chore: import upstream snapshot with attribution
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# Copyright (c) Facebook, Inc. and its affiliates.
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#
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# This source code is licensed under the MIT license found in the
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# LICENSE file in the root directory of this source tree.
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import unittest
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import torch
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from fairseq.modules.sparse_multihead_attention import SparseMultiheadAttention
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class TestSparseMultiheadAttention(unittest.TestCase):
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def test_sparse_multihead_attention(self):
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attn_weights = torch.randn(1, 8, 8)
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bidirectional_sparse_mask = torch.tensor(
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[
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[0, 0, 0, 0, 0, float("-inf"), float("-inf"), 0],
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[0, 0, 0, 0, 0, float("-inf"), float("-inf"), 0],
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[0, 0, 0, 0, 0, float("-inf"), float("-inf"), 0],
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[0, 0, 0, 0, 0, float("-inf"), float("-inf"), 0],
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[float("-inf"), float("-inf"), float("-inf"), 0, 0, 0, 0, 0],
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[float("-inf"), float("-inf"), float("-inf"), 0, 0, 0, 0, 0],
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[float("-inf"), float("-inf"), float("-inf"), 0, 0, 0, 0, 0],
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[float("-inf"), float("-inf"), float("-inf"), 0, 0, 0, 0, 0],
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]
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)
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bidirectional_attention = SparseMultiheadAttention(
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16, 1, stride=4, expressivity=1, is_bidirectional=True
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)
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bidirectional_attention_sparse_mask = (
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bidirectional_attention.buffered_sparse_mask(attn_weights, 8, 8)
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)
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torch.all(
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torch.eq(bidirectional_attention_sparse_mask, bidirectional_sparse_mask)
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)
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sparse_mask = torch.tensor(
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[
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[
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0,
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float("-inf"),
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float("-inf"),
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float("-inf"),
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float("-inf"),
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float("-inf"),
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float("-inf"),
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float("-inf"),
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],
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[
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0,
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0,
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float("-inf"),
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float("-inf"),
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float("-inf"),
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float("-inf"),
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float("-inf"),
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float("-inf"),
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],
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[
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0,
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0,
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0,
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float("-inf"),
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float("-inf"),
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float("-inf"),
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float("-inf"),
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float("-inf"),
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],
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[
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0,
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0,
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0,
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0,
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float("-inf"),
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float("-inf"),
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float("-inf"),
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float("-inf"),
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],
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[0, 0, 0, 0, 0, float("-inf"), float("-inf"), float("-inf")],
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[
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float("-inf"),
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float("-inf"),
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float("-inf"),
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0,
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0,
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0,
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float("-inf"),
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float("-inf"),
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],
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[
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float("-inf"),
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float("-inf"),
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float("-inf"),
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0,
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0,
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0,
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0,
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float("-inf"),
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],
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[float("-inf"), float("-inf"), float("-inf"), 0, 0, 0, 0, 0],
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]
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)
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attention = SparseMultiheadAttention(
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16, 1, stride=4, expressivity=1, is_bidirectional=False
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)
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attention_sparse_mask = attention.buffered_sparse_mask(attn_weights, 8, 8)
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torch.all(torch.eq(attention_sparse_mask, sparse_mask))
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if __name__ == "__main__":
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unittest.main()
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