This paper proposes gridless sparse direction-of-arrival (DOA) refinement using gradient-based optimization. The objective function minimizes the fit between the sample covariance matrix (SCM) and a reconstructed covariance matrix. The latter is constrained to contain only a few atoms. but otherwise maximally matches the SCM. https://hollandscountryclothinges.shop/product-category/soft-top-socks/
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