A Novel Mobile Personalized Recommended Method Based on Money Flow Model for Stock Exchange

Author:

Xu Qingzhen1,Wu Jiayong1,Chen Qiang2

Affiliation:

1. School of Computer Science, South China Normal University, Guangzhou 510631, China

2. Department of Computer Science, Guangdong University of Education, Guangdong 510303, China

Abstract

Personalized recommended method is widely used to recommend commodities for target customers in e-commerce sector. The core idea of merchandise personalized recommendation can be applied to financial field, which can also achieve stock personalized recommendation. This paper proposes a new recommended method using collaborative filtering based on user fuzzy clustering and predicts the trend of those stocks based on money flow. We use M/G/1 queue system with multiple vacations and server close-down time to measure practical money flow. Based on the indicated results of money flow, we can select the more valued stock to recommend to investors. The experimental results show that the proposed method provides investors with reliable practical investment guidance and receiving more returns.

Funder

National Natural Science Foundation of China

Publisher

Hindawi Limited

Subject

General Engineering,General Mathematics

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