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b170a71e
编写于
1月 11, 2019
作者:
W
wopeizl
提交者:
GitHub
1月 11, 2019
浏览文件
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差异文件
Merge pull request #667 from wopeizl/fixbug
fix on python3 test=develop
上级
66e91259
6138fc77
变更
2
显示空白变更内容
内联
并排
Showing
2 changed file
with
14 addition
and
12 deletion
+14
-12
04.word2vec/train.py
04.word2vec/train.py
+5
-5
05.recommender_system/train.py
05.recommender_system/train.py
+9
-7
未找到文件。
04.word2vec/train.py
浏览文件 @
b170a71e
...
...
@@ -188,11 +188,11 @@ def infer(use_cuda, params_dirname=None):
# meaning there is only one level of detail and there is only one sequence of
# one word on this level.
# Note that recursive_sequence_lengths should be a list of lists.
data1
=
[[
211L
]]
# 'among'
data2
=
[[
6L
]]
# 'a'
data3
=
[[
96L
]]
# 'group'
data4
=
[[
4L
]]
# 'of'
lod
=
[[
1L
]]
data1
=
[[
numpy
.
int64
(
211
)
]]
# 'among'
data2
=
[[
numpy
.
int64
(
6
)
]]
# 'a'
data3
=
[[
numpy
.
int64
(
96
)
]]
# 'group'
data4
=
[[
numpy
.
int64
(
4
)
]]
# 'of'
lod
=
[[
numpy
.
int64
(
1
)
]]
first_word
=
fluid
.
create_lod_tensor
(
data1
,
lod
,
place
)
second_word
=
fluid
.
create_lod_tensor
(
data2
,
lod
,
place
)
...
...
05.recommender_system/train.py
浏览文件 @
b170a71e
...
...
@@ -271,26 +271,28 @@ def infer(use_cuda, params_dirname):
# Correspondingly, recursive_sequence_lengths = [[3, 2]] contains one
# level of detail info, indicating that `data` consists of two sequences
# of length 3 and 2, respectively.
user_id
=
fluid
.
create_lod_tensor
([[
1L
]],
[[
1
]],
place
)
user_id
=
fluid
.
create_lod_tensor
([[
np
.
int64
(
1
)
]],
[[
1
]],
place
)
assert
feed_target_names
[
1
]
==
"gender_id"
gender_id
=
fluid
.
create_lod_tensor
([[
1L
]],
[[
1
]],
place
)
gender_id
=
fluid
.
create_lod_tensor
([[
np
.
int64
(
1
)
]],
[[
1
]],
place
)
assert
feed_target_names
[
2
]
==
"age_id"
age_id
=
fluid
.
create_lod_tensor
([[
0L
]],
[[
1
]],
place
)
age_id
=
fluid
.
create_lod_tensor
([[
np
.
int64
(
0
)
]],
[[
1
]],
place
)
assert
feed_target_names
[
3
]
==
"job_id"
job_id
=
fluid
.
create_lod_tensor
([[
10L
]],
[[
1
]],
place
)
job_id
=
fluid
.
create_lod_tensor
([[
np
.
int64
(
10
)
]],
[[
1
]],
place
)
assert
feed_target_names
[
4
]
==
"movie_id"
movie_id
=
fluid
.
create_lod_tensor
([[
783L
]],
[[
1
]],
place
)
movie_id
=
fluid
.
create_lod_tensor
([[
np
.
int64
(
783
)
]],
[[
1
]],
place
)
assert
feed_target_names
[
5
]
==
"category_id"
category_id
=
fluid
.
create_lod_tensor
([[
10L
,
8L
,
9L
]],
[[
3
]],
place
)
category_id
=
fluid
.
create_lod_tensor
(
[
np
.
array
([
10
,
8
,
9
],
dtype
=
'int64'
)],
[[
3
]],
place
)
assert
feed_target_names
[
6
]
==
"movie_title"
movie_title
=
fluid
.
create_lod_tensor
(
[[
1069L
,
4140L
,
2923L
,
710L
,
988L
]],
[[
5
]],
place
)
[
np
.
array
([
1069
,
4140
,
2923
,
710
,
988
],
dtype
=
'int64'
)],
[[
5
]],
place
)
# Construct feed as a dictionary of {feed_target_name: feed_target_data}
# and results will contain a list of data corresponding to fetch_targets.
...
...
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