annotate env/lib/python3.9/site-packages/networkx/algorithms/bipartite/redundancy.py @ 0:4f3585e2f14b draft default tip

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author shellac
date Mon, 22 Mar 2021 18:12:50 +0000
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1 """Node redundancy for bipartite graphs."""
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2 from itertools import combinations
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3
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4 from networkx import NetworkXError
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5
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6 __all__ = ["node_redundancy"]
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7
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8
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9 def node_redundancy(G, nodes=None):
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10 r"""Computes the node redundancy coefficients for the nodes in the bipartite
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11 graph `G`.
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12
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13 The redundancy coefficient of a node `v` is the fraction of pairs of
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14 neighbors of `v` that are both linked to other nodes. In a one-mode
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15 projection these nodes would be linked together even if `v` were
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16 not there.
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17
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18 More formally, for any vertex `v`, the *redundancy coefficient of `v`* is
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19 defined by
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20
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21 .. math::
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22
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23 rc(v) = \frac{|\{\{u, w\} \subseteq N(v),
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24 \: \exists v' \neq v,\: (v',u) \in E\:
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25 \mathrm{and}\: (v',w) \in E\}|}{ \frac{|N(v)|(|N(v)|-1)}{2}},
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26
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27 where `N(v)` is the set of neighbors of `v` in `G`.
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28
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29 Parameters
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30 ----------
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31 G : graph
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32 A bipartite graph
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33
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34 nodes : list or iterable (optional)
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35 Compute redundancy for these nodes. The default is all nodes in G.
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36
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37 Returns
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38 -------
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39 redundancy : dictionary
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40 A dictionary keyed by node with the node redundancy value.
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41
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42 Examples
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43 --------
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44 Compute the redundancy coefficient of each node in a graph::
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45
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46 >>> from networkx.algorithms import bipartite
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47 >>> G = nx.cycle_graph(4)
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48 >>> rc = bipartite.node_redundancy(G)
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49 >>> rc[0]
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50 1.0
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51
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52 Compute the average redundancy for the graph::
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53
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54 >>> from networkx.algorithms import bipartite
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55 >>> G = nx.cycle_graph(4)
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56 >>> rc = bipartite.node_redundancy(G)
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57 >>> sum(rc.values()) / len(G)
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58 1.0
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59
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60 Compute the average redundancy for a set of nodes::
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61
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62 >>> from networkx.algorithms import bipartite
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63 >>> G = nx.cycle_graph(4)
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64 >>> rc = bipartite.node_redundancy(G)
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65 >>> nodes = [0, 2]
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66 >>> sum(rc[n] for n in nodes) / len(nodes)
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67 1.0
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68
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69 Raises
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70 ------
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71 NetworkXError
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72 If any of the nodes in the graph (or in `nodes`, if specified) has
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73 (out-)degree less than two (which would result in division by zero,
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74 according to the definition of the redundancy coefficient).
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75
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76 References
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77 ----------
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78 .. [1] Latapy, Matthieu, Clémence Magnien, and Nathalie Del Vecchio (2008).
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79 Basic notions for the analysis of large two-mode networks.
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80 Social Networks 30(1), 31--48.
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81
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82 """
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83 if nodes is None:
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84 nodes = G
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85 if any(len(G[v]) < 2 for v in nodes):
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86 raise NetworkXError(
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87 "Cannot compute redundancy coefficient for a node"
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88 " that has fewer than two neighbors."
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89 )
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90 # TODO This can be trivially parallelized.
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91 return {v: _node_redundancy(G, v) for v in nodes}
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92
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93
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94 def _node_redundancy(G, v):
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95 """Returns the redundancy of the node `v` in the bipartite graph `G`.
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96
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97 If `G` is a graph with `n` nodes, the redundancy of a node is the ratio
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98 of the "overlap" of `v` to the maximum possible overlap of `v`
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99 according to its degree. The overlap of `v` is the number of pairs of
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100 neighbors that have mutual neighbors themselves, other than `v`.
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101
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102 `v` must have at least two neighbors in `G`.
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103
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104 """
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105 n = len(G[v])
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106 # TODO On Python 3, we could just use `G[u].keys() & G[w].keys()` instead
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107 # of instantiating the entire sets.
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108 overlap = sum(
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109 1 for (u, w) in combinations(G[v], 2) if (set(G[u]) & set(G[w])) - {v}
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110 )
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111 return (2 * overlap) / (n * (n - 1))