A portfolio recommendation system based on machine learning and big data analytics

Author:

Leung Man-Fai1,Jawaid Abdullah2,Ip Sai-Wang2,Kwok Chun-Hei2,Yan Shing2

Affiliation:

1. School of Computing and Information Science, Faculty of Science and Engineering, Anglia Ruskin University, Cambridge, UK

2. School of Science and Technology, Hong Kong Metropolitan University, Hong Kong, China

Abstract

<abstract><p>This research paper introduces a portfolio recommendation system that utilizes machine learning and big data analytics to offer a profitable stock portfolio and stock analytics via a web application. The system's effectiveness was evaluated through backtesting and user evaluation studies, which consisted of two parts: user evaluation and performance evaluation. The findings indicate that the development of a machine learning-based portfolio recommendation system and big data analytics can effectively meet the expectations of the majority of users and enhance users' financial knowledge. This study contributes to the growing body of research on utilizing advanced technologies for portfolio recommendation and highlights the potential of machine learning and big data analytics in the financial industry.</p></abstract>

Publisher

American Institute of Mathematical Sciences (AIMS)

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