• Title/Summary/Keyword: 유사 키워드

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Identification of Internet news reliability using TF-IDF and KoBERT models (TF-IDF와 KoBERT 모델을 이용한 인터넷 뉴스 신뢰도 판별)

  • Na-Hyeon Kim;Ik-won Seo;Jeong-Hyeon Kim;Chae-Young Son;Dong-Young Yoo
    • Proceedings of the Korea Information Processing Society Conference
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    • 2023.05a
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    • pp.353-354
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    • 2023
  • 디지털 환경이 진화함에 따라 가짜뉴스가 늘어나고 있다. 이를 판별하기 위해 법적 규제에 대한 논의가 있으나, 가짜뉴스에 대한 범위와 정의가 명확하지 않아 규제가 쉽지 않다. 본 논문에서는 이에 대한 대안으로 TF-IDF 기법과 KoBERT 모델을 이용한 키워드 추출 및 문장 유사도 분석을 통해 YouTube 플랫폼을 대상으로 한 가짜뉴스 판별을 위한 모델을 제안한다.

Performance Analysis of High-Dimensional Index Structure for Vector Data in Content-Based Video Retrieval (동영상 내용기반 검색을 위한 고차원 벡터 데이터 색인 구조의 성능 분석)

  • Lee, Hyun-jo;Chang, Jae-woo;Park, Soon-Young
    • Proceedings of the Korea Information Processing Society Conference
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    • 2007.11a
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    • pp.211-214
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    • 2007
  • 최근 멀티미디어 데이터, 특히 UCC를 중심으로 동영상 데이터가 급증하고 있다. 그러나 현재 대부분의 검색 시스템은 키워드 기반의 동영상 데이터 검색만을 지원하고 있으며, 따라서 사용자가 원하는 동영상 데이터를 효율적으로 검색하지 못하는 실정이다. 동영상 데이터에 대한 효율적인 검색을 지원하기 위해서는, 동영상의 내용(이미지, 색, 모양 등)을 고차원의 특징 벡터 데이터로 표현하여 유사한 동영상을 검색하는 내용-기반 검색이 요구된다. 본 논문에서는 내용-기반 검색을 위해 제안된 기존의 고차원 벡터 데이터 색인 구조를 실험을 통하여 성능을 비교하며, 이를 통해 동영상 내용-기반 검색에 가장 효율적인 색인 기법을 제시한다. 아울러 보다 효율적인 내용-기반 검색을 위한, 근사 k-NN 질의 탐색 기법의 유용성을 검증한다.

A Study on Developing a Metadata Search System Based on the Text Structure of Korean Studies Research Articles (한국학 연구 논문의 텍스트 구조 기반 메타데이터 검색 시스템 개발 연구)

  • Song, Min-Sun;Ko, Young Man;Lee, Seung-Jun
    • Journal of the Korean Society for information Management
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    • v.33 no.3
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    • pp.155-176
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    • 2016
  • This study aims to develope a scholarly metadata information system based on conceptual elements of text structure of Korean studies research articles and to identify the applicability of text structure based metadata as compared with the existing similar system. For the study, we constructed a database(Korean Studies Metadata Database, KMD) with text structure based on metadata of Korean Studies journal articles selected from the Korea Citation Index(KCI). Then we verified differences between KCI system and KMD system through search results using same keywords. As a result, KMD system shows the search results which meet the users' intention of searching more efficiently in comparison with the KCI system. In other words, even if keyword combinations and conditional expressions of searching execution are same, KMD system can directly present the content of research purposes, research data, and spatial-temporal contexts of research et cetera as search results through the search procedure.

Pattern Analysis-Based Query Expansion for Enhancing Search Convenience (검색 편의성 향상을 위한 패턴 분석 기반 질의어 확장)

  • Jeon, Seo-In;Park, Gun-Woo;Nam, Kwang-Woo;Ryu, Keun-Ho
    • Journal of Korea Society of Industrial Information Systems
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    • v.17 no.2
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    • pp.65-72
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    • 2012
  • In the 21st century of information systems, the amount of information resources are ever increasing and the role of information searching system is becoming criticalto easily acquire required information from the web. Generally, it requires the user to have enough pre-knowledge and superior capabilities to identify keywords of information to effectively search the web. However, most of the users undertake searching of the information without holding enough pre-knowledge and spend a lot of time associating key words which are related to their required information. Furthermore, many search engines support the keywords searching system but this only provides collection of similar words, and do not provide the user with exact relational search information with the keywords. Therefore this research report proposes a method of offering expanded user relationship search keywords by analyzing user query patterns to provide the user a system, which conveniently support their searching of the information.

Implementation of a Video Retrieval System Using Annotation and Comparison Area Learning of Key-Frames (키 프레임의 주석과 비교 영역 학습을 이용한 비디오 검색 시스템의 구현)

  • Lee Keun-Wang;Kim Hee-Sook;Lee Jong-Hee
    • Journal of Korea Multimedia Society
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    • v.8 no.2
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    • pp.269-278
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    • 2005
  • In order to process video data effectively, it is required that the content information of video data is loaded in database and semantics-based retrieval method can be available for various queries of users. In this paper, we propose a video retrieval system which support semantics retrieval of various users for massive video data by user's keywords and comparison area learning based on automatic agent. By user's fundamental query and selection of image for key frame that extracted from query, the agent gives the detail shape for annotation of extracted key frame. Also, key frame selected by user becomes a query image and searches the most similar key frame through color histogram comparison and comparison area learning method that proposed. From experiment, the designed and implemented system showed high precision ratio in performance assessment more than 93 percents.

