A text-embedding-based approach to measuring patent-to-patent technological similarity

被引:54
作者
Hain, Daniel S. [1 ]
Jurowetzki, Roman [1 ]
Buchmann, Tobias [2 ]
Wolf, Patrick [2 ]
机构
[1] Aalborg Univ Business Sch, AI Growth Lab, Aalborg, Denmark
[2] Ctr Solar Energy & Hydrogen Res Baden Wurttemberg, Wurttemberg, Germany
关键词
Technological similarity; Patent data; Natural-language processing; Technology network; Patent landscaping; Patent quality; KNOWLEDGE SPILLOVERS; HOME-BIAS; CITATIONS; INNOVATION; DISTANCE; PERFORMANCE; INDICATORS; NOVELTY; CLASSIFICATION; STATISTICS;
D O I
10.1016/j.techfore.2022.121559
中图分类号
F [经济];
学科分类号
02 ;
摘要
This paper describes an efficiently scaleable approach to measuring technological similarity between patents by combining embedding techniques from natural language processing with nearest-neighbor approximation. Using this methodology, we are able to compute similarities between all existing patents, which in turn enables us to represent the whole patent universe as a technological network. We validate both technological signature and similarity in various ways and, using the case of electric vehicle technologies, demonstrate their usefulness in measuring knowledge flows, mapping technological change, and creating patent quality indicators. This paper contributes to the growing literature on text-based indicators for patent analysis. We provide thorough docu-mentation of our methods, including all code, and indicators at https://github.com/AI-Growth-Lab/patent _p2p_similarity_w2v).
引用
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页数:15
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