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78 lines
2.9 KiB
Python
78 lines
2.9 KiB
Python
# Copyright 2022 Meta Platforms authors and The HuggingFace Team. All rights reserved.
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#
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# Licensed under the Apache License, Version 2.0 (the "License");
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# you may not use this file except in compliance with the License.
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# You may obtain a copy of the License at
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#
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# http://www.apache.org/licenses/LICENSE-2.0
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#
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# Unless required by applicable law or agreed to in writing, software
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# distributed under the License is distributed on an "AS IS" BASIS,
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# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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# See the License for the specific language governing permissions and
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# limitations under the License.
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import os
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import unittest
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from transformers.models.bert.tokenization_bert import VOCAB_FILES_NAMES
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from transformers.testing_utils import require_vision
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from transformers.utils import is_vision_available
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from ...test_processing_common import ProcessorTesterMixin
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if is_vision_available():
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from transformers import FlavaProcessor
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from transformers.models.flava.image_processing_flava import (
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FLAVA_CODEBOOK_MEAN,
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FLAVA_CODEBOOK_STD,
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FLAVA_IMAGE_MEAN,
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FLAVA_IMAGE_STD,
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)
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@require_vision
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class FlavaProcessorTest(ProcessorTesterMixin, unittest.TestCase):
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processor_class = FlavaProcessor
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@classmethod
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def _setup_image_processor(cls):
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image_processor_class = cls._get_component_class_from_processor("image_processor")
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image_processor_map = {
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"image_mean": FLAVA_IMAGE_MEAN,
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"image_std": FLAVA_IMAGE_STD,
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"do_normalize": True,
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"do_resize": True,
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"size": 224,
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"do_center_crop": True,
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"crop_size": 224,
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"input_size_patches": 14,
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"total_mask_patches": 75,
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"mask_group_max_patches": None,
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"mask_group_min_patches": 16,
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"mask_group_min_aspect_ratio": 0.3,
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"mask_group_max_aspect_ratio": None,
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"codebook_do_resize": True,
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"codebook_size": 112,
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"codebook_do_center_crop": True,
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"codebook_crop_size": 112,
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"codebook_do_map_pixels": True,
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"codebook_do_normalize": True,
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"codebook_image_mean": FLAVA_CODEBOOK_MEAN,
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"codebook_image_std": FLAVA_CODEBOOK_STD,
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}
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image_processor = image_processor_class(**image_processor_map)
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return image_processor
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@classmethod
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def _setup_tokenizer(cls):
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tokenizer_class = cls._get_component_class_from_processor("tokenizer")
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vocab_tokens = ["[UNK]", "[CLS]", "[SEP]", "[PAD]", "[MASK]", "want", "##want", "##ed", "wa", "un", "runn", "##ing", ",", "low", "lowest"] # fmt: skip
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vocab_file = os.path.join(cls.tmpdirname, VOCAB_FILES_NAMES["vocab_file"])
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with open(vocab_file, "w", encoding="utf-8") as fp:
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fp.write("".join([x + "\n" for x in vocab_tokens]))
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return tokenizer_class.from_pretrained(cls.tmpdirname)
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