使用机器学习技术检测信用卡欺诈

Yogesh Gupta
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引用次数: 0

摘要

今天是数字货币的时代,政府也在推动它来减少腐败。人们倾向于使用ATM卡和各种信用卡来完成交易,但他们不知道与之相关的欺诈风险。欺诈性交易是由攻击者利用他人的信息进行的,每年造成数十亿美元的损失。有效的欺诈检测算法可以减少损失。这些算法依赖于先进的机器学习技术,这对欺诈调查人员很有帮助。这张纸是两折的。首先是探索各种研究人员提出的检测信用卡欺诈的各种技术,其次是实现机器学习模型来发现信用卡交易中的欺诈行为。其目的是识别所有欺诈交易,同时减少错误欺诈分类的数量。本文还讨论了信用卡欺诈的类型和信用卡欺诈检测技术的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Using of Machine Learning Techniques to detect Credit Card Frauds
Today is the era of digital money and the government is also promoting it to reduce corruption. People tend to use ATM cards and various credit cards for completing their transactions, but they are unaware of the fraudulent risks associated with them. A fraudulent transaction is conducted by an attacker using other's information and it causes Billions of dollars loss every year. Efficient fraud detection algorithms can be used to reduce the losses. These algorithms depend on advanced machine learning techniques, which can be helpful for fraud investigators. This paper is in two folds. First is to explore the various techniques proposed by various researchers to detect credit card frauds and second is to implement machine learning models to find frauds in credit card transactions. The aim is to identify all fraudulent transactions while reducing the number of incorrect fraud classifications. The types of credit card frauds and issues with credit card fraud detection techniques are also discussed in this paper.
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