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학술논문한국산업경영시스템학회지2023.09 발행KCI 피인용 1

기술이전 데이터를 활용한 TF-IDF기반 특허추천 알고리즘 연구

A Research on TF-IDF-based Patent Recommendation Algorithm using Technology Transfer Data

김준기(전북대학교 융합기술경영학과); 배준수(전북대학교 융합기술경영학과); 송영헌(전북대학교 융합기술경영학과); 정병호(전북대학교 융합기술경영학과)

46권 3호, 78~88쪽

초록

The increasing number of technology transfers from public research institutes in Korea has led to a growing demand for patent recommendation platforms for SMEs. This is because selecting the right technology for commercialization is a critical factor in business success. This study developed a patent recommendation system that uses technology transfer data from the past 10 years to recommend patents that are suitable for SMEs. The system was developed in three stages. First, an item-based collaborative filtering system was developed to recommend patents based on the similarities between the patents that SMEs have previously transferred. Next, a content-based recommendation system based on TF-IDF was developed to analyze patent names and recommend patents with high similarity. Finally, a hybrid system was developed that combines the strengths of both recommendation systems. The experimental results showed that the hybrid system was able to recommend patents that were both similar and relevant to the SMEs' interests. This suggests that the system can be a valuable tool for SMEs that are looking to acquire new technologies.

Abstract

The increasing number of technology transfers from public research institutes in Korea has led to a growing demand for patent recommendation platforms for SMEs. This is because selecting the right technology for commercialization is a critical factor in business success. This study developed a patent recommendation system that uses technology transfer data from the past 10 years to recommend patents that are suitable for SMEs. The system was developed in three stages. First, an item-based collaborative filtering system was developed to recommend patents based on the similarities between the patents that SMEs have previously transferred. Next, a content-based recommendation system based on TF-IDF was developed to analyze patent names and recommend patents with high similarity. Finally, a hybrid system was developed that combines the strengths of both recommendation systems. The experimental results showed that the hybrid system was able to recommend patents that were both similar and relevant to the SMEs' interests. This suggests that the system can be a valuable tool for SMEs that are looking to acquire new technologies.

발행기관:
한국산업경영시스템학회
분류:
산업공학

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기술이전 데이터를 활용한 TF-IDF기반 특허추천 알고리즘 연구 | 한국산업경영시스템학회지 2023 | AskLaw | 애스크로 AI