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A computationally-efficient, CRLB-achieving range estimation algorithm

机译:一种计算效率高,可实现CRLB的范围估计算法

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Range splitting algorithms are used in radar signal processing to accurately estimate the range of a detected target by “splitting” the range bin and estimating where within the range bin the target is located. This paper presents a computationally-efficient range estimation algorithm that is empirically proven to achieve the Cramer-Rao lower bound (CRLB), while incuring minimal computational complexity. The algorithm calibrates the response in the mainlobe of the matched filter to incremental delays and is referred to as the calibration range estimation (CRE) algorithm. CRE then accurately estimates the target's range from the received signal by linear interpolation of the calibration curve. We used both a stand-alone and a high-fidelity simulation to compare the range estimation error against the theoretical CRLB result. Using the stand-alone simulation, we showed that the CRE range estimate achieves the CRLB using at least twice the Nyquist sampling rate, and that it is moderately worse than the CRLB with the high-fidelity model. We also provide a brief discussion of the high-fidelity simulation, which captures antenna design and radar signal processing taper losses that the stand-alone simulation does not model.
机译:距离分割算法用于雷达信号处理中,以通过“分割”距离仓并估计目标在距离仓内的位置来准确估计检测到的目标的范围。本文提出了一种计算有效的范围估计算法,该算法经实验证明可实现Cramer-Rao下界(CRLB),同时确保最小的计算复杂性。该算法校准匹配滤波器主瓣中对增量延迟的响应,并称为校准范围估计(CRE)算法。然后,CRE通过对校准曲线进行线性插值,从接收到的信号中准确估算目标的范围。我们同时使用了独立模拟和高保真模拟,将距离估计误差与理论CRLB结果进行了比较。使用独立的模拟,我们显示使用至少两倍的奈奎斯特采样率,CRE范围估计可以达到CRLB,并且比使用高保真模型的CRLB稍差一些。我们还提供了有关高保真度仿真的简短讨论,它捕获了独立模拟无法建模的天线设计和雷达信号处理锥度损耗。

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