#![no_std]
#![cfg_attr(not(feature = "std"), feature(alloc_prelude))]
#[cfg(any(test, feature = "std"))]
#[macro_use]
extern crate std;
#[cfg(feature="std")]
use std::vec::Vec;
#[cfg(feature="serde")]
extern crate serde;
#[cfg(feature="serde")]
use serde::{Serialize, Deserialize};
#[cfg(not(feature="std"))]
#[macro_use]
extern crate alloc;
#[cfg(not(feature="std"))]
use alloc::vec::Vec;
use core::cmp::Ordering;
use core::cmp;
use core::fmt;
use core::hash;
use core::mem;
use core::iter::FromIterator;
use core::slice;
use core::{u8, usize};
use core::iter::repeat;
use core::ops::*;
type MutBlocks<'a, B> = slice::IterMut<'a, B>;
pub trait BitBlock:
	Copy +
	Add<Self, Output=Self> +
	Sub<Self, Output=Self> +
	Shl<usize, Output=Self> +
	Shr<usize, Output=Self> +
	Not<Output=Self> +
	BitAnd<Self, Output=Self> +
	BitOr<Self, Output=Self> +
	BitXor<Self, Output=Self> +
	Rem<Self, Output=Self> +
	Eq +
	Ord +
	hash::Hash
{
	
    fn bits() -> usize;
    
    #[inline]
    fn bytes() -> usize { Self::bits() / 8 }
    
    fn from_byte(byte: u8) -> Self;
    
    fn count_ones(self) -> usize;
    
    fn zero() -> Self;
    
    fn one() -> Self;
}
macro_rules! bit_block_impl {
    ($(($t: ident, $size: expr)),*) => ($(
        impl BitBlock for $t {
            #[inline]
            fn bits() -> usize { $size }
            #[inline]
            fn from_byte(byte: u8) -> Self { $t::from(byte) }
            #[inline]
            fn count_ones(self) -> usize { self.count_ones() as usize }
            #[inline]
            fn one() -> Self { 1 }
            #[inline]
            fn zero() -> Self { 0 }
        }
    )*)
}
bit_block_impl!{
    (u8, 8),
    (u16, 16),
    (u32, 32),
    (u64, 64),
    (usize, core::mem::size_of::<usize>() * 8)
}
fn reverse_bits(byte: u8) -> u8 {
    let mut result = 0;
    for i in 0..u8::bits() {
        result |= ((byte >> i) & 1) << (u8::bits() - 1 - i);
    }
    result
}
static TRUE: bool = true;
static FALSE: bool = false;
#[cfg_attr(feature="serde", derive(Serialize, Deserialize))]
pub struct BitVec<B=u32> {
    
    storage: Vec<B>,
    
    nbits: usize
}
impl<B: BitBlock> Index<usize> for BitVec<B> {
    type Output = bool;
    #[inline]
    fn index(&self, i: usize) -> &bool {
        if self.get(i).expect("index out of bounds") {
            &TRUE
        } else {
            &FALSE
        }
    }
}
fn blocks_for_bits<B: BitBlock>(bits: usize) -> usize {
    
    
    
    
    
    
    
    
    if bits % B::bits() == 0 {
        bits / B::bits()
    } else {
        bits / B::bits() + 1
    }
}
fn mask_for_bits<B: BitBlock>(bits: usize) -> B {
    
    (!B::zero()) >> ((B::bits() - bits % B::bits()) % B::bits())
}
type B = u32;
impl BitVec<u32> {
    
    
    
    
    
    
    
    
    #[inline]
    pub fn new() -> Self {
        Default::default()
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn from_elem(nbits: usize, bit: bool) -> Self {
        let nblocks = blocks_for_bits::<B>(nbits);
        let mut bit_vec = BitVec {
            storage: vec![if bit { !B::zero() } else { B::zero() }; nblocks],
            nbits,
        };
        bit_vec.fix_last_block();
        bit_vec
    }
    
    
    
    
    
    
    
    #[inline]
    pub fn with_capacity(nbits: usize) -> Self {
        BitVec {
            storage: Vec::with_capacity(blocks_for_bits::<B>(nbits)),
            nbits: 0,
        }
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    pub fn from_bytes(bytes: &[u8]) -> Self {
        let len = bytes.len().checked_mul(u8::bits()).expect("capacity overflow");
        let mut bit_vec = BitVec::with_capacity(len);
        let complete_words = bytes.len() / B::bytes();
        let extra_bytes = bytes.len() % B::bytes();
        bit_vec.nbits = len;
        for i in 0..complete_words {
            let mut accumulator = B::zero();
            for idx in 0..B::bytes() {
                accumulator |=
                    B::from_byte(reverse_bits(bytes[i * B::bytes() + idx])) << (idx * 8)
            }
            bit_vec.storage.push(accumulator);
        }
        if extra_bytes > 0 {
            let mut last_word = B::zero();
            for (i, &byte) in bytes[complete_words * B::bytes()..].iter().enumerate() {
                last_word |=
                    B::from_byte(reverse_bits(byte)) << (i * 8);
            }
            bit_vec.storage.push(last_word);
        }
        bit_vec
    }
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn from_fn<F>(len: usize, mut f: F) -> Self
        where F: FnMut(usize) -> bool
    {
        let mut bit_vec = BitVec::from_elem(len, false);
        for i in 0..len {
            bit_vec.set(i, f(i));
        }
        bit_vec
    }
}
impl<B: BitBlock> BitVec<B> {
    
    
    
    #[inline]
    fn process<F>(&mut self, other: &BitVec<B>, mut op: F) -> bool
    		where F: FnMut(B, B) -> B {
        assert_eq!(self.len(), other.len());
        
        assert_eq!(self.storage.len(), other.storage.len());
        let mut changed_bits = B::zero();
        for (a, b) in self.blocks_mut().zip(other.blocks()) {
            let w = op(*a, b);
            changed_bits = changed_bits | (*a ^ w);
            *a = w;
        }
        changed_bits != B::zero()
    }
    
