Computationally efficient waveform diversity

S. Gumas, B. Himed
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Abstract

In this paper, a new signal processing approach referred to as simultaneous range-Doppler (SRDreg) is presented. It applies fractional Fourier transforms in a manner that yields projections and slices of the cross-ambiguity function (CAF). Waveform diversity (WD) techniques often require extensive processing resources, thus precluding WD from smaller, more mobile systems, or applications with limited resources. By employing SRDreg, the feasibility of WD in these applications is greatly increased. The projection and slice processing is used to detect targets and estimate their unambiguous range and Doppler in the CAF range-Doppler space. SRDreg detects peaks of the CAF in a processor-efficient manner, thereby reducing the computational load associated with traditional approaches since computing the entire CAF is avoided. The number of required operations is reduced to O(Nlog2(N)) as opposed to O(N2log2(N)). Since SRD* processing load is insensitive to waveform modulation and coding, orthogonal waveforms can be exploited to confer temporal, spatial, and spectral diversity to a sensor system, without incurring any processing penalty. Fundamentally, SRDreg offers waveform flexibility and increased processing efficiency, which can be applied to broaden the scope of applicability of WD to sensor systems.
计算效率高的波形分集
本文提出了一种新的信号处理方法——同步距离多普勒(SRDreg)。它以一种产生交叉模糊函数(CAF)的投影和切片的方式应用分数阶傅立叶变换。波形分集(WD)技术通常需要大量的处理资源,因此无法用于更小、更移动的系统或资源有限的应用。通过采用SRDreg, WD在这些应用中的可行性大大提高。利用投影和切片处理在CAF距离-多普勒空间中检测目标并估计目标的无二义距离和多普勒。SRDreg以处理器高效的方式检测CAF的峰值,从而减少了与传统方法相关的计算负荷,因为避免了计算整个CAF。所需操作的数量减少到O(Nlog2(N)),而不是O(N2log2(N))。由于SRD*处理负载对波形调制和编码不敏感,因此可以利用正交波形赋予传感器系统时间、空间和频谱多样性,而不会产生任何处理损失。从根本上说,SRDreg提供了波形灵活性和更高的处理效率,可用于扩大WD在传感器系统中的适用范围。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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