Question: 1 2 : 2 9 I ( 4 ) large volume of transactions that are completed each day and because many fraudulent transactions look a

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large volume of transactions that are completed each day and because many fraudulent transactions look a lot like normal transactions. Identifying fraudulent credit card transactions is a common type of imbalanced binary classification where the focus is on the positive class (is fraud) class.
As such, metrics like precision and recall can be used to summarize model performance in terms of class labels and precision-recall curves can be used to summarize model performance across a range of probability thresholds when mapping predicted probabilities to class labels. This gives the operator of the model control over how predictions are made in terms of biasing toward false positive or false negative type errors made by the model.
In this tutorial, you will discover how to develop and evaluate a model for the imbalanced credit card fraud dataset.
After completing this tutorial, you will
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1 2 : 2 9 I ( 4 ) large volume of transactions

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