• Title/Summary/Keyword: 논문주제

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An Experimental Study on the Effect of Domain Expertise on the Consistency of Relevance Judgements (주제전문지식이 적합성판정의 일관성에 미치는 영향에 관한 실험적 연구)

  • Scholten, Stacey;Moon, Sung-Been
    • Journal of the Korean Society for information Management
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    • v.38 no.3
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    • pp.1-22
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    • 2021
  • An online experiment was conducted to test the subject-knowledge view of relevance theory in order to find evidence of a conceptual basis for relevance. Six experts in Library and Information Science (LIS), nine Master's students of LIS, and twelve non-experts judged the relevance of 14 abstracts within and outside of the LIS domain. Consistency among the judges was calculated by joint-probability agreement (PA) and interclass correlation coefficients (ICC). When using PA to analyze the judgements, non-experts had a higher consensus regardless of the task or division of groups. However, ICC calculations found Master's candidates had a higher level of consensus than non-experts within LIS, although the experts did not; and the agreement rates on the non-LIS task for all groups were only poor to moderate. It was only when the groups were analyzed as two groups (experts including Master's candidates and non-experts) that the expected trend of higher consistency among experts in the LIS task was seen.

Exploring Trends and Future Directions of Research on Multicultural Acceptance of Korean Elementary School Children (우리나라 초등학생의 다문화 수용성에 관한 연구 동향 분석)

  • Lee, Hyun-Jung
    • Journal of Digital Convergence
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    • v.16 no.9
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    • pp.63-71
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    • 2018
  • This study aimed to suggest research directions for future studies by exploring trends of existing academic literature on multicultural acceptance of elementary school children in Korea. For this purpose, this study searched for domestic articles in academic data base using key words related to the subject of this study. Finally 36 articles were selected and using content analysis they were analyzed according to year of publication, fied of study, research themes, and research methods. The results of the study indicated that steady academic efforts have been made related to this topic since the first study in this field appeared in 2010 and the most prolific field of study was pedagogy. Results also showed that the theme of analyzing factors affecting multicultural acceptance of children was studied the most and quantitative methods were dominant. Results of the analysis suggested a need to put more research endeavor to extend the scope of research themes, study fields, and research designs in this field and they contributed to providing basis for future research.

An Automated Topic Specific Web Crawler Calculating Degree of Relevance (연관도를 계산하는 자동화된 주제 기반 웹 수집기)

  • Seo Hae-Sung;Choi Young-Soo;Choi Kyung-Hee;Jung Gi-Hyun;Noh Sang-Uk
    • Journal of Internet Computing and Services
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    • v.7 no.3
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    • pp.155-167
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    • 2006
  • It is desirable if users surfing on the Internet could find Web pages related to their interests as closely as possible. Toward this ends, this paper presents a topic specific Web crawler computing the degree of relevance. collecting a cluster of pages given a specific topic, and refining the preliminary set of related web pages using term frequency/document frequency, entropy, and compiled rules. In the experiments, we tested our topic specific crawler in terms of the accuracy of its classification, crawling efficiency, and crawling consistency. First, the classification accuracy using the set of rules compiled by CN2 was the best, among those of C4.5 and back propagation learning algorithms. Second, we measured the classification efficiency to determine the best threshold value affecting the degree of relevance. In the third experiment, the consistency of our topic specific crawler was measured in terms of the number of the resulting URLs overlapped with different starting URLs. The experimental results imply that our topic specific crawler was fairly consistent, regardless of the starting URLs randomly chosen.

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Enhancing Document Clustering Method using Synonym of Cluster Topic and Similarity (군집 주제의 유의어와 유사도를 이용한 문서군집 향상 방법)

  • Park, Sun;Kim, Kyung-Jun;Lee, Jin-Seok;Lee, Seong-Ro
    • Journal of the Institute of Electronics Engineers of Korea SP
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    • v.48 no.5
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    • pp.30-38
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    • 2011
  • This paper proposes a new enhancing document clustering method using a synonym of cluster topic and the similarity. The proposed method can well represent the inherent structure of document cluster set by means of selecting terms of cluster topic based on the semantic features by NMF. It can solve the problem of "bags of words" by using of expanding the terms of cluster topics which uses the synonyms of WordNet. Also, it can improve the quality of document clustering which uses the cosine similarity between the expanded cluster topic terms and document set to well cluster document with respect to the appropriation cluster. The experimental results demonstrate that the proposed method achieves better performance than other document clustering methods.

