dmlc--dgl
e19cd62ecd
* test basics * batched graph & filter, mxnet filter fix * frame and function; bugfix * test graph adj and inc matrices * fixing start = 0 for mxnet * test index * inplace update & line graph * multi send recv * more tests * oops * more tests * removing old test files; readonly graphs for mxnet still kept * modifying test scripts * adding a placeholder for pytorch to reserve directory * torch 0.4.1 compat fixes * moving backend out of compute to avoid nose detection * tests guide * mx sparse-to-dense/sparse-to-numpy is buggy * oops * contribution guide for unit tests * printing incmat * printing dlpack * small push * typo * fixing duplicate entries that causes undefined behavior * move equal comparison to backend
290 行
7.9 KiB
Python
290 行
7.9 KiB
Python
import numpy as np
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import scipy.sparse as sp
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import dgl
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import dgl.function as fn
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import backend as F
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D = 5
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def generate_graph():
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g = dgl.DGLGraph()
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g.add_nodes(10)
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# create a graph where 0 is the source and 9 is the sink
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for i in range(1, 9):
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g.add_edge(0, i)
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g.add_edge(i, 9)
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# add a back flow from 9 to 0
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g.add_edge(9, 0)
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g.ndata['f'] = F.randn((10, D))
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g.edata['e'] = F.randn((17, D))
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return g
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def test_inplace_recv():
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u = F.tensor([0, 0, 0, 3, 4, 9])
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v = F.tensor([1, 2, 3, 9, 9, 0])
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def message_func(edges):
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return {'m' : edges.src['f'] + edges.dst['f']}
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def reduce_func(nodes):
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return {'f' : F.sum(nodes.mailbox['m'], 1)}
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def apply_func(nodes):
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return {'f' : 2 * nodes.data['f']}
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def _test(apply_func):
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g = generate_graph()
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f = g.ndata['f']
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# one out place run to get result
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g.send((u, v), message_func)
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g.recv([0,1,2,3,9], reduce_func, apply_func)
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result = g.get_n_repr()['f']
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# inplace deg bucket run
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v1 = F.clone(f)
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g.ndata['f'] = v1
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g.send((u, v), message_func)
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g.recv([0,1,2,3,9], reduce_func, apply_func, inplace=True)
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r1 = g.get_n_repr()['f']
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# check result
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assert F.allclose(r1, result)
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# check inplace
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assert F.allclose(v1, r1)
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# inplace e2v
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v1 = F.clone(f)
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g.ndata['f'] = v1
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g.send((u, v), message_func)
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g.recv([0,1,2,3,9], fn.sum(msg='m', out='f'), apply_func, inplace=True)
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r1 = g.ndata['f']
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# check result
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assert F.allclose(r1, result)
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# check inplace
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assert F.allclose(v1, r1)
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# test send_and_recv with apply_func
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_test(apply_func)
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# test send_and_recv without apply_func
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_test(None)
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def test_inplace_snr():
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u = F.tensor([0, 0, 0, 3, 4, 9])
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v = F.tensor([1, 2, 3, 9, 9, 0])
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def message_func(edges):
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return {'m' : edges.src['f']}
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def reduce_func(nodes):
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return {'f' : F.sum(nodes.mailbox['m'], 1)}
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def apply_func(nodes):
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return {'f' : 2 * nodes.data['f']}
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def _test(apply_func):
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g = generate_graph()
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f = g.ndata['f']
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# an out place run to get result
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g.send_and_recv((u, v), fn.copy_src(src='f', out='m'),
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fn.sum(msg='m', out='f'), apply_func)
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result = g.ndata['f']
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# inplace deg bucket
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v1 = F.clone(f)
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g.ndata['f'] = v1
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g.send_and_recv((u, v), message_func, reduce_func, apply_func, inplace=True)
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r1 = g.ndata['f']
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# check result
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assert F.allclose(r1, result)
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# check inplace
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assert F.allclose(v1, r1)
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# inplace v2v spmv
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v1 = F.clone(f)
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g.ndata['f'] = v1
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g.send_and_recv((u, v), fn.copy_src(src='f', out='m'),
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fn.sum(msg='m', out='f'), apply_func, inplace=True)
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r1 = g.ndata['f']
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# check result
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assert F.allclose(r1, result)
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# check inplace
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assert F.allclose(v1, r1)
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# inplace e2v spmv
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v1 = F.clone(f)
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g.ndata['f'] = v1
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g.send_and_recv((u, v), message_func,
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fn.sum(msg='m', out='f'), apply_func, inplace=True)
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r1 = g.ndata['f']
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# check result
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assert F.allclose(r1, result)
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# check inplace
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assert F.allclose(v1, r1)
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# test send_and_recv with apply_func
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_test(apply_func)
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# test send_and_recv without apply_func
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_test(None)
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def test_inplace_push():
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nodes = F.tensor([0, 3, 4, 9])
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def message_func(edges):
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return {'m' : edges.src['f']}
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def reduce_func(nodes):
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return {'f' : F.sum(nodes.mailbox['m'], 1)}
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def apply_func(nodes):
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return {'f' : 2 * nodes.data['f']}
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def _test(apply_func):
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g = generate_graph()