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A Study On the Healthcare Technology Trends through Patent Data Analysis (특허 데이터 분석을 통한 헬스케어 기술 트렌드 연구)

  • Han, Jeong-Hyeon;Hyun, Young-Geun;Chae, U-ri;Lee, Gi-Hyun;Lee, Joo-Yeoun
    • Journal of Digital Convergence
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    • v.18 no.3
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    • pp.179-187
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    • 2020
  • In a social environment where population aging is rapidly progressing, the healthcare service market is growing fast with the increasing interest in health and quality of life based on rising income levels and the evolution of technology. In this study, after keywords were extracted from Korean and US patent data published on KIPRIS from 2000 to October 2019, frequency analysis, time series analysis, and keyword network analysis were performed. Through this, the change of technology trends were identified, which keywords related to healthcare was shifted from traditional medical words to ICT words. In addition, although the keywords in Korean patents are 55% similar to those in the US, they show an absolute gap in patent production volume. In the next study, we will analyze various data such as domestic and international research and can obtain meaningful implications in the global market on the identified keywords.

e-Cohesive Keyword based Arc Ranking Measure for Web Navigation (연관 웹 페이지 검색을 위한 e-아크 랭킹 메저)

  • Lee, Woo-Key;Lee, Byoung-Su
    • Journal of KIISE:Databases
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    • v.36 no.1
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    • pp.22-29
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    • 2009
  • The World Wide Web has emerged as largest media which provides even a single user to market their products and publish desired information; on the other hand the user can access what kind of information abundantly enough as well. As a result web holds large amount of related information distributed over multiple web pages. The current search engines search for all the entered keywords in a single webpage and rank the resulting set of web pages as an answer to the user query. But this approach fails to retrieve the pair of web pages which contains more relevant information for users search. We introduce a new search paradigm which gives different weights to the query keywords according to their order of appearance. We propose a new arc weight measure that assigns more relevance to the pair of web pages with alternate keywords present so that the pair of web pages which contains related but distributed information can be presented to the user. Our measure proved to be effective on the similarity search in which the experimentation represented the e~arc ranking measure outperforming the conventional ones.

Topic Analysis of the "Right to be Forgotten" Using Text Mining (텍스트마이닝을 활용한 "잊힐 권리"의 토픽 분석)

  • Lee, So-Hyun;Koo, Bon-Jin
    • Journal of the Korean Society for information Management
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    • v.39 no.2
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    • pp.275-298
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    • 2022
  • This study examined the issues and characteristics that appeared in news and journal articles related to the 'right to be forgotten' using text mining analysis. Data for analysis were collected from 2010 to 2020 with the keyword 'right to be forgotten'. Keyword analysis and topic modeling analysis were performed on the collected data. As a result, in the last 10 years the issues about 'right to be forgotten' are not much different in news and journal articles and the approaches also are similar. However, it confirmed common issues and the partial difference between news and journal articles through comparison. Therefore in Archives and Records Management Studies, it is necessary to discuss derived in this study. In particular common issues are considered first but if there are differences in issues, it is needed to discuss them in various ways. This study is meaningful to understand the meaning and to draw issues that may arise in the future of the 'right to be forgotten'. The results of this study will contribute to be variously discussed on the 'right to be forgotten' in Archives and Records Management Studies.

Comparison of Research Trends in Blended Learning in Korea and China (한국과 중국의 블렌디드 러닝 분야의 연구동향 비교)

  • Xuan, Jin-Rong;Park, Han-Woo
    • The Journal of the Korea Contents Association
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    • v.22 no.9
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    • pp.339-348
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    • 2022
  • Blended Learning is one of the most popular methods in education for encouraging active learning and improving student learning effectiveness, and it is regarded as one of the most effective methods for universities to attract students. Based on the cultural dimension theory, this paper examined blended learning research trends in both South Korea and China, which are culturally similar but also differ. The research methods include keyword analysis and visualization. Academic papers on blended learning indexed by WoS, KISS, and CNKI from 1990 to June 2022 were collected and analyzed. According to the findings, since the outbreak of COVID-19, the common research topic of blended learning has been subdivided by forming clusters in various research fields. Korea and China exhibit similarities to global research trends while exhibiting differences based on cultural background. The cultural dimension theory-based analysis reveals a common pattern that is especially long-term oriented. The findings can suggest significant implications for designing what role national culture plays in forming patterns of education and research and for developing blended learning with effective impacts in a multicultural educational environment.

Development of Personalized Learning Course Recommendation Model for ITS (ITS를 위한 개인화 학습코스 추천 모델 개발)

  • Han, Ji-Won;Jo, Jae-Choon;Lim, Heui-Seok
    • Journal of the Korea Convergence Society
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    • v.9 no.10
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    • pp.21-28
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    • 2018
  • To help users who are experiencing difficulties finding the right learning course corresponding to their level of proficiency, we developed a recommendation model for personalized learning course for Intelligence Tutoring System(ITS). The Personalized Learning Course Recommendation model for ITS analyzes the learner profile and extracts the keyword by calculating the weight of each word. The similarity of vector between extracted words is measured through the cosine similarity method. Finally, the three courses of top similarity are recommended for learners. To analyze the effects of the recommendation model, we applied the recommendation model to the Women's ability development center. And mean, standard deviation, skewness, and kurtosis values of question items were calculated through the satisfaction survey. The results of the experiment showed high satisfaction levels in accuracy, novelty, self-reference and usefulness, which proved the effectiveness of the recommendation model. This study is meaningful in the sense that it suggested a learner-centered recommendation system based on machine learning, which has not been researched enough both in domestic, foreign domains.