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The wisdom of the commons: ensemble tree classifiers for prostate cancer prognosis

机译:公地的智慧:集成树分类器用于前列腺癌的预后

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摘要

>Motivation: Classification and regression trees have long been used for cancer diagnosis and prognosis. Nevertheless, instability and variable selection bias, as well as overfitting, are well-known problems of tree-based methods. In this article, we investigate whether ensemble tree classifiers can ameliorate these difficulties, using data from two recent studies of radical prostatectomy in prostate cancer.>Results: Using time to progression following prostatectomy as the relevant clinical endpoint, we found that ensemble tree classifiers robustly and reproducibly identified three subgroups of patients in the two clinical datasets: non-progressors, early progressors and late progressors. Moreover, the consensus classifications were independent predictors of time to progression compared to known clinical prognostic factors.>Contact:
机译:>动机:分类树和回归树长期以来一直用于癌症的诊断和预后。然而,不稳定性和变量选择偏差以及过度拟合是基于树的方法的众所周知的问题。在本文中,我们使用两项最近的前列腺癌根治性前列腺切除术研究的数据,研究合奏树分类器是否可以缓解这些困难。发现集成树分类器可在两个临床数据集中可靠且可重复地识别出患者的三个亚组:非进展者,早期进展者和晚期进展者。此外,与已知的临床预后因素相比,共识分类是进展时间的独立预测因子。>联系方式:

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