Diversity, networks, and innovation: A text analytic approach to measuring expertise diversity

IF 1.4 Q2 SOCIAL SCIENCES, INTERDISCIPLINARY Network Science Pub Date : 2022-12-15 DOI:10.1017/nws.2022.34
Alina Lungeanu, Ryan Whalen, Y. J. Wu, Leslie A. DeChurch, N. Contractor
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引用次数: 1

Abstract

Abstract Despite the importance of diverse expertise in helping solve difficult interdisciplinary problems, measuring it is challenging and often relies on proxy measures and presumptive correlates of actual knowledge and experience. To address this challenge, we propose a text-based measure that uses researcher’s prior work to estimate their substantive expertise. These expertise estimates are then used to measure team-level expertise diversity by determining similarity or dissimilarity in members’ prior knowledge and skills. Using this measure on 2.8 million team invented patents granted by the US Patent Office, we show evidence of trends in expertise diversity over time and across team sizes, as well as its relationship with the quality and impact of a team’s innovation output.
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多样性、网络和创新:衡量专业知识多样性的文本分析方法
摘要尽管多样化的专业知识在帮助解决困难的跨学科问题方面很重要,但衡量它是具有挑战性的,并且往往依赖于代理测量以及实际知识和经验的假定相关性。为了应对这一挑战,我们提出了一种基于文本的测量方法,利用研究人员先前的工作来评估他们的实质性专业知识。然后,通过确定成员先前知识和技能的相似性或不相似性,使用这些专业知识估计来衡量团队级别的专业知识多样性。通过对美国专利局授予的280万个团队发明专利使用这一衡量标准,我们展示了专业知识多样性随时间和团队规模变化的趋势,以及它与团队创新产出的质量和影响的关系。
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来源期刊
Network Science
Network Science SOCIAL SCIENCES, INTERDISCIPLINARY-
CiteScore
3.50
自引率
5.90%
发文量
24
期刊介绍: Network Science is an important journal for an important discipline - one using the network paradigm, focusing on actors and relational linkages, to inform research, methodology, and applications from many fields across the natural, social, engineering and informational sciences. Given growing understanding of the interconnectedness and globalization of the world, network methods are an increasingly recognized way to research aspects of modern society along with the individuals, organizations, and other actors within it. The discipline is ready for a comprehensive journal, open to papers from all relevant areas. Network Science is a defining work, shaping this discipline. The journal welcomes contributions from researchers in all areas working on network theory, methods, and data.
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