    #[inline]
    fn blocks_mut(&mut self) -> MutBlocks<B> {
        
        self.storage.iter_mut()
    }
    
    #[inline]
    pub fn blocks(&self) -> Blocks<B> {
        
        Blocks{iter: self.storage.iter()}
    }
    
    
    
    #[inline]
    pub fn storage(&self) -> &[B] {
    	&self.storage
    }
    
    
    
    #[inline]
    pub unsafe fn storage_mut(&mut self) -> &mut Vec<B> {
    	&mut self.storage
    }
    
    
    fn fix_last_block(&mut self) {
        let extra_bits = self.len() % B::bits();
        if extra_bits > 0 {
            let mask = (B::one() << extra_bits) - B::one();
            let storage_len = self.storage.len();
            let block = &mut self.storage[storage_len - 1];
            *block = *block & mask;
        }
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn get(&self, i: usize) -> Option<bool> {
        if i >= self.nbits {
            return None;
        }
        let w = i / B::bits();
        let b = i % B::bits();
        self.storage.get(w).map(|&block|
            (block & (B::one() << b)) != B::zero()
        )
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn set(&mut self, i: usize, x: bool) {
        assert!(i < self.nbits, "index out of bounds: {:?} >= {:?}", i, self.nbits);
        let w = i / B::bits();
        let b = i % B::bits();
        let flag = B::one() << b;
        let val = if x { self.storage[w] | flag }
                  else { self.storage[w] & !flag };
        self.storage[w] = val;
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn set_all(&mut self) {
        for w in &mut self.storage { *w = !B::zero(); }
        self.fix_last_block();
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn negate(&mut self) {
        for w in &mut self.storage { *w = !*w; }
        self.fix_last_block();
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn union(&mut self, other: &Self) -> bool {
        self.process(other, |w1, w2| (w1 | w2))
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn intersect(&mut self, other: &Self) -> bool {
        self.process(other, |w1, w2| (w1 & w2))
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn difference(&mut self, other: &Self) -> bool {
        self.process(other, |w1, w2| (w1 & !w2))
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn all(&self) -> bool {
        let mut last_word = !B::zero();
        
        self.blocks().all(|elem| {
            let tmp = last_word;
            last_word = elem;
            tmp == !B::zero()
        
        }) && (last_word == mask_for_bits(self.nbits))
    }
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn iter(&self) -> Iter<B> {
        Iter { bit_vec: self, range: 0..self.nbits }
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    pub fn append(&mut self, other: &mut Self) {
        let b = self.len() % B::bits();
        self.nbits += other.len();
        other.nbits = 0;
        if b == 0 {
            self.storage.append(&mut other.storage);
        } else {
            self.storage.reserve(other.storage.len());
            for block in other.storage.drain(..) {
            	{
            		let last = self.storage.last_mut().unwrap();
                	*last = *last | (block << b);
                }
                self.storage.push(block >> (B::bits() - b));
            }
        }
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    pub fn split_off(&mut self, at: usize) -> Self {
        assert!(at <= self.len(), "`at` out of bounds");
        let mut other = BitVec::<B>::default();
        if at == 0 {
            mem::swap(self, &mut other);
            return other;
        } else if at == self.len() {
            return other;
        }
        let w = at / B::bits();
        let b = at % B::bits();
        other.nbits = self.nbits - at;
        self.nbits = at;
        if b == 0 {
            
            other.storage = self.storage.split_off(w);
        } else {
            other.storage.reserve(self.storage.len() - w);
            {
                let mut iter = self.storage[w..].iter();
                let mut last = *iter.next().unwrap();
                for &cur in iter {
                    other.storage.push((last >> b) | (cur << (B::bits() - b)));
                    last = cur;
                }
                other.storage.push(last >> b);
            }
            self.storage.truncate(w + 1);
            self.fix_last_block();
        }
        other
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn none(&self) -> bool {
        self.blocks().all(|w| w == B::zero())
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn any(&self) -> bool {
        !self.none()
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    pub fn to_bytes(&self) -> Vec<u8> {
    	
        fn bit<B: BitBlock>(bit_vec: &BitVec<B>, byte: usize, bit: usize) -> u8 {
            let offset = byte * 8 + bit;
            if offset >= bit_vec.nbits {
                0
            } else {
                (bit_vec[offset] as u8) << (7 - bit)
            }
        }
        let len = self.nbits / 8 +
                  if self.nbits % 8 == 0 { 0 } else { 1 };
        (0..len).map(|i|
            bit(self, i, 0) |
            bit(self, i, 1) |
            bit(self, i, 2) |
            bit(self, i, 3) |
            bit(self, i, 4) |
            bit(self, i, 5) |
            bit(self, i, 6) |
            bit(self, i, 7)
        ).collect()
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn eq_vec(&self, v: &[bool]) -> bool {
        assert_eq!(self.nbits, v.len());
        self.iter().zip(v.iter().cloned()).all(|(b1, b2)| b1 == b2)
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn truncate(&mut self, len: usize) {
        if len < self.len() {
            self.nbits = len;
            
            self.storage.truncate(blocks_for_bits::<B>(len));
            self.fix_last_block();
        }
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn reserve(&mut self, additional: usize) {
        let desired_cap = self.len().checked_add(additional).expect("capacity overflow");
        let storage_len = self.storage.len();
        if desired_cap > self.capacity() {
            self.storage.reserve(blocks_for_bits::<B>(desired_cap) - storage_len);
        }
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn reserve_exact(&mut self, additional: usize) {
        let desired_cap = self.len().checked_add(additional).expect("capacity overflow");
        let storage_len = self.storage.len();
        if desired_cap > self.capacity() {
            self.storage.reserve_exact(blocks_for_bits::<B>(desired_cap) - storage_len);
        }
    }
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn capacity(&self) -> usize {
        self.storage.capacity().checked_mul(B::bits()).unwrap_or(usize::MAX)
    }
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    
    pub fn grow(&mut self, n: usize, value: bool) {
        
