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A Wrapper Feature Selection Method Based on Simulated Annealing Algorithm for Prostate Protein Mass Spectrometry Data

机译:基于模拟退火算法的前列腺蛋白质质谱数据包装特征选择方法

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Protein mass spectrometry is an integration of mass spectrometry and biological chip techniques, and it shows great potential for exploration of biomarkers and diagnosis of diseases. But the curse of dimensionality inherently from mass spectrometry data makes the dimensionality reduction a necessary phase of proteomic pattern recognition before classification. This paper presents a simulated annealing algorithm to select discriminant feature subsets. Experiments indicate that this wrapper feature selection method performs well and outperforms the other reported methods.
机译:蛋白质质谱仪是质谱仪和生物芯片技术的结合,在生物标记物的探索和疾病的诊断方面显示出巨大的潜力。但是,质谱数据固有的维数诅咒使维数降低成为分类之前蛋白质组学模式识别的必要阶段。本文提出了一种模拟退火算法来选择判别特征子集。实验表明,这种包装器特征选择方法性能良好,并且优于其他报道的方法。

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