Add transformers fine-tuning

This commit is contained in:
Wojciech Jarmosz 2021-06-21 01:42:25 +02:00
parent a489085007
commit aed2e01f68
4 changed files with 56 additions and 300003 deletions

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fine_tuning.py Normal file
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from transformers import AutoTokenizer, AutoModelForSequenceClassification, TrainingArguments, Trainer
import random
import torch
with open('train/in.tsv') as f:
data_train_X = f.readlines()
with open('train/expected.tsv') as f:
data_train_Y = f.readlines()
with open('dev-0/in.tsv') as f:
data_dev_X = f.readlines()
with open('test-A/in.tsv') as f:
data_test_X = f.readlines()
class CustomDataset(torch.utils.data.Dataset):
def __init__(self, encodings, labels):
self.encodings = encodings
self.labels = labels
def __getitem__(self, idx):
item = {key: torch.tensor(val[idx]) for key, val in self.encodings.items()}
item['labels'] = torch.tensor(self.labels[idx])
return item
def __len__(self):
return len(self.labels)
data_train = list(zip(data_train_X, data_train_Y))
data_train = random.sample(data_train, 150000)
tokenizer = AutoTokenizer.from_pretrained("bert-base-cased")
train_encodings = tokenizer([text[0] for text in data_train], truncation=True, padding=True)
train_dataset = CustomDataset(train_encodings, [int(text[1]) for text in data_train])
model = AutoModelForSequenceClassification.from_pretrained("bert-base-cased", num_labels=2)
training_args = TrainingArguments("test_trainer")
trainer = Trainer(
model=model, args=training_args, train_dataset=train_dataset)
trainer.train()
with open('train/out.tsv', 'w') as writer:
for result in trainer.predict(data_train_X):
writer.write(str(result) + '\n')
with open('dev-0/out.tsv', 'w') as writer:
for result in trainer.predict(data_dev_X):
writer.write(str(result) + '\n')
with open('test-A/out.tsv', 'w') as writer:
for result in trainer.predict(data_test_X):
writer.write(str(result) + '\n')

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289579
train/out.tsv

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