Breaking Cycles In Noisy Hierarchies

Jiankai Sun, Deepak Ajwani, Patrick K. Nicholson, A. Sala, S. Parthasarathy
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引用次数: 32

Abstract

Taxonomy graphs that capture hyponymy or meronymy relationships through directed edges are expected to be acyclic. However, in practice, they may have thousands of cycles, as they are often created in a crowd-sourced way. Since these cycles represent logical fallacies, they need to be removed for many web applications. In this paper, we address the problem of breaking cycles while preserving the logical structure (hierarchy) of a directed graph as much as possible. Existing approaches for this problem either need manual intervention or use heuristics that can critically alter the taxonomy structure. In contrast, our approach infers graph hierarchy using a range of features, including a Bayesian skill rating system and a social agony metric. We also devise several strategies to leverage the inferred hierarchy for removing a small subset of edges to make the graph acyclic. Extensive experiments demonstrate the effectiveness of our approach.
在嘈杂的层次结构中打破循环
通过有向边捕获下名或名关系的分类图应该是非循环的。然而,在实践中,它们可能有数千个周期,因为它们通常是以众包的方式创建的。由于这些循环代表了逻辑谬误,因此需要在许多web应用程序中删除它们。在本文中,我们解决了在尽可能保持有向图的逻辑结构(层次结构)的同时打破循环的问题。解决这个问题的现有方法要么需要人工干预,要么使用可能严重改变分类法结构的启发式方法。相比之下,我们的方法使用一系列特征来推断图形层次结构,包括贝叶斯技能评级系统和社会痛苦度量。我们还设计了几种策略来利用推断的层次结构来删除一小部分边,使图成为非循环的。大量的实验证明了我们方法的有效性。
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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