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# Adaptive Classifier
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A flexible, adaptive classification system that allows for dynamic addition of new classes and continuous learning from examples.
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## Usage
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# Make predictions
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predictions = classifier.predict("This is amazing!")
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print(predictions) # [('positive', 0.85), ('neutral', 0.12), ('negative', 0.03)]
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```
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## How It Works
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The system combines three key components:
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1. **Transformer Embeddings**: Uses state-of-the-art language models for text representation
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2. **Prototype Memory**: Maintains class prototypes for quick adaptation to new examples
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3. **Adaptive Neural Layer**: Learns refined decision boundaries through continuous training
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# Adaptive Classifier
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A flexible, adaptive classification system that allows for dynamic addition of new classes and continuous learning from examples.
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## Usage
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# Make predictions
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predictions = classifier.predict("This is amazing!")
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print(predictions) # [('positive', 0.85), ('neutral', 0.12), ('negative', 0.03)]
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```
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