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Unbiased FIR Filtering for Time-Stamped Discretely Delayed and Missing Data

机译:无偏见的冷杉过滤时间戳离散延迟和缺少数据

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The unbiased finite impulse response (UFIR) filtering approach is developed for discrete-time state-space models with time-stamped discretely delayed and missing data. The model with $k$-step-lags in observations is transformed to have no latency and expanded on a finite horizon of $N$ most recent data points. It is shown that the optimal horizon for the UFIR filter is practically $k$-invariant, unlike the tuning factor of the $H_infty$ filter. Higher robustness of the UFIR filter against the Kalman and $H_infty$ filters is justified theoretically in uncertain environments with discretely delayed and missing data. Experimental verification is provided based on GPS-based tracking of a moving vehicle to demonstrate a good agreement with the theory.
机译:对于具有时间戳离散延迟和缺少数据的离散时间空间模型,开发了不偏不倚的有限脉冲响应(UFIR)过滤方法。在观测中具有$ k $ -step-lags的模型被转换为没有延迟,并在$ n $最近的数据点的有限范围内扩展。结果表明,UFIR过滤器的最佳地平线实际上是$ k $ - invariant,与$ h_ infty $ filter的调谐因子不同。 UFIR过滤器对卡尔曼和$ H_ infty $滤波器的更高稳健性理论上是在具有离散延迟和缺失数据的不确定环境中的理论上。基于基于GPS的移动车辆跟踪提供了实验验证,以证明与理论的良好一致。

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