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HIDDEN MARKOV MODELS FOR RADAR PULSE TRAIN ANALYSIS IN ELECTRONIC WARFARE

机译:电子战中雷达脉冲火车分析的隐马尔可夫模型

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We present a new approach to radar pulse train analysis in electronic warfare. We consider an alternative to the classical Time-Of-Arrival (TOA) histogram technique commonly used for extraction of complex pulse patterns. We derive a Hidden Markov Model for the radar word templates, and develop a modi£ed version of the Viterbi algorithm to extract radar words from noisy and corrupted pulse sequences. We argue the advantages of this approach compared to the standard TOA histogram technique, and illustrate operation of the algorithm with computer simulation results.
机译:我们提出了一种新的电子战中雷达脉冲列车分析方法。我们考虑常规时间(TOA)直方图技术的替代方案,通常用于提取复杂脉冲模式。我们为雷达文字模板派生了一个隐藏的马尔可夫模型,并开发了Viterbi算法的Modi£版本,以从嘈杂和损坏的脉冲序列中提取雷达词。与标准TOA直方图技术相比,我们认为这种方法的优点,并说明了计算机仿真结果的算法的运行。

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