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When Peculiarity Makes a Difference: Object Characterisation in Heterogeneous Information Networks

机译:当特殊性发挥作用时:异构信息网络中的对象表征

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A central task in heterogeneous information networks (HIN) is how to characterise an entity, which underlies a wide range of applications such as similarity search, entity profiling and linkage. Most existing work focus on using the main features common to all. While this approach makes sense in settings where commonality is of primary interest, there are many scenarios as important where uncommon and discriminative features are more useful. To address the problem, a novel model COHIN (Characterize Objects in Heterogeneous Information Networks) is proposed, where each object is characterized as a set of feature paths that contain both main and discriminative features. In addition, we develop an effective pruning strategy to achieve greater query performance. Extensive experiments on real datasets demonstrate that our proposed model can achieve high performance.
机译:异构信息网络(HIN)的中心任务是如何表征实体,这是诸如相似性搜索,实体分析和链接之类的广泛应用的基础。现有的大多数工作都集中在使用所有人共有的主要功能上。尽管这种方法在以通用性为主要关注点的环境中是有意义的,但在许多情况下,不常见和具有区别性的功能更有用的情况也很重要。为了解决该问题,提出了一种新颖的模型COHIN(异构信息网络中的特征对象),其中每个对象的特征是一组既包含主要特征又包含判别特征的特征路径。此外,我们开发了一种有效的修剪策略,以实现更高的查询性能。在真实数据集上的大量实验表明,我们提出的模型可以实现高性能。

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