Improving Diversity of Focused Summaries through the Negative Endorsements of Redundant Facts

Palakorn Achananuparp, Xiaohua Hu, Lifan Guo, Tingting He, Yuan An, Zhoujun Li
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引用次数: 1

Abstract

We present NegativeRank, a novel graph-based sentence ranking model to improve the diversity of focused summary by performing random walks over sentence graph with negative edge weights. Unlike the typical eigenvector centrality ranking, our method models the redundancy among sentence nodes as the negative edges. The negative edges can be thought of as the propagation of disapproval votes which can be used to penalize redundant sentences. As the iterative process continues, the initial ranking score of a given node will be adjusted according to a long-term negative endorsement from other sentence nodes. The evaluation results confirm that our proposed method is very effective in improving the diversity of the focused summary, compared to several well-known text summarization methods.
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通过否定冗余事实提高重点摘要的多样性
本文提出了一种新的基于图的句子排序模型NegativeRank,该模型通过对具有负边权的句子图进行随机漫步来提高焦点摘要的多样性。与典型的特征向量中心性排序不同,我们的方法将句子节点之间的冗余建模为负边。负边可以被认为是不赞成投票的传播,可以用来惩罚多余的句子。随着迭代过程的继续,给定节点的初始排名分数将根据其他句子节点的长期负面背书进行调整。评价结果表明,与几种知名的文本摘要方法相比,本文提出的方法在提高重点摘要的多样性方面非常有效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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