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A New Nonparametric Estimate of the Risk-Neutral Density with Applications to Variance Swaps

Pricing of Securities 2019-02-20 v2 Applications

Abstract

We develop a new nonparametric approach for estimating the risk-neutral density of asset prices and reformulate its estimation into a double-constrained optimization problem. We evaluate our approach using the S\&P 500 market option prices from 1996 to 2015. A comprehensive cross-validation study shows that our approach outperforms the existing nonparametric quartic B-spline and cubic spline methods, as well as the parametric method based on the Normal Inverse Gaussian distribution. As an application, we use the proposed density estimator to price long-term variance swaps, and the model-implied prices match reasonably well with those of the variance future downloaded from the CBOE website.

Keywords

Cite

@article{arxiv.1808.05289,
  title  = {A New Nonparametric Estimate of the Risk-Neutral Density with Applications to Variance Swaps},
  author = {Liyuan Jiang and Shuang Zhou and Keren Li and Fangfang Wang and Jie Yang},
  journal= {arXiv preprint arXiv:1808.05289},
  year   = {2019}
}

Comments

19 pages, 2 figures