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Robust Spectrum Estimation via Majorization Minimization

机译:经由大多数大化最小化的强大频谱估计

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In this paper, the robust spectrum estimation problem is revisited through a majorization minimization (MM) based RELAX (MM-RELAX) algorithm. Specifically, MM-RELAX employs the lp -fitting criterion to deal with impulsive noise. It alternately optimizes K harmonics by subtracting (K - 1) of them and then updating the remaining one, such that the whole problem is split into K single-tone harmonic retrieval problems which are solved by the MM method. A Newton's method that takes linear time complexity O(N) is applied for updating the frequency estimates. Numerical results are included to showcase the effectiveness of the MM-RELAX method.
机译:在本文中,通过基于多大化最小化(MM)的松弛(MM-REARE)算法来重新探测强大的频谱估计问题。具体而言,MM-Leave采用LP -Fitting标准来处理脉冲噪声。通过减去它们的(k - 1)然后更新剩余的k次谐波,使得整个问题被分成MM方法解决的K单音谐波检索问题。应用线性时间复杂度O(n)的牛顿方法用于更新频率估计。包括数值结果以展示MM-REART方法的有效性。

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