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- W4385452279 abstract "Detecting credit card fraud is an extremely important issue in the financial sector, as it results in significant financial losses and negatively impacts customer trust. The main motive of CCFD is to develop methods to identify fraudulent transactions accurately and efficiently. This research typically involves the use of statistical and machine-learning algorithms to analyze large amounts of transaction data. Utilizing machine learning is a potential solution for addressing credit card fraud. Studies suggest that machine learning techniques can help overcome the challenges of identifying fraudulent transactions with high detection rates, both directly and indirectly. While supervised ML algorithm and unsupervised ML algorithms have been proposed, the limitations of each approach underscore the need for hybrid methods. From the results, it is evident that Logistic Regression has the highest accuracy of 94.86%, highest recall value of 98.97% and highest F1-score of 95.09%." @default.
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- W4385452279 date "2023-06-01" @default.
- W4385452279 modified "2023-09-27" @default.
- W4385452279 title "Comparative Evaluation of Machine Learning Algorithms for Detecting Credit Card Fraud" @default.
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- W4385452279 doi "https://doi.org/10.1109/icces57224.2023.10192718" @default.
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