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chenpangpang
transformers
Commits
6ffe03a0
Unverified
Commit
6ffe03a0
authored
Mar 06, 2020
by
Thomas Wolf
Committed by
GitHub
Mar 06, 2020
Browse files
Merge pull request #3137 from tomhosking/bart-refactor
Refactor BartModel so that input checks are handled within enc/dec
parents
3e5da38d
31acb8dc
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13 additions
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5 deletions
+13
-5
src/transformers/modeling_bart.py
src/transformers/modeling_bart.py
+13
-5
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src/transformers/modeling_bart.py
View file @
6ffe03a0
...
@@ -271,6 +271,12 @@ class BartEncoder(nn.Module):
...
@@ -271,6 +271,12 @@ class BartEncoder(nn.Module):
- **all_attentions** (List[Tensor]): Attention weights for each layer.
- **all_attentions** (List[Tensor]): Attention weights for each layer.
During training might not be of length n_layers because of layer dropout.
During training might not be of length n_layers because of layer dropout.
"""
"""
# check attention mask and invert
if
attention_mask
is
not
None
:
assert
attention_mask
.
dim
()
==
2
attention_mask
=
(
1.0
-
attention_mask
.
long
())
*
-
10000.0
assert
attention_mask
.
max
()
<=
0
inputs_embeds
=
self
.
embed_tokens
(
input_ids
)
inputs_embeds
=
self
.
embed_tokens
(
input_ids
)
embed_pos
=
self
.
embed_positions
(
input_ids
)
embed_pos
=
self
.
embed_positions
(
input_ids
)
x
=
inputs_embeds
+
embed_pos
x
=
inputs_embeds
+
embed_pos
...
@@ -448,6 +454,13 @@ class BartDecoder(nn.Module):
...
@@ -448,6 +454,13 @@ class BartDecoder(nn.Module):
- hidden states
- hidden states
- attentions
- attentions
"""
"""
# check attention mask and invert
if
encoder_padding_mask
is
not
None
:
assert
encoder_padding_mask
.
dim
()
==
2
encoder_padding_mask
=
(
1.0
-
encoder_padding_mask
.
long
())
*
-
10000.0
assert
encoder_padding_mask
.
max
()
<=
0
# embed positions
# embed positions
positions
=
self
.
embed_positions
(
input_ids
,
generation_mode
=
self
.
generation_mode
)
positions
=
self
.
embed_positions
(
input_ids
,
generation_mode
=
self
.
generation_mode
)
...
@@ -808,11 +821,6 @@ class BartModel(PretrainedBartModel):
...
@@ -808,11 +821,6 @@ class BartModel(PretrainedBartModel):
decoder_attention_mask
=
None
,
decoder_attention_mask
=
None
,
decoder_cached_states
=
None
,
decoder_cached_states
=
None
,
):
):
if
attention_mask
is
not
None
:
assert
attention_mask
.
dim
()
==
2
attention_mask
=
(
1.0
-
attention_mask
.
long
())
*
-
10000.0
assert
attention_mask
.
max
()
<=
0
# make masks if user doesn't supply
# make masks if user doesn't supply
if
not
self
.
decoder
.
generation_mode
:
if
not
self
.
decoder
.
generation_mode
:
...
...
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