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Identification of Technology-Relevant Entities Based on Trend Curves

机译:基于趋势曲线识别技术相关实体

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摘要

Technological developments are not isolated and are influenced not only by similar technologies but also by many entities, which are sometimes unforeseen by the experts in the field. The authors propose a method for identifying technology-relevant entities with trend curve analysis. The method first utilizes the tangential connection between terms in the encyclopedic dataset to extract technology-related entities with varying relation distances. Changes in their term frequencies within 389 million academic articles and 60 billion web pages are then analyzed to identify technology-relevant entities, incorporating the degrees and changes in both academic interests and public recognitions. The analysis is performed to find entities both significant and relevant to the technology of interest, resulting in the discovery of 40 and 39 technology-relevant entities, respectively, for unmanned aerial vehicle and hyperspectral imaging with 0.875 and 0.5385 accuracies. The case study showed the proposed method can capture hidden relationships between semantically distant entities.
机译:技术发展并非孤立,不仅受到类似技术的影响,而且受到许多实体的影响,这些实体有时是由该领域的专家意外的。作者提出了一种识别具有趋势曲线分析的技术相关实体的方法。该方法首先利用百科全书数据集中的术语之间的切向连接,以提取具有不同关系距离的技术相关的实体。然后分析了38900万份学术文章和60亿个网页范围内的术语频率的变化,以确定技术相关实体,纳入学位和学术兴趣和公众认可的变化。进行分析以查找与感兴趣技术的重要性和相关的实体,导致40和39个技术相关实体,用于无人驾驶飞行器和高光谱成像,具有0.875和0.5385的精度。案例研究表明,所提出的方法可以捕获语义遥远实体之间的隐藏关系。

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