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I need a Keras-based sentiment analysis model built from my existing labeled dataset. You will: • Inspect and preprocess the text (tokenization, padding, handling out-of-vocabulary words). • Design an appropriate neural network in Keras—an LSTM, GRU, CNN, or a hybrid architecture that you feel best fits the data. • Train, validate, and fine-tune the model, tracking accuracy, precision, recall, and F1. • Provide clean, well-commented Python code plus a brief README that explains setup, training, and how to make predictions on new text. • Hand over the trained model weights and any scripts/notebooks used. I’m looking for clear, reproducible work that I can continue to build on, delivered through GitHub or a shared drive.
Project ID: 40477113
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Active 21 secs ago
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