        
        
        let new_nbits = self.nbits.checked_add(n).expect("capacity overflow");
        let new_nblocks = blocks_for_bits::<B>(new_nbits);
        let full_value = if value { !B::zero() } else { B::zero() };
        
        let num_cur_blocks = blocks_for_bits::<B>(self.nbits);
        if self.nbits % B::bits() > 0 {
            let mask = mask_for_bits::<B>(self.nbits);
            if value {
            	let block = &mut self.storage[num_cur_blocks - 1];
                *block = *block | !mask;
            } else {
                
            }
        }
        
        let stop_idx = cmp::min(self.storage.len(), new_nblocks);
        for idx in num_cur_blocks..stop_idx {
            self.storage[idx] = full_value;
        }
        
        if new_nblocks > self.storage.len() {
            let to_add = new_nblocks - self.storage.len();
            self.storage.extend(repeat(full_value).take(to_add));
        }
        
        self.nbits = new_nbits;
        self.fix_last_block();
    }
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn pop(&mut self) -> Option<bool> {
        if self.is_empty() {
            None
        } else {
            let i = self.nbits - 1;
            let ret = self[i];
            
            self.set(i, false);
            self.nbits = i;
            if self.nbits % B::bits() == 0 {
                
                self.storage.pop();
            }
            Some(ret)
        }
    }
    
    
    
    
    
    
    
    
    
    
    
    
    #[inline]
    pub fn push(&mut self, elem: bool) {
        if self.nbits % B::bits() == 0 {
            self.storage.push(B::zero());
        }
        let insert_pos = self.nbits;
        self.nbits = self.nbits.checked_add(1).expect("Capacity overflow");
        self.set(insert_pos, elem);
    }
    
    #[inline]
    pub fn len(&self) -> usize { self.nbits }
    
    
    
    #[inline]
    pub unsafe fn set_len(&mut self, len: usize) {
    	self.nbits = len;
    }
    
    #[inline]
    pub fn is_empty(&self) -> bool { self.len() == 0 }
    
    #[inline]
    pub fn clear(&mut self) {
        for w in &mut self.storage { *w = B::zero(); }
    }
    
    
    
    
    
    
    pub fn shrink_to_fit(&mut self) {
        self.storage.shrink_to_fit();
    }
}
impl<B: BitBlock> Default for BitVec<B> {
    #[inline]
    fn default() -> Self { BitVec { storage: Vec::new(), nbits: 0 } }
}
impl<B: BitBlock> FromIterator<bool> for BitVec<B> {
    #[inline]
    fn from_iter<I: IntoIterator<Item=bool>>(iter: I) -> Self {
        let mut ret: Self = Default::default();
        ret.extend(iter);
        ret
    }
}
impl<B: BitBlock> Extend<bool> for BitVec<B> {
    #[inline]
    fn extend<I: IntoIterator<Item=bool>>(&mut self, iterable: I) {
        let iterator = iterable.into_iter();
        let (min, _) = iterator.size_hint();
        self.reserve(min);
        for element in iterator {
            self.push(element)
        }
    }
}
impl<B: BitBlock> Clone for BitVec<B> {
    #[inline]
    fn clone(&self) -> Self {
        BitVec { storage: self.storage.clone(), nbits: self.nbits }
    }
    #[inline]
    fn clone_from(&mut self, source: &Self) {
        self.nbits = source.nbits;
        self.storage.clone_from(&source.storage);
    }
}
impl<B: BitBlock> PartialOrd for BitVec<B> {
    #[inline]
    fn partial_cmp(&self, other: &Self) -> Option<Ordering> {
        Some(self.cmp(other))
    }
}
impl<B: BitBlock> Ord for BitVec<B> {
    #[inline]
    fn cmp(&self, other: &Self) -> Ordering {
        let mut a = self.iter();
        let mut b = other.iter();
        loop {
            match (a.next(), b.next()) {
                (Some(x), Some(y)) => match x.cmp(&y) {
                    Ordering::Equal => {}
                    otherwise => return otherwise,
                },
                (None, None) => return Ordering::Equal,
                (None, _) => return Ordering::Less,
                (_, None) => return Ordering::Greater,
            }
        }
    }
}
impl<B: BitBlock> fmt::Debug for BitVec<B> {
    fn fmt(&self, fmt: &mut fmt::Formatter) -> fmt::Result {
        for bit in self {
            write!(fmt, "{}", if bit { 1 } else { 0 })?;
        }
        Ok(())
    }
}
impl<B: BitBlock> hash::Hash for BitVec<B> {
    #[inline]
    fn hash<H: hash::Hasher>(&self, state: &mut H) {
        self.nbits.hash(state);
        for elem in self.blocks() {
            elem.hash(state);
        }
    }
}
impl<B: BitBlock> cmp::PartialEq for BitVec<B> {
    #[inline]
    fn eq(&self, other: &Self) -> bool {
        if self.nbits != other.nbits {
            return false;
        }
        self.blocks().zip(other.blocks()).all(|(w1, w2)| w1 == w2)
    }
}
impl<B: BitBlock> cmp::Eq for BitVec<B> {}
#[derive(Clone)]
pub struct Iter<'a, B: 'a = u32> {
    bit_vec: &'a BitVec<B>,
    range: Range<usize>,
}
impl<'a, B: BitBlock> Iterator for Iter<'a, B> {
    type Item = bool;
    #[inline]
    fn next(&mut self) -> Option<bool> {
        
