• 제목/요약/키워드: major keywords

검색결과 319건 처리시간 0.022초

A Corpus-Based Study on the Vocabulary Development of Korean Learners

  • Sinhye Nam;Chaerin Jang;Sunyoung Kim
    • Journal of Information Processing Systems
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    • 제20권4호
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    • pp.477-490
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    • 2024
  • This study identifies the vocabulary usage patterns of Korean heritage language learners. We analyzed the interlanguage of the Korean heritage language learners and examined their vocabulary usage patterns, especially the major content keywords being used at their respective proficiency levels. The Korean Learner's Corpus from the National Institute of Korean Language is used for the data analysis. We found that as the heritage language learners' proficiency increases, low-frequency (high-level) vocabulary is often used as the keywords and the semantic vocabulary areas expand from daily to social to specialized fields. It is therefore confirmed that the vocabulary use of Korean heritage language learners develops as their proficiency increases. This study confirms the development of Korean vocabulary in Korean heritage language learners and exemplifies how corpus-based applied linguistic research and computer science can be integrated using a keyword extraction algorithm.

포털사이트, SNS의 빅데이터를 이용한 신화소재의 브랜드 캐릭터와 연관어, 연관도 분석 (A Study on analyzing brand character of myth material, relevant keyword and relevance with big data of portal site and SNS)

  • 오세종;두일철
    • 디지털산업정보학회논문지
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    • 제11권1호
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    • pp.157-169
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    • 2015
  • In digital marketing, means of public relations and marketing of enterprises are changing into marketing techniques of predictive analytics. A significant study can be carried out by an analysis of 'the patterns of customers' uses' using big data on major portal sites and SNSs and their correlation with related keywords. This study analyzes the origins of mythological characters in major brands such as Nike, Hermes, Versace, Canon and Starbucks. Also, it extracts related keywords and relevance using big data on portal sites and SNS and their correlation. Nike marketing that reminds people of 'the goddess of victory, Nike' formed a good combination of the brand with relevance. Most of them are based on Greek mythology and have rich materials for storytelling and artistic values in common. Hopefully, this case analysis of foreign brands would become a starting point of discovering the materials of the domestic mythological characters.

K-MOOC(한국형 온라인 공개강좌) 관련 연구 경향 및 핵심어 분석 (An Analysis of Research Trends and Major Keywords related to K-MOOC)

  • 권충훈
    • 한국컴퓨터정보학회:학술대회논문집
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    • 한국컴퓨터정보학회 2021년도 제64차 하계학술대회논문집 29권2호
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    • pp.369-370
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    • 2021
  • 본 연구는 2015년부터 서비스를 진행하고 있는 한국형 온라인 공개강좌 K-MOOC 관련 연구물들의 연구 경향과 그 연구물들의 주요 핵심어들을 실증적으로 분석하여 그 결과를 제시하였다. K-MOOC는 4차 산업혁명 시대의 평생교육 교육지원 서비스로서, 또한 코로나19 상황에서의 대면수업 대체 보완 교수학습 활동 콘텐츠로 주목받고 있다. 본 연구에서는 K-MOOC 관련 등재지(등재후보지 포함) 게재논문 96건을 연도별 발표 경향과 그 연구물들의 핵심어들의 빈도 등을 분석하여 워드클라우드로 제시하였다. 본 연구자는 본 연구결과에 기초하여, K-MOOC 수강생들의 학습성과 향상 방안과 정규 교육과정과의 실제적인 연계 방안 등에 대한 후속 연구를 진행할 계획이다.

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전문대학 혁신지원사업 주요 프로그램의 핵심어 분석을 통한 전문대학의 혁신 방향 탐색 (Exploring the Innovation Direction by Keywords Analysis of College Innovation Support Project's Major Programs)

  • 김훈희
    • 한국컴퓨터정보학회:학술대회논문집
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    • 한국컴퓨터정보학회 2022년도 제66차 하계학술대회논문집 30권2호
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    • pp.365-366
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    • 2022
  • 본 연구는 1주기 전문대학혁신지원사업에 참여한 전문대학 중에서 주요 대학의 혁신 사업목표 및 프로그램의 주요 핵심어들을 분석하여 향후 혁신지원사업의 방향과 성관관리 방안을 도출하는 것이다. 2주기 혁신지원사업은 학령인구 급감과 사회변화에 대응하여 대학의 경쟁력을 추진하는데 있다. 본 연구의 대상은 1주기 전문대학혁신지원사업 자율협약형 전문대학들 중 50개 대학의 사업목표 및 프로그램의 핵심어 및 연결성 등을 분석하여 워드클라우드로 제시하였다. 본 연구자는 본 연구결과에 기초하여, 각종 정부재정지원 사업 계획서를 분석하여 그들간의 중복성과 연계성 등에 대한 후속 연구를 진행할 계획이다.

