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e8e77ebe
编写于
9月 23, 2021
作者:
L
lidanqing
提交者:
GitHub
9月 23, 2021
浏览文件
操作
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电子邮件补丁
差异文件
Add quant2 int8 lstm model test (#35887) (#35912)
Co-authored-by:
N
joanna.wozna.intel
<
joanna.wozna@intel.com
>
上级
c67cf85d
变更
4
显示空白变更内容
内联
并排
Showing
4 changed file
with
74 addition
and
65 deletion
+74
-65
python/paddle/fluid/contrib/slim/quantization/quant2_int8_mkldnn_pass.py
...luid/contrib/slim/quantization/quant2_int8_mkldnn_pass.py
+2
-1
python/paddle/fluid/contrib/slim/tests/CMakeLists.txt
python/paddle/fluid/contrib/slim/tests/CMakeLists.txt
+4
-8
python/paddle/fluid/contrib/slim/tests/quant2_int8_lstm_model.py
...paddle/fluid/contrib/slim/tests/quant2_int8_lstm_model.py
+48
-38
python/paddle/fluid/contrib/slim/tests/save_quant_model.py
python/paddle/fluid/contrib/slim/tests/save_quant_model.py
+20
-18
未找到文件。
python/paddle/fluid/contrib/slim/quantization/quant2_int8_mkldnn_pass.py
浏览文件 @
e8e77ebe
...
...
@@ -93,7 +93,8 @@ class Quant2Int8MkldnnPass(object):
graph
=
self
.
_dequantize_weights
(
graph
)
graph
=
self
.
_optimize_fp32_graph
(
graph
)
graph
=
self
.
_compute_weight_scales
(
graph
)
graph
=
self
.
_update_relu_output_scales
(
graph
)
# This function causes nondeterministic quantization behavior
# graph = self._update_relu_output_scales(graph)
graph
=
self
.
_propagate_scales
(
graph
)
graph
=
self
.
_quantize_fp32_graph
(
graph
)
graph
=
self
.
_final_optimizations
(
graph
)
...
...
python/paddle/fluid/contrib/slim/tests/CMakeLists.txt
浏览文件 @
e8e77ebe
...
...
@@ -92,17 +92,14 @@ function(inference_quant2_int8_nlp_test target quant_model_dir fp32_model_dir da
--ops_to_quantize
${
ops_to_quantize
}
)
endfunction
()
function
(
inference_quant2_int8_lstm_model_test target fp32_model dataset_path
)
function
(
inference_quant2_int8_lstm_model_test target fp32_model
quant_model
dataset_path
)
py_test
(
${
target
}
SRCS
"
${
CMAKE_CURRENT_SOURCE_DIR
}
/quant2_int8_lstm_model.py"
ENVS FLAGS_OMP_NUM_THREADS=
${
CPU_NUM_THREADS_ON_CI
}
OMP_NUM_THREADS=
${
CPU_NUM_THREADS_ON_CI
}
FLAGS_use_mkldnn=true
ARGS --fp32_model
${
fp32_model
}
--quant_model
${
quant_model
}
--infer_data
${
dataset_path
}
--num_threads
4
--num_threads
1
--mkldnn_cache_capacity 100
--warmup_iter 100
--warmup_batch_size 1
--acc_diff_threshold 0.11
)
endfunction
()
...
...
@@ -293,11 +290,10 @@ if(LINUX AND WITH_MKLDNN)
# PTQ int8 lstm model
set
(
LSTM_DATA_ARCHIVE
"unittest_model_data/quant_lstm_input_data.tar.gz"
)
set
(
QUANT2_INT8_LSTM_SAVE_PATH
"
${
QUANT_INSTALL_DIR
}
/lstm_quant2"
)
download_quant_data
(
${
QUANT2_INT8_LSTM_SAVE_PATH
}
${
LSTM_DATA_ARCHIVE
}
add84c754e9b792fea1fbd728d134ab7
)
set
(
QUANT2_FP32_LSTM_MODEL_ARCHIVE
"lstm_fp32_model.tar.gz"
)
download_lstm_model
(
${
QUANT2_INT8_LSTM_SAVE_PATH
}
${
QUANT2_FP32_LSTM_MODEL_ARCHIVE
}
eecd9f44d69a84acc1cf2235c4b8b743
)
inference_quant2_int8_lstm_model_test
(
test_quant2_int8_lstm_mkldnn
${
QUANT2_INT8_LSTM_SAVE_PATH
}
/lstm_fp32_model
${
QUANT2_INT8_LSTM_SAVE_PATH
}
/quant_lstm_input_data
)
inference_quant2_int8_lstm_model_test
(
test_quant2_int8_lstm_mkldnn
${
QUANT2_INT8_LSTM_SAVE_PATH
}
/lstm_fp32_model
${
QUANT2_
LSTM_MODEL_DIR
}
/lstm_quant
${
QUANT2_
INT8_LSTM_SAVE_PATH
}
/quant_lstm_input_data
)
endif
()
...
