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A weighted atomic norm approach to spectral super-resolution with probabilistic priors

机译:具有概率前导者的光谱超分辨率的加权原子规范方法

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This paper concerns the line spectral estimation problem within the recent super-resolution framework. The frequencies of interest are assumed to follow a prior probability distribution. To effectively and efficiently exploit the prior information, we devise a weighted atomic norm approach that is physically sound and can be formulated as convex programming like the standard atomic norm method. Numerical simulations are provided to demonstrate the superior performance of the proposed approach in accuracy and speed compared to the state-of-the-art.
机译:本文涉及最近超分辨率框架内的线谱估计问题。假设感兴趣的频率遵循现有概率分布。为了有效和有效地利用先前的信息,我们设计了一种受到物理声音的加权原子规范方法,并且可以作为标准原子规范方法的凸编程配制。提供了数值模拟,以展示所提出的方法的优异性能,与最先进的准确性和速度的卓越性能。

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