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Improved Hidden Markov Models for Molecular Motors Part 1: Basic Theory

机译:分子电动机的改进的隐马尔可夫模型第1部分:基本理论

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摘要

Hidden Markov models (HMMs) provide an excellent analysis of recordings with very poor signaloise ratio made from systems such as ion channels which switch among a few states. This method has also recently been used for modeling the kinetic rate constants of molecular motors, where the observable variable—the position—steadily accumulates as a result of the motor's reaction cycle. We present a new HMM implementation for obtaining the chemical-kinetic model of a molecular motor's reaction cycle called the variable-stepsize HMM in which the quantized position variable is represented by a large number of states of the Markov model. Unlike previous methods, the model allows for arbitrary distributions of step sizes, and allows these distributions to be estimated. The result is a robust algorithm that requires little or no user input for characterizing the stepping kinetics of molecular motors as recorded by optical techniques.
机译:隐马尔可夫模型(HMM)可以很好地分析信号/噪声比非常差的记录,这些记录是由离子通道等在几种状态之间切换的系统制成的。最近,该方法也已用于对分子电动机的动力学速率常数进行建模,其中,由于电动机的反应周期,可观察的变量(位置)稳定地累积。我们提出了一种新的HMM实施方案,用于获得分子马达反应周期的化学动力学模型,称为可变步长HMM,其中,量化的位置变量由大量的马尔可夫模型状态表示。与以前的方法不同,该模型允许步长的任意分布,并允许估计这些分布。结果是一种鲁棒的算法,不需要或只需很少的用户输入即可表征光学技术记录的分子马达的步进动力学。

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