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Novel Approach for the Recognition and Prediction of Multi-Function Radar Behaviours Based on Predictive State Representations

机译:基于预测状态表示的多功能雷达行为识别与预测的新方法

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The extensive applications of multi-function radars (MFRs) have presented a great challenge to the technologies of radar countermeasures (RCMs) and electronic intelligence (ELINT). The recently proposed cognitive electronic warfare (CEW) provides a good solution, whose crux is to perceive present and future MFR behaviours, including the operating modes, waveform parameters, scheduling schemes, etc. Due to the variety and complexity of MFR waveforms, the existing approaches have the drawbacks of inefficiency and weak practicability in prediction. A novel method for MFR behaviour recognition and prediction is proposed based on predictive state representation (PSR). With the proposed approach, operating modes of MFR are recognized by accumulating the predictive states, instead of using fixed transition probabilities that are unavailable in the battlefield. It helps to reduce the dependence of MFR on prior information. And MFR signals can be quickly predicted by iteratively using the predicted observation, avoiding the very large computation brought by the uncertainty of future observations. Simulations with a hypothetical MFR signal sequence in a typical scenario are presented, showing that the proposed methods perform well and efficiently, which attests to their validity.
机译:多功能雷达(MFR)的广泛应用给雷达对策(RCM)和电子情报(ELINT)技术带来了巨大挑战。最近提出的认知电子战(CEW)提供了一个很好的解决方案,其关键是感知当前和未来的MFR行为,包括操作模式,波形参数,调度方案等。由于MFR波形的多样性和复杂性,这些方法的缺点是预测效率低下和实用性较弱。提出了一种基于预测状态表示(PSR)的MFR行为识别和预测的新方法。使用所提出的方法,通过累积预测状态来识别MFR的操作模式,而不是使用战场上不可用的固定过渡概率。它有助于减少MFR对先验信息的依赖性。而且可以通过使用预测的观测值进行迭代来快速预测MFR信号,避免了未来观测值的不确定性带来的巨大计算量。提出了在典型情况下使用假设的MFR信号序列进行的仿真,表明所提出的方法性能良好且高效,证明了其有效性。

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