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Improving Non-Parametric Option Pricing during the Financial Crisis

Author

Listed:
  • Dragan Kukolj

    (Faculty of Technical Sciences, University of Novi Sad, Serbia)

  • Nikola Gradojevic

    (Faculty of Business Administration, Lakehead University, Canada; The Rimini Centre for Economic Analysis, Italy)

  • Camillo Lento

    (Faculty of Business Administration, Lakehead University, Canada)

Abstract
Financial option prices have experienced excessive volatility in response to the recent economic and financial crisis. During the crisis periods, financial markets are, in general, subject to an abrupt regime shift which imposes a significant challenge to option pricing models. In this context, swiftly evolving markets and institutions require valuation models that are capable of recognizing and adapting to such changes. Both parametric and non-parametric pricing models have shown poor forecast ability for options traded in late 1987 and 2008. Surprisingly, the pricing inaccuracy was more pronounced for non-parametric models than for parametric models. To address this problem, we propose a modular neural network-fuzzy learning vector quantization (MNN-FLVQ) model that uses the Kohonen unsupervised learning and fuzzy clustering algorithms to classify the S&P 500 stock market index options, and thereby detect a regime shift. The results for the 2008 financial crisis demonstrate that the MNN-FLVQ model is superior to the competing methods in regards to option pricing during regime shifts.

Suggested Citation

  • Dragan Kukolj & Nikola Gradojevic & Camillo Lento, 2012. "Improving Non-Parametric Option Pricing during the Financial Crisis," Working Paper series 35_12, Rimini Centre for Economic Analysis.
  • Handle: RePEc:rim:rimwps:35_12
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    References listed on IDEAS

    as
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    Cited by:

    1. Gradojevic Nikola, 2016. "Multi-criteria classification for pricing European options," Studies in Nonlinear Dynamics & Econometrics, De Gruyter, vol. 20(2), pages 123-139, April.

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