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test_dist_save_load.py 4.9 KB
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#   Copyright (c) 2018 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.
from __future__ import print_function

import os
import shutil
import unittest
import tempfile

import numpy as np

from test_dist_base import TestDistBase, RUN_STEP


class TestDistSaveLoadDense2x2(TestDistBase):
    def _setup_config(self):
        self._sync_mode = True
        self._enforce_place = "CPU"

    def check_with_place(self,
                         model_file,
                         delta=1e-3,
                         check_error_log=False,
                         need_envs={}):
        required_envs = {
            "PATH": os.getenv("PATH", ""),
            "PYTHONPATH": os.getenv("PYTHONPATH", ""),
            "LD_LIBRARY_PATH": os.getenv("LD_LIBRARY_PATH", ""),
            "http_proxy": ""
        }

        required_envs.update(need_envs)

        if check_error_log:
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            required_envs["GLOG_v"] = "3"
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            required_envs["GLOG_logtostderr"] = "1"

        model_dir = tempfile.mkdtemp()

        local_env = {}
        local_env["SAVE"] = "1"
        local_env["MODEL_DIR"] = model_dir
        local_env.update(required_envs)

        cluster_env = {}
        cluster_env["LOAD"] = "1"
        cluster_env["MODEL_DIR"] = model_dir
        cluster_env.update(required_envs)

        local_var = self._run_local(model_file, local_env, check_error_log)
        tr0_var, tr1_var = self._run_cluster(model_file, cluster_env,
                                             check_error_log)

        shutil.rmtree(model_dir)

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        local_np = np.array(local_var)
        train0_np = np.array(tr0_var)
        train1_np = np.array(tr1_var)

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        self.assertAlmostEqual(local_np.all(), train0_np.all(), delta=delta)
        self.assertAlmostEqual(local_np.all(), train1_np.all(), delta=delta)
        self.assertAlmostEqual(train0_np.all(), train1_np.all(), delta=delta)

    def test_dist(self):
        need_envs = {
            "IS_DISTRIBUTED": '0',
            "IS_SPARSE": '0',
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            'IS_SELF_CONTAINED_LR': '1',
            'SAVE_MODE': 'LOCAL',
        }
        self.check_with_place(
            "dist_save_load.py",
            delta=0,
            check_error_log=False,
            need_envs=need_envs)


class TestDistSaveLoadWithPServerStateDense2x2(TestDistBase):
    def _setup_config(self):
        self._sync_mode = True
        self._enforce_place = "CPU"

    def check_with_place(self,
                         model_file,
                         delta=1e-3,
                         check_error_log=False,
                         need_envs={}):
        required_envs = {
            "PATH": os.getenv("PATH", ""),
            "PYTHONPATH": os.getenv("PYTHONPATH", ""),
            "LD_LIBRARY_PATH": os.getenv("LD_LIBRARY_PATH", ""),
            "http_proxy": ""
        }

        required_envs.update(need_envs)

        if check_error_log:
            required_envs["GLOG_v"] = "3"
            required_envs["GLOG_logtostderr"] = "1"

        model_dir = tempfile.mkdtemp()

        save_env = {}
        save_env["SAVE_MODE"] = "DIST"
        save_env["SAVE"] = "1"
        save_env["MODEL_DIR"] = model_dir
        save_env.update(required_envs)

        tr0_var_1, tr1_var_1 = self._run_cluster(model_file, save_env,
                                                 check_error_log)

        load_env = {}
        load_env["LOAD"] = "1"
        load_env["MODEL_DIR"] = model_dir
        load_env.update(required_envs)
        tr0_var_2, tr1_var_2 = self._run_cluster(model_file, load_env,
                                                 check_error_log)

        shutil.rmtree(model_dir)

        train0_1_np = np.array(tr0_var_1)
        train1_1_np = np.array(tr1_var_1)
        train0_2_np = np.array(tr0_var_2)
        train1_2_np = np.array(tr1_var_2)

        self.assertAlmostEqual(
            train0_1_np.all(), train0_2_np.all(), delta=delta)
        self.assertAlmostEqual(
            train1_1_np.all(), train1_2_np.all(), delta=delta)

    def test_dist(self):
        need_envs = {
            "IS_DISTRIBUTED": '0',
            "IS_SPARSE": '0',
            'IS_SELF_CONTAINED_LR': '1',
            'SAVE_MODE': 'DIST',
            'OPTIMIZER': 'ADAM',
            'SKIP_STEPS': str(np.random.randint(2, 6))
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        }
        self.check_with_place(
            "dist_save_load.py",
            delta=0,
            check_error_log=False,
            need_envs=need_envs)


if __name__ == "__main__":
    unittest.main()