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A simple and efficient algorithm for gene selection using sparse logistic regression.

机译:一种使用稀疏逻辑回归进行基因选择的简单有效算法。

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MOTIVATION: This paper gives a new and efficient algorithm for the sparse logistic regression problem. The proposed algorithm is based on the Gauss-Seidel method and is asymptotically convergent. It is simple and extremely easy to implement; it neither uses any sophisticated mathematical programming software nor needs any matrix operations. It can be applied to a variety of real-world problems like identifying marker genes and building a classifier in the context of cancer diagnosis using microarray data. RESULTS: The gene selection method suggested in this paper is demonstrated on two real-world data sets and the results were found to be consistent with the literature. AVAILABILITY: The implementation of this algorithm is available at the site http://guppy.mpe.nus.edu.sg/~mpessk/SparseLOGREG.shtml Supplementary Information: Supplementary material is available at the site http://guppy.mpe.nus.edu.sg/~mpessk/SparseLOGREG.shtml
机译:动机:本文提供了一种新的高效稀疏逻辑回归问题算法。所提出的算法基于高斯-塞德尔方法,并且是渐近收敛的。它非常简单且易于实现;它既不使用任何复杂的数学编程软件,也不需要任何矩阵运算。可以将其应用于各种现实世界中的问题,例如在使用微阵列数据进行癌症诊断的情况下,识别标记基因并建立分类器。结果:本文提出的基因选择方法在两个实际数据集上得到了证明,结果与文献一致。可用性:该算法的实现可在以下站点获得:http://guppy.mpe.nus.edu.sg/~mpessk/SparseLOGREG.shtml补充信息:补充材料可在以下站点获得:http://guppy.mpe。 nus.edu.sg/~mpessk/SparseLOGREG.shtml

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