创意的质量:用多指标衡量创新

J. Lanjouw, Mark A. Schankerman
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引用次数: 354

摘要

我们将专利创新的价值和技术重要性(“质量”)的早期预期建模为一组四个指标共同的潜在变量:专利权利要求的数量,向前引用,向后引用和家族规模。该模型使用1960-91年间申请的约8000项美国专利样本,对四个技术领域进行了估计。我们衡量每个单独的指标包含多少噪音,并构建一个信息更丰富的综合质量衡量标准。以这四个指标为条件的“质量”差异仅为无条件差异的三分之一。我们展示了由指标子集产生的方差减少,并发现前向引用特别重要。我们对质量的衡量与随后的专利续期和侵权诉讼的决定有很大关系。利用100家美国制造企业的专利和研发数据,我们发现,对质量进行调整可以消除总体水平上观察到的研究生产率(每次研发的专利数量)的明显下降。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Quality of Ideas: Measuring Innovation with Multiple Indicators
We model early expectations about the value and technological importance ('quality') of a patented innovation as a latent variable common to a set of four indicators: the number of patent claims, forward citations, backward citations and family size. The model is estimated for four technology areas using a sample of about 8000 U.S. patents applied for during 1960-91. We measure how much noise' each individual indicator contains and construct a more informative, composite measure of quality. The variance in quality', conditional on the four indicators, is just one-third of the unconditional variance. We show the variance reduction generated by subsets of indicators, and find forward citations to be particularly important. Our measure of quality is significantly related to subsequent decisions to renew a patent and to litigate infringements. Using patent and R&D data for 100 U.S. manufacturing firms, we find that adjusting for quality removes much of the apparent decline in research productivity (patent counts per R&D) observed at the aggregate level.
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