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A modified particle swarm optimization algorithm with applications

delete2012-10-01
delete30
PRE
AI
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Nan‐jing Huang *
DOI:10.1016/j.amc.2012.07.010delete
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Abstract

Abstract

En 中文
In this paper, firstly a modified particle swarm optimization algorithm (MPSO) is developed, in which the mean value of past optimal positions for each particle and the mutation operation are considered for avoiding premature. In the optimization test, MPSO performs better than particle swarm optimization algorithm (PSO). Then MPSO is applied to solve four portfolio optimization models with the real data from the Hong Kong Stock Market, and optimal values are obtained when the number of swarm n = 80; 160, respectively. Finally, actual return rates of these models are calculated in numerical experiments, and it is illustrated from these graphs of actual return rates that when considering higher return, Cai's model performs better in short-term investment. (C) 2012 Elsevier Inc. All rights reserved.
Keywords:
Modified particle swarm optimization algorithm
Mutation operation
Optimal position
Portfolio optimization model
Actual return rate
Numerical experiment

Journal

Applied Mathematics and Computation cover
Applied Mathematics and Computation
IF:
3.4
Papers:
2.3W
Citations:
3.3W

Organization

S
sichuan university
Scholars:
12.1W
Papers: 7.8W
Citations: 100
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