Machine Learning Advances in Payment Card Fraud Detection

Author:   Nick Ryman-Tubb (University of Surrey, Guilford, UK) ,  Paul Krause (University of Surrey, Guilford, UK)
Publisher:   Elsevier Science Publishing Co Inc
ISBN:  

9780128134153


Pages:   350
Publication Date:   02 September 2019
Format:   Paperback
Availability:   In Print   Availability explained
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Machine Learning Advances in Payment Card Fraud Detection


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Overview

Machine Learning Advances in Payment Card Fraud Detection provides a thorough review of the state-of-the-art in fraud detection research that is ideal for graduate-level readers and professionals. Through a comprehensive examination of fraud analytics that covers data collection, steps for cleaning and processing data, tools for analysing data, and ways to draw insights, the book argues for a new direction to be taken in developing state-of the-art payment fraud detection techniques. It uses an extensive analysis and description of an exemplar fraud detection algorithm, SOAR, to illustrate how a detailed understanding of the payment fraud domain can be used to motivate further advances in fraud detection techniques. The book concludes with a discussion of opportunities for future research, such as developing holistic approaches for countering fraud.

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Author:   Nick Ryman-Tubb (University of Surrey, Guilford, UK) ,  Paul Krause (University of Surrey, Guilford, UK)
Publisher:   Elsevier Science Publishing Co Inc
Imprint:   Academic Press Inc
ISBN:  

9780128134153


ISBN 10:   0128134151
Pages:   350
Publication Date:   02 September 2019
Audience:   Professional and scholarly ,  Professional & Vocational
Format:   Paperback
Publisher's Status:   Active
Availability:   In Print   Availability explained
This item will be ordered in for you from one of our suppliers. Upon receipt, we will promptly dispatch it out to you. For in store availability, please contact us.

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Nick F. Ryman-Tubb helped to pioneer the application of artificial intelligence (AI) and deep learning neural networks within the financial industry. In 1986, he founded Neural Technologies in the UK, among the first AI businesses focused on risk, banking, and payment fraud. After his exit in 2000, Nick joined businesses that today deploy his AI in insurance, money laundering, contactless/mobile payment fraud detection, protecting over 150 institutions, more than 3 million merchants, 1 billion cards, and over 30 billion credit/debit card transactions a year. Nick is a professor and Machine Learning Impresario at the University of Surrey where he teaches and continues his research. He recently formed the Institute for Financial Innovation in Transactions and Security (FITS) as a non-profit organisation with a simple vision - to dramatically reduce payment fraud using AI. Today, FITS works with all its industry members towards this shared vision. Paul Krause is professor in Complex Systems at the University of Surrey. He graduated in pure mathematics and experimental physics from the University of Exeter, and then spent the next ten years as a researcher in geophysics and then low-temperature physics. Following that, he moved to his main research career path in the theory and practice of AI. While maintaining, with a spirited defence, that we are far, far off any AI singularity , he does believe that the computer age is providing us with a set of valuable tools to help us achieve a better understanding of the intensely interdisciplinary problems that complexity science is now beginning to address.

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