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首页> 外文期刊>The Journal of the Acoustical Society of America >Processor dependent bias of spatial spectral estimates from coprime sensor arrays
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Processor dependent bias of spatial spectral estimates from coprime sensor arrays

机译:来自Coprime传感器阵列的处理器依赖偏差的空间谱估计

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摘要

Coprime sensor arrays (CSAs) can estimate the directions of arrival of O(M + N) narrowband plane wave sources using only OoM thorn Nthorn sensors with the CSA product processor. Processing data from a finite aperture array effectively smears the true spatial power spectral density (PSD) with a kernel function determined by both the array geometry and the processing of the signals observed by the array. This paper examines the asymptotic behaviors of the kernel functions resulting from two different processors applied to a CSA sampling geometry in the limit of large aperture. The kernel functions of the product processed CSA and conventionally beamformed coprime sensor arrays (CBF CSA) are compared to the baseline of the kernel of a densely populated uniform line array (ULA) of similar aperture. At the limit of large aperture, the product processed CSA estimate is asymptotically unbiased like the ULA, while the CBF CSA estimate is not. The PSD estimates computed from the CSA processors are compared when spatially correlated Gaussian noise is an input to the array to highlight the bias issues.
机译:CopRime传感器阵列(CSA)可以使用具有CSA产品处理器的Oom Thorn Nathorn传感器来估计O(M + N)窄带平面波源的到达方向。从有限孔径阵列处理数据有效地涂抹了真正的空间功率谱密度(PSD),其中通过阵列几何形状和由阵列观察到的信号的处理来确定的内核函数。本文研究了两个不同处理器所产生的内核功能的渐近行为,其应用于大孔径极限的CSA采样几何形状。将产品处理的CSA和常规波束形成的共同传感器阵列(CBF CSA)的内核功能与类似孔径的密集均匀线阵列(ULA)的核的基线进行比较。在大孔径的极限下,产品加工的CSA估计与ULA相似地是无偏见的,而CBF CSA估计则不是。当空间相关的高斯噪声是对阵列的输入时比较从CSA处理器计算的PSD估计,以突出偏置问题。

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