save_quant_model.py 6.0 KB
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#   copyright (c) 2019 paddlepaddle authors. all rights reserved.
#
# licensed under the apache license, version 2.0 (the "license");
# you may not use this file except in compliance with the license.
# you may obtain a copy of the license at
#
#     http://www.apache.org/licenses/license-2.0
#
# unless required by applicable law or agreed to in writing, software
# distributed under the license is distributed on an "as is" basis,
# without warranties or conditions of any kind, either express or implied.
# see the license for the specific language governing permissions and
# limitations under the license.

import unittest
import os
import sys
import argparse
import paddle
import paddle.fluid as fluid
from paddle.fluid.framework import IrGraph
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from paddle.fluid.contrib.slim.quantization import Quant2Int8MkldnnPass
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from paddle.fluid import core

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paddle.enable_static()

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def parse_args():
    parser = argparse.ArgumentParser()
    parser.add_argument(
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        '--quant_model_path',
        type=str,
        default='',
        help='A path to a Quant model.')
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    parser.add_argument(
        '--int8_model_save_path',
        type=str,
        default='',
        help='Saved optimized and quantized INT8 model')
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    parser.add_argument(
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        '--ops_to_quantize',
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        type=str,
        default='',
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        help='A comma separated list of operators to quantize. Only quantizable operators are taken into account. If the option is not used, an attempt to quantize all quantizable operators will be made.'
    )
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    parser.add_argument(
        '--op_ids_to_skip',
        type=str,
        default='',
        help='A comma separated list of operator ids to skip in quantization.')
    parser.add_argument(
        '--debug',
        action='store_true',
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        help='If used, the graph of Quant model is drawn.')
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    parser.add_argument(
        '--quant_model_filename',
        type=str,
        default="",
        help='The input model`s file name. If empty, search default `__model__` and separate parameter files and use them or in case if not found, attempt loading `model` and `params` files.'
    )
    parser.add_argument(
        '--quant_params_filename',
        type=str,
        default="",
        help='If quant_model_filename is empty, this field is ignored. The input model`s all parameters file name. If empty load parameters from separate files.'
    )
    parser.add_argument(
        '--save_model_filename',
        type=str,
        default="__model__",
        help='The name of file to save the inference program itself. If is set None, a default filename __model__ will be used.'
    )
    parser.add_argument(
        '--save_params_filename',
        type=str,
        default=None,
        help='The name of file to save all related parameters. If it is set None, parameters will be saved in separate files'
    )
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    test_args, args = parser.parse_known_args(namespace=unittest)
    return test_args, sys.argv[:1] + args


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def transform_and_save_int8_model(original_path,
                                  save_path,
                                  ops_to_quantize='',
                                  op_ids_to_skip='',
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                                  debug=False,
                                  quant_model_filename='',
                                  quant_params_filename='',
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                                  save_model_filename="__model__",
                                  save_params_filename=None):
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    place = fluid.CPUPlace()
    exe = fluid.Executor(place)
    inference_scope = fluid.executor.global_scope()
    with fluid.scope_guard(inference_scope):
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        if not quant_model_filename:
            if os.path.exists(os.path.join(original_path, '__model__')):
                [inference_program, feed_target_names,
                 fetch_targets] = fluid.io.load_inference_model(original_path,
                                                                exe)
            else:
                [inference_program, feed_target_names,
                 fetch_targets] = fluid.io.load_inference_model(
                     original_path, exe, 'model', 'params')
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        else:
            [inference_program, feed_target_names,
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             fetch_targets] = fluid.io.load_inference_model(
                 original_path, exe, quant_model_filename,
                 quant_params_filename)
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        ops_to_quantize_set = set()
        print(ops_to_quantize)
        if len(ops_to_quantize) > 0:
            ops_to_quantize_set = set(ops_to_quantize.split(','))
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        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(',')))
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        graph = IrGraph(core.Graph(inference_program.desc), for_test=True)
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        if (debug):
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            graph.draw('.', 'quant_orig', graph.all_op_nodes())
        transform_to_mkldnn_int8_pass = Quant2Int8MkldnnPass(
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            ops_to_quantize_set,
            _op_ids_to_skip=op_ids_to_skip_set,
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            _scope=inference_scope,
            _place=place,
            _core=core,
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            _debug=debug)
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        graph = transform_to_mkldnn_int8_pass.apply(graph)
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        inference_program = graph.to_program()
        with fluid.scope_guard(inference_scope):
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            fluid.io.save_inference_model(
                save_path,
                feed_target_names,
                fetch_targets,
                exe,
                inference_program,
                model_filename=save_model_filename,
                params_filename=save_params_filename)
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        print(
            "Success! INT8 model obtained from the Quant model can be found at {}\n"
            .format(save_path))
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if __name__ == '__main__':
    global test_args
    test_args, remaining_args = parse_args()
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    transform_and_save_int8_model(
        test_args.quant_model_path, test_args.int8_model_save_path,
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        test_args.ops_to_quantize, test_args.op_ids_to_skip, test_args.debug,
        test_args.quant_model_filename, test_args.quant_params_filename,
        test_args.save_model_filename, test_args.save_params_filename)