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Maximum likelihood-based analysis of single-molecule photon arrival trajectories

机译:基于最大似然性的单分子光子到达轨迹分析

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In this work we explore the statistical properties of the maximum likelihood-based analysis of one-color photon arrival trajectories. This approach does not involve binning and, therefore, all of the information contained in an observed photon strajectory is used. We study the accuracy and precision of parameter estimates and the efficiency of the Akaike information criterion and the Bayesian information criterion (BIC) in selecting the true kinetic model. We focus on the low excitation regime where photon trajectories can be modeled as realizations of Markov modulated Poisson processes. The number of observed photons is the key parameter in determining model selection and parameter estimation. For example, the BIC can select the true three-state model from competing two-, three-, and four-state kinetic models even for relatively short trajectories made up of 2 × 103 photons. When the intensity levels are well-separated and 10~4 photons are observed, the two-state model parameters can be estimated with about 10% precision and those for a three-state model with about 20% precision.
机译:在这项工作中,我们探索单色光子到达轨迹基于最大似然分析的统计特性。该方法不涉及合并,因此,将使用观察到的光子轨道中包含的所有信息。我们研究了参数估计的准确性和准确性,以及在选择真实动力学模型时Akaike信息准则和贝叶斯信息准则(BIC)的效率。我们关注低激发态,其中光子轨迹可以建模为马尔可夫调制泊松过程的实现。观察到的光子数量是确定模型选择和参数估计的关键参数。例如,即使对于由2×103个光子组成的相对较短的轨迹,BIC仍可以从竞争的二态,三态和四态动力学模型中选择真实的三态模型。当强度水平很好地分开并且观察到10〜4个光子时,可以估计约10%的精度的二态模型参数,对于约20%精度的三态模型的参数。

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