update, added the models and the processed folders
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@@ -228,10 +228,10 @@ Alternatively, you can use Docker to run the entire system:
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The Random Forest model achieves the following performance metrics on the validation set:
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- **Accuracy**: ~99.5%
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- **Precision**: ~95% (minimizing false positives)
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- **Recall**: ~92% (minimizing false negatives)
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- **F1 Score**: ~93% (balance between precision and recall)
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- **Accuracy**: ~99.84%
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- **Precision**: ~94.78% (minimizing false positives)
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- **Recall**: ~77.35% (minimizing false negatives)
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- **F1 Score**: ~85.18% (balance between precision and recall)
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The most important features for fraud detection include:
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1. Transaction amount
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