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Technology clustering based on evolutionary patterns: The case of information and communications technologies

机译:基于进化模式的技术集群:信息和通信技术案例

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摘要

Technology trend analysis anticipates the direction and rate of technology changes, and thus supports strategic decision-making for innovation. As technological convergence and diversification are regarded as emerging trends, it is important to compare the growth patterns of various technologies in a particular industry to help understand the industry characteristics and analyse the technology innovation process. However, despite the potential value of this approach, conventional approaches have focused on individual technologies and paid little attention to synthesising and comparing multiple technologies. We therefore propose a new approach for clustering technologies based on their growth patterns. After technologies with similar patterns are identified, the underlying factors that lead to the patterns can be analysed. For that purpose, we analysed patent data using a Hidden Markov model, followed by clustering analysis, and tested the validity of the proposed approach by applying it to the 1CT industry. Our approach provides insights into the basic nature of technologies in an industry, and facilitates the analysis and forecasting of their evolution.
机译:技术趋势分析可预测技术变化的方向和速度,从而支持创新的战略决策。由于技术融合和多样化被视为新兴趋势,因此比较特定行业中各种技术的增长方式以帮助了解行业特征并分析技术创新过程非常重要。但是,尽管这种方法具有潜在的价值,但传统方法却专注于单个技术,而很少关注合成和比较多种技术。因此,我们根据技术的增长模式提出了一种新的技术集群方法。在确定具有相似模式的技术之后,可以分析导致这些模式的潜在因素。为此,我们使用Hidden Markov模型分析了专利数据,然后进行了聚类分析,并通过将其应用于1CT行业测试了该方法的有效性。我们的方法可洞察行业技术的基本性质,并有助于对其发展进行分析和预测。

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