Geolocation of Cultural Heritage using Multi-View Knowledge Graph Embedding

Heba Mohamed, Sebastiano Vascon, Feliks Hibraj, Stuart James, Diego Pilutti, A. D. Bue, M. Pelillo
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Abstract

Knowledge Graphs (KGs) have proven to be a reliable way of structuring data. They can provide a rich source of contextual information about cultural heritage collections. However, cultural heritage KGs are far from being complete. They are often missing important attributes such as geographical location, especially for sculptures and mobile or indoor entities such as paintings. In this paper, we first present a framework for ingesting knowledge about tangible cultural heritage entities from various data sources and their connected multi-hop knowledge into a geolocalized KG. Secondly, we propose a multi-view learning model for estimating the relative distance between a given pair of cultural heritage entities, based on the geographical as well as the knowledge connections of the entities.
基于多视图知识图嵌入的文物地理定位
知识图(Knowledge Graphs, KGs)已被证明是构建数据的一种可靠方法。它们可以提供有关文化遗产收藏的丰富背景信息来源。然而,文化遗产kg远未完成。它们往往缺少重要的属性,如地理位置,特别是对于雕塑和移动或室内实体,如绘画。在本文中,我们首先提出了一个框架,用于从各种数据源中摄取有关物质文化遗产实体的知识,并将其关联的多跳知识转化为地理定位的KG。其次,我们提出了一种基于地理和知识联系的多视图学习模型,用于估计给定一对文化遗产实体之间的相对距离。
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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