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Off-Grid DOA Estimation Using Alternating Block Coordinate Descent in Compressed Sensing

机译:压缩传感中使用交替块坐标下降的离网DOA估计

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摘要

This paper presents a novel off-grid direction of arrival (DOA) estimation method to achieve the superior performance in compressed sensing (CS), in which DOA estimation problem is cast as a sparse reconstruction. By minimizing the mixed k-l norm, the proposed method can reconstruct the sparse source and estimate grid error caused by mismatch. An iterative process that minimizes the mixed k-l norm alternately over two sparse vectors is employed so that the nonconvex problem is solved by alternating convex optimization. In order to yield the better reconstruction properties, the block sparse source is exploited for off-grid DOA estimation. A block selection criterion is engaged to reduce the computational complexity. In addition, the proposed method is proved to have the global convergence. Simulation results show that the proposed method has the superior performance in comparisons to existing methods.
机译:本文提出了一种新颖的离网到达方向(DOA)估计方法,以实现压缩感知(CS)中的优异性能,其中DOA估计问题被视为稀疏重建。通过最小化混合k-1范数,该方法可以重构稀疏源并估计由不匹配引起的网格误差。采用在两个稀疏向量上交替最小化混合k-1范数的迭代过程,以便通过交替凸优化来解决非凸问题。为了产生更好的重建特性,将块稀疏源用于离网DOA估计。采用块选择标准以减少计算复杂度。此外,该方法被证明具有全局收敛性。仿真结果表明,与现有方法相比,该方法具有更好的性能。

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