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Complex Innovation Networks, Patent Citations and Power Laws

机译:复杂的创新网络,专利文本和权力法

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We study knowledge and innovation flows as characterized by the network of patent citations and investigate its scale free power law properties. We discuss the importance of the application of complex networks to the understanding of the underlying processes of knowledge exchange and technological innovation. We suggest that this area of research while traditionally investigated via econometric modeling and statistical data analysis may be further examined and explained via a complex network analysis approach using the tools and techniques of statistical mechanics and advanced network analysis. We demonstrate that the citation network is a scale free network. In particular, the network node degree probability distribution follows a power law. In other words, the probability that a patent is highly connected to other patents is statistically more likely than would be expected via random connections and associations. Hence, the network's properties are determined by a relatively small number of highly connected nodes or patents referred to as hubs. We also highlight several potential application areas for further investigation via a complex network analysis approach.
机译:我们学习知识和创新流动,通过专利引文的网络特点,探讨其无尺度功法特性。我们讨论了复杂网络的应用,知识交流和技术创新的基本过程的理解的重要性。我们认为,这方面的研究,同时通过计量经济模型和统计数据分析研究的传统可进一步检查,并通过使用这些工具和统计力学和先进的网络分析技术的复杂网络分析方法解释。我们表明,引网络是一个无尺度网络。尤其是,网络节点度的概率分布服从幂律。换言之,该专利被高度连接到其他专利的概率统计上更有可能比将通过随机连接和关联可以预期的。因此,网络的性能是通过一个相对小数目的称为集线器高度连接的节点或专利的确定。我们还强调了通过一个复杂的网络分析法进一步调查几个潜在的应用领域。

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