        
        self.range.next().map(|i| self.bit_vec.get(i).unwrap())
    }
    fn size_hint(&self) -> (usize, Option<usize>) {
        self.range.size_hint()
    }
}
impl<'a, B: BitBlock> DoubleEndedIterator for Iter<'a, B> {
    #[inline]
    fn next_back(&mut self) -> Option<bool> {
        self.range.next_back().map(|i| self.bit_vec.get(i).unwrap())
    }
}
impl<'a, B: BitBlock> ExactSizeIterator for Iter<'a, B> {}
impl<'a, B: BitBlock> IntoIterator for &'a BitVec<B> {
    type Item = bool;
    type IntoIter = Iter<'a, B>;
    #[inline]
    fn into_iter(self) -> Iter<'a, B> {
        self.iter()
    }
}
pub struct IntoIter<B=u32> {
    bit_vec: BitVec<B>,
    range: Range<usize>,
}
impl<B: BitBlock> Iterator for IntoIter<B> {
    type Item = bool;
    #[inline]
    fn next(&mut self) -> Option<bool> {
        self.range.next().map(|i| self.bit_vec.get(i).unwrap())
    }
}
impl<B: BitBlock> DoubleEndedIterator for IntoIter<B> {
    #[inline]
    fn next_back(&mut self) -> Option<bool> {
        self.range.next_back().map(|i| self.bit_vec.get(i).unwrap())
    }
}
impl<B: BitBlock> ExactSizeIterator for IntoIter<B> {}
impl<B: BitBlock> IntoIterator for BitVec<B> {
    type Item = bool;
    type IntoIter = IntoIter<B>;
    #[inline]
    fn into_iter(self) -> IntoIter<B> {
        let nbits = self.nbits;
        IntoIter { bit_vec: self, range: 0..nbits }
    }
}
#[derive(Clone)]
pub struct Blocks<'a, B: 'a> {
    iter: slice::Iter<'a, B>,
}
impl<'a, B: BitBlock> Iterator for Blocks<'a, B> {
    type Item = B;
    #[inline]
    fn next(&mut self) -> Option<B> {
        self.iter.next().cloned()
    }
    #[inline]
    fn size_hint(&self) -> (usize, Option<usize>) {
        self.iter.size_hint()
    }
}
impl<'a, B: BitBlock> DoubleEndedIterator for Blocks<'a, B> {
    #[inline]
    fn next_back(&mut self) -> Option<B> {
        self.iter.next_back().cloned()
    }
}
impl<'a, B: BitBlock> ExactSizeIterator for Blocks<'a, B> {}
#[cfg(test)]
mod tests {
    use super::{BitVec, Iter, Vec};
    
    const U32_BITS: usize = 32;
    #[test]
    fn test_to_str() {
        let zerolen = BitVec::new();
        assert_eq!(format!("{:?}", zerolen), "");
        let eightbits = BitVec::from_elem(8, false);
        assert_eq!(format!("{:?}", eightbits), "00000000")
    }
    #[test]
    fn test_0_elements() {
        let act = BitVec::new();
        let exp = Vec::new();
        assert!(act.eq_vec(&exp));
        assert!(act.none() && act.all());
    }
    #[test]
    fn test_1_element() {
        let mut act = BitVec::from_elem(1, false);
        assert!(act.eq_vec(&[false]));
        assert!(act.none() && !act.all());
        act = BitVec::from_elem(1, true);
        assert!(act.eq_vec(&[true]));
        assert!(!act.none() && act.all());
    }
    #[test]
    fn test_2_elements() {
        let mut b = BitVec::from_elem(2, false);
        b.set(0, true);
        b.set(1, false);
        assert_eq!(format!("{:?}", b), "10");
        assert!(!b.none() && !b.all());
    }
    #[test]
    fn test_10_elements() {
        let mut act;
        
        act = BitVec::from_elem(10, false);
        assert!((act.eq_vec(
                    &[false, false, false, false, false, false, false, false, false, false])));
        assert!(act.none() && !act.all());
        
        act = BitVec::from_elem(10, true);
        assert!((act.eq_vec(&[true, true, true, true, true, true, true, true, true, true])));
        assert!(!act.none() && act.all());
        
        act = BitVec::from_elem(10, false);
        act.set(0, true);
        act.set(1, true);
        act.set(2, true);
        act.set(3, true);
        act.set(4, true);
        assert!((act.eq_vec(&[true, true, true, true, true, false, false, false, false, false])));
        assert!(!act.none() && !act.all());
        
        act = BitVec::from_elem(10, false);
        act.set(5, true);
        act.set(6, true);
        act.set(7, true);
        act.set(8, true);
        act.set(9, true);
        assert!((act.eq_vec(&[false, false, false, false, false, true, true, true, true, true])));
        assert!(!act.none() && !act.all());
        
        act = BitVec::from_elem(10, false);
        act.set(0, true);
        act.set(3, true);
        act.set(6, true);
        act.set(9, true);
        assert!((act.eq_vec(&[true, false, false, true, false, false, true, false, false, true])));
        assert!(!act.none() && !act.all());
    }
    #[test]
    fn test_31_elements() {
        let mut act;
        
        act = BitVec::from_elem(31, false);
        assert!(act.eq_vec(
                &[false, false, false, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, false, false, false, false]));
        assert!(act.none() && !act.all());
        
        act = BitVec::from_elem(31, true);
        assert!(act.eq_vec(
                &[true, true, true, true, true, true, true, true, true, true, true, true, true,
                  true, true, true, true, true, true, true, true, true, true, true, true, true,
                  true, true, true, true, true]));
        assert!(!act.none() && act.all());
        
