Fix all offload and MP tests (#17533)
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@@ -574,7 +574,6 @@ def _load_state_dict_into_meta_model(
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for param_name, param in state_dict.items():
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# First part of the test is always true as load_state_dict_keys always contains state_dict keys.
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if param_name not in loaded_state_dict_keys or param_name not in expected_keys:
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print(param_name)
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continue
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if param_name.startswith(start_prefix):
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@@ -2124,6 +2123,8 @@ class PreTrainedModel(nn.Module, ModuleUtilsMixin, GenerationMixin, PushToHubMix
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if model._no_split_modules is None:
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raise ValueError(f"{model.__class__.__name__} does not support `device_map='auto'` yet.")
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no_split_modules = model._no_split_modules
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# Make sure tied weights are tied before creating the device map.
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model.tie_weights()
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device_map = infer_auto_device_map(
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model, no_split_module_classes=no_split_modules, dtype=torch_dtype, max_memory=max_memory
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)
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@@ -63,7 +63,7 @@ class OPTModelTester:
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use_labels=False,
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vocab_size=99,
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hidden_size=16,
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num_hidden_layers=2,
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num_hidden_layers=5,
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num_attention_heads=4,
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intermediate_size=4,
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hidden_act="gelu",
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@@ -515,6 +515,8 @@ class T5ModelTest(ModelTesterMixin, GenerationTesterMixin, unittest.TestCase):
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test_resize_embeddings = True
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test_model_parallel = True
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is_encoder_decoder = True
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# The small T5 model needs higher percentages for CPU/MP tests
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model_split_percents = [0.8, 0.9]
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def setUp(self):
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self.model_tester = T5ModelTester(self)
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@@ -153,6 +153,7 @@ class ModelTesterMixin:
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test_model_parallel = False
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is_encoder_decoder = False
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has_attentions = True
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model_split_percents = [0.5, 0.7, 0.9]
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def _prepare_for_class(self, inputs_dict, model_class, return_labels=False):
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inputs_dict = copy.deepcopy(inputs_dict)
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@@ -2217,12 +2218,7 @@ class ModelTesterMixin:
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@require_accelerate
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@require_torch_gpu
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def test_disk_offload(self):
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if all([model_class._no_split_modules is None for model_class in self.all_model_classes]):
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return
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config, inputs_dict = self.model_tester.prepare_config_and_inputs_for_common()
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if isinstance(getattr(config, "num_hidden_layers", None), int) and config.num_hidden_layers < 4:
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config.num_hidden_layers = 4
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for model_class in self.all_model_classes:
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if model_class._no_split_modules is None:
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@@ -2234,8 +2230,7 @@ class ModelTesterMixin:
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base_output = model(**inputs_dict)
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model_size = compute_module_sizes(model)[""]
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# We test several splits of sizes to make sure it works.
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max_size = int(0.4 * model_size)
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max_size = int(self.model_split_percents[0] * model_size)
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with tempfile.TemporaryDirectory() as tmp_dir:
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model.cpu().save_pretrained(tmp_dir)
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@@ -2256,12 +2251,7 @@ class ModelTesterMixin:
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@require_accelerate
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@require_torch_gpu
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def test_cpu_offload(self):
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if all([model_class._no_split_modules is None for model_class in self.all_model_classes]):
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return
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config, inputs_dict = self.model_tester.prepare_config_and_inputs_for_common()
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if isinstance(getattr(config, "num_hidden_layers", None), int) and config.num_hidden_layers < 4:
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config.num_hidden_layers = 4
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for model_class in self.all_model_classes:
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if model_class._no_split_modules is None:
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@@ -2274,7 +2264,7 @@ class ModelTesterMixin:
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model_size = compute_module_sizes(model)[""]
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# We test several splits of sizes to make sure it works.
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max_gpu_sizes = [int(p * model_size) for p in [0.5, 0.7, 0.9]]
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max_gpu_sizes = [int(p * model_size) for p in self.model_split_percents]
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with tempfile.TemporaryDirectory() as tmp_dir:
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model.cpu().save_pretrained(tmp_dir)
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@@ -2292,12 +2282,7 @@ class ModelTesterMixin:
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@require_accelerate
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@require_torch_multi_gpu
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def test_model_parallelism(self):
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if all([model_class._no_split_modules is None for model_class in self.all_model_classes]):
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return
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config, inputs_dict = self.model_tester.prepare_config_and_inputs_for_common()
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if isinstance(getattr(config, "num_hidden_layers", None), int) and config.num_hidden_layers < 4:
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config.num_hidden_layers = 4
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for model_class in self.all_model_classes:
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if model_class._no_split_modules is None:
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@@ -2310,7 +2295,7 @@ class ModelTesterMixin:
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model_size = compute_module_sizes(model)[""]
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# We test several splits of sizes to make sure it works.
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max_gpu_sizes = [int(p * model_size) for p in [0.5, 0.7, 0.9]]
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max_gpu_sizes = [int(p * model_size) for p in self.model_split_percents]
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with tempfile.TemporaryDirectory() as tmp_dir:
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model.cpu().save_pretrained(tmp_dir)
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