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Interacting default intensity with a hidden Markov process
Authors:Feng-Hui Yu  Jia-Wen Gu  Tak-Kuen Siu
Institution:1. Advanced Modeling and Applied Computing Laboratory, Department of Mathematics, The University of Hong Kong, Pokfulam Road, Hong Kong.;2. Faculty of Business and Economics, Department of Applied Finance and Actuarial Studies, Macquarie University, Sydney, NSW 2109, Australia.
Abstract:In this paper we consider a reduced-form intensity-based credit risk model with a hidden Markov state process. A filtering method is proposed for extracting the underlying state given the observation processes. The method can be applied to a wide range of problems. Based on this model, we derive the joint distribution of multiple default times without imposing stringent assumptions on the form of default intensities. Closed-form formulas for the distribution of default times are obtained which are then applied to solve a number of practical problems such as hedging and pricing credit derivatives. The method and numerical algorithms presented can be applicable to various forms of default intensities.
Keywords:Reduced-form intensity model  Default risk  Credit derivatives  Hidden Markov model (HMM)
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