American-type options : stochastic approximation methods

The book gives a systematical presentation of stochastic approximation methods for discrete time Markov price processes. Advanced methods combining backward recurrence algorithms for computing of option rewards and general results on convergence of stochastic space skeleton and tree approximations f...

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Bibliographic Details
Main Author Silvestrov, Dmitrii S
Format eBook Book
LanguageEnglish
Published Berlin W. de Gruyter 2014
De Gruyter
Edition1st edition.
SeriesDe Gruyter studies in mathematics
Subjects
Online AccessGet full text

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Summary:The book gives a systematical presentation of stochastic approximation methods for discrete time Markov price processes. Advanced methods combining backward recurrence algorithms for computing of option rewards and general results on convergence of stochastic space skeleton and tree approximations for option rewards are applied to a variety of models of multivariate modulated Markov price processes. The principal novelty of presented results is based on consideration of multivariate modulated Markov price processes and general pay-off functions, which can depend not only on price but also an additional stochastic modulating index component, and use of minimal conditions of smoothness for transition probabilities and pay-off functions, compactness conditions for log-price processes and rate of growth conditions for pay-off functions. The volume presents results on structural studies of optimal stopping domains, Monte Carlo based approximation reward algorithms, and convergence of American-type options for autoregressive and continuous time models, as well as results of the corresponding experimental studies.
Bibliography:Includes bibliographical references and index
Bibliography: Vol. 1: p. [475]-499, Vol. 2: p. [531]-548
ISBN:9783110329674
3110329670
3110329689
9783110329681