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Patent Keyword Extraction for Sustainable Technology Management

机译:可持续技术管理的专利关键词提取

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Recently, sustainable growth and development has become an important issue for governments and corporations. However, maintaining sustainable development is very difficult. These difficulties can be attributed to sociocultural and political backgrounds that change over time [ 1 ]. Because of these changes, the technologies for sustainability also change, so governments and companies attempt to predict and manage technology using patent analyses, but it is very difficult to predict the rapidly changing technology markets. The best way to achieve insight into technology management in this rapidly changing market is to build a technology management direction and strategy that is flexible and adaptable to the volatile market environment through continuous monitoring and analysis. Quantitative patent analysis using text mining is an effective method for sustainable technology management. There have been many studies that have used text mining and word-based patent analyses to extract keywords and remove noise words. Because the extracted keywords are considered to have a significant effect on the further analysis, researchers need to carefully check out whether they are valid or not. However, most prior studies assume that the extracted keywords are appropriate, without evaluating their validity. Therefore, the criteria used to extract keywords needs to change. Until now, these criteria have focused on how well a patent can be classified according to its technical characteristics in the collected patent data set, typically using term frequency–inverse document frequency weights that are calculated by comparing the words in patents. However, this is not suitable when analyzing a single patent. Therefore, we need keyword selection criteria and an extraction method capable of representing the technical characteristics of a single patent without comparing them with other patents. In this study, we proposed a methodology to extract valid keywords from single patent documents using relevant papers and their authors’ keywords. We evaluated the validity of the proposed method and its practical performance using a statistical verification experiment. First, by comparing the document similarity between papers and patents containing the same search terms in their titles, we verified the validity of the proposed method of extracting patent keywords using authors’ keywords and the paper. We also confirmed that the proposed method improves the precision by about 17.4% over the existing method. It is expected that the outcome of this study will contribute to increasing the reliability and the validity of the research on patent analyses based on text mining and improving the quality of such studies.
机译:最近,可持续增长和发展已成为政府和企业的重要问题。但是,维持可持续发展非常困难。这些困难可以归因于随时间变化的社会文化和政治背景[1]。由于这些变化,可持续性技术也发生了变化,因此政府和公司尝试使用专利分析来预测和管理技术,但是要预测迅速变化的技术市场非常困难。在这个瞬息万变的市场中深入了解技术管理的最佳方法是,通过持续的监控和分析,建立一种灵活且可适应瞬息万变的市场环境的技术管理方向和策略。使用文本挖掘进行定量专利分析是可持续技术管理的有效方法。已经有许多研究使用文本挖掘和基于单词的专利分析来提取关键字并删除干扰词。由于提取的关键字被认为对进一步分析具有重要影响,因此研究人员需要仔细检查它们是否有效。但是,大多数先前的研究假设提取的关键字是适当的,而没有评估其有效性。因此,用于提取关键字的标准需要更改。直到现在,这些标准都集中在如何根据收集的专利数据集中的技术特征对专利进行分类的程度上,通常使用术语频率-反向文档频率权重,这些权重是通过比较专利中的词语来计算的。但是,这不适用于分析单个专利的情况。因此,我们需要能够在不与其他专利进行比较的情况下代表单个专利的技术特征的关键字选择标准和提取方法。在这项研究中,我们提出了一种使用相关论文及其作者的关键词从单个专利文档中提取有效关键词的方法。我们使用统计验证实验评估了该方法的有效性及其实际性能。首先,通过比较论文和标题中包含相同搜索词的专利之间的文献相似性,我们验证了使用作者的关键词和论文提取专利关键词的方法的有效性。我们还证实,与现有方法相比,该方法将精度提高了约17.4%。预期这项研究的结果将有助于提高基于文本挖掘的专利分析研究的可靠性和有效性,并提高此类研究的质量。

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