Knowledge Graph Completion to Solve University Campus Issues

J. Data Intell. Pub Date : 2020-09-01 DOI:10.26421/JDI1.3-3
Yuto Tsukagoshi, Takahiro Kawamura, Y. Sei, Yasuyuki Tahara, Akihiko Ohsuga
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引用次数: 1

Abstract

A number of urban challenges are encountered by modern societies. Governments, businesses and public bodies need to make statistical data widely available in order to tackle these challenges. Nonetheless, current literature and data are problematic; they have inaccuracies which lead to less effective methods of resolving these issues. This research aims to solve this challenge by thinking of a university campus as a microcosm of society, implementing a data integration schema, and combining data into a knowledge graph. Existing completion methods will then be applied and updated. Especially in regards to bicycle environment, our knowledge graph was tailored and evaluated in line with conventional methods, and secondly with our proposed derivative methods. Roughly 650 pieces of parking data, with various dates and times, was contrasted with each time's mean absolute error. Our approach accurately projected 54.5 more bicycles than the conventional method.
知识图谱补全解决大学校园问题
现代社会面临着许多城市挑战。政府、企业和公共机构需要广泛提供统计数据,以应对这些挑战。尽管如此,目前的文献和数据是有问题的;它们不准确,导致解决这些问题的方法不太有效。本研究旨在通过将大学校园视为社会的一个缩影,实现数据集成模式,并将数据组合成一个知识图来解决这一挑战。然后将应用和更新现有的补全方法。特别是在自行车环境方面,首先根据常规方法对我们的知识图谱进行裁剪和评估,然后根据我们提出的衍生方法进行评估。大约650份不同日期和时间的停车数据与每次的平均绝对误差进行了对比。我们的方法比传统方法准确地预测了54.5辆自行车。
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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