| | import torch
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| | import torch.nn as nn
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| | import torch.optim as optim
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| | import pandas as pd
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| | from TorchCRF import CRF
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| | from sklearn.model_selection import train_test_split
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| | from torch.nn.utils.rnn import pad_sequence
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| | from torch.utils.data import Dataset, DataLoader
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| | from torch.cuda.amp import autocast, GradScaler
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| |
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| |
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| | device = torch.device("cuda" if torch.cuda.is_available() else "cpu")
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| | print(f"Using device: {device}")
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| |
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| |
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| |
|
| | class BiLSTMCRFModel(nn.Module):
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| | def __init__(self, vocab_size, embedding_dim, hidden_dim, num_labels):
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| | super(BiLSTMCRFModel, self).__init__()
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| | self.embedding = nn.Embedding(vocab_size, embedding_dim)
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| | self.lstm = nn.LSTM(embedding_dim, hidden_dim, bidirectional=True, batch_first=True)
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| | self.layer_norm = nn.LayerNorm(hidden_dim * 2)
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| | self.fc = nn.Linear(hidden_dim * 2, num_labels)
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| | self.crf = CRF(num_labels)
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| |
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| | def forward(self, words, attention_mask, labels=None):
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| | embedded = self.embedding(words)
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| | lstm_out, _ = self.lstm(embedded)
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| | lstm_out = self.layer_norm(lstm_out)
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| | emissions = self.fc(lstm_out)
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| |
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| | if labels is not None:
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| | loss = -self.crf(emissions, labels, mask=attention_mask.bool())
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| | return loss
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| | else:
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| | return self.crf.viterbi_decode(emissions, mask=attention_mask.bool())
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| |
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| |
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| |
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| | class NERDataset(Dataset):
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| | def __init__(self, words, tags):
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| | self.words = words
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| | self.tags = tags
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| |
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| | def __len__(self):
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| | return len(self.words)
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| |
|
| | def __getitem__(self, idx):
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| | return torch.tensor(self.words[idx]), torch.tensor(self.tags[idx])
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| |
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| |
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| |
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| | def collate_fn(batch):
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| | words, tags = zip(*batch)
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| | words_padded = pad_sequence(words, batch_first=True, padding_value=0)
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| | tags_padded = pad_sequence(tags, batch_first=True, padding_value=0)
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| | return words_padded, tags_padded
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| |
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| |
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| |
|
| | def prepare_data(df):
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| | df['Tag'] = df['Tag'].fillna('O').astype(str).apply(lambda x: x.strip().upper())
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| |
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| | word_to_id = {word: idx for idx, word in enumerate(set(df['Word']))}
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| | word_to_id['<UNK>'] = len(word_to_id)
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| |
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| | tag_to_id = {tag: idx for idx, tag in enumerate(set(df['Tag']))}
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| | id_to_tag = {idx: tag for tag, idx in tag_to_id.items()}
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| |
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| | words, tags = [], []
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| | for _, group in df.groupby('Sentence'):
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| | words.append([word_to_id.get(w, word_to_id['<UNK>']) for w in group['Word']])
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| | tags.append([tag_to_id[t] for t in group['Tag']])
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| |
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| | return words, tags, word_to_id, tag_to_id, id_to_tag
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| |
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| |
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| |
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| | df = pd.read_excel('Augmented_Dataset.xlsx', engine='openpyxl')
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| |
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| |
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| | df = df.sample(frac=1, random_state=42).reset_index(drop=True)
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| |
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| | words, tags, word_to_id, tag_to_id, id_to_tag = prepare_data(df)
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| |
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| |
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| | train_words, test_words, train_tags, test_tags = train_test_split(words, tags, test_size=0.2, random_state=42,
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| | shuffle=True)
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| |
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| |
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| | train_dataset = NERDataset(train_words, train_tags)
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| | test_dataset = NERDataset(test_words, test_tags)
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| |
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| | train_loader = DataLoader(train_dataset, batch_size=256, shuffle=True, collate_fn=collate_fn)
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| | test_loader = DataLoader(test_dataset, batch_size=256, shuffle=False, collate_fn=collate_fn)
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| |
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| |
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| | vocab_size = len(word_to_id)
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| | embedding_dim = 100
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| | hidden_dim = 128
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| | num_labels = len(tag_to_id)
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| |
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| | model = BiLSTMCRFModel(vocab_size, embedding_dim, hidden_dim, num_labels).to(device)
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| | optimizer = optim.AdamW(model.parameters(), lr=0.001, weight_decay=1e-5)
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| | scheduler = optim.lr_scheduler.ReduceLROnPlateau(optimizer, mode='min', factor=0.5, patience=2)
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| | scaler = GradScaler()
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| |
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| |
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| | num_epochs = 10
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| | accumulation_steps = 4
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| | best_loss = float('inf')
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| |
|
| | print("Starting Training...")
