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Comparison between LS and TLS in adaptive processing for radar systems

机译:雷达系统自适应处理中LS和TLS的比较

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Electro magnetic (e.m.) noise like interference (NLI) disturbs the proper working of radar by injecting noise from specific angular directions. Phased-array radars contrast this phenomenon via adaptive spatial filtering of the interference, this objective is reached by distorting the receiving antenna pattern by generating a null in the interference direction of arrival (IDoA) [1]. In real world the adaptive cancellation of directional interference is limited, among other error sources, by the presence of clutter and by the amplitude and phase mismatch of receiving channels, thus adaptive signal processing strategies have to be conceived to permit the NLI cancellation in real environment. This paper compares two methods for adaptive signal processing in modern radar systems. Section 2 recalls the working principles of the Least Square (LS) and Total Least Squares (TLS) algorithms. These processing methods are applied to three study cases in adaptive phased-array radar Section 3 studies the estimation of the jamming covariance matrix in presence of clutter in an adaptive phased-array. The null depth in adaptive jammer cancellation is analyzed in Section 4. The problem of equalization of receiving channels is the subject of Section 5. Concluding remarks are in Section 6.
机译:电磁(即)噪声(即)噪声(即,NLI)通过从特定角度方向注入噪声来扰乱雷达的适当工作。相控阵雷达通过对干扰的自适应空间滤波对比这种现象,通过在到达的干扰方向(IDOA)[1]中通过产生空键来扭曲接收天线图案来达到该目的。在现实世界中,通过杂波的存在和通过接收通道的幅度和相位失配,因此必须构思定向干扰的自适应取消,因此必须设想自适应信号处理策略,以允许在真实环境中取消NLI取消。本文比较了现代雷达系统中自适应信号处理的两种方法。第2节回忆起最小二乘(LS)和总至少方块(TLS)算法的工作原理。将这些处理方法应用于自适应相控阵雷达部分3中的三个研究例,研究了在自适应相控阵中存在杂波的干扰协方差矩阵的估计。在第4节中分析了自适应干扰消除中的空深度。接收渠道的均衡问题是第5节的主题。结束语是第6节。

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