• Title/Summary/Keyword: 동시단어분석

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A Study on the Characteristics by Keyword Types in the Intellectual Structure Analysis Based on Co-word Analysis: Focusing on Overseas Open Access Field (동시출현단어 분석에 기초한 지적구조 분석에서 키워드 유형별 특성에 관한 연구 - 국외 오픈액세스 분야를 중심으로 -)

  • Kim, Pan Jun
    • Journal of the Korean Society for Library and Information Science
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    • v.55 no.3
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    • pp.103-129
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    • 2021
  • This study examined the characteristics of two keyword types expressing the topics in the intellectual structure analysis based on the co-word analysis, focused on overseas open access field. Specifically, the keyword set extracted from the LISTA database in the field of library and information science was divided into two types (controlled keywords and uncontrolled keywords), and the results of performing intellectual structure analysis based on co-word analysis were compared. As a result, the two keyword types showed significant differences by keyword sets, research maps and influences, and periods. Therefore, in intellectual structure analysis based on co-word analysis, the characteristics of each keyword type should be considered according to the purpose of the study. In other words, it would be more appropriate to use controlled keywords for the purpose of examining the overall research trend in a specific field from the perspective of the entire academic field, and to use uncontrolled keywords for the purpose of identifying detailed trends by research area from the perspective of the specific field. In addition, for a comprehensive intellectual structure analysis that reflects both viewpoints, it can be said that it is most desirable to compare and analyze the results of using controlled keywords and uncontrolled keywords individually.

Current Research Trends in Entrepreneurship Based on Topic Modeling and Keyword Co-occurrence Analysis: 2002~2021 (토픽모델링과 동시출현단어 분석을 이용한 기업가정신에 대한 연구동향 분석: 2002~2021)

  • Jang, Sung Hee
    • Asia-Pacific Journal of Business Venturing and Entrepreneurship
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    • v.17 no.3
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    • pp.245-256
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    • 2022
  • The purpose of this study is to provide comprehensive insights on the current research trends in entrepreneurship based on topic modeling and keyword co-occurrence analysis. This study queried Web of Science database with 'entrepreneurship' and collected 14,953 research articles between 2002 and 2021. The study used R program for topic modeling and VOSviewer program for keyword co-occurrence analysis. The results of this study are as follows. First, as a result of keyword co-occurrence analysis, 5 clusters divided: entrepreneurship and innovation cluster, entrepreneurship education cluster, social entrepreneurship and sustainability cluster, enterprise performance cluster, and knowledge and technology transfer cluster. Second, as a result of the topic modeling analysis, 12 topics found: start-up environment and economic development, international entrepreneurship, venture capital, government policy and support, social entrepreneurship, management-related issues, regional city planning and development, entrepreneurship research, and entrepreneurial intention. Finally, the study identified two hot topics(venture capital and entrepreneurship intention) and a cold topic(international entrepreneurship). The results of this study are useful to understand current research trends in entrepreneurship research and provide insights into research of entrepreneurship.

Coward Analysis based Spam SMS Detection Scheme (동시출현 단어분석 기반 스팸 문자 탐지 기법)

  • Oh, Hayoung
    • Journal of the Korea Institute of Information Security & Cryptology
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    • v.26 no.3
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    • pp.693-700
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    • 2016
  • Analyzing characteristics of spam text messages had limitations since spam datasets are typically difficult to obtain publicly and previous studies focused on spam email. Although existing studies, such as through the use of spam e-mail characterization and utilization of data mining techniques, there are limitations that influence is limited to high spam detection techniques using a single word character. In this paper, we reveal the characteristics of the spam SMS based on experiment and analysis from different perspectives and propose coward analysis based spam SMS detection scheme with a publicly disclosed spam SMS from the University of Singapore. With the extensive performance evaluations, we show false positive and false negative of the proposed method is less than 2%.

