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Dimensionality Reduction Techniques for Efficient Adaptive Pulse Compression

机译:有效自适应脉冲压缩的降维技术

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摘要

Adaptive filtering for radar pulse compression has been shown to improve sidelobe suppression through the estimation of an appropriate pulse compression filter for each individual range cell of interest. However, the relatively high computational cost of full-dimension, adaptive range processing may limit practical implementation in many current real-time systems. Dimensionality reduction techniques are here employed to approximate the framework for pulse compression filter estimation. Within this approximate framework, two new minimum mean square error (MMSE) based adaptive algorithms are derived. The two algorithms are denoted as specific embodiments of the fast adaptive pulse compression (FAPC) method and are shown to maintain performance close to that of full-dimension adaptive processing, while reducing computation cost by nearly an order of magnitude (in terms of the discretized waveform length N).
机译:雷达脉冲压缩的自适应滤波已显示出,通过为每个感兴趣的距离单元估算适当的脉冲压缩滤波器,可以改善旁瓣抑制。但是,全尺寸自适应范围处理的相对较高的计算成本可能会限制许多当前实时系统中的实际实现。这里采用降维技术来近似用于脉冲压缩滤波器估计的框架。在此近似框架内,得出了两个基于最小均方误差(MMSE)的新自适应算法。这两种算法被表示为快速自适应脉冲压缩(FAPC)方法的特定实施例,并显示为保持接近全尺寸自适应处理的性能,同时将计算成本降低了近一个数量级(就离散化而言)波形长度N)。

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