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Grouping levels of exposure with same observable effects before class prediction in toxicogenomics

机译:在课堂中的课堂预测之前分组相同可观察效果的接触水平

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Gene expression profiling in toxicogenomics is often used to find molecular signature of toxicants. The range of doses chosen in toxicogenomics studies does not always represent all the possible effects on gene expression: several doses of toxicant can lead to the same observable effect on the transcriptome. This makes the problem of dose exposure prediction difficult to address. We propose a strategy allowing to gather the doses with similar effects prior to the computing of a molecular signature. The different gatherings of doses are compared with criteria based on likelihood or Monte Carlo Cross Validation. The molecular signature is then determined via a voting algorithm. Experimental results point out that the obtained classifier has better prediction performances than the classifier computed according to the original labeling.
机译:毒性组织中的基因表达分析通常用于发现毒物的分子签名。在麻骨研究中选择的剂量范围并不总是代表对基因表达的所有可能影响:几个剂量的毒物可导致对转录组的相同可观察的作用。这使得剂量曝光预测的问题难以解决。我们提出了一种允许在计算分子签名之前收集具有类似效果的剂量的策略。将不同的剂量聚集与基于可能性或蒙特卡罗交叉验证的标准进行比较。然后通过投票算法确定分子签名。实验结果指出,所获得的分类器具有比根据原始标签计算的分类器更好的预测性能。

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