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A novel Log penalty in a path seeking scheme for biomarker selection

机译:生物标记选择路径寻找方案中的新型对数罚分

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摘要

Biomarker selection or feature selection from survival data is a topic of considerable interest. Recently various survival analysis approaches for biomarker selection have been developed; however, there are growing challenges to currently methods for handling high-dimensional and low-sample problem. We propose a novel Log-sum regularization estimator within accelerated failure time (AFT) for predicting cancer patient survival time with a few biomarkers. This approach is implemented in path seeking algorithm to speed up solving the Log-sum penalty. Additionally, the control parameter of Log-sum penalty is modified by Bayesian information criterion (BIC). The results indicate that our proposed approach is able to achieve good performance in both simulated and real datasets with other 1 type regularization methods for biomarker selection.
机译:从生存数据中选择生物标记或特征选择是一个令人关注的话题。最近,已经开发了多种用于生物标志物选择的生存分析方法。然而,目前用于处理高维和低样本问题的方法面临着越来越多的挑战。我们提出了一种在加速失效时间(AFT)内的新颖对数和正则估计器,用于通过一些生物标记来预测癌症患者的生存时间。该方法在路径搜索算法中实现,以加快对数和惩罚的求解。另外,通过贝叶斯信息准则(BIC)修改对数和罚分的控制参数。结果表明,我们提出的方法能够在其他 1 类型正则化方法用于生物标记选择。

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