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A Confidence Statistic and an Outlier Detector for Difference Estimates in Sensor Arrays

机译:传感器阵列中差值估计的置信度统计量和离群值检测器

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摘要

Evaluating estimation errors with minimal prior information is a difficult problem, encountered in sensor systems that require outlier rejection and self-diagnosis. This work proposes a confidence statistic and an outlier detector for difference estimates in sensor arrays. The statistic is based on the configuration of the sensor array, and it is applicable to a variety of estimates from a generalized difference quantity model. For instance, differences of arrival times used in direction of arrival estimation and localization are compliant with the proposed model. The confidence statistic is used to detect the presence of outliers in data. An optimum detector and a description of detection accuracy are derived. Performance is examined within a case study, and it is demonstrated that the analytical results are useful also when the statistical assumptions are not met. Results show that the statistic is effective in measuring estimation reliability and identifying outliers, especially when errors are large and a majority of the data is corrupted.
机译:用最少的先验信息来评估估计误差是一个难题,在需要离群值拒绝和自我诊断的传感器系统中会遇到。这项工作提出了置信度统计量和离群值检测器,用于传感器阵列中的差异估计。该统计信息基于传感器阵列的配置,并且适用于来自广义差异量模型的各种估计。例如,在到达方向估计和定位方向上使用的到达时间的差异符合所提出的模型。置信度统计用于检测数据中异常值的存在。得出了最佳检测器和检测精度的描述。在一个案例研究中检查了性能,并且证明了当不满足统计假设时,分析结果也很有用。结果表明,该统计数据可有效地测量估计的可靠性和识别异常值,尤其是在误差较大且大多数数据已损坏的情况下。

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