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Analysis of Proteomic Spectral Data by Multi Resolution Analysis and Self-Organizing Maps

机译:多分辨率分析和自组织地图分析蛋白质组学光谱数据

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Analysis and visualization of high-dimensional clinical proteomic spectra obtained from mass spectrometric measurements is a complicated issue. We present a wavelet based preprocessing combined with an unsupervised and supervised analysis by Self-Organizing Maps and a fuzzy variant thereof. This leads to an optimal encoding and a robust classifier incorporating the possibility of fuzzy labels.
机译:从质谱测量获得的高维临床蛋白质组学光谱的分析和可视化是一个复杂的问题。我们介绍了一种基于小波的预处理,通过自组织地图和其模糊变型结合了无监督和监督分析。这导致最佳的编码和包含模糊标签的可能性的鲁棒分类器。

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