DocumentCode :
1531604
Title :
Cooperative Search Using Agents for Cardinality Constrained Portfolio Selection Problem
Author :
Kumar, Ritesh ; Bhattacharya, Subir
Author_Institution :
A.T. Kearney, Mumbai, India
Volume :
42
Issue :
6
fYear :
2012
Firstpage :
1510
Lastpage :
1518
Abstract :
This paper presents an agent-based model to select an investment portfolio with a restriction on the number of stocks in it. Daily movements of all the stocks in the market for the past few years are assumed to be available. The scheme deploys a federally structured consortium of agents in the stock market at the start of the historical period. Each agent starts with a pseudorandom portfolio and follows individual investment strategies as it walks through the past data. The agents are designed to emulate some of the characteristics of human investors-adjusting the weights of the stocks based on its own attitude toward risk, occasionally dropping and adding stocks to the portfolio, etc. Periodically, the agents share information about their performances and can switch portfolios. A final cardinality constrained portfolio is constructed by consolidating individual portfolios arrived at by the agents working on the historical data of the stocks. When tested in real markets of the U.K. and Japan, the model suggested portfolios that were quite competitive to, and frequently better than, the portfolios suggested by the mean-variance models.
Keywords :
investment; multi-agent systems; stock markets; Japan; U.K; agent-based model; cardinality constrained portfolio selection problem; cooperative search; federal structured consortium; individual investment strategies; investment portfolio selection; pseudorandom portfolio; stock market; Computational modeling; Current measurement; Investments; Multiagent systems; Portfolios; Stock markets; Switches; Agent-based systems; cooperative search; portfolio selection; social learning;
fLanguage :
English
Journal_Title :
Systems, Man, and Cybernetics, Part C: Applications and Reviews, IEEE Transactions on
Publisher :
ieee
ISSN :
1094-6977
Type :
jour
DOI :
10.1109/TSMCC.2012.2197388
Filename :
6211438
Link To Document :
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