        act = BitVec::from_elem(31, false);
        act.set(0, true);
        act.set(1, true);
        act.set(2, true);
        act.set(3, true);
        act.set(4, true);
        act.set(5, true);
        act.set(6, true);
        act.set(7, true);
        assert!(act.eq_vec(
                &[true, true, true, true, true, true, true, true, false, false, false, false, false,
                  false, false, false, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, false, false]));
        assert!(!act.none() && !act.all());
        
        act = BitVec::from_elem(31, false);
        act.set(16, true);
        act.set(17, true);
        act.set(18, true);
        act.set(19, true);
        act.set(20, true);
        act.set(21, true);
        act.set(22, true);
        act.set(23, true);
        assert!(act.eq_vec(
                &[false, false, false, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, true, true, true, true, true, true, true, true,
                  false, false, false, false, false, false, false]));
        assert!(!act.none() && !act.all());
        
        act = BitVec::from_elem(31, false);
        act.set(24, true);
        act.set(25, true);
        act.set(26, true);
        act.set(27, true);
        act.set(28, true);
        act.set(29, true);
        act.set(30, true);
        assert!(act.eq_vec(
                &[false, false, false, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, false, false, false, false, false, false,
                  false, false, true, true, true, true, true, true, true]));
        assert!(!act.none() && !act.all());
        
        act = BitVec::from_elem(31, false);
        act.set(3, true);
        act.set(17, true);
        act.set(30, true);
        assert!(act.eq_vec(
                &[false, false, false, true, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, true, false, false, false, false, false, false,
                  false, false, false, false, false, false, true]));
        assert!(!act.none() && !act.all());
    }
    #[test]
    fn test_32_elements() {
        let mut act;
        
        act = BitVec::from_elem(32, false);
        assert!(act.eq_vec(
                &[false, false, false, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, false, false, false, false, false]));
        assert!(act.none() && !act.all());
        
        act = BitVec::from_elem(32, true);
        assert!(act.eq_vec(
                &[true, true, true, true, true, true, true, true, true, true, true, true, true,
                  true, true, true, true, true, true, true, true, true, true, true, true, true,
                  true, true, true, true, true, true]));
        assert!(!act.none() && act.all());
        
        act = BitVec::from_elem(32, false);
        act.set(0, true);
        act.set(1, true);
        act.set(2, true);
        act.set(3, true);
        act.set(4, true);
        act.set(5, true);
        act.set(6, true);
        act.set(7, true);
        assert!(act.eq_vec(
                &[true, true, true, true, true, true, true, true, false, false, false, false, false,
                  false, false, false, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, false, false, false]));
        assert!(!act.none() && !act.all());
        
        act = BitVec::from_elem(32, false);
        act.set(16, true);
        act.set(17, true);
        act.set(18, true);
        act.set(19, true);
        act.set(20, true);
        act.set(21, true);
        act.set(22, true);
        act.set(23, true);
        assert!(act.eq_vec(
                &[false, false, false, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, true, true, true, true, true, true, true, true,
                  false, false, false, false, false, false, false, false]));
        assert!(!act.none() && !act.all());
        
        act = BitVec::from_elem(32, false);
        act.set(24, true);
        act.set(25, true);
        act.set(26, true);
        act.set(27, true);
        act.set(28, true);
        act.set(29, true);
        act.set(30, true);
        act.set(31, true);
        assert!(act.eq_vec(
                &[false, false, false, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, false, false, false, false, false, false,
                  false, false, true, true, true, true, true, true, true, true]));
        assert!(!act.none() && !act.all());
        
        act = BitVec::from_elem(32, false);
        act.set(3, true);
        act.set(17, true);
        act.set(30, true);
        act.set(31, true);
        assert!(act.eq_vec(
                &[false, false, false, true, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, true, false, false, false, false, false, false,
                  false, false, false, false, false, false, true, true]));
        assert!(!act.none() && !act.all());
    }
    #[test]
    fn test_33_elements() {
        let mut act;
        
        act = BitVec::from_elem(33, false);
        assert!(act.eq_vec(
                &[false, false, false, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, false, false, false, false, false, false]));
        assert!(act.none() && !act.all());
        
        act = BitVec::from_elem(33, true);
        assert!(act.eq_vec(
                &[true, true, true, true, true, true, true, true, true, true, true, true, true,
                  true, true, true, true, true, true, true, true, true, true, true, true, true,
                  true, true, true, true, true, true, true]));
        assert!(!act.none() && act.all());
        
        act = BitVec::from_elem(33, false);
        act.set(0, true);
        act.set(1, true);
        act.set(2, true);
        act.set(3, true);
        act.set(4, true);
        act.set(5, true);
        act.set(6, true);
        act.set(7, true);
        assert!(act.eq_vec(
                &[true, true, true, true, true, true, true, true, false, false, false, false, false,
                  false, false, false, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, false, false, false, false]));
        assert!(!act.none() && !act.all());
        
        act = BitVec::from_elem(33, false);
        act.set(16, true);
        act.set(17, true);
        act.set(18, true);
        act.set(19, true);
        act.set(20, true);
        act.set(21, true);
        act.set(22, true);
        act.set(23, true);
        assert!(act.eq_vec(
                &[false, false, false, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, true, true, true, true, true, true, true, true,
                  false, false, false, false, false, false, false, false, false]));
        assert!(!act.none() && !act.all());
        
        act = BitVec::from_elem(33, false);
        act.set(24, true);
        act.set(25, true);
        act.set(26, true);
        act.set(27, true);
        act.set(28, true);
        act.set(29, true);
        act.set(30, true);
        act.set(31, true);
        assert!(act.eq_vec(
                &[false, false, false, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, false, false, false, false, false, false,
                  false, false, true, true, true, true, true, true, true, true, false]));
        assert!(!act.none() && !act.all());
        