...
python/paddle/fluid/contrib/slim/tests/quant2_int8_lstm_model.py
浏览文件 @
e8e77ebe
...
...
@@ -20,30 +20,28 @@ import time
import
unittest
from
paddle
import
fluid
from
paddle.fluid.core
import
AnalysisConfig
,
create_paddle_predictor
from
save_quant_model
import
transform_and_save_int8_model
def
parse_args
():
parser
=
argparse
.
ArgumentParser
()
parser
.
add_argument
(
'--fp32_model'
,
type
=
str
,
default
=
''
,
help
=
'A path to a FP32 model.'
)
parser
.
add_argument
(
'--infer_data'
,
type
=
str
,
default
=
''
,
help
=
'Data file.'
)
parser
.
add_argument
(
'--num_threads'
,
type
=
int
,
default
=
1
,
help
=
'Number of threads.'
)
'--quant_model'
,
type
=
str
,
default
=
''
,
help
=
'A path to a quant model.'
)
parser
.
add_argument
(
'--infer_data'
,
type
=
str
,
default
=
''
,
help
=
'Data file.'
)
parser
.
add_argument
(
'--warmup_iter'
,
type
=
int
,
default
=
1
,
help
=
'Number of the first iterations to skip in performance statistics.'
)
parser
.
add_argument
(
'--warmup_batch_size'
,
type
=
int
,
default
=
1
,
help
=
'Number of batches to use in PTQ warmup. Default: 1.'
)
parser
.
add_argument
(
'--acc_diff_threshold'
,
type
=
float
,
default
=
0.01
,
help
=
'Accepted accuracy difference threshold.'
)
parser
.
add_argument
(
'--num_threads'
,
type
=
int
,
default
=
1
,
help
=
'Number of threads.'
)
parser
.
add_argument
(
'--mkldnn_cache_capacity'
,
type
=
int
,
...
...
@@ -56,7 +54,7 @@ def parse_args():
class
TestLstmModelPTQ
(
unittest
.
TestCase
):
def
get_warmup_tensor
(
self
,
data_path
,
place
,
warmup_batch_size
):
def
get_warmup_tensor
(
self
,
data_path
,
place
):
data
=
[]
with
open
(
data_path
,
'rb'
)
as
in_f
:
while
True
:
...
...
@@ -87,30 +85,31 @@ class TestLstmModelPTQ(unittest.TestCase):
infer_label
.
shape
=
label
.
shape
infer_label
.
dtype
=
fluid
.
core
.
PaddleDType
.
INT32
data
.
append
([
infer_data
,
infer_label
])
warmup_data
=
data
[:
warmup_batch_size
]
inputs
=
data
[
warmup_batch_size
:]
warmup_data
=
data
[:
1
]
inputs
=
data
[
1
:]
return
warmup_data
,
inputs
def
set_config
(
self
,
model_path
,
num_threads
,
mkldnn_cache_capacity
,
warmup_batch_size
,
warmup_data
=
None
,
enable_int8
=
False
):
use_analysis
=
False
,
enable_ptq
=
False
):
config
=
AnalysisConfig
(
model_path
)
config
.
set_cpu_math_library_num_threads
(
num_threads
)
if
use_analysis
:
config
.
disable_gpu
()
config
.
switch_use_feed_fetch_ops
(
True
)
config
.
switch_ir_optim
(
True
)
config
.
set_cpu_math_library_num_threads
(
num_threads
)
# This pass to work properly, must be added before fc_fuse_pass
config
.
pass_builder
().
insert_pass
(
5
,
"fc_lstm_fuse_pass"
)
config
.
enable_mkldnn
()
config
.
set_mkldnn_cache_capacity
(
mkldnn_cache_capacity
)
if
enable_int8
:
if
enable_ptq
:
# This pass to work properly, must be added before fc_fuse_pass
config
.
pass_builder
().
insert_pass
(
5
,
"fc_lstm_fuse_pass"
)
config
.
enable_quantizer
()
config
.
quantizer_config
().
set_quant_data
(
warmup_data
)
config
.
quantizer_config
().
set_quant_batch_size
(
warmup_batch_size
)
config
.
quantizer_config
().
set_quant_batch_size
(
1
)
return
config
def
run_program
(
self
,
...
