Abstract
We introduce a new general methodological approach for accurately and consistently retrieving a large set of patents related to specific technologies. We build upon the automated patent landscaping algorithm by incorporating a tractable amount of human supervision to improve the accuracy and consistency of our results. We demonstrate the efficacy of our approach by applying it to six novel and representative technologies: additive manufacturing, blockchain, computer vision, genome editing, hydrogen storage, and selfdriving vehicles.
Cite
CITATION STYLE
Antonin, B., & Cyril, V. (2023). Identifying technology clusters based on automated patent landscaping. PLoS ONE, 18(12 December). https://doi.org/10.1371/journal.pone.0295587
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