Update old existing feature extractor references (#24552)
* Update old existing feature extractor references * Typo * Apply suggestions from code review * Apply suggestions from code review * Apply suggestions from code review * Address comments from review - update 'feature extractor' Co-authored by: Yih-Dar <2521628+ydshieh@users.noreply.github.com>
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@@ -38,7 +38,7 @@ if is_torch_available():
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if is_vision_available():
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from PIL import Image
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from transformers import AutoFeatureExtractor
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from transformers import AutoImageProcessor
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class CvtConfigTester(ConfigTester):
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@@ -264,16 +264,16 @@ def prepare_img():
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@require_vision
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class CvtModelIntegrationTest(unittest.TestCase):
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@cached_property
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def default_feature_extractor(self):
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return AutoFeatureExtractor.from_pretrained(CVT_PRETRAINED_MODEL_ARCHIVE_LIST[0])
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def default_image_processor(self):
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return AutoImageProcessor.from_pretrained(CVT_PRETRAINED_MODEL_ARCHIVE_LIST[0])
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@slow
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def test_inference_image_classification_head(self):
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model = CvtForImageClassification.from_pretrained(CVT_PRETRAINED_MODEL_ARCHIVE_LIST[0]).to(torch_device)
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feature_extractor = self.default_feature_extractor
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image_processor = self.default_image_processor
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image = prepare_img()
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inputs = feature_extractor(images=image, return_tensors="pt").to(torch_device)
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inputs = image_processor(images=image, return_tensors="pt").to(torch_device)
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# forward pass
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with torch.no_grad():
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@@ -28,7 +28,7 @@ if is_tf_available():
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if is_vision_available():
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from PIL import Image
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from transformers import AutoFeatureExtractor
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from transformers import AutoImageProcessor
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class TFCvtConfigTester(ConfigTester):
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@@ -265,16 +265,16 @@ def prepare_img():
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@require_vision
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class TFCvtModelIntegrationTest(unittest.TestCase):
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@cached_property
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def default_feature_extractor(self):
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return AutoFeatureExtractor.from_pretrained(TF_CVT_PRETRAINED_MODEL_ARCHIVE_LIST[0])
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def default_image_processor(self):
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return AutoImageProcessor.from_pretrained(TF_CVT_PRETRAINED_MODEL_ARCHIVE_LIST[0])
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@slow
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def test_inference_image_classification_head(self):
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model = TFCvtForImageClassification.from_pretrained(TF_CVT_PRETRAINED_MODEL_ARCHIVE_LIST[0])
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feature_extractor = self.default_feature_extractor
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image_processor = self.default_image_processor
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image = prepare_img()
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inputs = feature_extractor(images=image, return_tensors="tf")
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inputs = image_processor(images=image, return_tensors="tf")
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# forward pass
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outputs = model(**inputs)
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