Examining the Intellectual Structure of Reading Studies with Co-Word Analysis Based on the Importance of Journals and Sequence of Keywords (학술지 중요도와 키워드 순서를 고려한 단어동시출현 분석을 이용한 독서분야의 지적구조 분석)

  • Zhang, Ling Ling;Hong, Hyun Jin
    • Journal of the Korean BIBLIA Society for library and Information Science
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    • v.25 no.1
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    • pp.295-318
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    • 2014
  • The purpose of this study is to analyze the intellectual structure of reading studies by using Co-Word Analysis based on the mixed weight in which the level of academic journals and the position of keywords are calculated. To achieve it, 838 academic articles relating to reading studies from KCI during the period from 2003 to 2012 were retrieved and 56 keywords were extracted. The results of clustering analysis, MDS, network analysis are that the network based on the mixed weight has a better performance in above three methods and reading studies can be divided into 4 bigger divisions and 11 subdivisions. Finally, the result of document analysis shows reading studies changes its research tendency from theoretical studies to empirical studies.

Analyzing Research Trends in Bioinformatics based on Comparison between Grey and White Bioinformatics Literatures (바이오인포매틱스 분야 회색문헌 및 백색문헌의 연구 동향 비교 분석)

  • Kim, Ye Eun;Kim, Jung Ju;Song, Min
    • Proceedings of the Korean Society for Information Management Conference
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    • 2013.08a
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    • pp.11-14
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    • 2013
  • 본 연구의 목적은 바이오인포매틱스 분야의 회색문헌과 백색문헌의 초록을 대상으로 단어 동시출현(word co-occurrence)네트워크 분석을 통해 해당 분야의 연구 동향을 비교 분석하고자 하였다. 이를 위해 2010년부터 2012년까지 발표된 회색문헌인 회의자료(proceeding)와 백색문헌인 학술논문(journal article)의 초록을 SCOPUS, IEEEXplore, Microsoft academic search에서 수집하였다. 단어 동시출현 네트워크를 분석한 결과 회색문헌의 주요 연구는 분석도구 및 방법으로, 백색문헌의 주요 연구는 바이오인포매틱스의 주요 연구대상인 유전자 발현, 단백질 서열 및 구조 등으로 나타났다.

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A Study on the Analysis of Intellectual Structure of Library Management Studies using Co-Word Analysis (동시출현단어 분석을 이용한 도서관경영 분야의 지적구조 분석)

  • Lee, Jung-Gyu;Lee, Yong-Gu
    • Proceedings of the Korean Society for Information Management Conference
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    • 2013.08a
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    • pp.23-26
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    • 2013
  • 지식기반사회와 정보홍수시대로 갈수록, 도서관의 존속여부에 대한 고민으로 도서관경영의 중요성은 심화되며, 관련 연구가 많이 이루어지고 있다. 이에 본 연구는 동시출현단어 분석을 통해 도서관경영 분야의 지적구조를 분석하였다. 데이터 수집은 2001~2013년도까지 한국연구재단에 등재된 5개의 문헌정보학 관련 학회지를 대상으로 하였으며, 해당 논문 수는 413건이다. 데이터 처리후 군집분석을 실시하여 9개의 군집을 형성하였으며, 해당 군집은 장서개발, 디지털도서관, 공공도서관, 마케팅 및 조직관리, 국립중앙도서관 및 작은도서관, 인사관리(직무/자격제도), 대학도서관, 학교도서관, 서비스 품질평가이다. 이러한 연구 결과는 기존의 도서관경영 분야의 주제영역과 비교하였다.

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The Knowledge Structure of Multicultural Research Papers in Korea (다문화연구의 지식구조에 관한 네트워크 분석)

  • Jang, Im-Sook;Chang, Durk-Hyun;Lee, Soo-Sang
    • Journal of Korean Library and Information Science Society
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    • v.42 no.4
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    • pp.353-374
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    • 2011
  • Analyzing research paper published from 2005 to 2010, this study aims for analysing the research paradigm on multi-culture and understanding the structural characteristics of the multicultural knowledge via scientometric. Co-word network constructed by keywords in documents and their co-occurrence relationships is a kind of mapping knowledge structure. A total of 4,521 and 1,373 papers published between 2005 and 2010 were retrieved from the KRF Registered Journals and Proposed Journals. This paper employs k-core analysis method in the field of mapping knowledge structure to analyze keyword co-occurrence network of multicultural research in Korea. And Netminer 3 is employed to visualize the networks in this paper.

