On Robust State Estimation of Gene Networks

IF 2.3 Q3 ENGINEERING, BIOMEDICAL Biomedical Engineering and Computational Biology Pub Date : 2010-01-01 DOI:10.1177/117959721000200001
Chia-Hua Chuang, Chun‐Liang Lin
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引用次数: 6

Abstract

Gene networks in biological systems are not only nonlinear but also stochastic due to noise corruption. How to accurately estimate the internal states of the noisy gene networks is an attractive issue to researchers. However, the internal states of biological systems are mostly inaccessible by direct measurement. This paper intends to develop a robust extended Kalman filter for state and parameter estimation of a class of gene network systems with uncertain process noises. Quantitative analysis of the estimation performance is conducted and some representative examples are provided for demonstration.
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基因网络的鲁棒状态估计
由于噪声的破坏,生物系统中的基因网络不仅是非线性的,而且是随机的。如何准确估计噪声基因网络的内部状态一直是研究人员关注的问题。然而,生物系统的内部状态大多无法通过直接测量获得。针对一类具有不确定过程噪声的基因网络系统的状态和参数估计问题,提出了一种鲁棒扩展卡尔曼滤波器。对估计性能进行了定量分析,并给出了一些有代表性的实例进行论证。
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1
审稿时长
8 weeks
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