f: F) -> B
where
F: FnMut(B, Self::Item) -> B,
{
// If `next` has already been called, we may not be at the start of a chunk, so we first
// advance the iterator to the start of the next chunk, before proceeding in chunk sized
// steps.
while self.index % CHUNK_BITS != 0 {
let Some(item) = self.next() else { return init };
init = f(init, item);
}
let start_chunk = self.index / CHUNK_BITS;
let chunks = &self.bitset.chunks[start_chunk..];
for (i, chunk) in chunks.iter().enumerate() {
let base = (start_chunk + i) * CHUNK_BITS;
match chunk {
Chunk::Zeros(_) => (),
Chunk::Ones(limit) => {
for j in 0..(*limit as usize) {
init = f(init, T::new(base + j));
}
}
Chunk::Mixed(_, _, words) => {
init = BitIter::new(&**words).fold(init, |val, mut item: T| {
item.increment_by(base);
f(val, item)
});
}
}
}
init
}
}
impl Chunk {
#[cfg(test)]
fn assert_valid(&self) {
match *self {
Zeros(chunk_domain_size) | Ones(chunk_domain_size) => {
assert!(chunk_domain_size as usize <= CHUNK_BITS);
}
Mixed(chunk_domain_size, count, ref words) => {
assert!(chunk_domain_size as usize <= CHUNK_BITS);
assert!(0 < count && count < chunk_domain_size);
// Check the number of set bits matches `count`.
assert_eq!(
words.iter().map(|w| w.count_ones() as ChunkSize).sum::<ChunkSize>(),
count
);
// Check the not-in-use words are all zeroed.
let num_words = num_words(chunk_domain_size as usize);
if num_words < CHUNK_WORDS {
assert_eq!(
words[num_words..]
.iter()
.map(|w| w.count_ones() as ChunkSize)
.sum::<ChunkSize>(),
0
);
}
}
}
}
fn new(chunk_domain_size: usize, is_empty: bool) -> Self {
debug_assert!(chunk_domain_size <= CHUNK_BITS);
let chunk_domain_size = chunk_domain_size as ChunkSize;
if is_empty { Zeros(chunk_domain_size) } else { Ones(chunk_domain_size) }
}
/// Count the number of 1s in the chunk.
fn count(&self) -> usize {
match *self {
Zeros(_) => 0,
Ones(chunk_domain_size) => chunk_domain_size as usize,
Mixed(_, count, _) => count as usize,
}
}
}
// Applies a function to mutate a bitset, and returns true if any
// of the applications return true
fn sequential_update<T: Idx>(
mut self_update: impl FnMut(T) -> bool,
it: impl Iterator<Item = T>,
) -> bool {
it.fold(false, |changed, elem| self_update(elem) | changed)
}
// Optimization of intersection for SparseBitSet that's generic
// over the RHS
fn sparse_intersect<T: Idx>(
set: &mut SparseBitSet<T>,
other_contains: impl Fn(&T) -> bool,
) -> bool {
let size = set.elems.len();
set.elems.retain(|elem| other_contains(elem));
set.elems.len() != size
}
// Optimization of dense/sparse intersection. The resulting set is
// guaranteed to be at most the size of the sparse set, and hence can be
// represented as a sparse set. Therefore the sparse set is copied and filtered,
// then returned as the new set.
fn dense_sparse_intersect<T: Idx>(
dense: &BitSet<T>,
sparse: &SparseBitSet<T>,
) -> (SparseBitSet<T>, bool) {
let mut sparse_copy = sparse.clone();
sparse_intersect(&mut sparse_copy, |el| dense.contains(*el));
let n = sparse_copy.len();
(sparse_copy, n != dense.count())
}
// hybrid REL dense
impl<T: Idx> BitRelations<BitSet<T>> for HybridBitSet<T> {
fn union(&mut self, other: &BitSet<T>) -> bool {
assert_eq!(self.domain_size(), other.domain_size);
match self {
HybridBitSet::Sparse(sparse) => {
// `self` is sparse and `other` is dense. To
// merge them, we have two available strategies:
// * Densify `self` then merge other
// * Clone other then integrate bits from `self`
// The second strategy requires dedicated method
// since the usual `union` returns the wrong
// result. In the dedicated case the computation
// is slightly faster if the bits of the sparse
// bitset map to only few words of the dense
// representation, i.e. indices are near each
// other.
//
// Benchmarking seems to suggest that the second
// option is worth it.
let mut new_dense = other.clone();
let changed = new_dense.reverse_union_sparse(sparse);
*self = HybridBitSet::Dense(new_dense);
changed
}
HybridBitSet::Dense(dense) => dense.union(other),
}
}
fn subtract(&mut self, other: &BitSet<T>) -> bool {
assert_eq!(self.domain_size(), other.domain_size);
match self {
HybridBitSet::Sparse(sparse) => {
sequential_update(|elem| sparse.remove(elem), other.iter())
}
HybridBitSet::Dense(dense) => dense.subtract(other),
}
}
fn intersect(&mut self, other: &BitSet<T>) -> bool {
assert_eq!(self.domain_size(), other.domain_size);
match self {
HybridBitSet::Sparse(sparse) => sparse_intersect(sparse, |elem| other.contains(*elem)),
HybridBitSet::Dense(dense) => dense.intersect(other),
}
}
}
// dense REL hybrid
impl<T: Idx> BitRelations<HybridBitSet<T>> for BitSet<T> {
fn union(&mut self, other: &HybridBitSet<T>) -> bool {
assert_eq!(self.domain_size, other.domain_size());
match other {
HybridBitSet::Sparse(sparse) => {
sequential_update(|elem| self.insert(elem), sparse.iter().cloned())
}
HybridBitSet::Dense(dense) => self.union(dense),
}
}
fn subtract(&mut self, other: &HybridBitSet<T>) -> bool {
assert_eq!(self.domain_size, other.domain_size());
match other {
HybridBitSet::Sparse(sparse) => {
sequential_update(|elem| self.remove(elem), sparse.iter().cloned())
}
HybridBitSet::Dense(dense) => self.subtract(dense),
}
}
fn intersect(&mut self, other: &HybridBitSet<T>) -> bool {
assert_eq!(self.domain_size, other.domain_size());