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Application of Probabilistic Neural Networks to the Class Prediction of Leukemia and Embryonal Tumor of Central Nervous System

机译:概率神经网络在中枢神经系统白血病和胚胎肿瘤分类预测中的应用

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摘要

Accurate diagnosis and classification is the key issue for the optimal treatment of cancer patients. Several studies demonstrate that cancer classification can be estimated with high accuracy, sensitivity and specificity from microarray-based gene expression profiling using artificial neural networks. In this paper, a comprehensive study was undertaken to investigate the capability of the probabilistic neural networks (PNN) associated with a feature selection method, a so-called signal-to-noise statistic, in the application of cancer classification. The signal-to-noise statistic, which represents the correlation with the class distinction, is used to select the marker genes and trim the dimension of data samples for the PNN. The experimental results show that the association of the probabilistic neural network with the signal-to-noise statistic can achieve superior classification results for two types of acute leu-kemias and five categories of embryonal tumors of central nervous system with satisfactory computation speed. Furthermore, the signal-to-noise statistic analysis provides candidate genes for future study in understanding the disease process and the identification of potential targets for therapeutic intervention.
机译:准确的诊断和分类是癌症患者最佳治疗的关键问题。多项研究表明,可以使用人工神经网络从基于微阵列的基因表达谱分析中,以较高的准确性,敏感性和特异性来评估癌症分类。在本文中,进行了一项全面的研究,以研究与概率选择神经网络(PNN)结合的功能选择方法,即所谓的信噪比统计量,在癌症分类中的应用能力。信噪比统计代表类差异的相关性,用于选择标记基因并修剪PNN数据样本的维数。实验结果表明,概率神经网络与信噪比统计的关联可以以令人满意的计算速度为两种类型的急性白血球和五种类型的中枢神经系统胚胎肿瘤获得更好的分类结果。此外,信噪比统计分析为了解疾病过程和确定治疗干预的潜在靶标提供了候选基因,以供将来研究之用。

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