Computational Intelligence Applications to Option Pricing, Volatility Forecasting and Value at Risk

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· Studies in Computational Intelligence Book 697 · Springer
Ebook
171
Pages
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About this ebook

This book demonstrates the power of neural networks in learning complex behavior from the underlying financial time series data. The results presented also show how neural networks can successfully be applied to volatility modeling, option pricing, and value-at-risk modeling. These features mean that they can be applied to market-risk problems to overcome classic problems associated with statistical models.

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