        act = BitVec::from_elem(33, false);
        act.set(3, true);
        act.set(17, true);
        act.set(30, true);
        act.set(31, true);
        act.set(32, true);
        assert!(act.eq_vec(
                &[false, false, false, true, false, false, false, false, false, false, false, false,
                  false, false, false, false, false, true, false, false, false, false, false, false,
                  false, false, false, false, false, false, true, true, true]));
        assert!(!act.none() && !act.all());
    }
    #[test]
    fn test_equal_differing_sizes() {
        let v0 = BitVec::from_elem(10, false);
        let v1 = BitVec::from_elem(11, false);
        assert_ne!(v0, v1);
    }
    #[test]
    fn test_equal_greatly_differing_sizes() {
        let v0 = BitVec::from_elem(10, false);
        let v1 = BitVec::from_elem(110, false);
        assert_ne!(v0, v1);
    }
    #[test]
    fn test_equal_sneaky_small() {
        let mut a = BitVec::from_elem(1, false);
        a.set(0, true);
        let mut b = BitVec::from_elem(1, true);
        b.set(0, true);
        assert_eq!(a, b);
    }
    #[test]
    fn test_equal_sneaky_big() {
        let mut a = BitVec::from_elem(100, false);
        for i in 0..100 {
            a.set(i, true);
        }
        let mut b = BitVec::from_elem(100, true);
        for i in 0..100 {
            b.set(i, true);
        }
        assert_eq!(a, b);
    }
    #[test]
    fn test_from_bytes() {
        let bit_vec = BitVec::from_bytes(&[0b10110110, 0b00000000, 0b11111111]);
        let str = concat!("10110110", "00000000", "11111111");
        assert_eq!(format!("{:?}", bit_vec), str);
    }
    #[test]
    fn test_to_bytes() {
        let mut bv = BitVec::from_elem(3, true);
        bv.set(1, false);
        assert_eq!(bv.to_bytes(), [0b10100000]);
        let mut bv = BitVec::from_elem(9, false);
        bv.set(2, true);
        bv.set(8, true);
        assert_eq!(bv.to_bytes(), [0b00100000, 0b10000000]);
    }
    #[test]
    fn test_from_bools() {
        let bools = vec![true, false, true, true];
        let bit_vec: BitVec = bools.iter().map(|n| *n).collect();
        assert_eq!(format!("{:?}", bit_vec), "1011");
    }
    #[test]
    fn test_to_bools() {
        let bools = vec![false, false, true, false, false, true, true, false];
        assert_eq!(BitVec::from_bytes(&[0b00100110]).iter().collect::<Vec<bool>>(), bools);
    }
    #[test]
    fn test_bit_vec_iterator() {
        let bools = vec![true, false, true, true];
        let bit_vec: BitVec = bools.iter().map(|n| *n).collect();
        assert_eq!(bit_vec.iter().collect::<Vec<bool>>(), bools);
        let long: Vec<_> = (0..10000).map(|i| i % 2 == 0).collect();
        let bit_vec: BitVec = long.iter().map(|n| *n).collect();
        assert_eq!(bit_vec.iter().collect::<Vec<bool>>(), long)
    }
    #[test]
    fn test_small_difference() {
        let mut b1 = BitVec::from_elem(3, false);
        let mut b2 = BitVec::from_elem(3, false);
        b1.set(0, true);
        b1.set(1, true);
        b2.set(1, true);
        b2.set(2, true);
        assert!(b1.difference(&b2));
        assert!(b1[0]);
        assert!(!b1[1]);
        assert!(!b1[2]);
    }
    #[test]
    fn test_big_difference() {
        let mut b1 = BitVec::from_elem(100, false);
        let mut b2 = BitVec::from_elem(100, false);
        b1.set(0, true);
        b1.set(40, true);
        b2.set(40, true);
        b2.set(80, true);
        assert!(b1.difference(&b2));
        assert!(b1[0]);
        assert!(!b1[40]);
        assert!(!b1[80]);
    }
    #[test]
    fn test_small_clear() {
        let mut b = BitVec::from_elem(14, true);
        assert!(!b.none() && b.all());
        b.clear();
        assert!(b.none() && !b.all());
    }
    #[test]
    fn test_big_clear() {
        let mut b = BitVec::from_elem(140, true);
        assert!(!b.none() && b.all());
        b.clear();
        assert!(b.none() && !b.all());
    }
    #[test]
    fn test_bit_vec_lt() {
        let mut a = BitVec::from_elem(5, false);
        let mut b = BitVec::from_elem(5, false);
        assert!(!(a < b) && !(b < a));
        b.set(2, true);
        assert!(a < b);
        a.set(3, true);
        assert!(a < b);
        a.set(2, true);
        assert!(!(a < b) && b < a);
        b.set(0, true);
        assert!(a < b);
    }
    #[test]
    fn test_ord() {
        let mut a = BitVec::from_elem(5, false);
        let mut b = BitVec::from_elem(5, false);
        assert!(a <= b && a >= b);
        a.set(1, true);
        assert!(a > b && a >= b);
        assert!(b < a && b <= a);
        b.set(1, true);
        b.set(2, true);
        assert!(b > a && b >= a);
        assert!(a < b && a <= b);
    }
    #[test]
    fn test_small_bit_vec_tests() {
        let v = BitVec::from_bytes(&[0]);
        assert!(!v.all());
        assert!(!v.any());
        assert!(v.none());
        let v = BitVec::from_bytes(&[0b00010100]);
        assert!(!v.all());
        assert!(v.any());
        assert!(!v.none());
        let v = BitVec::from_bytes(&[0xFF]);
        assert!(v.all());
        assert!(v.any());
        assert!(!v.none());
    }
    #[test]
    fn test_big_bit_vec_tests() {
        let v = BitVec::from_bytes(&[ 
            0, 0, 0, 0,
            0, 0, 0, 0,
            0, 0, 0]);
        assert!(!v.all());
        assert!(!v.any());
        assert!(v.none());
        let v = BitVec::from_bytes(&[ 
            0, 0, 0b00010100, 0,
            0, 0, 0, 0b00110100,
            0, 0, 0]);
        assert!(!v.all());
        assert!(v.any());
        assert!(!v.none());
        let v = BitVec::from_bytes(&[ 
            0xFF, 0xFF, 0xFF, 0xFF,
            0xFF, 0xFF, 0xFF, 0xFF,
            0xFF, 0xFF, 0xFF]);
        assert!(v.all());
        assert!(v.any());
        assert!(!v.none());
    }
    #[test]
    fn test_bit_vec_push_pop() {
        let mut s = BitVec::from_elem(5 * U32_BITS - 2, false);
        assert_eq!(s.len(), 5 * U32_BITS - 2);
        assert_eq!(s[5 * U32_BITS - 3], false);
        s.push(true);
        s.push(true);
        assert_eq!(s[5 * U32_BITS - 2], true);
        assert_eq!(s[5 * U32_BITS - 1], true);
        
