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A Predictive Model of Technology Transfer Using Patent Analysis

机译:基于专利分析的技术转移预测模型

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The rapid pace of technological advances creates many difficulties for R&D practitioners in analyzing emerging technologies. Patent information analysis is an effective tool in this situation. Conventional patent information analysis has focused on the extraction of vacant, promising, or core technologies and the monitoring of technological trends. From a technology management perspective, the ultimate purpose of R&D is technology commercialization. The core of technology commercialization is the technology transfer phase. Although a great number of patents are filed, publicized, and registered every year, many commercially relevant patents are filtered through registration processes that examine novelty, creativity, and industrial applicability. Despite the efforts of these selection processes, the number of patents being transferred is low when compared with total annual patent registrations. To deal with this problem, this study proposes a predictive model for technology transfer using patent analysis. In the predictive model, patent analysis is conducted to reveal the quantitative relations between technology transfer and a range of variables included in the patent data.
机译:技术进步的飞速发展为研发从业人员在分析新兴技术方面带来了许多困难。在这种情况下,专利信息分析是一种有效的工具。常规专利信息分析的重点是空缺,有前途或核心技术的提取以及技术趋势的监视。从技术管理的角度来看,研发的最终目的是技术商业化。技术商业化的核心是技术转移阶段。尽管每年都有大量专利申请,公开和注册,但许多与商业相关的专利仍通过注册过程进行筛选,以检查新颖性,创造力和工业实用性。尽管进行了这些选择过程,但与每年的专利总注册量相比,正在转让的专利数量很少。为了解决这个问题,本研究提出了使用专利分析的技术转让的预测模型。在预测模型中,进行专利分析以揭示技术转让与专利数据中包含的一系列变量之间的定量关系。

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