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토픽모델링을 활용한 인공지능 관련 이슈 분석 (Analysis of Issues Related to Artificial Intelligence Based on Topic Modeling)

  • 노설현
    • 디지털융복합연구
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    • 제18권5호
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    • pp.75-87
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    • 2020
  • 본 연구는 국내의 인공지능과 관련된 기사들을 LDA 알고리즘에 기반한 토픽모델링 기법으로 분석하여 인공지능 관련 주요 이슈들을 도출하고 세부적으로 분석함으로써 인공지능 기술이 전(全) 산업 분야와 융합을 통해 창출할 수 있는 새로운 가치를 통찰하고, 인공지능 기술을 지식 경영에 적용할 수 있는 분야를 도출하는데 유용한 정보를 생산하고자 하였다. 본 연구에서는 '인공지능'을 검색어로 하여 추출된 11개의 중앙지와 8개의 경제지, 주요 방송사의 2016년부터 2019년까지 3,889건의 기사를 대상으로 오픈 소프트웨어인 R을 활용한 토픽모델링 기법을 사용하여 토픽 별 키워드들을 추출하였다. 각 토픽의 키워드 간 연관성을 나타내는 PMI(Pointwise Mutual Information) 측도를 높이도록 relevance 파라미터 λ를 최적화하여 토픽 별 키워드를 추출하였으며, 키워드들로부터 타당한 근거를 바탕으로 토픽명을 추론하였다. 추출된 토픽들은 인공지능 기술의 응용 분야와 사회, 경제, 산업, 문화 전반에서 일어나고 있는 변화 및 정부의 지원 정책과 비전을 폭 넓게 나타냈다.

빅데이터 기반 어휘연결망분석을 활용한 '창업'과 '기업가정신'의 의미변화연구 (The Study on the Meaning Change of 'Startup' and 'Entrepreneurship' using the Bigdata-based Corpus Network Analysis)

  • 김연종;박상혁
    • 디지털산업정보학회논문지
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    • 제16권4호
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    • pp.75-93
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    • 2020
  • The purpose of this study is to extract keywords for 'startup' and 'entrepreneurship' from Naver news articles in Korea since 1990 and Google news articles in foreign countries, and to understand the changes in the meaning of entrepreneurship and entrepreneurship in each era It is aimed at doing. In summary, first, in terms of the frequency of keywords, venture sprouting is a sample of the entrepreneurial spirit of the government-led and entrepreneurs' chairman, and various technology investments and investments in corporate establishment have been made. It can be seen that training for the development of items and items was carried out, and in the case of the venture re-emergence period, it can be seen that the youth-oriented entrepreneurship and innovation through the development of various educational programs were emphasized. Second, in the result of vocabulary network analysis, the network connection and centrality of keywords in the leap period tended to be stronger than in the germination period, but the re-leap period tended to return to the level of germination. Third, in topic analysis, it can be seen that Naver keyword topics are mostly business-related content related to support, policy, and education, whereas topics through Google News consist of major keywords that are more specifically applicable to practical work.

Analysis of Infertility Keywords in the Largest Domestic Mom Cafe Bulletin Board in Korea Using Text Mining

  • Sangmin Lee
    • 인터넷정보학회논문지
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    • 제24권4호
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    • pp.137-144
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    • 2023
  • The purpose of this study is to examine consumers' perceptions of domestic infertility support policies based on infertility-related keywords and the trends of their changes. To this end, Momsholic, a mom cafe which has the most active infertility-related bulletin boards on Naver, was selected as the analysis target, and 'infertility' was selected as a keyword for data search. The data was collected for three months. In addition, network analysis and visualization were performed using R for data collection and analysis, and cross-validation was attempted using the NetDraw function of 'textom 1.0' and the UCINET6 program. As a result of the analysis, the main keywords were cost, artificial insemination, in vitro fertilization, freezing, harvest, ovulation, and how much. Next, looking at the central value of the degree of connection, it was found that the degree of connection between the words cost, cost, how much, problem, public health center, and artificial insemination was high. According to the results of this study, women who visit mom cafes due to infertility in Korea are more interested in the cost. It is believed to be closely related to infertility treatment as well as in vitro fertilization and egg freezing. Therefore, by examining keywords related toinfertility, it has academic significance in that it is possible to identify major factors that end users are interested in. Furthermore, it is possible to redefine the guidelines for domestic infertility support policies by presenting infertility support policies that reflect the factors of interest of end consumers.

