Artificial Intelligence for Anti-Money Laundering - A Review and Extension

Digital Finance 2 (2020), 211–239

48 Pages Posted: 18 Feb 2021

See all articles by Jingguang Han

Jingguang Han

affiliation not provided to SSRN

Yuyun Huang

University College Dublin (UCD)

Sha Liu

Southwestern University of Finance and Economics (SWUFE) - School of Finance

Kieran Towey

affiliation not provided to SSRN

Date Written: June 12, 2020

Abstract

This paper surveys the existing academic literature on artificial intelligence (AI) technologies for anti-money laundering (AML). We review the state-of-the-art AI methods for AML and extend the discussion by proposing a framework that utilizes advanced natural language processing and deep-learning techniques to facilitate next-generation AML technologies. Our framework utilizes unstructured external information to assist domain experts, aiming to decrease the workload for the human investigator. We bridge the gap between the current AML methods and state-of-the art AI, highlighting new trends and directions in AI that can be used to develop the AML pipeline into a robust, scalable solution with a reduced false positive rate and high adaptability.

Keywords: Anti-money-laundering, Artificial intelligence, Natural language processing, Deep learning

JEL Classification: G21, G23, C44, C45

Suggested Citation

Han, Jingguang and Huang, Yuyun and Liu, Sha and Towey, Kieran, Artificial Intelligence for Anti-Money Laundering - A Review and Extension (June 12, 2020). Digital Finance 2 (2020), 211–239, Available at SSRN: https://ssrn.com/abstract=3625415

Jingguang Han

affiliation not provided to SSRN

Yuyun Huang

University College Dublin (UCD) ( email )

Belfield
Belfield, Dublin 4 4
Ireland

Sha Liu (Contact Author)

Southwestern University of Finance and Economics (SWUFE) - School of Finance ( email )

Chengdu, 610074
China

Kieran Towey

affiliation not provided to SSRN

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