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12
hft.py
12
hft.py
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@ -107,11 +107,10 @@ def tokenize_function(examples):
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return tokenized
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def custom_collate_fn(batch):
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device = next(model.parameters()).device
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input_ids = torch.stack([torch.tensor(b["input_ids"]) for b in batch]).to(device)
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attention_mask = torch.stack([torch.tensor(b["attention_mask"]) for b in batch]).to(device)
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labels = torch.stack([torch.tensor(b["labels"]) for b in batch]).to(device)
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source_idx = torch.tensor([b.get("source_idx", -1) for b in batch], dtype=torch.long).to(device)
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input_ids = torch.stack([torch.tensor(b["input_ids"]) for b in batch]).cpu()
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attention_mask = torch.stack([torch.tensor(b["attention_mask"]) for b in batch]).cpu()
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labels = torch.stack([torch.tensor(b["labels"]) for b in batch]).cpu()
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source_idx = torch.tensor([b.get("source_idx", -1) for b in batch], dtype=torch.long).cpu()
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return {"input_ids": input_ids, "attention_mask": attention_mask, "labels": labels, "source_idx": source_idx}
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class CustomModel(nn.Module):
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@ -137,6 +136,8 @@ class CustomModel(nn.Module):
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class CustomTrainer(Trainer):
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def compute_loss(self, model, inputs, return_outputs=False, **kwargs):
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device = next(model.parameters()).device
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inputs = {k: v.to(device) for k, v in inputs.items()}
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labels = inputs.pop("labels")
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source_idx = inputs.pop("source_idx", None)
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outputs = model(**inputs, labels=labels, source_idx=source_idx)
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@ -196,6 +197,7 @@ training_args = TrainingArguments(
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save_steps=1000,
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logging_strategy="no",
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report_to="none",
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pin_memory=True,
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)
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# Trening
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