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The state-of-the-art on Intellectual Property Analytics (IPA): A literature review on artificial intelligence, machine learning and deep learning methods for analysing intellectual property (IP) data

机译:最新的知识产权分析(IPA):有关人工智能,机器学习和深度学习方法(用于分析知识产权(IP)数据)的文献综述

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摘要

Big data is increasingly available in all areas of manufacturing and operations, which presents an opportunity for better decision making and discovery of the next generation of innovative technologies. Recently, there have been substantial developments in the field of patent analytics, which describes the science of analysing large amounts of patent information to discover trends. We define Intellectual Property Analytics (IPA) as the data science of analysing large amount of IP information, to discover relationships, trends and patterns for decision making. In this paper, we contribute to the ongoing discussion on the use of intellectual property analytics methods, i.e artificial intelligence methods, machine learning and deep learning approaches, to analyse intellectual property data. This literature review follows a narrative approach with search strategy, where we present the state-of-the-art in intellectual property analytics by reviewing 57 recent articles. The bibliographic information of the articles are analysed, followed by a discussion of the articles divided in four main categories: knowledge management, technology management, economic value, and extraction and effective management of information. We hope research scholars and industrial users, may find this review helpful when searching for the latest research efforts pertaining to intellectual property analytics.
机译:大数据在制造和运营的各个领域都越来越多,这为更好地决策和发现下一代创新技术提供了机会。近来,专利分析领域出现了重大发展,它描述了分析大量专利信息以发现趋势的科学。我们将知识产权分析(IPA)定义为分析大量IP信息,发现关系,趋势和决策模式的数据科学。在本文中,我们为有关使用知识产权分析方法(即人工智能方法,机器学习和深度学习方法)来分析知识产权数据的持续讨论做出了贡献。这篇文献综述遵循叙事策略和搜索策略,在此我们通过回顾57篇最新文章来介绍知识产权分析的最新技术。分析文章的书目信息,然后讨论文章,分为四个主要类别:知识管理,技术管理,经济价值以及信息的提取和有效管理。我们希望研究学者和行业用户在搜索与知识产权分析有关的最新研究成果时可能会觉得这篇评论有用。

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