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Andreas E Kyprianou

Publications and source records attributed to Andreas E Kyprianou.

2 recordsLinked to original sources

Stable processes conditioned to avoid an interval

Conditioning Markov processes to avoid a domain is a classical problem that has been studied in many settings. Ingredients for standard arguments involve the leading order tail asymptotics of the distribution of the first hitting time of the domain of interest and its relation to an underlying harmonic function. In the present article we condition stable processes to avoid intervals. The required tail asymptotics in the stable setting for $α\geq 1$ go back to classical work of Blumenthal et al. and Port from the 1960s. For $α<1$, we appeal to recent results centred around the so-called deep factorisation of the stable process to compute hitting probabilities and, moreover, to identify the associated harmonic functions for all $α\in (0,2)$. With these in hand, we thus prove that conditioning to avoid an interval is possible in the classical sense and that the resulting process is a Doob $h$-transform of the stable process killed on entering the aforesaid interval. Appealing to the representation of the conditioned process as a Doob $h$-transform, we verify that the conditioned process is transient.

math.PR↗

An Euler-Poisson Scheme for Lévy driven SDEs

We describe an Euler scheme to approximate solutions of Lévy driven Stochastic Differential Equations (SDE) where the grid points are random and given by the arrival times of a Poisson process. This result extends a previous work of the authors in Ferreiro-Castilla et al. (2012). We provide a complete numerical analysis of the algorithm to approximate the terminal value of the SDE and proof that the approximation converges in mean square error with rate $\mathcal{O}(n^{-1/2})$. The only requirement of the methodology is to have exact samples from the resolvent of the Lévy process driving the SDE; classic examples such as stable processes, subclasses of spectrally one sided Lévy processes and new families such as meromorphic Lévy processes (cf. Kuznetsov et al. (2011)) are some examples for which the implementation of our algorithm is straightforward.

math.PR↗