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A NEW GENERALIZED THRESHOLDING ALGORITHM FOR INVERSE PROBLEMS WITH SPARSITY CONSTRAINTS

机译:一种新的稀疏限制逆问题的新的广义阈值算法

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We propose a new generalized thresholding algorithm useful for inverse problems with sparsity constraints. The algorithm uses a thresholding function with a parameter p, first mentioned in [1]. When p = 1, the thresholding function is equivalent to classical soft thresholding. For values of p below 1, the thresholding penalizes small coefficients over a wider range and applies less bias to the larger coefficients, much like hard thresholding but without discontinuities. The functional that the new thresholding minimizes is non-convex for p < 1. We state an algorithm similar to the Iterative Soft Thresholding Algorithm (ISTA) [2]. We show that the new thresholding performs better in numerical examples than soft thresholding.
机译:我们提出了一种新的通用阈值算法,可用于稀疏限制的逆问题。该算法使用具有参数P的阈值函数,首先在[1]中提到。当P = 1时,阈值函数相当于经典软阈值。对于低于1的值,阈值处理在更宽范围内惩罚小系数,并将较少的偏差应用于较大的系数,就像硬阈值,但没有不连续性。新阈值灵活最小化的功能是P <1的非凸。我们陈述了一种类似于迭代软阈值算法(ISTA)[2]的算法。我们表明新的阈值在数值示例中执行比软阈值相比更好。

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