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Alternative gradient algorithms with applications to nonnegative matrix factorizations

机译:替代梯度算法在非负矩阵分解中的应用

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摘要

Three nonnegative matrix factorization (NMF) algorithms are discussed and employed to three real-world applications. Based on the alternative gradient algorithm with the iteration steps being determined columnwisely without projection, and columnwisely and elementwisely with projections, three algorithms are developed respectively. Also, the computational costs and the convergence properties of the new algorithms are given. The numerical examples show the advantage of our algorithms over the multiplicative update algorithm proposed by Lee and Seung [11].
机译:讨论了三种非负矩阵分解(NMF)算法,并将其应用于三个实际应用。基于交替梯度算法,其中迭代步骤在没有投影的情况下按列确定,在有投影的情况下按列和元素地确定,分别开发了三种算法。此外,给出了新算法的计算成本和收敛性。数值例子说明了我们的算法比Lee和Seung [11]提出的乘法更新算法的优势。

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