빅데이터를 활용한 골프웨어에 관한 인식 연구 (A Study of Perception of Golfwear Using Big Data Analysis)

  • 이아름;이진화
    • 한국의류산업학회지
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    • 제20권5호
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    • pp.533-547
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    • 2018
  • The objective of this study is to examine the perception of golfwear and related trends based on major keywords and associated words related to golfwear utilizing big data. For this study, the data was collected from blogs, Jisikin and Tips, news articles, and web $caf{\acute{e}}$ from two of the most commonly used search engines (Naver & Daum) containing the keywords, 'Golfwear' and 'Golf clothes'. For data collection, frequency and matrix data were extracted through Textom, from January 1, 2016 to December 31, 2017. From the matrix created by Textom, Degree centrality, Closeness centrality, Betweenness centrality, and Eigenvector centrality were calculated and analyzed by utilizing Netminer 4.0. As a result of analysis, it was found that the keyword 'brand' showed the highest rank in web visibility followed by 'woman', 'size', 'man', 'fashion', 'sports', 'price', 'store', 'discount', 'equipment' in the top 10 frequency rankings. For centrality calculations, only the top 30 keywords were included because the density was extremely high due to high frequency of the co-occurring keywords. The results of centrality calculations showed that the keywords on top of the rankings were similar to the frequency of the raw data. When the frequency was adjusted by subtracting 100 and 500 words, it showed different results as the low-ranking keywords such as J. Lindberg in the frequency analysis ranked high along with changes in the rankings of all centrality calculations. Such findings of this study will provide basis for marketing strategies and ways to increase awareness and web visibility for Golfwear brands.

Comparison of User-generated Tags with Subject Descriptors, Author Keywords, and Title Terms of Scholarly Journal Articles: A Case Study of Marine Science

  • Vaidya, Praveenkumar;Harinarayana, N.S.
    • Journal of Information Science Theory and Practice
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    • 제7권1호
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    • pp.29-38
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    • 2019
  • Information retrieval is the challenge of the Web 2.0 world. The experiment of knowledge organisation in the context of abundant information available from various sources proves a major hurdle in obtaining information retrieval with greater precision and recall. The fast-changing landscape of information organisation through social networking sites at a personal level creates a world of opportunities for data scientists and also library professionals to assimilate the social data with expert created data. Thus, folksonomies or social tags play a vital role in information organisation and retrieval. The comparison of these user-created tags with expert-created index terms, author keywords and title words, will throw light on the differentiation between these sets of data. Such comparative studies show revelation of a new set of terms to enhance subject access and reflect the extent of similarity between user-generated tags and other set of terms. The CiteULike tags extracted from 5,150 scholarly journal articles in marine science were compared with corresponding Aquatic Science and Fisheries Abstracts descriptors, author keywords, and title terms. The Jaccard similarity coefficient method was employed to compare the social tags with the above mentioned wordsets, and results proved the presence of user-generated keywords in Aquatic Science and Fisheries Abstracts descriptors, author keywords, and title words. While using information retrieval techniques like stemmer and lemmatization, the results were found to enhance keywords to subject access.

키워드 네트워크 분석을 이용한 연구데이터 관련 국내 연구 동향 분석 (An Analysis of Domestic Research Trend on Research Data Using Keyword Network Analysis)

  • 한상우
    • 한국도서관정보학회지
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    • 제54권4호
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    • pp.393-414
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    • 2023
  • 본 연구는 연구데이터 관련 국내 연구의 동향을 파악하기 위하여 RISS에서 연구데이터 관련 논문을 수집하였으며, 데이터 정제 후 총 58건의 연구논문을 대상으로 134개의 저자 키워드를 추출하여 키워드 네트워크 분석을 수행하였다. 분석 결과, 첫째, 아직까지 국내에서 연구데이터 관련 연구의 수가 58건에 지나지 않아 추후 많은 관련 연구가 진행될 필요가 있음을 알 수 있었다. 둘째, 연구데이터 관련 연구 분야는 대부분 복합학 중 문헌정보학에 집중되어 있었다. 셋째, 연구데이터 관련 저자 키워드의 빈도분석 결과 '연구데이터관리', '연구데이터공유', '데이터리포지터리', '오픈사이언스' 등이 다빈도 주요 키워드로 분석되어 연구데이터 관련 연구는 위의 키워드를 중심으로 진행되고 있음을 알 수 있었다. 키워드 네트워크 분석 결과에서도 다빈도 키워드는 연결 중심성 및 매개 중심성에서 중심적인 위치를 차지하며 관련 연구에서 핵심 키워드에 위치하고 있음을 알 수 있었다. 본 연구의 결과를 통하여 최근의 연구데이터 관련 동향을 파악할 수 있었고, 향후 집중적으로 연구해야 하는 분야를 확인할 수 있었다.