首页> 外文会议>Conference on Artificial Intelligence in Medicine(AIME 2005); 20050723-27; Aberdeen(GB) >Evidence Accumulation to Identify Discriminatory Signatures in Biomedical Spectra
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Evidence Accumulation to Identify Discriminatory Signatures in Biomedical Spectra

机译:积累证据以识别生物医学光谱中的歧视性签名

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Extraction of meaningful spectral signatures (sets of features) from high-dimensional biomedical datasets is an important stage of biomarker discovery. We present a novel feature extraction algorithm for supervised classification, based on the evidence accumulation framework, originally proposed by Fred and Jain for unsupervised clustering. By taking advantage of the randomness in genetic-algorithm-based feature extraction, we generate interpretable spectral signatures, which serve as hypotheses for corroboration by further research. As a benchmark, we used the state-of-the-art support vector machine classifier. Using external crossvalidation, we were able to obtain candidate biomarkers without sacrificing prediction accuracy.
机译:从高维生物医学数据集中提取有意义的光谱特征(特征集)是生物标志物发现的重要阶段。我们提出了一种基于证据积累框架的,用于监督分类的新颖特征提取算法,该框架最初由Fred和Jain提出用于无监督聚类。通过利用基于遗传算法的特征提取中的随机性,我们生成了可解释的光谱特征,可作为进一步研究证实的假设。作为基准,我们使用了最新的支持向量机分类器。使用外部交叉验证,我们能够在不牺牲预测准确性的情况下获得候选生物标记。

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