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
use super::size_hint;

/// See [`multizip`](../fn.multizip.html) for more information.
#[derive(Clone, Debug)]
#[must_use = "iterator adaptors are lazy and do nothing unless consumed"]
pub struct Zip<T> {
    t: T,
}

/// An iterator that generalizes *.zip()* and allows running multiple iterators in lockstep.
///
/// The iterator `Zip<(I, J, ..., M)>` is formed from a tuple of iterators (or values that
/// implement `IntoIterator`) and yields elements
/// until any of the subiterators yields `None`.
///
/// The iterator element type is a tuple like like `(A, B, ..., E)` where `A` to `E` are the
/// element types of the subiterator.
///
/// **Note:** The result of this macro is a value of a named type (`Zip<(I, J,
/// ..)>` of each component iterator `I, J, ...`) if each component iterator is
/// nameable.
///
/// Prefer [`izip!()`] over `multizip` for the performance benefits of using the
/// standard library `.zip()`. Prefer `multizip` if a nameable type is needed.
///
/// [`izip!()`]: macro.izip.html
///
/// ```
/// use itertools::multizip;
///
/// // iterate over three sequences side-by-side
/// let mut results = [0, 0, 0, 0];
/// let inputs = [3, 7, 9, 6];
///
/// for (r, index, input) in multizip((&mut results, 0..10, &inputs)) {
///     *r = index * 10 + input;
/// }
///
/// assert_eq!(results, [0 + 3, 10 + 7, 29, 36]);
/// ```
pub fn multizip<T, U>(t: U) -> Zip<T>
    where Zip<T>: From<U>,
          Zip<T>: Iterator,
{
    Zip::from(t)
}

macro_rules! impl_zip_iter {
    ($($B:ident),*) => (
        #[allow(non_snake_case)]
        impl<$($B: IntoIterator),*> From<($($B,)*)> for Zip<($($B::IntoIter,)*)> {
            fn from(t: ($($B,)*)) -> Self {
                let ($($B,)*) = t;
                Zip { t: ($($B.into_iter(),)*) }
            }
        }

        #[allow(non_snake_case)]
        #[allow(unused_assignments)]
        impl<$($B),*> Iterator for Zip<($($B,)*)>
            where
            $(
                $B: Iterator,
            )*
        {
            type Item = ($($B::Item,)*);

            fn next(&mut self) -> Option<Self::Item>
            {
                let ($(ref mut $B,)*) = self.t;

                // NOTE: Just like iter::Zip, we check the iterators
                // for None in order. We may finish unevenly (some
                // iterators gave n + 1 elements, some only n).
                $(
                    let $B = match $B.next() {
                        None => return None,
                        Some(elt) => elt
                    };
                )*
                Some(($($B,)*))
            }

            fn size_hint(&self) -> (usize, Option<usize>)
            {
                let sh = (::std::usize::MAX, None);
                let ($(ref $B,)*) = self.t;
                $(
                    let sh = size_hint::min($B.size_hint(), sh);
                )*
                sh
            }
        }

        #[allow(non_snake_case)]
        impl<$($B),*> ExactSizeIterator for Zip<($($B,)*)> where
            $(
                $B: ExactSizeIterator,
            )*
        { }
    );
}

impl_zip_iter!(A);
impl_zip_iter!(A, B);
impl_zip_iter!(A, B, C);
impl_zip_iter!(A, B, C, D);
impl_zip_iter!(A, B, C, D, E);
impl_zip_iter!(A, B, C, D, E, F);
impl_zip_iter!(A, B, C, D, E, F, G);
impl_zip_iter!(A, B, C, D, E, F, G, H);