DocumentCode
971733
Title
One-step solution for the multistep out-of-sequence-measurement problem in tracking
Author
Bar-shalom, Yaakov ; Chen, Huimin ; Mallick, Mahendra
Author_Institution
Dept. of Electr. & Comput. Eng., Connecticut Univ., Storrs, CT, USA
Volume
40
Issue
1
fYear
2004
fDate
1/1/2004 12:00:00 AM
Firstpage
27
Lastpage
37
Abstract
In multisensor target tracking systems measurements from the same target can arrive out of sequence. Such "out-of-sequence" measurement (OOSM) arrivals can occur even in the absence of scan/frame communication time delays. The resulting problem - how to update the current state estimate with an "older" measurement - is a nonstandard estimation problem. It was solved first (suboptimally, then optimally) for the case where the OOSM lies between the two last measurements, i.e, its lag is less than a sampling interval - the 1-step-lag case. The real world has, however, OOSMs with arbitrary lag. Subsequently, the suboptimal algorithm was extended to the case of an arbitrary (multistep) lag, but the resulting algorithm required a significant amount of storage. The present work shows how the 1-step-lag algorithms can be generalized to handle an arbitrary (multistep) lag while preserving their main feature of solving the update problem without iterating. This leads only to a very small (a few percent) degradation of MSE performance. The incorporation of an OOSM into the data association process is also discussed. A realistic example with two GMTI radars is presented. The consistency of the proposed algorithm is also evaluated and it is found that its calculated covariances are reliable.
Keywords
mean square error methods; radar signal processing; radar tracking; sensor fusion; signal sampling; target tracking; 1-step-lag algorithms; GMTI radars; MSE performance; OOSM arrivals; arbitrary lag; data association process; multisensor target tracking systems; multistep out-of-sequence-measurement; nonstandard estimation; sampling interval; scan-frame communication time delays; suboptimal algorithm; Current measurement; Degradation; Delay effects; Military computing; Radar tracking; Sampling methods; Sensor systems; State estimation; Target tracking; Time measurement;
fLanguage
English
Journal_Title
Aerospace and Electronic Systems, IEEE Transactions on
Publisher
ieee
ISSN
0018-9251
Type
jour
DOI
10.1109/TAES.2004.1292140
Filename
1292140
Link To Document