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Evaluating the consistency of estimation

机译:评估估计的一致性

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The error covariance reported by an estimation is said to be consistent if it is a reliable indicator of the actual error. In this paper several types of consistency are defined, and methods for its evaluation are introduced. Mean Squared Deviation consistency is based on the Chebyshev inequality, p equivalence is based on the fact that the concentration ellipse with probability mass p must contain the actual value of the estimated parameter with probability p, and Normalized Deviation Squared (NDS) consistency implies that a concentration ellipse of probability mass p contains the actual value of the estimated parameter with probability at least p. Hypothesis tests for consistency evaluation are presented. The NDS consistency test is applied to WiFi localization system data in order to investigate sources of inconsistencies and adjust parameters of the system. It is shown that underestimated measurement noise is the main cause of inconsistent behavior; however, an incorrect motion model or underestimated process noise might also result in inconsistent estimates.
机译:如果它是实际误差的可靠指标,则估计报告的误差协方差被认为是一致的。本文定义了几种类型的一致性,并介绍了其评估方法。均方差偏差一致性基于Chebyshev不等式,p等价基于以下事实:概率为p的浓度椭圆必须包含概率为p的估计参数的实际值,归一化偏差平方(NDS)一致性意味着a概率质量p的浓度椭圆包含概率至少为p的估计参数的实际值。提出了用于一致性评估的假设检验。 NDS一致性测试应用于WiFi本地化系统数据,以调查不一致的原因并调整系统参数。结果表明,低估的测量噪声是行为不一致的主要原因。但是,错误的运动模型或低估的过程噪声也可能导致估计不一致。

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