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| | for epoch in range(num_epochs):
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| | model.train()
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| | total_loss = 0
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| | optimizer.zero_grad()
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| |
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| | for i, (batch_words, batch_tags) in enumerate(train_loader):
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| | batch_words, batch_tags = batch_words.to(device), batch_tags.to(device)
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| | attention_mask = (batch_words != 0).to(device)
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| |
|
| | with autocast():
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| | loss = model(batch_words, attention_mask, batch_tags)
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| | loss = loss.mean() / accumulation_steps
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| |
|
| | scaler.scale(loss).backward()
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| |
|
| | if (i + 1) % accumulation_steps == 0:
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| | scaler.step(optimizer)
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| | scaler.update()
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| | optimizer.zero_grad()
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| |
|
| | total_loss += loss.item()
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| |
|
| | avg_loss = total_loss / len(train_loader)
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| | scheduler.step(avg_loss)
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| |
|
| | print(f"Epoch {epoch + 1}, Loss: {avg_loss:.4f}, LR: {optimizer.param_groups[0]['lr']}")
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| |
|
| | if avg_loss < best_loss:
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| | best_loss = avg_loss
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| | torch.save(model.state_dict(), "best_model.pth")
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| | print(f"New best model saved with loss: {best_loss:.4f}")
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| |
|
| | torch.cuda.empty_cache()
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| |
|
| | print("Training Complete!")
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| |
|
| |
|
| | def evaluate_model(model, test_loader, id_to_tag):
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| | model.eval()
|
| | true_labels, pred_labels = [], []
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| |
|
| | with torch.no_grad():
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| | for batch_words, batch_tags in test_loader:
|
| | batch_words, batch_tags = batch_words.to(device), batch_tags.to(device)
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| | attention_mask = (batch_words != 0).to(device)
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| |
|
| | pred_tags = model(batch_words, attention_mask)
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| |
|
| | for i in range(batch_words.shape[0]):
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| | true_seq = batch_tags[i].tolist()
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| | pred_seq = pred_tags[i]
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| |
|
| |
|
| | true_seq_filtered = [id_to_tag[t] for t in true_seq if t in id_to_tag]
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| | pred_seq_filtered = [id_to_tag[p] for p in pred_seq if p in id_to_tag]
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| |
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| |
|
| | min_len = min(len(true_seq_filtered), len(pred_seq_filtered))
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| | true_labels.extend(true_seq_filtered[:min_len])
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| | pred_labels.extend(pred_seq_filtered[:min_len])
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| |
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| |
|
| | assert len(true_labels) == len(pred_labels), "Mismatch in true and predicted label counts!"
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| |
|
| | from sklearn.metrics import classification_report, confusion_matrix
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| | import seaborn as sns
|
| | import matplotlib.pyplot as plt
|
| |
|
| | print("Classification Report:")
|
| | print(classification_report(true_labels, pred_labels))
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| |
|
| | cm = confusion_matrix(true_labels, pred_labels, labels=list(id_to_tag.values()))
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| | plt.figure(figsize=(10, 8))
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| | sns.heatmap(cm, annot=True, fmt='d', cmap='Blues', xticklabels=list(id_to_tag.values()), yticklabels=list(id_to_tag.values()))
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| | plt.xlabel('Predicted')
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| | plt.ylabel('True')
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| | plt.title('Confusion Matrix')
|
| | plt.show()
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| |
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| |
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| |
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| |
|
| | print("\nFinal Evaluation:")
|
| | evaluate_model(model, test_loader, id_to_tag) |