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import time | ||
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import sparse | ||
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import networkx as nx | ||
from networkx.algorithms.link_analysis.pagerank_alg import _pagerank_scipy | ||
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import numpy as np | ||
import scipy.sparse as sp | ||
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def pagerank(G, alpha=0.85, max_iter=100, tol=1e-6) -> dict: | ||
N = len(G) | ||
if N == 0: | ||
return {} | ||
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alpha = sparse.asarray(alpha) | ||
nodelist = list(G) | ||
A = nx.to_scipy_sparse_array(G, dtype=float, format="csc") | ||
A = sparse.asarray(A) | ||
S = sparse.sum(A, axis=1) | ||
S = sparse.where(sparse.asarray(0.0) != S, sparse.asarray(1.0) / S, S) | ||
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# TODO: spdiags https://github.com/willow-ahrens/Finch.jl/issues/499 | ||
Q = sparse.asarray(sp.csc_array(sp.spdiags(S.todense(), 0, *A.shape))) | ||
A = Q @ A | ||
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# initial vector | ||
x = sparse.full((1, N), fill_value=1.0 / N) | ||
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# personalization vector | ||
p = sparse.full((1, N), fill_value=1.0 / N) | ||
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# Dangling nodes | ||
dangling_weights = p | ||
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# power iteration: make up to max_iter iterations | ||
for _ in range(max_iter): | ||
xlast = x | ||
x_dangling = sparse.where(S[None, :] == sparse.asarray(0.0), x, sparse.asarray(0.0)) | ||
x = ( | ||
alpha * (x @ A + sparse.asarray(sparse.sum(x_dangling)) * dangling_weights) | ||
+ (sparse.asarray(1) - alpha) * p | ||
) | ||
# check convergence, l1 norm | ||
err = sparse.sum(sparse.abs(x - xlast)) | ||
if err < N * tol: | ||
return dict(zip(nodelist, map(float, x[0, :]), strict=False)) | ||
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raise nx.PowerIterationFailedConvergence(max_iter) | ||
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if __name__ == "__main__": | ||
G = nx.DiGraph(nx.path_graph(4)) | ||
ITERS = 3 | ||
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# compile | ||
pagerank(G) | ||
print("compiled") | ||
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# finch | ||
start = time.time() | ||
for i in range(ITERS): | ||
print(f"finch iter: {i}") | ||
pr = pagerank(G) | ||
elapsed = time.time() - start | ||
print(f"Finch took {elapsed / ITERS} s.") | ||
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# scipy | ||
start = time.time() | ||
for i in range(ITERS): | ||
print(f"scipy iter: {i}") | ||
scipy_pr = _pagerank_scipy(G) | ||
elapsed = time.time() - start | ||
print(f"SciPy took {elapsed / ITERS} s.") | ||
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np.testing.assert_almost_equal(list(pr.values()), list(scipy_pr.values())) | ||
print(f"finch: {pr}") | ||
print(f"scipy: {scipy_pr}") |
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