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首页> 外文期刊>Cancer Informatics >Comparison of Two Output-Coding Strategies for Multi-Class Tumor Classification Using Gene Expression Data and Latent Variable Model as Binary Classifier
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Comparison of Two Output-Coding Strategies for Multi-Class Tumor Classification Using Gene Expression Data and Latent Variable Model as Binary Classifier

机译:使用基因表达数据和潜在变量模型作为二元分类器的多类肿瘤分类的两种输出编码策略的比较

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Multi-class cancer classification based on microarray data is described. A generalized output-coding scheme based on One Versus One (OVO) combined with Latent Variable Model (LVM) is used. Results from the proposed One Versus One (OVO) output- coding strategy is compared with the results obtained from the generalized One Versus All (OVA) method and their efficiencies of using them for multi-class tumor classification have been studied. This comparative study was done using two microarray gene expression data: Global Cancer Map (GCM) dataset and brain cancer (BC) dataset. Primary feature selection was based on fold change and penalized t-statistics. Evaluation was conducted with varying feature numbers. The OVO coding strategy worked quite well with the BC data, while both OVO and OVA results seemed to be similar for the GCM data. The selection of output coding methods for combining binary classifiers for multi-class tumor classification depends on the number of tumor types considered, the discrepancies between the tumor samples used for training as well as the heterogeneity of expression within the cancer subtypes used as training data.
机译:描述了基于微阵列数据的多类癌症分类。使用了基于“一对一”(OVO)和“潜在变量模型”(LVM)的通用输出编码方案。将拟议的“一对一”(OVO)输出编码策略的结果与广义“一对一全部”(OVA)方法获得的结果进行比较,并研究了将它们用于多类肿瘤分类的效率。使用两个微阵列基因表达数据进行了这项比较研究:全球癌症图谱(GCM)数据集和脑癌(BC)数据集。主要特征选择基于倍数变化和惩罚性t统计量。使用不同的特征编号进行评估。 OVO编码策略与BC数据配合得很好,而GCM数据的OVO和OVA结果似乎相似。结合二进制分类器进行多类肿瘤分类的输出编码方法的选择取决于所考虑的肿瘤类型的数量,用于训练的肿瘤样本之间的差异以及用作训练数据的癌症亚型内表达的异质性。

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