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On Bayesian MHT for well-separated targets in densely cluttered environment

机译:关于贝叶斯M​​HT,用于在密集混乱的环境中很好地分离目标

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Certain radar applications must cope with rather extreme operational conditions (densely cluttered environment/relatively small detection probabilities). Tracking in such situations calls for refined data association and processing techniques. By simulation results we demonstrate the applicability of Bayesian multiple hypothesis tracking (MRT) to well-separated targets detected with a mechanically rotating radar. Special emphasis is placed on air situations characterized by massively occurring data association conflicts.
机译:某些雷达应用必须应对相当极端的操作条件(密集的环境/相对较小的检测概率)。在这种情况下进行跟踪需要完善的数据关联和处理技术。通过仿真结果,我们证明了贝叶斯多重假设跟踪(MRT)在用机械旋转雷达检测到的分离良好的目标上的适用性。特别强调以大量发生数据关联冲突为特征的空中情况。

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