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Estimation of parameter sensitivities for stochastic chemical reaction networks is an important and challenging problem. Sensitivity values are important in the analysis, modeling and design of chemical networks. They help in understanding…

概率论 · 数学 2012-12-21 Ankit Gupta , Mustafa Khammash

We consider the important problem of estimating parameter sensitivities for stochastic models of reaction networks that describe the dynamics as a continuous-time Markov process over a discrete lattice. These sensitivity values are useful…

概率论 · 数学 2018-01-12 Ankit Gupta , Muruhan Rathinam , Mustafa Khammash

Stochastic models for chemical reaction networks have become very popular in recent years. For such models, the estimation of parameter sensitivities is an important and challenging problem. Sensitivity values help in analyzing the network,…

概率论 · 数学 2013-10-08 Ankit Gupta , Mustafa Khammash

This paper deals with the problem of estimating second-order parameter sensitivities for stochastic reaction networks, where the reaction dynamics is modeled as a continuous time Markov chain over a discrete state space. Estimation of such…

概率论 · 数学 2014-07-29 Ankit Gupta , Mustafa Khammash

Consider the standard stochastic reaction network model where the dynamics is given by a continuous-time Markov chain over a discrete lattice. For such models, estimation of parameter sensitivities is an important problem, but the existing…

定量方法 · 定量生物学 2019-05-01 Patrik Dürrenberger , Ankit Gupta , Mustafa Khammash

Stochastic models for chemical reaction networks are increasingly popular in systems and synthetic biology. These models formulate the reaction dynamics as Continuous-Time Markov Chains (CTMCs) whose propensities are parameterized by a…

分子网络 · 定量生物学 2024-10-16 Quentin Badolle , Ankit Gupta , Mustafa Khammash

Sensitivity analysis of biochemical reactions aims at quantifying the dependence of the reaction dynamics on the reaction rates. The computation of the parameter sensitivities, however, poses many computational challenges when taking…

分子网络 · 定量生物学 2018-11-07 Vo Hong Thanh , Roberto Zunino , Corrado Priami

Stochastic modeling and simulation provide powerful predictive methods for the intrinsic understanding of fundamental mechanisms in complex biochemical networks. Typically, such mathematical models involve networks of coupled jump…

信息论 · 计算机科学 2013-08-02 Yannis Pantazis , Markos A. Katsoulakis , Dionisios G. Vlachos

In this study, we introduce a sensitivity analysis methodology for stochastic systems in chemistry, where dynamics are often governed by random processes. Our approach is based on gradient estimation via finite differences, averaging…

定量方法 · 定量生物学 2026-01-12 Erika M. Herrera Machado , Jakob L. Andersen , Rolf Fagerberg , Daniel Merkle

In the presence of multiscale dynamics in a reaction network, direct simulation methods become inefficient as they can only advance the system on the smallest scale. This work presents stochastic averaging techniques to accelerate…

概率论 · 数学 2016-03-23 Araz Hashemi , Marcel Nunez , Petr Plechac , Dionisios G. Vlachos

Sensitivity analysis is a process of computing sensitivity indices, which are certain measures of importance of parameters in influencing the outputs of mathematical models. Sensitivity indices computed in variance-based sensitivity…

统计计算 · 统计学 2013-10-04 Tomasz Badowski

We provide a novel method for sensitivity analysis of parametric robust Markov chains. These models incorporate parameters and sets of probability distributions to alleviate the often unrealistic assumption that precise probabilities are…

机器学习 · 计算机科学 2023-05-03 Thom Badings , Sebastian Junges , Ahmadreza Marandi , Ufuk Topcu , Nils Jansen

We consider the problem of estimating parameter sensitivities for stochastic models of multiscale reaction networks. These sensitivity values are important for model analysis, and, the methods that currently exist for sensitivity estimation…

概率论 · 数学 2018-10-02 Ankit Gupta , Mustafa Khammash

We present an efficient finite difference method for the approximation of second derivatives, with respect to system parameters, of expectations for a class of discrete stochastic chemical reaction networks. The method uses a coupling of…

定量方法 · 定量生物学 2012-10-16 Elizabeth Skubak Wolf , David F. Anderson

Inferring parameters of models of biochemical kinetics from single-cell data remains challenging because of the uncertainty arising from the intractability of the likelihood function of stochastic reaction networks. Such uncertainty falls…

定量方法 · 定量生物学 2025-01-14 Zekai Li , Mauricio Barahona , Philipp Thomas

Parameter sensitivity analysis is a powerful tool in the building and analysis of biochemical network models. For stochastic simulations, parameter sensitivity analysis can be computationally expensive, requiring multiple simulations for…

计算物理 · 物理学 2015-06-04 Patrick B. Warren , Rosalind J. Allen

We consider the problem of inferring the unknown parameters of a stochastic biochemical network model from a single measured time-course of the concentration of some of the involved species. Such measurements are available, e.g., from…

分子网络 · 定量生物学 2011-11-22 Christian L. Muller , Rajesh Ramaswamy , Ivo F. Sbalzarini

We develop new unbiased estimators of a number of quantities defined for functions of conditional moments, like conditional expectations and variances, of functions of two independent random variables given the first variable, including…

统计计算 · 统计学 2013-10-03 Tomasz Badowski

In this paper, a two-step strategy for parametric sensitivity analysis for such systems is proposed, exploiting advantages and synergies between two recently proposed sensitivity analysis methodologies for stochastic dynamics. The first…

分子网络 · 定量生物学 2016-02-17 Georgios Arampatzis , Markos A. Katsoulakis , Yannis Pantazis

We study two specific measures of quality of chemical reaction networks, Precision and Sensitivity. The two measures arise in the study of sensory adaptation, in which the reaction network is viewed as an input-output system. Given a step…

动力系统 · 数学 2016-01-05 Tom F. A. de Greef , Saeed Masroor , Mark A. Peletier , Rudi A. Pendavingh
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