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Online tests of Kalman filter consistency

机译:卡尔曼滤波器一致性的在线测试

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摘要

The normalised innovation squared (NIS) test, which is used to assess whether a Kalman filter's noise assumptions are consistent with realised measurements, can be applied online with real data, and does not require future data, repeated experiments or knowledge of the true state. In this work, it is shown that the NIS test is equivalent to three other model criticism procedures, which are as follows: (i) it can be derived as a Bayesian p-test for the prior predictive distribution; (ii) as a nested-model parameter significance test; and (iii) from a recently-proposed filter residual test. A new NIS-like test corresponding to a posterior predictive Bayesian p-test is presented. Copyright (c) 2015John Wiley & Sons, Ltd.
机译:标准化创新平方(NIS)检验用于评估卡尔曼滤波器的噪声假设是否与已实现的测量一致,可以与真实数据一起在线应用,并且不需要将来的数据,重复的实验或对真实状态的了解。在这项工作中,表明NIS检验与其他三个模型批评程序等效,如下所示:(i)对于先前的预测分布,它可以作为贝叶斯p检验得出; (ii)作为嵌套模型参数显着性检验; (iii)最近提出的过滤器残留测试。提出了与后验贝叶斯p检验相对应的新NIS样检验。版权所有(c)2015 John Wiley&Sons,Ltd.

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