Modeling of Tumor-Immune Nonlinear Stochastic Dynamics with HSM
In this paper, we address the well-known Tumor-Immune Model of Kuznetsov et al., converting it into a stochastic form, and for simulation purposes we employ Euler-Maruyama discretization process. Such a modeling, for being realistic in biology and medicine, requires the implication of memory compo...
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Erdal KARAPINAR
2020-03-01
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doaj-61cba7ff60e640839d51ad8084c1c97c2020-11-25T02:58:48ZengErdal KARAPINARResults in Nonlinear Analysis2636-75562636-75562020-03-01312434Modeling of Tumor-Immune Nonlinear Stochastic Dynamics with HSMNurgül Gökgöz, Hakan Öktem, Gerhard-Wilhelm WeberIn this paper, we address the well-known Tumor-Immune Model of Kuznetsov et al., converting it into a stochastic form, and for simulation purposes we employ Euler-Maruyama discretization process. Such a modeling, for being realistic in biology and medicine, requires the implication of memory components. We also explain how to calculate the state transition time and we elaborate on how to reduce the system dynamics after the state transition. In fact, we establish and evaluate Stochastic Kuznetsov et al. model, and we describe how to demonstrate the stability of the numerical method, addressing tumor growth in spleen of mice. This work ends with a conclusion and a prospective view at future research and application, with special focus on medicine and neuroscience of tumor analysis and treatment.https://dergipark.org.tr/en/download/article-file/1025645hybrid systemsregime switchingpattern memorizationmultistationarityregulatory dynamical systemsmedicine |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Nurgül Gökgöz, Hakan Öktem, Gerhard-Wilhelm Weber |
spellingShingle |
Nurgül Gökgöz, Hakan Öktem, Gerhard-Wilhelm Weber Modeling of Tumor-Immune Nonlinear Stochastic Dynamics with HSM Results in Nonlinear Analysis hybrid systems regime switching pattern memorization multistationarity regulatory dynamical systems medicine |
author_facet |
Nurgül Gökgöz, Hakan Öktem, Gerhard-Wilhelm Weber |
author_sort |
Nurgül Gökgöz, Hakan Öktem, Gerhard-Wilhelm Weber |
title |
Modeling of Tumor-Immune Nonlinear Stochastic Dynamics with HSM |
title_short |
Modeling of Tumor-Immune Nonlinear Stochastic Dynamics with HSM |
title_full |
Modeling of Tumor-Immune Nonlinear Stochastic Dynamics with HSM |
title_fullStr |
Modeling of Tumor-Immune Nonlinear Stochastic Dynamics with HSM |
title_full_unstemmed |
Modeling of Tumor-Immune Nonlinear Stochastic Dynamics with HSM |
title_sort |
modeling of tumor-immune nonlinear stochastic dynamics with hsm |
publisher |
Erdal KARAPINAR |
series |
Results in Nonlinear Analysis |
issn |
2636-7556 2636-7556 |
publishDate |
2020-03-01 |
description |
In this paper, we address the well-known Tumor-Immune Model of Kuznetsov et al., converting it into
a stochastic form, and for simulation purposes we employ Euler-Maruyama discretization process. Such
a modeling, for being realistic in biology and medicine, requires the implication of memory components.
We also explain how to calculate the state transition time and we elaborate on how to reduce the system dynamics after the state transition. In fact, we establish and evaluate Stochastic Kuznetsov et al. model, and we describe how to demonstrate the stability of the numerical method, addressing tumor growth in spleen of mice. This work ends with a conclusion and a prospective view at future research and application, with special focus on medicine and neuroscience of tumor analysis and treatment. |
topic |
hybrid systems regime switching pattern memorization multistationarity regulatory dynamical systems medicine |
url |
https://dergipark.org.tr/en/download/article-file/1025645 |
work_keys_str_mv |
AT nurgulgokgozhakanoktemgerhardwilhelmweber modelingoftumorimmunenonlinearstochasticdynamicswithhsm |
_version_ |
1724705080048877568 |