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키워드의 유사도와 가중치를 적용한 연관 문서 추천 방법

Method of Related Document Recommendation with Similarity and Weight of Keyword

  • Lim, Myung Jin (Dept. of Computer Engineering, Graduate School, Chosun University) ;
  • Kim, Jae Hyun (Dept. of Development Devision, Bichgalam Information Co.) ;
  • Shin, Ju Hyun (Dept. of Advanced Industry Convergence, Chosun University)
  • 투고 : 2019.08.30
  • 심사 : 2019.11.25
  • 발행 : 2019.11.30

초록

With the development of the Internet and the increase of smart phones, various services considering user convenience are increasing, so that users can check news in real time anytime and anywhere. However, online news is categorized by media and category, and it provides only a few related search terms, making it difficult to find related news related to keywords. In order to solve this problem, we propose a method to recommend related documents more accurately by applying Doc2Vec similarity to the specific keywords of news articles and weighting the title and contents of news articles. We collect news articles from Naver politics category by web crawling in Java environment, preprocess them, extract topics using LDA modeling, and find similarities using Doc2Vec. To supplement Doc2Vec, we apply TF-IDF to obtain TC(Title Contents) weights for the title and contents of news articles. Then we combine Doc2Vec similarity and TC weight to generate TC weight-similarity and evaluate the similarity between words using PMI technique to confirm the keyword association.

키워드

참고문헌

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