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Support Vector Machine with Ensemble Tree Kernel for Relation Extraction

机译:支持矢量机器与合奏树内核用于关系提取

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摘要

Relation extraction is one of the important research topics in the field of information extraction research. To solve the problem of semantic variation in traditional semisupervised relation extraction algorithm, this paper proposes a novel semisupervised relation extraction algorithm based on ensemble learning (LXRE). The new algorithm mainly uses two kinds of support vector machine classifiers based on tree kernel for integration and integrates the strategy of constrained extension seed set. The new algorithm can weaken the inaccuracy of relation extraction, which is caused by the phenomenon of semantic variation. The numerical experimental research based on two benchmark data sets (PropBank and AIMed) shows that the LXRE algorithm proposed in the paper is superior to other two common relation extraction methods in four evaluation indexes (Precision, Recall, F-measure, and Accuracy). It indicates that the new algorithm has good relation extraction ability compared with others.
机译:关系提取是信息提取研究领域的重要研究主题之一。 为了解决传统半培育关系提取算法中的语义变化问题,本文提出了一种基于集合学习(LXRE)的新型半培育关系提取算法。 新算法主要使用基于树内核的两种支持向量机分类器进行集成,并集成了约束扩展种子集的策略。 新算法可以削弱关系提取的不准确性,这是由语义变异现象引起的。 基于两个基准数据集(Propbank和旨在)的数值实验研究表明,纸张中提出的LXRE算法优于四种评估指标中的其他两个共同关系提取方法(精确,召回,F测量和精度)。 它表明,与其他算法相比,新算法具有良好的关系提取能力。

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  • 作者

    Liu Xiaoyong; Fu Hui; Du Zhiguo;

  • 作者单位

    Guangdong Polytech Normal Univ Dept Comp Sci Guangzhou 510665 Guangdong Peoples R China;

    Guangdong Polytech Normal Univ Dept Comp Sci Guangzhou 510665 Guangdong Peoples R China;

    South China Agr Univ Coll Math &

    Informat Guangzhou 510642 Guangdong Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 寄生生物学;
  • 关键词

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