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f = g.ndata['f']
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# an out place run to get result
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g.push(nodes,
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fn.copy_src(src='f', out='m'), fn.sum(msg='m', out='f'), apply_func)
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result = g.ndata['f']
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# inplace deg bucket
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v1 = F.clone(f)
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g.ndata['f'] = v1
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g.push(nodes, message_func, reduce_func, apply_func, inplace=True)
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r1 = g.ndata['f']
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# check result
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assert F.allclose(r1, result)
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# check inplace
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assert F.allclose(v1, r1)
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# inplace v2v spmv
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v1 = F.clone(f)
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g.ndata['f'] = v1
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g.push(nodes, fn.copy_src(src='f', out='m'),
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fn.sum(msg='m', out='f'), apply_func, inplace=True)
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r1 = g.ndata['f']
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# check result
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assert F.allclose(r1, result)
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# check inplace
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assert F.allclose(v1, r1)
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# inplace e2v spmv
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v1 = F.clone(f)
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g.ndata['f'] = v1
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g.push(nodes,
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message_func, fn.sum(msg='m', out='f'), apply_func, inplace=True)
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r1 = g.ndata['f']
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# check result
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assert F.allclose(r1, result)
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# check inplace
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assert F.allclose(v1, r1)
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# test send_and_recv with apply_func
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_test(apply_func)
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# test send_and_recv without apply_func
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_test(None)
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def test_inplace_pull():
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nodes = F.tensor([1, 2, 3, 9])
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def message_func(edges):
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return {'m' : edges.src['f']}
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def reduce_func(nodes):
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return {'f' : F.sum(nodes.mailbox['m'], 1)}
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def apply_func(nodes):
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return {'f' : 2 * nodes.data['f']}
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def _test(apply_func):
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g = generate_graph()
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f = g.ndata['f']
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# an out place run to get result
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g.pull(nodes,
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fn.copy_src(src='f', out='m'), fn.sum(msg='m', out='f'), apply_func)
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result = g.ndata['f']
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# inplace deg bucket
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v1 = F.clone(f)
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g.ndata['f'] = v1
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g.pull(nodes, message_func, reduce_func, apply_func, inplace=True)
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r1 = g.ndata['f']
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# check result
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assert F.allclose(r1, result)
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# check inplace
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assert F.allclose(v1, r1)
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# inplace v2v spmv
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v1 = F.clone(f)
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g.ndata['f'] = v1
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g.pull(nodes, fn.copy_src(src='f', out='m'),
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fn.sum(msg='m', out='f'), apply_func, inplace=True)
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r1 = g.ndata['f']
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# check result
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assert F.allclose(r1, result)
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# check inplace
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assert F.allclose(v1, r1)
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# inplace e2v spmv
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v1 = F.clone(f)
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g.ndata['f'] = v1
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g.pull(nodes,
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message_func, fn.sum(msg='m', out='f'), apply_func, inplace=True)
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r1 = g.ndata['f']
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# check result
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assert F.allclose(r1, result)
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# check inplace
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assert F.allclose(v1, r1)
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# test send_and_recv with apply_func
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_test(apply_func)
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# test send_and_recv without apply_func
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_test(None)
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def test_inplace_apply():
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def apply_node_func(nodes):
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return {'f': nodes.data['f'] * 2}
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def apply_edge_func(edges):
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return {'e': edges.data['e'] * 2}
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g = generate_graph()
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nodes = [1, 2, 3, 9]
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nf = g.ndata['f']
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# out place run
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g.apply_nodes(apply_node_func, nodes)
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new_nf = g.ndata['f']
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# in place run
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g.ndata['f'] = nf
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g.apply_nodes(apply_node_func, nodes, inplace=True)
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# check results correct and in place
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assert F.allclose(nf, new_nf)
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# test apply all nodes, should not be done in place
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g.ndata['f'] = nf
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g.apply_nodes(apply_node_func, inplace=True)
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assert F.allclose(nf, g.ndata['f']) == False
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edges = [3, 5, 7, 10]
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ef = g.edata['e']
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# out place run
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g.apply_edges(apply_edge_func, edges)
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new_ef = g.edata['e']
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# in place run
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g.edata['e'] = ef
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g.apply_edges(apply_edge_func, edges, inplace=True)
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g.edata['e'] = ef
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assert F.allclose(ef, new_ef)
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# test apply all edges, should not be done in place
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g.edata['e'] == ef
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g.apply_edges(apply_edge_func, inplace=True)
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assert F.allclose(ef, g.edata['e']) == False
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if __name__ == '__main__':
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test_inplace_recv()
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test_inplace_snr()
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test_inplace_push()
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test_inplace_pull()
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test_inplace_apply()
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