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Simple rules underlying gene expression profiles of more than six subtypes of acute lymphoblastic leukemia (ALL) patients

机译:超过6种亚型的急性淋巴细胞白血病(ALL)患者基因表达谱的基本规则

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摘要

Motivations and Results: For classifying gene expression profiles or other types of medical data, simple rules are preferable to non-linear distance or kernel functions. This is because rules may help us understand more about the application in addition to performing an accurate classification. In this paper, we discover novel rules that describe the gene expression profiles of more than six subtypes of acute lymphoblastic leukemia (ALL) patients. We also introduce a new classifier, named PCL, to make effective use of the rules. PCL is accurate and can handle multiple parallel classifications. We evaluate this method by classifying 327 heterogeneous ALL samples. Our test error rate is competitive to that of support vector machines, and it is 71% better than C4.5, 50% better than Naive Bayes, and 43% better than k-nearest neighbour. Experimental results on another independent data sets are also presented to show the strength of our method.
机译:动机和结果:为了对基因表达谱或其他类型的医学数据进行分类,与非线性距离或核函数相比,简单的规则更可取。这是因为规则除了可以执行准确的分类之外,还可以帮助我们进一步了解应用程序。在本文中,我们发现了新颖的规则,这些规则描述了急性淋巴细胞白血病(ALL)患者的六种以上亚型的基因表达谱。我们还引入了一个名为PCL的新分类器,以有效利用这些规则。 PCL准确,可以处理多个并行分类。我们通过对327种异质ALL样本进行分类来评估该方法。我们的测试错误率与支持向量机相比具有竞争优势,它比C4.5好71%,比朴素贝叶斯好50%,比k近邻好43%。还提出了在另一个独立数据集上的实验结果,以证明我们方法的优势。

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