Files
abomonation
abomonation_derive
ansi_term
async_trait
atty
bincode
bitflags
byteorder
bytes
cfg_if
chrono
clap
dirs
dirs_sys
erdos
fixedbitset
fnv
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
indexmap
iovec
lazy_static
libc
log
memchr
mio
net2
num_cpus
num_integer
num_traits
petgraph
pin_project_lite
pin_utils
proc_macro2
proc_macro_hack
proc_macro_nested
quote
rand
rand_chacha
rand_core
rand_hc
rand_isaac
rand_jitter
rand_os
rand_pcg
rand_xorshift
serde
serde_derive
sha1
slab
slog
slog_term
strsim
syn
synstructure
term
textwrap
thread_local
time
tokio
future
io
loom
macros
net
park
runtime
stream
sync
task
time
util
tokio_macros
tokio_serde
tokio_serde_bincode
tokio_util
unicode_width
unicode_xid
uuid
vec_map
 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
use fixedbitset::FixedBitSet;

use super::EdgeType;

use super::graph::{Graph, IndexType, NodeIndex};
#[cfg(feature = "stable_graph")]
use crate::stable_graph::StableGraph;
use crate::visit::EdgeRef;
#[cfg(feature = "stable_graph")]
use crate::visit::{IntoEdgeReferences, NodeIndexable};

use super::visit::GetAdjacencyMatrix;

/// The adjacency matrix for **Graph** is a bitmap that's computed by
/// `.adjacency_matrix()`.
impl<N, E, Ty, Ix> GetAdjacencyMatrix for Graph<N, E, Ty, Ix>
where
    Ty: EdgeType,
    Ix: IndexType,
{
    type AdjMatrix = FixedBitSet;

    fn adjacency_matrix(&self) -> FixedBitSet {
        let n = self.node_count();
        let mut matrix = FixedBitSet::with_capacity(n * n);
        for edge in self.edge_references() {
            let i = edge.source().index() * n + edge.target().index();
            matrix.put(i);
            if !self.is_directed() {
                let j = edge.source().index() + n * edge.target().index();
                matrix.put(j);
            }
        }
        matrix
    }

    fn is_adjacent(&self, matrix: &FixedBitSet, a: NodeIndex<Ix>, b: NodeIndex<Ix>) -> bool {
        let n = self.node_count();
        let index = n * a.index() + b.index();
        matrix.contains(index)
    }
}

#[cfg(feature = "stable_graph")]
/// The adjacency matrix for **Graph** is a bitmap that's computed by
/// `.adjacency_matrix()`.
impl<N, E, Ty, Ix> GetAdjacencyMatrix for StableGraph<N, E, Ty, Ix>
where
    Ty: EdgeType,
    Ix: IndexType,
{
    type AdjMatrix = FixedBitSet;

    fn adjacency_matrix(&self) -> FixedBitSet {
        let n = self.node_bound();
        let mut matrix = FixedBitSet::with_capacity(n * n);
        for edge in self.edge_references() {
            let i = edge.source().index() * n + edge.target().index();
            matrix.put(i);
            if !self.is_directed() {
                let j = edge.source().index() + n * edge.target().index();
                matrix.put(j);
            }
        }
        matrix
    }

    fn is_adjacent(&self, matrix: &FixedBitSet, a: NodeIndex<Ix>, b: NodeIndex<Ix>) -> bool {
        let n = self.node_count();
        let index = n * a.index() + b.index();
        matrix.contains(index)
    }
}