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Diagnosis of kashin-beck disease and other common joint diseases via a gene model

机译:通过基因模型诊断Kashin-beck疾病和其他常见关节疾病

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Kashin-Beck disease and common joint disease display similar early clinical features, result in the difficulty of identification of diagnosis and treatment by observing the clinical manifestations and physical signs. In this paper, we use two sets of gene expression data from cartilaginous tissues and a health tissues, collected from 16 samples. We propose a gene model to achieve the diagnosis of Kashin-Beck disease and other common joint diseases using the expression. In the model, we try to filter various noises caused by improper operation, aging of equipment and so on by wavelet transform. Bhattacharyya distance and Pearson correlation coefficient are used to remove irrelevant genes and redundant genes respectively and acquire the rest as feature genes. In order to deal with the comprehensive data, we choose support vector machine (SVM) to achieve identification. The experiment results demonstrate that the gene model proposed in this paper offers a set of feature genes for further biological interpretation and play an important role in the diagnosis.
机译:Kashin-Beck病和常见关节病显示出相似的早期临床特征,导致难以通过观察临床表现和体征来鉴别诊断和治疗。在本文中,我们使用了从16个样本中收集的来自软骨组织和健康组织的两组基因表达数据。我们提出了一种基因模型,以使用该表达来诊断Kashin-Beck疾病和其他常见关节疾病。在该模型中,我们尝试通过小波变换过滤由于操作不当,设备老化等引起的各种噪声。利用Bhattacharyya距离和Pearson相关系数分别去除无关基因和冗余基因,并获得其余的特征基因。为了处理综合数据,我们选择支持向量机(SVM)来实现识别。实验结果表明,本文提出的基因模型为进一步的生物学解释提供了一组特征基因,在诊断中起着重要作用。

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