• Title/Summary/Keyword: 개인 프로파일

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Decision Method of Importance of E-Mail based on User Profiles (사용자 프로파일에 기반한 전자 메일의 중요도 결정)

  • Lee, Samuel Sang-Kon
    • The KIPS Transactions:PartB
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    • v.15B no.5
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    • pp.493-500
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    • 2008
  • Although modern day people gather many data from the network, the users want only the information needed. Using this technology, the users can extract on the data that satisfy the query. As the previous studies use the single data in the document, frequency of the data for example, it cannot be considered as the effective data clustering method. What is needed is the effective clustering technology that can process the electronic network documents such as the e-mail or XML that contain the tags of various formats. This paper describes the study of extracting the information from the user query based on the multi-attributes. It proposes a method of extracting the data such as the sender, text type, time limit syntax in the text, and title from the e-mail and using such data for filtering. It also describes the experiment to verify that the multi-attribute based clustering method is more accurate than the existing clustering methods using only the word frequency.

Context Based User Profile for Personalization in Ubiquitous Computing Environments (유비쿼터스 컴퓨팅 환경에서 개인화를 위한 상황정보 기반 사용자 프로파일)

  • Moon, Ae-Kyung;Kim, Hyung-Hwan;Park, Ju-Young;Choi, Young-Il
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.34 no.5B
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    • pp.542-551
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    • 2009
  • We proposed the context based user profile which is aware of its user's situation and based on user's situation it recommends personalized services. The user profile which consists of (context, service) pair can be acquired by the context and the service usage of a user; it then can be used to recommend personalized services for the user. In this paper, we show how they can be evolved without previously known user information so that not to violate privacy during the learning phase; in the result our user profile can be applied to any new environment without any modification to model only except context profiles. Using context-awareness based user profile, the service usage pattern of a user can be learned by the union of contexts and the preferred services can be recommended by the current environments. Finally, we evaluate the precision of proposed approach using simulation with data sets of UCI depository and Weka tool-kit.

A Study on Service Scenario and Business Model for Personal Environment Service (개인 환경 서비스 시나리오 및 사업모델 연구)

  • Oh, Jong-Taek
    • 한국IT서비스학회:학술대회논문집
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    • 2009.11a
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    • pp.355-359
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    • 2009
  • 개인 환경 서비스는 휴대폰에 개인이 선호하는 생활정보 프로파일을 미리 설정하면, 휴대폰과 생활기기에 장착된 WPAN 장치와 이동통신망, 인터넷망, 서비스 서버 등이 연동되어, 지능적으로 생활환경을 구축하는 서비스이다. 본 논문에서는 개인 환경 서비스의 상세 서비스 내용과 사업모델에 대한 연구 결과가 기술되었다.

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Design and Implementation of personalized recommendation system using Case-based Reasoning Technique (사례기반추론 기법을 이용한 개인화된 추천시스템 설계 및 구현)

  • Kim, Young-Ji;Mun, Hyeon-Jeong;Ok, Soo-Ho;Woo, Yong-Tae
    • The KIPS Transactions:PartD
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    • v.9D no.6
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    • pp.1009-1016
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    • 2002
  • We design and implement a new case-based recommender system using implicit rating information for a digital content site. Our system consists of the User Profile Generation module, the Similarity Evaluation and Recommendation module, and the Personalized Mailing module. In the User Profile Generation Module, we define intra-attribute and inter-attribute weight deriver from own's past interests of a user stored in the access logs to extract individual preferences for a content. A new similarity function is presented in the Similarity Evaluation and Recommendation Module to estimate similarities between new items set and the user profile. The Personalized Mailing Module sends individual recommended mails that are transformed into platform-independent XML document format to users. To verify the efficiency of our system, we have performed experimental comparisons between the proposed model and the collaborative filtering technique by mean absolute error (MAE) and receiver operating characteristic (ROC) values. The results show that the proposed model is more efficient than the traditional collaborative filtering technique.

The Relationship Between School Organizational Climate and Teacher Burnout: Focusing on the Latent Profile of School Organizational Climate Perceived by Special Education Teachers (학교조직풍토와 교사 소진의 관계: 특수교사가 지각한 학교조직풍토의 잠재프로파일을 중심으로)

  • Choi, Hyunju;Chang, Eunbi
    • Korean Journal of School Psychology
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    • v.18 no.3
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    • pp.291-316
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    • 2021
  • This study was conducted to identify how special education teachers perceive their school's organizational climate through latent profile analysis performed using Mplus, and determine whether there was a difference in the average teacher burnout rate between perception groups using three-step approaches. The participants were 312 special education teachers. The perception groups were identified as 'closed', 'laissez-faire', 'average', 'controlled', and 'autonomous.' The groups had different teacher burnout rates. The closed group had the highest rate, while the autonomous group had the lowest. This paper discusses the implications of these results for special education teacher burnout and school organizational climate, and suggests ideas for future studies.

Design and Implementation of a TV-Anytime Operation for personalized service (개인 맞춤형 서비스를 위한 TV-Anytime 오퍼레이션의 설계 및 구현)

  • Lee, Jong-Seul;Lee, Seok-Pil
    • Proceedings of the KIEE Conference
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    • 2005.10b
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    • pp.400-402
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    • 2005
  • 본 논문에서는 양방향환경에서의 메타데이터 서비스를 제공하는 TV-Anytime 시스템에서의 개인 맞춤형 서비스를 위한 오퍼레이션들을 설계 밋 구현한다. TV-Anytime 포럼에서는 양방향 환경에서의 메타데이터 서비스를 위해 get_Data 와 submit_Data 오퍼레이션을 정의 하였으나, 이 두 오퍼레이션은 양방향 환경에서의 맞춤형 서비스를 제공할 수가 없다. 이에 본 논문에서는 사용자 프로파일 정보를 활용한 개인 맞춤형 서비스를 위해 새로운 오퍼레이션을 제안한다. 제안된 오퍼레이션을 통해 사용자는 양방향 환경에서의 SOAP 프로토콜을 통해 콘텐츠의 검색, 저장, 탐색 및 개인 맞춤형 서비스가 가능하다.

