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Bayesian Inference of Particle Motion and Dynamics from Single Particle Tracking and Fluorescence Correlation Spectroscopy

机译:单粒子跟踪和荧光相关光谱法的粒子运动和动力学的贝叶斯推断

摘要

Techniques for inferring particle dynamics from certain data include determining multiple models for motion of particles in a biological sample. Each model includes a corresponding set of one or more parameters. Measured data is obtained based on measurements at one or more voxels of an imaging system sensitive to motion of particles in the biological sample; and, determining noise correlation of the measured data. Based at least in part on the noise correlation, a marginal likelihood is determined of the measured data given each model of the multiple models. A relative probability for each model is determined based on the marginal likelihood. Based at least in part on the relative probability for each model, a value is determined for at least one parameter of the set of one or more parameters corresponding to a selected model of the multiple models.
机译:从某些数据推断粒子动力学的技术包括确定生物样品中粒子运动的多个模型。每个模型包括一个或多个参数的对应集合。基于对生物样品中的颗粒运动敏感的成像系统的一个或多个体素的测量值获得测量数据。确定测量数据的噪声相关性。至少部分地基于噪声相关性,在给定多个模型的每个模型的情况下,确定测量数据的边际可能性。基于边际可能性确定每个模型的相对概率。至少部分地基于每个模型的相对概率,为与多个模型中的所选模型相对应的一个或多个参数的集合中的至少一个参数确定值。

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