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mindspore/tests/ut/python/dataset/test_random_posterize.py

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# Copyright 2020 Huawei Technologies Co., Ltd
#
# 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.
# ==============================================================================
"""
Testing RandomPosterize op in DE
"""
import mindspore.dataset as ds
import mindspore.dataset.transforms.vision.c_transforms as c_vision
from mindspore import log as logger
from util import visualize_list, save_and_check_md5, \
config_get_set_seed, config_get_set_num_parallel_workers
GENERATE_GOLDEN = False
DATA_DIR = ["../data/dataset/test_tf_file_3_images/train-0000-of-0001.data"]
SCHEMA_DIR = "../data/dataset/test_tf_file_3_images/datasetSchema.json"
def skip_test_random_posterize_op_c(plot=False, run_golden=True):
"""
Test RandomPosterize in C transformations
"""
logger.info("test_random_posterize_op_c")
original_seed = config_get_set_seed(55)
original_num_parallel_workers = config_get_set_num_parallel_workers(1)
# define map operations
transforms1 = [
c_vision.Decode(),
c_vision.RandomPosterize((1, 8))
]
# First dataset
data1 = ds.TFRecordDataset(DATA_DIR, SCHEMA_DIR, columns_list=["image"], shuffle=False)
data1 = data1.map(input_columns=["image"], operations=transforms1)
# Second dataset
data2 = ds.TFRecordDataset(DATA_DIR, SCHEMA_DIR, columns_list=["image"], shuffle=False)
data2 = data2.map(input_columns=["image"], operations=[c_vision.Decode()])
image_posterize = []
image_original = []
for item1, item2 in zip(data1.create_dict_iterator(), data2.create_dict_iterator()):
image1 = item1["image"]
image2 = item2["image"]
image_posterize.append(image1)
image_original.append(image2)
if run_golden:
# check results with md5 comparison
filename = "random_posterize_01_result_c.npz"
save_and_check_md5(data1, filename, generate_golden=GENERATE_GOLDEN)
if plot:
visualize_list(image_original, image_posterize)
# Restore configuration
ds.config.set_seed(original_seed)
ds.config.set_num_parallel_workers(original_num_parallel_workers)
def skip_test_random_posterize_op_fixed_point_c(plot=False, run_golden=True):
"""
Test RandomPosterize in C transformations with fixed point
"""
logger.info("test_random_posterize_op_c")
# define map operations
transforms1 = [
c_vision.Decode(),
c_vision.RandomPosterize(1)
]
# First dataset
data1 = ds.TFRecordDataset(DATA_DIR, SCHEMA_DIR, columns_list=["image"], shuffle=False)
data1 = data1.map(input_columns=["image"], operations=transforms1)
# Second dataset
data2 = ds.TFRecordDataset(DATA_DIR, SCHEMA_DIR, columns_list=["image"], shuffle=False)
data2 = data2.map(input_columns=["image"], operations=[c_vision.Decode()])
image_posterize = []
image_original = []
for item1, item2 in zip(data1.create_dict_iterator(), data2.create_dict_iterator()):
image1 = item1["image"]
image2 = item2["image"]
image_posterize.append(image1)
image_original.append(image2)
if run_golden:
# check results with md5 comparison
filename = "random_posterize_fixed_point_01_result_c.npz"
save_and_check_md5(data1, filename, generate_golden=GENERATE_GOLDEN)
if plot:
visualize_list(image_original, image_posterize)
def test_random_posterize_exception_bit():
"""
Test RandomPosterize: out of range input bits and invalid type
"""
logger.info("test_random_posterize_exception_bit")
# Test max > 8
try:
_ = c_vision.RandomPosterize((1, 9))
except ValueError as e:
logger.info("Got an exception in DE: {}".format(str(e)))
assert str(e) == "Input is not within the required interval of (1 to 8)."
# Test min < 1
try:
_ = c_vision.RandomPosterize((0, 7))
except ValueError as e:
logger.info("Got an exception in DE: {}".format(str(e)))
assert str(e) == "Input is not within the required interval of (1 to 8)."
# Test max < min
try:
_ = c_vision.RandomPosterize((8, 1))
except ValueError as e:
logger.info("Got an exception in DE: {}".format(str(e)))
assert str(e) == "Input is not within the required interval of (1 to 8)."
# Test wrong type (not uint8)
try:
_ = c_vision.RandomPosterize(1.1)
except TypeError as e:
logger.info("Got an exception in DE: {}".format(str(e)))
assert str(e) == "Argument bits with value 1.1 is not of type (<class 'list'>, <class 'tuple'>, <class 'int'>)."
# Test wrong number of bits
try:
_ = c_vision.RandomPosterize((1, 1, 1))
except TypeError as e:
logger.info("Got an exception in DE: {}".format(str(e)))
assert str(e) == "Size of bits should be a single integer or a list/tuple (min, max) of length 2."
if __name__ == "__main__":
skip_test_random_posterize_op_c(plot=True)
skip_test_random_posterize_op_fixed_point_c(plot=True)
test_random_posterize_exception_bit()