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The Relations of Teacher-Efficacy and Perception of Principals' Leadership and Peer Collaboration across Job Stress and Satisfaction (초등교사의 지각된 교사효능감, 학교장 지도성, 동료교사 태도 인식의 잠재프로파일에 따른 직무스트레스와 교직만족도 차이)

  • Yeon, Eun Mo;Choi, Hyo-sik
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.19 no.9
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    • pp.482-491
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    • 2018
  • This study intended to identify different level of teacher-efficacy, perception of principals' leadership and peer collaboration as it pertains to a teachers' job stress and job satisfaction in Elementary school. Samples include 1,031 teachers in elementary school from Korean Children & Youth Panel Survey(KCYPS) and data were analyzed using Latent Class Analysis(LCA) to identify different patterns of teacher-efficacy and perception of principals' leadership and peer collaboration. Multivariate analysis of variance were employed to identify the influence of predictors for classification of teachers' job stress and job satisfaction among latent classes. The study found three latent classes at risk class, middle-level adaptive class, and adaptive class and results showed that each distinctive class can be identified by some of predictors. Teachers at adaptive class showed higher teacher-efficacy and positive perception of principals' leadership and peer collaboration than teachers at risk and middle-level adaptive class. Also, teachers at adaptive class showed lower job stress and higher job satisfaction than teachers at two other classes. The study suggests that help teachers based on personal profile are effective rather teacher-efficacy and perception of principals' leadership and peer collaboration.

An Analysis Method of User Preference by using Web Usage Data in User Device (사용자 기기에서 이용한 웹 데이터 분석을 통한 사용자 취향 분석 방법)

  • Lee, Seung-Hwa;Choi, Hyoung-Kee;Lee, Eun-Seok
    • Journal of KIISE:Computing Practices and Letters
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    • v.15 no.3
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    • pp.189-199
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    • 2009
  • The amount of information on the Web is explosively growing as the Internet gains in popularity. However, only a small portion of the information on the Web is truly relevant or useful to the user. Thus, offering suitable information according to user demand is an important subject in information retrieval. In e-commerce, the recommender system is essential to revitalize commercial transactions, raise user satisfaction and loyalty towards the information provider. The existing recommender systems are mostly based on user data collected at servers, so user data are dispersed over several servers. Therefore, web servers that lack sufficient user behavior data cannot easily infer user preferences. Also, if the user visits the server infrequently, it may be hard to reflect the dynamically changing user's interest. This paper proposes a novel personalization system analyzing the user preference based on web documents that are accessed by the user on a user device. The system also identifies non-content blocks appearing repeatedly in the dynamically generated web documents, and adds weight to the keywords extracted from the hyperlink sentence selected by the user. Therefore, the system establishes at an early stage recommendation strategies for the web server that has little user data. Also, user profiles are generated rapidly and more accurately by identifying the information blocks. In order to evaluate the proposed system, this study collected web data and purchase history from users who have current purchase activity. Then, we computed the similarity between purchase data and the user profile. We confirm the accuracy of the generated user profile since the web page containing the purchased item has higher correlation than other item pages.

Personalized Search Service in Semantic Web (시멘틱 환경에서의 개인화 검색)

  • Kim Je-Min;Park Young-Tack
    • Proceedings of the Korean Information Science Society Conference
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    • 2005.11b
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    • pp.649-651
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    • 2005
  • 웹에 분산된 모든 웹 페이지는 구조가 서로 다르다. 시멘틱 웹 환경은 이형적인 구조를 갖는 웹 페이지들의 메타데이터를 바탕으로 시멘틱 검색이 가능하다. 그러나 일반적으로 사용자의 요구에 따른 시멘틱 검색은 상황에 따라 엄청난 수의 검색 결과를 내놓는다. 따라서 검색 결과에 대해 각 사용자에 맞는 검색 결과 순위를 적용할 필요가 있다. Culture Finder는 시멘틱 웹 검색 에이전트들이 개인화된 문화 정보를 검색할 수 있도록 도움을 준다. Culture Finder는 웹에 존재하는 각 웹 페이지에 대한 메타 데이터를 작성하고, 시멘틱 검색을 이행하며, 사용자 프로파일을 기반으로 삼아 검색 결과일 대한 순위 점수를 계산한다. Culture Finder에는 개인화된 시멘틱 검색을 효율적으로 실행하기 위해 중요한 5가지 기법이 적용되었다. 사용자의 검색 행위로부터 사용자 프로파일을 생성하기위한 기계 학습기법, 시멘틱 웹 검색 에이전트를 위한 효율적인 시맨틱 검색 기법, 사용자 질의의 효과일인 파악을 위한 질의 분석 기법, 각 사용자에게 적합한 검색 결과를 제공하기 위한 순위 적용 기술, 메타데이터를 생성화기 위한 상위 온톤로지 표현 기법. 본 논문에서는 Culture Finder의 구조를 통해서 시멘틱 개인화 검색에 적용되는 여러 가지 방법을 제안한다.

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