Credit Card Fraud Detection System

Author:

Madkaikar Kartik, ,Nagvekar Manthan,Parab Preity,Raika Riya,Patil Supriya, , , ,

Abstract

Credit card fraud is a serious criminal offense. It costs individuals and financial institutions billions of dollars annually. According to the reports of the Federal Trade Commission (FTC), a consumer protection agency, the number of theft reports doubled in the last two years. It makes the detection and prevention of fraudulent activities critically important to financial institutions. Machine learning algorithms provide a proactive mechanism to prevent credit card fraud with acceptable accuracy. In this paper Machine Learning algorithms such as Logistic Regression, Naïve Bayes, Random Forest, K- Nearest Neighbor, Gradient Boosting, Support Vector Machine, and Neural Network algorithms are implemented for detection of fraudulent transactions. A comparative analysis of these algorithms is performed to identify an optimal solution.

Publisher

Blue Eyes Intelligence Engineering and Sciences Engineering and Sciences Publication - BEIESP

Subject

Management of Technology and Innovation,General Engineering

Reference14 articles.

1. An Experimental Study with Imbalanced Classification Approaches for Credit Card Fraud Detection SARA MAKKI 1,2, ZAINAB ASSAGHIR2, YEHIA TAHER3, RAFIQUL HAQUE4, MOHAND-SAÏD HACID1, AND HASSAN ZEINEDDINE2.

2. Credit Card Fraud Detection by using ANN and Decision Tree Jasmine A Hudali*, Kamalakshi, K P Mahalaxmi, Namita S Magadum, Prof. Sudhir Belagali.

3. Dataset: http://packages.revolutionanalytics.com/datasets/

4. ICRTAC 2019Credit Card fraud detection using ML algorithms by Vaishnavi Nath Dornadulaa, Geetha Sa.

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1. Credit Card Fraud Detection Using Machine Learning;2024 IEEE International Conference on Cybernetics and Innovations (ICCI);2024-03-29

2. An Efficient Credit Card Fraud Detection Using SMOTE Under Machine Learning Environment;Lecture Notes in Networks and Systems;2024

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