...
@@ -119,15 +118,13 @@ class TestLstmModelPTQ(unittest.TestCase):
num_threads
,
mkldnn_cache_capacity
,
warmup_iter
,
warmup_batch_siz
e
,
enable_ptq
_int8
=
False
):
use_analysis
=
Fals
e
,
enable_ptq
=
False
):
place
=
fluid
.
CPUPlace
()
warmup_data
,
inputs
=
self
.
get_warmup_tensor
(
data_path
,
place
,
warmup_batch_size
)
warmup_data
,
inputs
=
self
.
get_warmup_tensor
(
data_path
,
place
)
warmup_data
=
[
item
[
0
]
for
item
in
warmup_data
]
config
=
self
.
set_config
(
model_path
,
num_threads
,
mkldnn_cache_capacity
,
warmup_batch_size
,
warmup_data
,
enable_ptq_int8
)
warmup_data
,
use_analysis
,
enable_ptq
)
predictor
=
create_paddle_predictor
(
config
)
data
=
[
item
[
0
]
for
item
in
inputs
]
...
...
@@ -183,34 +180,47 @@ class TestLstmModelPTQ(unittest.TestCase):
fp32_model
=
test_case_args
.
fp32_model
assert
fp32_model
,
'The FP32 model path cannot be empty. Please, use the --fp32_model option.'
quant_model
=
test_case_args
.
quant_model
assert
quant_model
,
'The quant model path cannot be empty. Please, use the --quant_model option.'
infer_data
=
test_case_args
.
infer_data
assert
infer_data
,
'The dataset path cannot be empty. Please, use the --infer_data option.'
num_threads
=
test_case_args
.
num_threads
mkldnn_cache_capacity
=
test_case_args
.
mkldnn_cache_capacity
warmup_iter
=
test_case_args
.
warmup_iter
warmup_batch_size
=
test_case_args
.
warmup_batch_size
acc_diff_threshold
=
test_case_args
.
acc_diff_threshold
(
fp32_hx_acc
,
fp32_ctc_acc
,
fp32_fps
)
=
self
.
run_program
(
fp32_model
,
infer_data
,
num_threads
,
mkldnn_cache_capacity
,
warmup_iter
,
warmup_batch_siz
e
,
False
)
warmup_iter
,
Fals
e
,
False
)
(
int8_hx_acc
,
int8_ctc_acc
,
int8_fps
)
=
self
.
run_program
(
fp32_model
,
infer_data
,
num_threads
,
mkldnn_cache_capacity
,
warmup_iter
,
warmup_batch_size
,
True
)
warmup_iter
,
True
,
True
)
quant_model_save_path
=
quant_model
+
"_int8"
# transform model to quant2
transform_and_save_int8_model
(
quant_model
,
quant_model_save_path
,
"fusion_lstm,concat"
)
print
(
"FP32: fps {0}, hx_acc {1}, ctc_acc {2}."
.
format
(
(
quant_hx_acc
,
quant_ctc_acc
,
quant_fps
)
=
self
.
run_program
(
quant_model_save_path
,
infer_data
,
num_threads
,
mkldnn_cache_capacity
,
warmup_iter
,
True
,
False
)
print
(
"FP32: fps {0}, hx_acc {1}, ctc_acc {2}"
.
format
(
fp32_fps
,
fp32_hx_acc
,
fp32_ctc_acc
))
print
(
"PTQ
INT8: fps {0}, hx_acc {1}, ctc_acc {2}.
