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  Published Paper Details:

  Paper Title

USING MACHINE LEARNING TECHNIQUES TO DETECT CREDIT CARD MALICIOUS

  Authors

  P. Varaprasada Rao

  Keywords

Using Machine Learning Techniques to Detect Credit Card malicious

  Abstract


It is vital that credit card companies are able to identify fraudulent credit card transactions so that customers are not charged for items that they did not purchase. Such problems can be tackled with Data Science and its importance, along with Machine Learning, cannot be overstated. This project intends to illustrate the modelling of a data set using machine learning with Credit Card Fraud Detection. The Credit Card Fraud Detection Problem includes modelling past credit card transactions with the data of the ones that turned out to be fraud. This model is then used to recognize whether a new transaction is fraudulent or not. Our objective here is to detect 100% of the fraudulent transactions while minimizing the incorrect fraud classifications. Credit Card Fraud Detection is a typical sample of classification. In this process, we have focused on analysing and preprocessing data sets as well as the deployment of multiple anomaly detection algorithms such as Local Outlier Factor and Isolation Forest algorithm on the PCA transformed Credit Card Transaction data.

  IJCRT's Publication Details

  Unique Identification Number - IJCRT1134690

  Paper ID - 225343

  Page Number(s) - 830-840

  Pubished in - Volume 4 | Issue 2 | April 2016

  DOI (Digital Object Identifier) -   

  Publisher Name - IJCRT | www.ijcrt.org | ISSN : 2320-2882

  E-ISSN Number - 2320-2882

  Cite this article

  P. Varaprasada Rao,   "USING MACHINE LEARNING TECHNIQUES TO DETECT CREDIT CARD MALICIOUS", International Journal of Creative Research Thoughts (IJCRT), ISSN:2320-2882, Volume.4, Issue 2, pp.830-840, April 2016, Available at :http://www.ijcrt.org/papers/IJCRT1134690.pdf

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ISSN: 2320-2882
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Journal Starting Year (ESTD) : 2013
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ISSN and 7.97 Impact Factor Details


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ISSN
ISSN: 2320-2882
Impact Factor: 7.97 and ISSN APPROVED
Journal Starting Year (ESTD) : 2013
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