The wisdom of the commons: ensemble tree classifiers for prostate cancer prognosis
Open Access
- 15 July 2008
- journal article
- research article
- Published by Oxford University Press (OUP) in Bioinformatics
- Vol. 25 (1), 54-60
- https://doi.org/10.1093/bioinformatics/btn354
Abstract
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:dmercola@uci.eduKeywords
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