最大化目标可分辨性的自适应波形设计

Lulu Wang, Hongqiang Wang, Yongqiang Cheng, Y. Qin, P. Brennan
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引用次数: 5

摘要

在目标探测与跟踪领域,多个近距离定位目标的可分辨性是衡量雷达等传感系统感知能力的重要标准。为了最大限度地提高近距离定位目标的实际可分辨性,本文研究了自适应雷达波形设计问题。传统的基于模糊函数(AF)的雷达分辨率只考虑波形,而不考虑噪声的影响。然而,噪声极大地影响了可实现的分辨率以及雷达的探测和跟踪性能。针对传统雷达分辨率的不足,本文引入Kullback-Leibler散度(KLD)来量化雷达测量的两个概率密度函数(pdf)之间的“距离”,从而表示实际的雷达分辨率,其中不仅包括波形的影响,还包括信噪比(SNR)和测量模型。为此,提出了一种新的自适应雷达波形设计准则,以实现实际雷达分辨率的最大化。仿真结果表明了该自适应波形设计方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adaptive waveform design for maximizing resolvability of targets
In the field of target detection and tracking, the resolvability of multiple closely located targets is a significant criterion for measuring the sensing ability of radar and other sensing systems. This paper considers the problem of adaptive radar waveform design to maximize the practical resolvability of closely located targets. Conventional ambiguity function (AF)-based radar resolution considers only the waveform, regardless of the influence of noise. However, noise grreatly influences the achievable resolution as well as radar detection and tracking performance. As a result of this deficiency in conventional radar resolution, Kullback-Leibler Divergence (KLD) is introduced in this paper in order to quantify the “distance” between two probability density functions (PDFs) of radar measurements, and thus to represent practical radar resolution, which includes not only the effect of the waveform but also the signal-to-noise ratio (SNR) and measurement model. Consequently, a new adaptive radar waveform design criterion is proposed, which aims to maximize the practical radar resolution. Simulation results show the effectiveness of the proposed adaptive waveform design method.
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