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Recursive temporal-spatial information fusion with applications to target identification

机译:时空递归信息融合及其在目标识别中的应用

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摘要

Centralized/distributed recursive algorithms for temporal-spatial information integration using the Dempster-Shafer technique are developed. Compared with the Bayesian approach, the Dempster-Shafer technique has the strong capability of handling information uncertainties, which are particularly desirable in many applications. In the centralized integration algorithm, all information is pooled into the central processor and integrated. In contrast, the distributed integration algorithm shares the computational burden among the local processors, which increases the computational efficiency. The developed algorithms are effectively applied to a target identification problem with three sensors: identification of friend-foe-neutral (IFFN), electronic support measurement (ESM), and infrared search and track (IRST).
机译:开发了使用Dempster-Shafer技术进行时空信息集成的集中式/分布式递归算法。与贝叶斯方法相比,Dempster-Shafer技术具有处理信息不确定性的强大能力,这在许多应用中特别需要。在集中式集成算法中,所有信息都汇集到中央处理器中并进行集成。相反,分布式集成算法在本地处理器之间分担了计算负担,这增加了计算效率。所开发的算法可通过三个传感器有效地应用于目标识别问题:识别中立敌友(IFFN),电子支持测量(ESM)和红外搜索与跟踪(IRST)。

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