A Study on the Intellectual Structure of Data Science Using Co-Word Analysis (동시출현단어분석을 통한 데이터과학 분야의 지적구조에 관한 연구)

  • Kim, Hyunjung
    • Journal of the Korean Society for information Management
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    • v.34 no.4
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    • pp.101-126
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    • 2017
  • Data Science is emerging as a closely related field of study to Library and Information Science (LIS), and as an interdisciplinary subject combining LIS, statistics and computer science in an attempt to understand the value of data by applying what LIS has been doing for collecting, storing, organizing, analyzing, and utilizing information. To investigate which subject fields other than LIS, statistics, and computer science are related to Data Science, this study retrieved 667 materials from Web of Science Core Collection, extracted terms representing Web of Science Categories, examined subject fields that are studying Data Science using descriptive analysis, analyzed the intellectual structure of the field by co-word analysis and network analysis, and visualized the results as a Pathfinder network with clustering created with the PNNC clustering algorithm. The result of this study might help to understand the intellectual structure of the Data Science field, and may be helpful to give an idea for developing relatively new curriculum.

Research trends in the field of multicultural education Network analysis:Focusing on Time series analysis of Co-word (다문화교육 분야의 연구동향에 대한 네트워크 분석: 동시출현단어의 시계열 분석중심으로)

  • Bae, Kyungim
    • Journal of Convergence for Information Technology
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    • v.11 no.10
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    • pp.159-170
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    • 2021
  • The purpose of this study was to understand the knowledge structure through keyword network analysis for the purpose of identifying research trends in the research field of multicultural education. To this end, the research trends and intellectual structure of multicultural education were identified through network analysis of words that appeared more than 6 times in the keywords of the papers registered in the KCI (Korean Journal of Citation Index) from 2002 to 2020. Study changes were analyzed by analysis. As a result of the analysis, the first period (2002-2010) focused on multicultural society and multiculturalism, while the second period (2011-2015) additionally introduced multicultural families, globalization, and teacher education, and the third period (2016-2020), multicultural receptivity, multicultural sensitivity, and multicultural efficacy were newly revealed. The research trend of multicultural education in Korean society over the past 19 years has been confirmed that the research topic has changed from theoretical research to empirical research, and the content of multicultural education has also been specified and expanded by field and subject.

Extracting Multi-type Elements Consisting of Multi-words from Sentences (문장으로부터 여러 단어로 구성된 여러 유형의 요소 추출)

  • Yang, Seon;Ko, Youngjoong
    • Annual Conference on Human and Language Technology
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    • 2014.10a
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    • pp.73-77
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    • 2014
  • 문장을 대상으로 특정 응용 분야에 필요한 요소를 자동으로 추출하는 정보 추출(information extraction) 과제는 자연어 처리 및 텍스트 마이닝의 중요한 과제 중 하나이다. 특히 추출해야할 요소가 한 단어가 아닌 여러 단어로 구성된 경우 추출 과정에서 고려되어야할 부분이 크게 증가한다. 또한 추출 대상이 되는 요소의 유형 또한 여러 가지인데, 감정 분석 분야를 예로 들면 화자, 객체, 속성 등 여러 유형의 요소에 대한 분석이 필요하며, 비교 마이닝 분야를 예로 들면 비교 주체, 비교 상대, 비교 술어 등의 요소에 대한 분석이 필요하다. 본 논문에서는 각각 여러 단어로 구성될 수 있는 여러 유형의 요소를 동시에 추출하는 방법을 제안한다. 제안 방법은 구현이 매우 간단하다는 장점을 가지는데, 필요한 과정은 형태소 부착과 변환 기반 학습(transformation-based learning) 두 가지이며, 파싱 혹은 청킹 같은 별도의 전처리 과정도 거치지 않는다. 평가를 위해 제안 방법을 적용하여 비교 마이닝을 수행하였는데, 비교 문장으로부터 각자 여러 단어로 구성될 수 있는 세 가지 유형의 비교 요소를 자동 추출하였으며, 실험 결과 정확도 84.33%의 우수한 성능을 산출하였다.

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