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Dynamic Programming and a Verification Theorem for the Recursive Stochastic Control Problem of Jump-Diffusion Models with Random Coefficients

Authors
Moon, JunBasar, Tamer
Issue Date
Dec-2022
Publisher
Institute of Electrical and Electronics Engineers Inc.
Keywords
Dynamic programming; Dynamical systems; Forward and backward stochastic differential equations with jump diffusions; integro-type stochastic PDE; Mathematical models; Moon; Optimal control; random coefficients; Stochastic processes; verification theorem; Viscosity
Citation
IEEE Transactions on Automatic Control, v.67, no.12, pp.6474 - 6488
Indexed
SCIE
SCOPUS
Journal Title
IEEE Transactions on Automatic Control
Volume
67
Number
12
Start Page
6474
End Page
6488
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/185432
DOI
10.1109/TAC.2021.3131097
ISSN
0018-9286
Abstract
In this paper, we consider the stochastic optimal control problem for (forward) stochastic differential equations (SDEs) with jump diffusions and random coefficients under a recursive-type objective functional captured by a backward SDE (BSDE). Due to the jump-diffusion process with random coefficients in both the constraint (forward SDE) and the recursive BSDE objective functional, the associated Hamilton-Jacobi-Bellman equation (HJBE) is an integro-type second-order nonlinear stochastic PDE driven by both Brownian motion and (compensated) Poisson process, which we call the integro-type stochastic HJBE (ISHJBE) with jump diffusions. We first prove the dynamic programming principle for the value function using the backward semigroup associated with the recursive objective functional and the precise estimates of BSDEs, by which the continuity of the value function is also shown. Then we establish a verification theorem, which provides a sufficient condition of optimality and characterizes the value function using the (stochastic) solution of the ISHJBE with jump diffusions. Under suitable assumptions, we show the existence and uniqueness of the weak solution to the ISHJBE via the So
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