Cho Yongrae, Kim Minsung
Division of Vice President, Science and Technology Policy Institute (STEPI), Seoul, Republic of Korea; Graduate School of Technology and Innovation Management, Hanyang University, Seoul, Republic of Korea.
Graduate School of Innovation and Technology Management, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, Republic of Korea.
PLoS One. 2014 Jun 10;9(6):e98009. doi: 10.1371/journal.pone.0098009. eCollection 2014.
The volatility and uncertainty in the process of technological developments are growing faster than ever due to rapid technological innovations. Such phenomena result in integration among disparate technology fields. At this point, it is a critical research issue to understand the different roles and the propensity of each element technology for technological convergence. In particular, the network-based approach provides a holistic view in terms of technological linkage structures. Furthermore, the development of new indicators based on network visualization can reveal the dynamic patterns among disparate technologies in the process of technological convergence and provide insights for future technological developments. This research attempts to analyze and discover the patterns of the international patent classification codes of the United States Patent and Trademark Office's patent data in printed electronics, which is a representative technology in the technological convergence process. To this end, we apply the physical idea as a new methodological approach to interpret technological convergence. More specifically, the concepts of entropy and gravity are applied to measure the activities among patent citations and the binding forces among heterogeneous technologies during technological convergence. By applying the entropy and gravity indexes, we could distinguish the characteristic role of each technology in printed electronics. At the technological convergence stage, each technology exhibits idiosyncratic dynamics which tend to decrease technological differences and heterogeneity. Furthermore, through nonlinear regression analysis, we have found the decreasing patterns of disparity over a given total period in the evolution of technological convergence. This research has discovered the specific role of each element technology field and has consequently identified the co-evolutionary patterns of technological convergence. These new findings on the evolutionary patterns of technological convergence provide some implications for engineering and technology foresight research, as well as for corporate strategy and technology policy.
由于快速的技术创新,技术发展过程中的波动性和不确定性正以前所未有的速度增长。这种现象导致了不同技术领域之间的融合。此时,理解各要素技术在技术融合中的不同作用和倾向是一个关键的研究问题。特别是,基于网络的方法从技术联系结构的角度提供了一个整体视角。此外,基于网络可视化的新指标的开发可以揭示技术融合过程中不同技术之间的动态模式,并为未来的技术发展提供见解。本研究试图分析和发现美国专利商标局专利数据中印刷电子领域国际专利分类代码的模式,印刷电子是技术融合过程中的一项代表性技术。为此,我们应用物理思想作为一种新的方法论来解释技术融合。更具体地说,熵和引力的概念被应用于衡量技术融合过程中专利引用之间的活动以及异构技术之间的结合力。通过应用熵和引力指数,我们能够区分印刷电子中每种技术的特征作用。在技术融合阶段,每种技术都表现出独特的动态,这往往会减少技术差异和异质性。此外,通过非线性回归分析,我们发现了技术融合演化过程中给定总时期内差距的下降模式。本研究发现了每个要素技术领域的具体作用,从而确定了技术融合的共同演化模式。这些关于技术融合演化模式的新发现为工程和技术预见研究以及企业战略和技术政策提供了一些启示。