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Research Article | Open Access

A new stochastic diffusion process based on generalized Gamma-like curve: inference, computation, with applications

Safa' Alsheyab Mohammed K. Shakhatreh ( )
Department of Mathematics and Statistics, Jordan University of Science and Technology, P.O.Box 3030, Irbid 22110, Jordan
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Abstract

This paper introduces a novel non-homogeneous stochastic diffusion process, useful for modeling both decreasing and increasing trend data. The model is based on a generalized Gamma-like curve. We derive the probabilistic characteristics of the proposed process, including a closed-form unique solution to the stochastic differential equation, the transition probability density function, and both conditional and unconditional trend functions. The process parameters are estimated using the maximum likelihood (ML) method with discrete sampling paths. A small Monte Carlo experiment is conducted to evaluate the finite sample behavior of the trend function. The practical utility of the proposed process is demonstrated by fitting it to two real-world data sets, one exhibiting a decreasing trend and the other an increasing trend.

CLC number: 62M86, 60H30, 65C30

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AIMS Mathematics
Pages 27687-27703

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Cite this article:
Alsheyab S, Shakhatreh MK. A new stochastic diffusion process based on generalized Gamma-like curve: inference, computation, with applications. AIMS Mathematics, 2024, 9(10): 27687-27703. https://doi.org/10.3934/math.20241344

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Received: 14 July 2024
Revised: 02 September 2024
Accepted: 19 September 2024
Published: 15 October 2024
©2024 the Author(s), licensee AIMS Press.

This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0)