A robust genetic programming model for a dynamic portfolio insurance strategy
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- @InProceedings{Dehghanpour:2017:ieeeINISTA,
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author = "Siamak Dehghanpour and Akbar Esfahanipour",
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booktitle = "2017 IEEE International Conference on INnovations in
Intelligent SysTems and Applications (INISTA)",
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title = "A robust genetic programming model for a dynamic
portfolio insurance strategy",
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year = "2017",
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pages = "201--206",
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abstract = "In this paper, we propose a robust genetic programming
model for a dynamic strategy of stock portfolio
insurance. With portfolio insurance strategy, we need
to allocate part of the money in risky asset and the
other part in risk-free asset. Our applied strategy is
based on constant proportion portfolio insurance (CPPI)
strategy. For determining the amount for investing in
risky assets, the critical parameter is a constant risk
multiplier which is used in traditional CPPI method so
that it may not reflect the changes occurring in market
condition. Thus, we propose a model in which, the risk
multiplier is calculated with robust genetic
programming. In our model, risk variables are used to
generate equation trees for calculating the risk
multiplier. We also implement an artificial neural
network to enhance our model's robustness. We also
combine the portfolio insurance strategy with a
well-known portfolio optimisation model to get the best
possible portfolio weights of risky assets for
insurance. Experimental results using five stocks from
New York Stock Exchange (NYSE) show that our proposed
robust genetic programming model outperforms the other
two models: the basic genetic programming for portfolio
insurance without portfolio optimisation, and the basic
genetic programming for portfolio insurance with
portfolio optimisation.",
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keywords = "genetic algorithms, genetic programming, Robust
Genetic Programming (RGP), Dynamic portfolio insurance
strategy, Portfolio Optimization model, Constant
Proportion Portfolio Insurance (CPPI)",
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DOI = "doi:10.1109/INISTA.2017.8001157",
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month = jul,
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notes = "Also known as \cite{8001157}",
- }
Genetic Programming entries for
Siamak Dehghanpour
Akbar Esfahanipour
Citations