Topic Analysis of the National Petition Site and Prediction of Answerable Petitions Based on Deep Learning (국민청원 주제 분석 및 딥러닝 기반 답변 가능 청원 예측)

  • Woo, Yun Hui;Kim, Hyon Hee
    • KIPS Transactions on Software and Data Engineering
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    • v.9 no.2
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    • pp.45-52
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    • 2020
  • Since the opening of the national petition site, it has attracted much attention. In this paper, we perform topic analysis of the national petition site and propose a prediction model for answerable petitions based on deep learning. First, 1,500 petitions are collected, topics are extracted based on the petitions' contents. Main subjects are defined using K-means clustering algorithm, and detailed subjects are defined using topic modeling of petitions belonging to the main subjects. Also, long short-term memory (LSTM) is used for prediction of answerable petitions. Not only title and contents but also categories, length of text, and ratio of part of speech such as noun, adjective, adverb, verb are also used for the proposed model. Our experimental results show that the type 2 model using other features such as ratio of part of speech, length of text, and categories outperforms the type 1 model without other features.

선형보존자 문제들에 관한 연구

  • Song, Seok-Jun
    • Communications of the Korean Mathematical Society
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    • v.21 no.4
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    • pp.595-612
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    • 2006
  • 선형보존자 문제들은 행렬들로 구성되는 벡터공간들 사이에서 어떤 함수, 부분집합, 관계 등을 불변하게 옮기는 선형연산자의 형태를 규명하고 그와 동치가 되는 조건들을 찾는 연구주제들을 말한다. 이 논문에서는 선형보존자 문제에 대한 전반적인 연구문제들과 연구의 동기와 원인들, 활발한 연구주제들, 연구방법들 및 앞으로의 연구방향에 대하여 요약한다.

Generalized Decoherence Model (일반화된 디코히어런스 모델)

  • 고성범;임기영
    • Proceedings of the Korean Information Science Society Conference
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    • 2002.04b
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    • pp.307-309
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    • 2002
  • 지능은 창발적 현상이라는 주장이 제기되고 있다. 이 주장이 맞는다면, 지능에 대한 현재의 환원론적 접근 방법은 제고되어야 한다고 본다. 즉, 지능에 속하는 주제들을 하나의 전체론적 틀 안에서 다툴 수 있을때, 지능의 본질에 보다 효율적으로 접근할 수 있다는 것이다. 본 논문에서는 이런 점에 착안하여 지능적 주제들을 보다 포괄적으로 다를 수 있는 일반화된 디코히어런스 모델을 제안하였다.

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An Investigation of Intellectual Structure on Data Papers Published in Data Journals in Web of Science (Web of Science 데이터학술지 게재 데이터논문의 지적구조 규명)

  • Chung, EunKyung
    • Journal of the Korean Society for information Management
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    • v.37 no.1
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    • pp.153-177
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    • 2020
  • In the context of open science, data sharing and reuse are becoming important researchers' activities. Among the discussions about data sharing and reuse, data journals and data papers shows visible results. Data journals are published in many academic fields, and the number of papers is increasing. Unlike the data itself, data papers contain activities that cite and receive citations, thus creating their own intellectual structures. This study analyzed 14 data journals indexed by Web of Science, 6,086 data papers and 84,908 cited references to examine the intellectual structure of data journals and data papers in academic community. Along with the author's details, the co-citation analysis and bibliographic coupling analysis were visualized in network to identify the detailed subject areas. The results of the analysis show that the frequent authors, affiliated institutions, and countries are different from that of traditional journal papers. These results can be interpreted as mainly because the authors who can easily produce data publish data papers. In both co-citation and bibliographic analysis, analytical tools, databases, and genome composition were the main subtopic areas. The co-citation analysis resulted in nine clusters, with specific subject areas being water quality and climate. The bibliographic analysis consisted of a total of 27 components, and detailed subject areas such as ocean and atmosphere were identified in addition to water quality and climate. Notably, the subject areas of the social sciences have also emerged.

Study to the randomized response model (확률응답모형에 관한 연구)

  • 이영진
    • The Korean Journal of Applied Statistics
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    • v.4 no.2
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    • pp.179-193
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    • 1991
  • In this paper, we introduce various methods of PR techniques initiated by S. Warner in 1960's and examine the maximum likelihood estimator for them. One of the main subjects of this paper is to represent Warner model, Unrelated Question Model, and Multi-Proportion Model in linear model. The other subject is to study the inference of PR model by using the Bayesian Approach.

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A Study on the research patterns of domestic library & information professors through analysis of articles covered by SSCI (국제학술지(SSCI)에 등재된 논문을 통한 국내 문헌정보학자들의 연구동향 분석 연구)

  • 최희곤
    • Proceedings of the Korean Society for Information Management Conference
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    • 2000.08a
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    • pp.215-218
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    • 2000
  • 본 연구는 계량서지학적 측정을 통해 국내 문헌정보학자들의 연구동향을 규명하기 위하여, 국제적으로 가장 영향력 있는 사회과학분야 학술지에 대한 대표적인 인용색인 데이터베이스인 SSCI에 게재된 논문을 대상으로 다양한 관점, 즉 저자별, 주제별, 저널별. 출신학교별, 소속대학별, 연도별, 연령별, 핵심전공주제별, 핵심저자별 및 핵심저널별로 분석하였다. 본 연구는 향후 국내 문헌정보학의 국제화 및 이에 따른 연구방향을 제시하는데 유용할 것으로 본다.

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