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

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초록

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 -step-lags in observations is transformed to have no latency and expanded on a finite horizon of most recent data points. It is shown that the optimal horizon for the UFIR filter is practically -invariant, unlike the tuning factor of the filter. Higher robustness of the UFIR filter against the Kalman and 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.

키워드

Delayed dataH-infinity filterKalman filter (KF)robustnessunbiased finite impulse response (FIR) filterH-INFINITYNEURAL-NETWORKSLINEAR-SYSTEMSIGNORING NOISESENSOR DELAYKALMANTRACKINGSTATE
제목
Unbiased FIR Filtering for Time-Stamped Discretely Delayed and Missing Data
저자
Uribe-Murcia, Karen J.Shmaliy, Yuriy S.Ahn, Choon KiZhao, Shunyi
DOI
10.1109/TAC.2019.2937850
발행일
2020-05
유형
Article
저널명
IEEE Transactions on Automatic Control
65
5
페이지
2155 ~ 2162