• Title/Summary/Keyword: 개인화서비스

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A Study on Personalization of Science and Technology Information by User Interest Tracking Technique (개인 관심분야 추적기법을 이용한 과학기술정보 개인화에 관한 연구)

  • Han, Heejun;Choi, Yunsoo;Choi, Sung-Pil
    • Journal of the Korean Society for Library and Information Science
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    • v.52 no.3
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    • pp.5-33
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    • 2018
  • In this paper, we analyze a user's usage behavior, identify and track search intention and interest field based on the National Science and Technology Standard Classification, and use it to personalize science and technology information. In other words, we sought to satisfy both efficiency and satisfaction in searching for information that users want by improving scientific information search performance. We developed the personalization service of science and technology information and evaluated the suitability and usefulness of personalized information by comparing the search performance between expert experimental group and control group. As a result, the personalization service proposed in this study showed better search performance than comparative service and proved to provide higher usability.

Implementation of Social Network Services for Providing Personalized Nutritious Information on Facebook (개인화 영양정보 제공을 위한 소셜 네트워크 서비스 활용방안)

  • An, Hyojin;Choi, Jaewon
    • The Journal of Society for e-Business Studies
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    • v.19 no.4
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    • pp.21-30
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    • 2014
  • Personalized data of users at social network service can be used as a new resource for providing personalized nutrition information. Although providing personalized information for nutrition using social data, there are a few studies on providing personalized nutrition information with customized user preference based on social network service. The purpose of this study is to implement the clustering of data analysis with collected personal data of Facebook users. To find out the method for providing personalized information, this study described an effective method for providing nutrition information by analyzing web posting on Facebook that can be called a typical social network service. According to the result from clustering, sodium and sugars were important variables from diet of user. Furthermore, the importance of elements of user's diet has some differences according to vendor/manufactures.

Semantics Environment for U-health Service driven Naive Bayesian Filtering for Personalized Service Recommendation Method in Digital TV (디지털 TV에서 시멘틱 환경의 유헬스 서비스를 위한 나이브 베이지안 필터링 기반 개인화 서비스 추천 방법)

  • Kim, Jae-Kwon;Lee, Young-Ho;Kim, Jong-Hun;Park, Dong-Kyun;Kang, Un-Gu
    • Journal of the Korea Society of Computer and Information
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    • v.17 no.8
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    • pp.81-90
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    • 2012
  • For digital TV, the recommendation of u-health personalized service of semantic environment should be done after evaluating individual physical condition, illness and health condition. The existing recommendation method of u-health personalized service of semantic environment had low user satisfaction because its recommendation was dependent on ontology for analyzing significance. We propose the personalized service recommendation method based on Naive Bayesian Classifier for u-health service of semantic environment in digital TV. In accordance with the proposed method, the condition data is inferred by using ontology, and the transaction is saved. By applying naive bayesian classifier that uses preference information, the service is provided after inferring based on user preference information and transaction formed from ontology. The service inferred based on naive bayesian classifier shows higher precision and recall ratio of the contents recommendation rather than the existing method.

Design of Systems Architecture for Personalized TV Program and Advertisement Recommendation Services with Multilingualism (다중 언어를 지원하는 개인화된 TV 프로그램 및 광고 추천 서비스를 위한 시스템 구조 설계)

  • Choi, Eunjeong;Kim, Hyo-Min;Park, Seong-Soo;Ahn, Se Yeol;Koo, Myung-Wan
    • Annual Conference on Human and Language Technology
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    • 2009.10a
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    • pp.116-120
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    • 2009
  • 최근 IPTV 상용화와 디지털 방송 본격화는 사용자에게 다양한 방송 프로그램을 제공한다는 장점도 있지만, 동시에 수많은 프로그램을 탐색하여 선별해야 하는 부담을 주고 있다. 이러한 불편함을 해소하고자 최근에는 사용자 선호도와 방송 프로그램 정보를 이용하여 사용자 취향에 맞는 프로그램을 자동으로 추천하는 서비스의 요구가 증대되고 있다. 또한 궁극적으로 방송 서비스가 '개인화'와 '개방화'의 형태로 진행되고 있다는 점을 감안하면, 추천 서비스는 TV 프로그램 뿐만 아니라 광고도 포함해야 하며, 다중 언어를 지원하는 형태로 발전되어야 한다. 본 논문에서는 다중 언어를 지원하는 개인화된 TV 프로그램 및 광고 추천 서비스를 위한 하나의 시스템을 제안한다. 우리는 먼저 사용자 시나리오를 작성하고, 기능 요구사항들을 분석하여 시스템 구조를 설계한다. 그리고 다중 언어를 지원하는 시스템에서의 한글 처리 방법도 간단히 설명한다. 본 연구는 현재 유럽 공동기술 개발 사업 과제의 일환으로 진행되고 있어, 여기에서는 현 시점의 결과물인 시나리오, 시스템 구조 설계, 한글 처리까지 소개하고 있다.

