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首页> 外文期刊>Bioinformatics >POIMs: positional oligomer importance matrices--understanding support vector machine-based signal detectors.
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POIMs: positional oligomer importance matrices--understanding support vector machine-based signal detectors.

机译:POIM:位置低聚物重要性矩阵-了解基于支持向量机的信号检测器。

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摘要

At the heart of many important bioinformatics problems, such as gene finding and function prediction, is the classification of biological sequences. Frequently the most accurate classifiers are obtained by training support vector machines (SVMs) with complex sequence kernels. However, a cumbersome shortcoming of SVMs is that their learned decision rules are very hard to understand for humans and cannot easily be related to biological facts. RESULTS: To make SVM-based sequence classifiers more accessible and profitable, we introduce the concept of positional oligomer importance matrices (POIMs) and propose an efficient algorithm for their computation. In contrast to the raw SVM feature weighting, POIMs take the underlying correlation structure of k-mer features induced by overlaps of related k-mers into account. POIMs can be seen as a powerful generalization of sequence logos: they allow to capture and visualize sequence patterns that are relevant for the investigated biological phenomena. AVAILABILITY: All source code, datasets, tables and figures are available at http://www.fml.tuebingen.mpg.de/raetsch/projects/POIM. SUPPLEMENTARY INFORMATION: Supplementary data are available at Bioinformatics online.
机译:生物序列的分类是许多重要的生物信息学问题的核心,例如基因发现和功能预测。通常,最复杂的分类器是通过训练具有复杂序列核的支持向量机(SVM)获得的。但是,SVM的一个麻烦缺点是,他们学到的决策规则很难为人类所理解,并且不易与生物学事实联系起来。结果:为了使基于SVM的序列分类器更易于访问和获利,我们引入了位置低聚物重要性矩阵(POIM)的概念,并提出了一种有效的算法来进行计算。与原始SVM特征权重相比,POIM考虑了由相关k-mer重叠引起的k-mer特征的潜在相关结构。 POIM可以看作是序列徽标的强大概括:它们可以捕获和可视化与所研究的生物学现象相关的序列模式。可用性:所有源代码,数据集,表格和图形均可在http://www.fml.tuebingen.mpg.de/raetsch/projects/POIM上找到。补充信息:补充数据可从Bioinformatics在线获得。

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