        s.push(false);
        assert_eq!(s[5 * U32_BITS], false);
        s.push(false);
        assert_eq!(s[5 * U32_BITS + 1], false);
        assert_eq!(s.len(), 5 * U32_BITS + 2);
        
        assert_eq!(s.pop(), Some(false));
        assert_eq!(s.pop(), Some(false));
        assert_eq!(s.pop(), Some(true));
        assert_eq!(s.pop(), Some(true));
        assert_eq!(s.len(), 5 * U32_BITS - 2);
    }
    #[test]
    fn test_bit_vec_truncate() {
        let mut s = BitVec::from_elem(5 * U32_BITS, true);
        assert_eq!(s, BitVec::from_elem(5 * U32_BITS, true));
        assert_eq!(s.len(), 5 * U32_BITS);
        s.truncate(4 * U32_BITS);
        assert_eq!(s, BitVec::from_elem(4 * U32_BITS, true));
        assert_eq!(s.len(), 4 * U32_BITS);
        
        s.truncate(5 * U32_BITS);
        assert_eq!(s, BitVec::from_elem(4 * U32_BITS, true));
        assert_eq!(s.len(), 4 * U32_BITS);
        s.truncate(3 * U32_BITS - 10);
        assert_eq!(s, BitVec::from_elem(3 * U32_BITS - 10, true));
        assert_eq!(s.len(), 3 * U32_BITS - 10);
        s.truncate(0);
        assert_eq!(s, BitVec::from_elem(0, true));
        assert_eq!(s.len(), 0);
    }
    #[test]
    fn test_bit_vec_reserve() {
        let mut s = BitVec::from_elem(5 * U32_BITS, true);
        
        assert!(s.capacity() >= 5 * U32_BITS);
        s.reserve(2 * U32_BITS);
        assert!(s.capacity() >= 7 * U32_BITS);
        s.reserve(7 * U32_BITS);
        assert!(s.capacity() >= 12 * U32_BITS);
        s.reserve_exact(7 * U32_BITS);
        assert!(s.capacity() >= 12 * U32_BITS);
        s.reserve(7 * U32_BITS + 1);
        assert!(s.capacity() >= 12 * U32_BITS + 1);
        
        assert_eq!(s.len(), 5 * U32_BITS);
        s.push(true);
        s.push(false);
        s.push(true);
        assert_eq!(s[5 * U32_BITS - 1], true);
        assert_eq!(s[5 * U32_BITS - 0], true);
        assert_eq!(s[5 * U32_BITS + 1], false);
        assert_eq!(s[5 * U32_BITS + 2], true);
    }
    #[test]
    fn test_bit_vec_grow() {
        let mut bit_vec = BitVec::from_bytes(&[0b10110110, 0b00000000, 0b10101010]);
        bit_vec.grow(32, true);
        assert_eq!(bit_vec, BitVec::from_bytes(&[0b10110110, 0b00000000, 0b10101010,
                                     0xFF, 0xFF, 0xFF, 0xFF]));
        bit_vec.grow(64, false);
        assert_eq!(bit_vec, BitVec::from_bytes(&[0b10110110, 0b00000000, 0b10101010,
                                     0xFF, 0xFF, 0xFF, 0xFF, 0, 0, 0, 0, 0, 0, 0, 0]));
        bit_vec.grow(16, true);
        assert_eq!(bit_vec, BitVec::from_bytes(&[0b10110110, 0b00000000, 0b10101010,
                                     0xFF, 0xFF, 0xFF, 0xFF, 0, 0, 0, 0, 0, 0, 0, 0, 0xFF, 0xFF]));
    }
    #[test]
    fn test_bit_vec_extend() {
        let mut bit_vec = BitVec::from_bytes(&[0b10110110, 0b00000000, 0b11111111]);
        let ext = BitVec::from_bytes(&[0b01001001, 0b10010010, 0b10111101]);
        bit_vec.extend(ext.iter());
        assert_eq!(bit_vec, BitVec::from_bytes(&[0b10110110, 0b00000000, 0b11111111,
                                     0b01001001, 0b10010010, 0b10111101]));
    }
    #[test]
    fn test_bit_vec_append() {
        
        let mut a = BitVec::from_bytes(&[0b10100000, 0b00010010, 0b10010010, 0b00110011]);
        let mut b = BitVec::new();
        b.push(false);
        b.push(true);
        b.push(true);
        a.append(&mut b);
        assert_eq!(a.len(), 35);
        assert_eq!(b.len(), 0);
        assert!(b.capacity() >= 3);
        assert!(a.eq_vec(&[true, false, true, false, false, false, false, false,
                           false, false, false, true, false, false, true, false,
                           true, false, false, true, false, false, true, false,
                           false, false, true, true, false, false, true, true,
                           false, true, true]));
        