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Personal Recommendation Service Design Through Big Data Analysis on Science Technology Information Service Platform (과학기술정보 서비스 플랫폼에서의 빅데이터 분석을 통한 개인화 추천서비스 설계)

  • Kim, Dou-Gyun
    • Journal of the Korean BIBLIA Society for library and Information Science
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    • v.28 no.4
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    • pp.501-518
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    • 2017
  • Reducing the time it takes for researchers to acquire knowledge and introduce them into research activities can be regarded as an indispensable factor in improving the productivity of research. The purpose of this research is to cluster the information usage patterns of KOSEN users and to suggest optimization method of personalized recommendation service algorithm for grouped users. Based on user research activities and usage information, after identifying appropriate services and contents, we applied a Spark based big data analysis technology to derive a personal recommendation algorithm. Individual recommendation algorithms can save time to search for user information and can help to find appropriate information.

A Study on User Preference Sharing based on Semantic Web in Personalized Services (개인화서비스에서 시맨틱웹 기반의 사용자 선호정보 공유에 관한 연구)

  • Kim, Ju-Yeon;Kim, Jong-Woo;Kim, Chang-Soo
    • Journal of Korea Multimedia Society
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    • v.10 no.10
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    • pp.1356-1366
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    • 2007
  • Many personalized Services that provide users with adaptive information according to users' requirements and preferences have been researched and developed. However, existing approaches are difficult to share a user's information among heterogeneous services because these approaches manage users' preferences in a single system. In this paper, we propose a user preference sharing model based on the Semantic Web as a solution to resolve the problem. Our model enables user preferences to be described and shared over service-specific ontologies which are affected by the feature of each service. Our model is analyzed and evaluated with an implementation of the middleware that supports our model. Our approach has the advantage of providing more efficient personalized services than existing approaches because it can describe users' preferences centering around each service and share these information among heterogeneous personalized services.

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A study on the impact of host's personalized offline services and platform ease of use on shared homestay consumers' purchase intention

  • Zou, Ji-kai;Yoon, Sung-joon
    • Journal of the Korea Society of Computer and Information
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    • v.26 no.7
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    • pp.109-118
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    • 2021
  • Different from previous studies, this study focuses on accommodation providers' personalization services and platform convenience variables, identifying how these prior factors affect perceived value and trust in accommodation services on a shared homestay platform, and how consumers' innovation plays a role in the process. Through this, we would like to identify the mechanism of interaction between accommodation service providers and consumers mediated by the shared homestay platform and present implications for a more customer-centered platform operation strategy. This study has an extended meaning for prior research, empirically confirming that the increase in personalized offline service quality of personalized hosts in shared economic models has a positive impact on perceived value and platform trust of consumers. At the same time, we confirm that under the shared economy model, consumers' innovation propensity plays an important positive role in regulating their perceived value aspects as well as their confidence in the platform.

Personalized Search based on Community through the Automatic Analysis of Query Pattern (질의어 패턴 자동분석을 통한 커뮤니티 기반 개인화 검색)

  • Park, Gun-Woo;Jung, Jae-Hak;Lee, Sang-Hoon
    • Proceedings of the Korean Information Science Society Conference
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    • 2008.06a
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    • pp.37-38
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    • 2008
  • 기존의 웹 검색 엔진들은 사용자의 검색 의도를 충분히 반영하지 못하기 때문에 개인이 원하는 정보를 보다 정확하게 제공 할 수 없는 단점을 가지고 있다. 따라서 개인의 특성을 이해하고 검색에 반영함으로써 보다 정확한 개인화 검색 서비스를 제공하기 위한 많은 연구들이 진행되고 있다. 이러한 개인화된 검색 서비스를 통해, 사용자는 방대한 웹상의 정보를 보다 효율적으로 검색하여 자신에게 적합한 정보를 편리하게 획득 할 수 있으며 짧은 시간에 정확한 정보 획득을 보장 받을 수 있다. 본 논문에서는 개인의 질의어 패턴을 자동으로 분석하고 상위에 순위화 된 질의어 유형에 따라 주요 관심사 별 커뮤니티를 형성하여 검색에 반영함으로써 개인의 정보요구에 보다 큰 접한 개인화 검색 방안을 제안한다.

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Personalized Service Based on Context Awareness through User Emotional Perception in Mobile Environment (모바일 환경에서의 상황인식 기반 사용자 감성인지를 통한 개인화 서비스)

  • Kwon, Il-Kyoung;Lee, Sang-Yong
    • Journal of Digital Convergence
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    • v.10 no.2
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    • pp.287-292
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    • 2012
  • In this paper, user personalized services through the emotion perception required to support location-based sensing data preprocessing techniques and emotion data preprocessing techniques is studied for user's emotion data building and preprocessing in V-A emotion model. For this purpose the granular context tree and string matching based emotion pattern matching techniques are used. In addition, context-aware and personalized recommendation services technique using probabilistic reasoning is studied for personalized services based on context awareness.

A Study on the Self-destructing Data for Information Privacy (개인정보 보호를 위한 데이터의 자가 초기화에 대한 고찰)

  • Kim, Jonguk;Kang, Sukin;Hong, Manpyo
    • Journal of the Korea Institute of Information Security & Cryptology
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    • v.23 no.4
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    • pp.629-638
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    • 2013
  • Recently the interest in the information privacy has been growing. Digital data can be easily transferred via Internet. Service providers ask users for private data to give customized services. Users believe that their shared data are protected as they deliver their private data securely. However, their private data may be leaked if service providers do not delete or initialize them when they expire. The possibility of information leak may lower if the service providers deal with users' private data properly. In this paper, we study the self-destruction of private data for information privacy and propose the glass-box model.