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首页> 外文期刊>IEEE Transactions on Signal Processing >DOA Estimation Exploiting Sparse Array Motions
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DOA Estimation Exploiting Sparse Array Motions

机译:利用稀疏阵列运动进行DOA估计

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This paper utilizes sparse array motion to increase the numbers of achievable both degrees of freedom (DOFs) and consecutive lags in direction-of-arrival (DOA) estimation problems. We use commonly employed environment-independent sparse array configurations. The design of these arrays is not dependent on the sources in the field of view, but rather aims at achieving desirable difference co-arrays. They include structured coprime and nested arrays, minimum redundancy array (MRA), minimum hole array (MHA), and sparse uniform linear array (SULA). Array motion can fill the holes in the spatial autocorrelation lags associated with a fixed platform and, therefore, increases the number of sources detectable by the same number of array sensors. Quasi-stationarity of the environment is assumed where the source locations and waveforms are considered invariant over array motion of half wavelength. Closed-form expressions of the number of DOFs and consecutive spatial correlation lags for coprime and nested arrays as well as SULA, due to array translation motion, are derived. The number of DOFs and consecutive lags for the specific cases of MRA an 5 avaluated. We show the respective DOA estimation performance based on sparse reconstruction techniques.
机译:本文利用稀疏阵列运动来增加到达方向(DOA)估计问题中可达到的自由度(DOF)和连续滞后的数量。我们使用常用的与环境无关的稀疏数组配置。这些阵列的设计不依赖于视场中的光源,而是旨在获得理想的差异共阵列。它们包括结构化的互质数和嵌套数组,最小冗余数组(MRA),最小孔数组(MHA)和稀疏均匀线性数组(SULA)。阵列运动可以填补与固定平台相关的空间自相关滞后中的漏洞,因此,可以增加相同数量的阵列传感器可检测到的光源数量。假定环境的准平稳性,其中源位置和波形在半波长阵列运动中被认为是不变的。由于数组平移运动,得出了互质数和嵌套数组以及SULA的自由度数量和连续空间相关滞后的闭式表达式。针对MRA特定案例的自由度数和连续滞后次数5进行了评估。我们展示了基于稀疏重构技术的各个DOA估计性能。

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