Title of article :
An extended ASLD trading system to enhance portfolio management
Author/Authors :
Hung، Kei-keung نويسنده , , Cheung، Yiu-ming نويسنده , , Xu، Lei نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2003
Pages :
-412
From page :
413
To page :
0
Abstract :
An adaptive supervised learning decision (ASLD) trading system has been presented by Xu and Cheung (1997) to optimize the expected returns of investment without considering risks. In this paper, we propose an extension of the ASLD system (EASLD), which combines the ASLD with a portfolio optimization scheme to take a balance between the expected returns and risks. This new system not only keeps the learning adaptability of the ASLD, but also dynamically controls the risk in pursuit of great profits by diversifying the capital to a time-varying portfolio of N assets. Consequently, it is shown that: 1) the EASLD system gives the investment risk much smaller than the ASLD one; and 2) more returns are gained through the EASLD system in comparison with the two individual portfolio optimization schemes that statically determine the portfolio weights without adaptive learning. We have justified these two issues by the experiments.
Keywords :
Learning capability , neural-network modularity , Storage capacity , two-hidden-layer feedforward networks (TLFNs)
Journal title :
IEEE TRANSACTIONS ON NEURAL NETWORKS
Serial Year :
2003
Journal title :
IEEE TRANSACTIONS ON NEURAL NETWORKS
Record number :
62821
Link To Document :
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