卡尔曼滤波与贝叶斯map方法在心电图反演时空解中的比较

Umit Aydin, Y. Serinağaoğlu
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引用次数: 0

摘要

本文比较了几种求解心电图逆问题的空间方法和时空方法。还对几何误差的情况进行了比较,其中心脏位置移动了10mm,心脏尺寸减小了5%。比较的方法是卡尔曼滤波和贝叶斯最大后验估计。使用了两种不同的贝叶斯- map算法。一个只使用空间信息,另一个使用时空信息。在卡尔曼滤波算法中,计算包含时空信息的状态转移矩阵(STM)。第一种情况是直接从训练集计算STM,第二种情况是利用空间贝叶斯map的解来计算STM。
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Comparison of Kalman filter and Bayesian-MAP approaches in the spatio-temporal solution of the inverse electrocardiography
In this study some of the spatial and spatio-temporal methods for the solution of the inverse problem of electrocardiography (ECG) are compared with each other. Comparisons are also made for the cases with geometric errors, where the location of the heart is shifted for 10mm and the size of the heart is reduced by 5%. The compared methods are the Kalman filter and Bayesian maximum a posteriori estimation (MAP). Two different Bayesian-MAP algorithms are used. While one uses only spatial information the other uses spatio-temporal information. In Kalman filter algorithms the state transition matrix (STM) that contains the spatio-temporal information is calculated with two different scenarios. In the first case the STM is calculated directly from the training set and in the second case the solution of the spatial Bayesian-MAP is employed to calculate STM.
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