        let mut a = BitVec::new();
        a.push(true);
        a.push(false);
        let mut b = BitVec::from_bytes(&[0b10100000, 0b00010010, 0b10010010, 0b00110011, 0b10010101]);
        a.append(&mut b);
        assert_eq!(a.len(), 42);
        assert_eq!(b.len(), 0);
        assert!(b.capacity() >= 40);
        assert!(a.eq_vec(&[true, false, true, false, true, false, false, false,
                           false, false, false, false, false, true, false, false,
                           true, false, true, false, false, true, false, false,
                           true, false, false, false, true, true, false, false,
                           true, true, true, false, false, true, false, true,
                           false, true]));
        
        let mut a = BitVec::new();
        let mut b = BitVec::from_bytes(&[0b10100000, 0b00010010, 0b10010010, 0b00110011, 0b10010101]);
        a.append(&mut b);
        assert_eq!(a.len(), 40);
        assert_eq!(b.len(), 0);
        assert!(b.capacity() >= 40);
        assert!(a.eq_vec(&[true, false, true, false, false, false, false, false,
                           false, false, false, true, false, false, true, false,
                           true, false, false, true, false, false, true, false,
                           false, false, true, true, false, false, true, true,
                           true, false, false, true, false, true, false, true]));
        
        let mut a = BitVec::from_bytes(&[0b10100000, 0b00010010, 0b10010010, 0b00110011, 0b10010101]);
        let mut b = BitVec::new();
        a.append(&mut b);
        assert_eq!(a.len(), 40);
        assert_eq!(b.len(), 0);
        assert!(a.eq_vec(&[true, false, true, false, false, false, false, false,
                           false, false, false, true, false, false, true, false,
                           true, false, false, true, false, false, true, false,
                           false, false, true, true, false, false, true, true,
                           true, false, false, true, false, true, false, true]));
    }
    #[test]
    fn test_bit_vec_split_off() {
        
        let mut a = BitVec::new();
        a.push(true);
        a.push(false);
        a.push(false);
        a.push(true);
        let b = a.split_off(0);
        assert_eq!(a.len(), 0);
        assert_eq!(b.len(), 4);
        assert!(b.eq_vec(&[true, false, false, true]));
        
        a.truncate(0);
        a.push(true);
        a.push(false);
        a.push(false);
        a.push(true);
        let b = a.split_off(4);
        assert_eq!(a.len(), 4);
        assert_eq!(b.len(), 0);
        assert!(a.eq_vec(&[true, false, false, true]));
        
        let mut a = BitVec::from_bytes(&[0b10100000, 0b00010010, 0b10010010, 0b00110011, 0b11110011]);
        let b = a.split_off(32);
        assert_eq!(a.len(), 32);
        assert_eq!(b.len(), 8);
        assert!(a.eq_vec(&[true, false, true, false, false, false, false, false,
                           false, false, false, true, false, false, true, false,
                           true, false, false, true, false, false, true, false,
                           false, false, true, true, false, false, true, true]));
        assert!(b.eq_vec(&[true, true, true, true, false, false, true, true]));
        
        let mut a = BitVec::from_bytes(&[0b10100000, 0b00010010, 0b10010010, 0b00110011,
                                         0b01101011, 0b10101101]);
        let b = a.split_off(13);
        assert_eq!(a.len(), 13);
        assert_eq!(b.len(), 35);
        assert!(a.eq_vec(&[true, false, true, false, false, false, false, false,
                           false, false, false, true, false]));
        assert!(b.eq_vec(&[false, true, false, true, false, false, true, false,
                           false, true, false, false, false, true, true, false,
                           false, true, true, false, true, true, false, true,
                           false, true, true,  true, false, true, false, true,
                           true, false, true]));
    }
    #[test]
    fn test_into_iter() {
        let bools = vec![true, false, true, true];
        let bit_vec: BitVec = bools.iter().map(|n| *n).collect();
        let mut iter = bit_vec.into_iter();
        assert_eq!(Some(true), iter.next());
        assert_eq!(Some(false), iter.next());
        assert_eq!(Some(true), iter.next());
        assert_eq!(Some(true), iter.next());
        assert_eq!(None, iter.next());
        assert_eq!(None, iter.next());
        let bit_vec: BitVec = bools.iter().map(|n| *n).collect();
        let mut iter = bit_vec.into_iter();
        assert_eq!(Some(true), iter.next_back());
        assert_eq!(Some(true), iter.next_back());
        assert_eq!(Some(false), iter.next_back());
        assert_eq!(Some(true), iter.next_back());
        assert_eq!(None, iter.next_back());
        assert_eq!(None, iter.next_back());
        let bit_vec: BitVec = bools.iter().map(|n| *n).collect();
        let mut iter = bit_vec.into_iter();
        assert_eq!(Some(true), iter.next_back());
        assert_eq!(Some(true), iter.next());
        assert_eq!(Some(false), iter.next());
        assert_eq!(Some(true), iter.next_back());
        assert_eq!(None, iter.next());
        assert_eq!(None, iter.next_back());
    }
    #[test]
    fn iter() {
        let b = BitVec::with_capacity(10);
        let _a: Iter = b.iter();
    }
    #[cfg(feature="serde")]
    #[test]
    fn test_serialization() {
        let bit_vec: BitVec = BitVec::new();
        let serialized = serde_json::to_string(&bit_vec).unwrap();
        let unserialized: BitVec = serde_json::from_str(&serialized).unwrap();
        assert_eq!(bit_vec, unserialized);
        let bools = vec![true, false, true, true];
        let bit_vec: BitVec = bools.iter().map(|n| *n).collect();
        let serialized = serde_json::to_string(&bit_vec).unwrap();
        let unserialized = serde_json::from_str(&serialized).unwrap();
        assert_eq!(bit_vec, unserialized);
    }
}