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Bayesian Selection of Markov Models for Symbol Sequences: Application to Microsaccadic Eye Movements

机译:贝叶斯选择马尔可夫模型的符号序列:应用microsaccadic眼动

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摘要

Complex biological dynamics often generate sequences of discrete events which can be described as a Markov process. The order of the underlying Markovian stochastic process is fundamental for characterizing statistical dependencies within sequences. As an example for this class of biological systems, we investigate the Markov order of sequences of microsaccadic eye movements from human observers. We calculate the integrated likelihood of a given sequence for various orders of the Markov process and use this in a Bayesian framework for statistical inference on the Markov order. Our analysis shows that data from most participants are best explained by a first-order Markov process. This is compatible with recent findings of a statistical coupling of subsequent microsaccade orientations. Our method might prove to be useful for a broad class of biological systems.
机译:复杂的生物动力学经常产生离散事件的序列,这些序列可以描述为马尔可夫过程。潜在的马尔可夫随机过程的顺序对于表征序列中的统计依存关系至关重要。作为此类生物系统的一个例子,我们研究了人类观察者微s眼运动的马尔可夫顺序。我们计算给定序列对于马尔可夫过程的各个阶的积分似然,并在贝叶斯框架中将其用于对马尔可夫阶的统计推断。我们的分析表明,一阶马尔可夫过程可以最好地解释大多数参与者的数据。这与随后的微扫视方位的统计耦合的最新发现是相容的。我们的方法可能被证明对广泛的生物系统类有用。

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