On the anti-intercept features of noise radars

IF 1.4 4区 管理学 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Gaspare Galati, Gabriele Pavan
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Abstract

Robustness against Electronic Warfare/Electronic Defence attacks represents an important advantage of Noise Radar Technology (NRT). An evaluation of the related Low Probability of Detection (LPD) and of Intercept (LPI) is presented for Continuous Emission Noise Radar (CE-NR) waveforms with different operational parameters, that is, “tailored”, and with various “degrees of randomness”. In this frame, three different noise radar waveforms, a phase Noise (APCN) and two “tailored” noise waveforms (FMeth and COSPAR), are compared by time–frequency analysis. Using a correlator (i.e. a two antennas) receiver, assuming a complete knowledge of the band (B) and duration (T) of the coherent emission of these waveforms, it will be shown that the LPD features of a CE-NR do not significantly differ from those of any CE radar transmitting deterministic waveforms. However, in real operations, B and T are unknown; hence, assuming an instantaneous bandwidth estimation will show that the duration T can be estimated only for some specific “tailored” waveforms (of course, not to be operationally used). The effect of “tailoring” is analysed with prospects for future work. Finally, some limitations in the classification of these radar signals are analysed.

Abstract Image

关于噪声雷达的反拦截功能
抗电子战/电子防御攻击的鲁棒性是噪声雷达技术(NRT)的一个重要优势。本文对具有不同操作参数(即 "定制")和不同 "随机度 "的连续发射噪声雷达(CE-NR)波形的相关低探测概率(LPD)和低拦截概率(LPI)进行了评估。在此框架内,通过时频分析比较了三种不同的噪声雷达波形,一种相位噪声(APCN)和两种 "定制 "噪声波形(FMeth 和 COSPAR)。使用相关器(即双天线)接收器,假定完全了解这些波形相干发射的频带(B)和持续时间(T),就会发现 CE-NR 的 LPD 特性与发射确定性波形的 CE 雷达的 LPD 特性没有明显区别。然而,在实际操作中,B 和 T 都是未知的;因此,假设进行瞬时带宽估算,就会发现只能对某些特定的 "定制 "波形(当然,不能用于实际操作)估算持续时间 T。我们分析了 "量身定制 "的效果,并展望了未来的工作。最后,分析了这些雷达信号分类的一些局限性。
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来源期刊
Iet Radar Sonar and Navigation
Iet Radar Sonar and Navigation 工程技术-电信学
CiteScore
4.10
自引率
11.80%
发文量
137
审稿时长
3.4 months
期刊介绍: IET Radar, Sonar & Navigation covers the theory and practice of systems and signals for radar, sonar, radiolocation, navigation, and surveillance purposes, in aerospace and terrestrial applications. Examples include advances in waveform design, clutter and detection, electronic warfare, adaptive array and superresolution methods, tracking algorithms, synthetic aperture, and target recognition techniques.
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