Remove static pretrained maps from the library's internals (#29112)
* [test_all] Remove static pretrained maps from the library's internals * Deprecate archive maps instead of removing them * Revert init changes * [test_all] Deprecate instead of removing * [test_all] PVT v2 support * [test_all] Tests should all pass * [test_all] Style * Address review comments * Update src/transformers/models/deprecated/_archive_maps.py Co-authored-by: Arthur <48595927+ArthurZucker@users.noreply.github.com> * Update src/transformers/models/deprecated/_archive_maps.py Co-authored-by: Arthur <48595927+ArthurZucker@users.noreply.github.com> * [test_all] trigger tests * [test_all] LLAVA * [test_all] Bad rebase --------- Co-authored-by: Arthur <48595927+ArthurZucker@users.noreply.github.com>
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@@ -38,7 +38,6 @@ if is_torch_available():
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LxmertForQuestionAnswering,
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LxmertModel,
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)
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from transformers.models.lxmert.modeling_lxmert import LXMERT_PRETRAINED_MODEL_ARCHIVE_LIST
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if is_tf_available():
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@@ -584,10 +583,10 @@ class LxmertModelTest(ModelTesterMixin, PipelineTesterMixin, unittest.TestCase):
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@slow
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def test_model_from_pretrained(self):
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for model_name in LXMERT_PRETRAINED_MODEL_ARCHIVE_LIST[:1]:
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model = LxmertModel.from_pretrained(model_name)
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model.to(torch_device)
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self.assertIsNotNone(model)
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model_name = "unc-nlp/lxmert-base-uncased"
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model = LxmertModel.from_pretrained(model_name)
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model.to(torch_device)
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self.assertIsNotNone(model)
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def test_attention_outputs(self):
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config, inputs_dict = self.model_tester.prepare_config_and_inputs_for_common()
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@@ -772,7 +771,7 @@ class LxmertModelTest(ModelTesterMixin, PipelineTesterMixin, unittest.TestCase):
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class LxmertModelIntegrationTest(unittest.TestCase):
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@slow
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def test_inference_no_head_absolute_embedding(self):
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model = LxmertModel.from_pretrained(LXMERT_PRETRAINED_MODEL_ARCHIVE_LIST[0])
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model = LxmertModel.from_pretrained("unc-nlp/lxmert-base-uncased")
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input_ids = torch.tensor([[101, 345, 232, 328, 740, 140, 1695, 69, 6078, 1588, 102]])
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num_visual_features = 10
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_, visual_feats = np.random.seed(0), np.random.rand(1, num_visual_features, model.config.visual_feat_dim)
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