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True Path Rule Hierarchical Ensembles

机译:真实路径规则层次集成

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摘要

Hierarchical classification problems gained increasing attention within the machine learning community, and several methods for hierarchically structured taxonomies have been recently proposed, with applications ranging from classification of web documents to bioinfor-matics. In this paper we propose a novel ensemble algorithm for mul-tilabel, multi-path, tree-structured hierarchical classification problems based on the true path rule borrowed from the Gene Ontology. Local base classifiers, each specialized to recognize a single class of the hierarchy, exchange information between them to achieve a global "consensus" ensemble decision. A two-way asymmetric flow of information crosses the tree-structured ensemble: positive predictions for a node influence its ancestors, while negative predictions influence its offsprings. The resulting True Path Rule hierarchical ensemble is applied to the prediction of gene function in the yeast, using the FunCat taxonomy and biomolecular data obtained from high-throughput biotechnologies.
机译:分层分类问题在机器学习社区中引起了越来越多的关注,最近提出了几种用于分层结构分类法的方法,其应用范围从Web文档分类到生物信息学。在本文中,我们提出了一种新的集成算法,用于基于基因本体论的真实路径规则来解决多标签,多路径,树结构的分层分类问题。本地基础分类器(每个专门用于识别层次结构的单个类)在它们之间交换信息,以实现全局“共识”总体决策。双向非对称信息流穿过树状集合体:节点的正向预测影响其祖先,而负向预测影响其后代。使用FunCat分类法和从高通量生物技术获得的生物分子数据,将所得的True Path Rule层次合奏应用于酵母中的基因功能预测。

著录项

  • 来源
    《Multiple classifier systems》|2009年|232-241|共10页
  • 会议地点 Reykjavik(IS);Reykjavik(IS)
  • 作者

    Giorgio Valentini;

  • 作者单位

    DSI, Dipartimento di Scienze dell' Informazione, Universita degli Studi di Milano, Via Comelico 39, 20135 Milano, Italia;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 TP274.3;
  • 关键词

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