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ML
ffm-baseline
Commits
dd7e63fc
Commit
dd7e63fc
authored
Jul 03, 2019
by
张彦钊
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增加日记是否是视频特征
parent
06b73878
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4 additions
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4 deletions
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-4
submit.sh
eda/esmm/Model_pipline/submit.sh
+3
-3
train.py
eda/esmm/Model_pipline/train.py
+1
-1
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eda/esmm/Model_pipline/submit.sh
View file @
dd7e63fc
...
...
@@ -19,11 +19,11 @@ echo "rm model file"
b
=
`
date
+%Y%m%d
`
echo
"train..."
${
PYTHON_PATH
}
${
MODEL_PATH
}
/train.py
--ctr_task_wgt
=
0.5
--learning_rate
=
0.0001
--deep_layers
=
512,256,128,64,32
--dropout
=
0.3,0.3,0.3,0.3,0.3
--optimizer
=
Adam
--num_epochs
=
1
--embedding_size
=
16
--batch_size
=
10000
--field_size
=
1
5
--feature_size
=
600000
--l2_reg
=
0.005
--log_steps
=
100
--num_threads
=
36
--model_dir
=
${
HDFS_PATH
}
/model_ckpt/DeepCvrMTL/
--local_dir
=
${
LOCAL_PATH
}
--hdfs_dir
=
${
HDFS_PATH
}
/native
--task_type
=
train
${
PYTHON_PATH
}
${
MODEL_PATH
}
/train.py
--ctr_task_wgt
=
0.5
--learning_rate
=
0.0001
--deep_layers
=
512,256,128,64,32
--dropout
=
0.3,0.3,0.3,0.3,0.3
--optimizer
=
Adam
--num_epochs
=
1
--embedding_size
=
16
--batch_size
=
10000
--field_size
=
1
6
--feature_size
=
600000
--l2_reg
=
0.005
--log_steps
=
100
--num_threads
=
36
--model_dir
=
${
HDFS_PATH
}
/model_ckpt/DeepCvrMTL/
--local_dir
=
${
LOCAL_PATH
}
--hdfs_dir
=
${
HDFS_PATH
}
/native
--task_type
=
train
echo
"infer native..."
${
PYTHON_PATH
}
${
MODEL_PATH
}
/train.py
--ctr_task_wgt
=
0.5
--learning_rate
=
0.0001
--deep_layers
=
512,256,128,64,32
--dropout
=
0.3,0.3,0.3,0.3,0.3
--optimizer
=
Adam
--num_epochs
=
1
--embedding_size
=
16
--batch_size
=
10000
--field_size
=
1
5
--feature_size
=
600000
--l2_reg
=
0.005
--log_steps
=
100
--num_threads
=
36
--model_dir
=
${
HDFS_PATH
}
/model_ckpt/DeepCvrMTL/
--local_dir
=
${
LOCAL_PATH
}
/native
--hdfs_dir
=
${
HDFS_PATH
}
/native
--task_type
=
infer
${
PYTHON_PATH
}
${
MODEL_PATH
}
/train.py
--ctr_task_wgt
=
0.5
--learning_rate
=
0.0001
--deep_layers
=
512,256,128,64,32
--dropout
=
0.3,0.3,0.3,0.3,0.3
--optimizer
=
Adam
--num_epochs
=
1
--embedding_size
=
16
--batch_size
=
10000
--field_size
=
1
6
--feature_size
=
600000
--l2_reg
=
0.005
--log_steps
=
100
--num_threads
=
36
--model_dir
=
${
HDFS_PATH
}
/model_ckpt/DeepCvrMTL/
--local_dir
=
${
LOCAL_PATH
}
/native
--hdfs_dir
=
${
HDFS_PATH
}
/native
--task_type
=
infer
echo
"infer nearby..."
${
PYTHON_PATH
}
${
MODEL_PATH
}
/train.py
--ctr_task_wgt
=
0.5
--learning_rate
=
0.0001
--deep_layers
=
512,256,128,64,32
--dropout
=
0.3,0.3,0.3,0.3,0.3
--optimizer
=
Adam
--num_epochs
=
1
--embedding_size
=
16
--batch_size
=
10000
--field_size
=
1
5
--feature_size
=
600000
--l2_reg
=
0.005
--log_steps
=
100
--num_threads
=
36
--model_dir
=
${
HDFS_PATH
}
/model_ckpt/DeepCvrMTL/
--local_dir
=
${
LOCAL_PATH
}
/nearby
--hdfs_dir
=
${
HDFS_PATH
}
/nearby
--task_type
=
infer
${
PYTHON_PATH
}
${
MODEL_PATH
}
/train.py
--ctr_task_wgt
=
0.5
--learning_rate
=
0.0001
--deep_layers
=
512,256,128,64,32
--dropout
=
0.3,0.3,0.3,0.3,0.3
--optimizer
=
Adam
--num_epochs
=
1
--embedding_size
=
16
--batch_size
=
10000
--field_size
=
1
6
--feature_size
=
600000
--l2_reg
=
0.005
--log_steps
=
100
--num_threads
=
36
--model_dir
=
${
HDFS_PATH
}
/model_ckpt/DeepCvrMTL/
--local_dir
=
${
LOCAL_PATH
}
/nearby
--hdfs_dir
=
${
HDFS_PATH
}
/nearby
--task_type
=
infer
eda/esmm/Model_pipline/train.py
View file @
dd7e63fc
...
...
@@ -400,7 +400,7 @@ def update_or_insert(df2,queue_name):
cur
=
con
.
cursor
()
try
:
for
i
in
range
(
0
,
device_count
):
query
=
"""INSERT INTO esmm_device_diary_queue
_tmp
(device_id, city_id, time,
%
s) VALUES('
%
s', '
%
s', '
%
s', '
%
s')
\
query
=
"""INSERT INTO esmm_device_diary_queue (device_id, city_id, time,
%
s) VALUES('
%
s', '
%
s', '
%
s', '
%
s')
\
ON DUPLICATE KEY UPDATE device_id='
%
s', city_id='
%
s', time='
%
s',
%
s='
%
s'"""
%
(
queue_name
,
df2
.
device_id
[
i
],
df2
.
city_id
[
i
],
df2
.
time
[
i
],
df2
[
queue_name
][
i
],
df2
.
device_id
[
i
],
df2
.
city_id
[
i
],
df2
.
time
[
i
],
queue_name
,
df2
[
queue_name
][
i
])
cur
.
execute
(
query
)
con
.
commit
()
...
...
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