[chatgpt] unnify datasets (#3218)

pull/3225/head
Fazzie-Maqianli 2 years ago committed by GitHub
parent 4fd4bd9d9a
commit fa97a9cab4
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GPG Key ID: 4AEE18F83AFDEB23

@ -54,7 +54,8 @@ class SFTDataset(Dataset):
def __init__(self, dataset, tokenizer: Callable, max_length: int=512) -> None:
super().__init__()
self.prompts = []
# self.prompts = []
self.input_ids = []
for data in tqdm(dataset, disable=not is_rank_0()):
prompt = data['prompt'] + data['completion'] + "<|endoftext|>"
@ -64,14 +65,18 @@ class SFTDataset(Dataset):
truncation=True,
return_tensors="pt")
self.prompts.append(prompt_token)
# self.prompts.append(prompt_token)s
self.input_ids.append(prompt_token)
self.labels = copy.deepcopy(self.input_ids)
def __len__(self):
length = len(self.prompts)
return length
def __getitem__(self, idx):
return self.prompts[idx]
# dict(input_ids=self.input_ids[i], labels=self.labels[i])
return dict(input_ids=self.input_ids[i], labels=self.labels[i])
# return dict(self.prompts[idx], self.prompts[idx])
def _tokenize_fn(strings: Sequence[str], tokenizer: transformers.PreTrainedTokenizer) -> Dict:

@ -63,11 +63,13 @@ class SFTTrainer(ABC):
for batch_id, batch in enumerate(self.train_dataloader):
prompt_ids = batch["input_ids"]
p_mask = batch["attention_mask"]
labels = batch["labels"]
prompt_ids = prompt_ids.squeeze(1).cuda()
p_mask = p_mask.squeeze(1).cuda()
prompt_logits = self.model(prompt_ids, attention_mask=p_mask)
# prompt_logits = self.model(prompt_ids, attention_mask=p_mask, labels=labels)
loss, prompt_logits = self.model(prompt_ids, attention_mask=p_mask, labels=labels)
loss = self.loss_fn(prompt_logits, prompt_ids)
# loss = self.loss_fn(prompt_logits, labels)
self.strategy.backward(loss, self.model, self.optimizer)
self.strategy.optimizer_step(self.optimizer)
self.optimizer.zero_grad()

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