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A Generalized Approach for Inconsistency Detection in Data Fusion from Multiple Sensors

机译:多传感器数据融合中不一致检测的广义方法

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This paper presents a sensor fusion strategy based on Bayesian method that can identify the inconsistency in sensor data so that spurious data can be eliminated from the sensor fusion process. The proposed method adds a term to the commonly used Bayesian technique that represents the probabilistic estimate corresponding to the event that the data is not spurious conditioned upon the data and the true state. This term has the effect of increasing the variance of the posterior distribution when data from one of the sensors is inconsistent with respect to the other. The proposed strategy was verified with the help of extensive simulations. The simulations showed that the proposed method was able to identify inconsistency in sensor data and also confirmed that the identification of inconsistency led to a better estimate of desired state variable.
机译:本文介绍了一种基于贝叶斯方法的传感器融合策略,可以识别传感器数据中的不一致,从而可以从传感器融合过程中消除虚假数据。该方法为常用的贝叶斯技术增加了术语,该技术表示与数据在数据和真正的真实状态上不虚拟的事件中对应的概率估计。当来自其中一个传感器的数据与另一个传感器不一致时,该术语具有增加后部分布的方差。拟议的策略是在广泛的模拟的帮助下进行了验证的。该模拟表明,该方法能够识别传感器数据中的不一致性,并且还证实不一致的识别导致了所需状态变量的更好估计。

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