"
.
format
(
print
(
"PTQ
_INT8: fps {0}, hx_acc {1}, ctc_acc {2}
"
.
format
(
int8_fps
,
int8_hx_acc
,
int8_ctc_acc
))
print
(
"QUANT2_INT8: fps {0}, hx_acc {1}, ctc_acc {2}"
.
format
(
quant_fps
,
quant_hx_acc
,
quant_ctc_acc
))
sys
.
stdout
.
flush
()
hx_delta_value
=
fp32_hx_acc
-
int8_hx_acc
ctc_delta_value
=
fp32_ctc_acc
-
int8_ctc_acc
self
.
assertLess
(
hx_delta_value
,
acc_diff_threshold
)
self
.
assertLess
(
ctc_delta_value
,
acc_diff_threshold
)
self
.
assertLess
(
fp32_hx_acc
-
int8_hx_acc
,
acc_diff_threshold
)
self
.
assertLess
(
fp32_ctc_acc
-
int8_ctc_acc
,
acc_diff_threshold
)
self
.
assertLess
(
fp32_hx_acc
-
quant_hx_acc
,
acc_diff_threshold
)
self
.
assertLess
(
fp32_ctc_acc
-
quant_ctc_acc
,
acc_diff_threshold
)
if
__name__
==
"__main__"
:
...
...
python/paddle/fluid/contrib/slim/tests/save_quant_model.py
浏览文件 @
e8e77ebe
...
...
@@ -16,11 +16,6 @@ import unittest
import
os
import
sys
import
argparse
import
logging
import
struct
import
six
import
numpy
as
np
import
time
import
paddle
import
paddle.fluid
as
fluid
from
paddle.fluid.framework
import
IrGraph
...
...
@@ -62,7 +57,11 @@ def parse_args():
return
test_args
,
sys
.
argv
[:
1
]
+
args
def
transform_and_save_int8_model
(
original_path
,
save_path
):
def
transform_and_save_int8_model
(
original_path
,
save_path
,
ops_to_quantize
=
''
,
op_ids_to_skip
=
''
,
debug
=
False
):
place
=
fluid
.
CPUPlace
()
exe
=
fluid
.
Executor
(
place
)
inference_scope
=
fluid
.
executor
.
global_scope
()
...
...
@@ -75,24 +74,26 @@ def transform_and_save_int8_model(original_path, save_path):
fetch_targets
]
=
fluid
.
io
.
load_inference_model
(
original_path
,
exe
,
'model'
,
'params'
)
ops_to_quantize
=
set
()
if
len
(
test_args
.
ops_to_quantize
)
>
0
:
ops_to_quantize
=
set
(
test_args
.
ops_to_quantize
.
split
(
','
))
ops_to_quantize_set
=
set
()
print
(
ops_to_quantize
)
if
len
(
ops_to_quantize
)
>
0
:
ops_to_quantize_set
=
set
(
ops_to_quantize
.
split
(
','
))
op_ids_to_skip
=
set
([
-
1
])
if
len
(
test_args
.
op_ids_to_skip
)
>
0
:
op_ids_to_skip
=
set
(
map
(
int
,
test_args
.
op_ids_to_skip
.
split
(
','
)))
op_ids_to_skip_set
=
set
([
-
1
])
print
(
op_ids_to_skip
)
if
len
(
op_ids_to_skip
)
>
0
:
op_ids_to_skip_set
=
set
(
map
(
int
,
op_ids_to_skip
.
split
(
','
)))
graph
=
IrGraph
(
core
.
Graph
(
inference_program
.
desc
),
for_test
=
True
)
if
(
test_args
.
debug
):
if
(
debug
):
graph
.
draw
(
'.'
,
'quant_orig'
,
graph
.
all_op_nodes
())
transform_to_mkldnn_int8_pass
=
Quant2Int8MkldnnPass
(
ops_to_quantize
,
_op_ids_to_skip
=
op_ids_to_skip
,
ops_to_quantize
_set
,
_op_ids_to_skip
=
op_ids_to_skip
_set
,
_scope
=
inference_scope
,
_place
=
place
,
_core
=
core
,
_debug
=
test_args
.
debug
)
_debug
=
debug
)
graph
=
transform_to_mkldnn_int8_pass
.
apply
(
graph
)
inference_program
=
graph
.
to_program
()
with
fluid
.
scope_guard
(
inference_scope
):
...
...
@@ -106,5 +107,6 @@ def transform_and_save_int8_model(original_path, save_path):
if
__name__
==
'__main__'
:
global
test_args
test_args
,
remaining_args
=
parse_args
()
transform_and_save_int8_model
(
test_args
.
quant_model_path
,
test_args
.
int8_model_save_path
)
transform_and_save_int8_model
(
test_args
.
quant_model_path
,
test_args
.
int8_model_save_path
,
test_args
.
ops_to_quantize
,
test_args
.
op_ids_to_skip
,
test_args
.
debug
)
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