• Title/Summary/Keyword: 사용자 선호 온톨로지

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Constructing User Preferred Anti-Spam Ontology using Data Mining Technique (데이터 마이닝 기술을 적용한 사용자 선호 스팸 대응 온톨로지 구축)

  • Kim, Jong-Wan;Kim, Hee-Jae;Kang, Sin-Jae
    • Journal of the Korean Institute of Intelligent Systems
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    • v.17 no.2
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    • pp.160-166
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    • 2007
  • When a mail was given to users, each user's response could be different according to his or her preference. This paper presents a solution for this situation by constructing a user preferred ontology for anti-spam systems. To define an ontology for describing user behaviors, we applied associative classification mining to study preference information of users and their responses to emails. Generated classification rules can be represented in a formal ontology language. A user preferred ontology can explain why mail is decided to be spam or ron-spam in a meaningful way. We also suggest a new rule optimization procedure inspired from logic synthesis to improve comprehensibility and exclude redundant rules.

Preference-based search technology for the user query semantic interpretation (사용자 질의 의미 해석을 위한 선호도 기반 검색 기술)

  • Jeong, Hoon;Lee, Moo-Hun;Do, Hana;Choi, Eui-In
    • Journal of Digital Convergence
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    • v.11 no.2
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    • pp.271-277
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    • 2013
  • Typical semantic search query for Semantic search promises to provide more accurate result than present-day keyword matching-based search by using the knowledge base represented logically. Existing keyword-based retrieval system is Preference for the semantic interpretation of a user's query is not the meaning of the user keywords of interconnect, you can not search. In this paper, we propose a method that can provide accurate results to meet the user's search intent to user preference based evaluation by ranking search. The proposed scheme is Integrated ontology-based knowledge base built on the formal structure of the semantic interpretation process based on ontology knowledge base system.

Intelligent Recommendation Agent Based on Ontology (온톨로지 기반의 지능형 추천 에이전트)

  • 조범수;김재원;노상욱
    • Proceedings of the Korean Information Science Society Conference
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    • 2003.10a
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    • pp.106-108
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    • 2003
  • 최근 들어 인터넷의 급속한 발전으로 사용자가 처리해야할 점보의 양이 급속히 늘어나게 됨으로써 사람이 혼자만의 힘으로 이 많은 정보를 처리하는 것이 하나의 고단한 작업이 되었고, 이 작업을 돕기 위한 소프트웨어 에이전트(software agent) 의 필요성이 대두되었다. 본 논문에서는 구현한 소프트웨어 에이전트가 사용자의 업무보조 (personal assistant) 라는 자신의 임무를 수행하기 위하여 온톨로지(ontology)를 기반으로 사용자의 선호도(preference) 와 의사결정 패턴을 학습하여 사용자 프로파일(user Profile) 을 작성한다. 학습한 프로파일을 바탕으로 사용자의 선호도와 일치하는 제품을 추천하는 지능형 에이전트를 제안하고. 실질적인 실험을 통해 학습된 사용자의 성향을 분석한다.

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Design and Implementation of Context Awareness Inference System Based on Ontology - Focusing on Tour Information Guidance SmartPhone Application (온톨로지기반 상황인지 추론시스템 설계 및 구현 - 여행정보안내 스마트폰 앱을 사례로)

  • Lee, Jae Gil;Joo, Yong Jin;Park, Soo Hong
    • Journal of Korean Society for Geospatial Information Science
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    • v.20 no.4
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    • pp.67-75
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    • 2012
  • For the last few years, LBS has attracted considerable attention from many industries and societies as a result of propagated smart devices. LBS has a high utilization of mobile users as it uses user positions as a significant factor. Current LBS has only taken user position into account and it makes some limits. So, it is necessarily suggested that support for personalized services which consider user's motion, traffic condition, weather condition, time, personal information and preferences that have a huge impact on the accuracy. The purpose of this study is to design the inference systems with user's motion, preferences and schedules and provide users with the personalized information. To achieve this, Movement Ontology, User Profile Ontology, Schedule Ontology and Work Ontology should be constructed and based on this, smart applications were developed. Developed applications induced appropriately recommended results according to user's preference, motion and directions.

Technology of Mobile IPTV Content Recommendation based on User Preference (사용자 선호에 따른 Mobile IPTV 콘텐츠 추천 기술)

  • Kim, Dae-Gun;Song, Sung-Keun;Lee, Kang-Lyul;Youn, Hee-Yong
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2010.07a
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    • pp.261-264
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    • 2010
  • 국내외적으로 IPTV 표준화 및 서비스 기술에 대한 연구가 활발히 진행되고 있고, 국제적으로는 Mobile IPTV를 위한 새로운 기술 개발 및 관련 표준 기술을 선점하기 위해 경쟁이 치열하게 전개되고 있다. 하지만 콘텐츠 다양화와 대량화는 사용자에게 원하는 콘텐츠를 발견할 수 있는 가능성만을 제공할 뿐 사용자가 원하는 콘텐츠를 검색하는데 많은 시간과 노력을 낭비 하게 한다는 문제점이 있다. 이에 본 과제는 온톨로지를 활용하여 Mobile IPTV 관련 기술 연구를 기반으로 효율적인 Mobile IPTV 서비스를 위한 콘텐츠 추천 시스템과 사용자 선호에 따른 온톨로지 구축을 제안한다.

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Push Service Technique based on Semantic Web for Personalized Services (개인화서비스를 위한 시맨틱웹 기반 푸시서비스 기법)

  • Kim, Ju-Yeon;Kim, Jong-Woo;Kim, Jin-Chun
    • The Journal of the Korea Contents Association
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    • v.10 no.6
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    • pp.18-26
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    • 2010
  • Many personalized services that provide users with adaptive information according to users' preferences have been researched and developed. Push services are especially expected to be more economic impact because push services satisfy user's potential needs even if the user does not require anything. In this paper, we propose Semantic Web approach in order to enhance the performance of push services. Our approach provides infrastructure to recommend contents based on semantic association by enabling information of contents and user preferences to be described on service-specific ontologies that reflect features of each service. In addition, our approach can recommend users with adaptive information based on information represented in our description model. Our approach enables information of contents and user preferences to be described with rich expressiveness, and it provides semantic interoperability.

From Computing Distribution of Email Responses for Each User Cluster To Construct User Preference based Anti-spam Mail System (사용자 클러스터별 이메일 반응 분포 계산 및 사용자 선호 스팸 메일 대응 시스템 구축)

  • Kim, Jong-Wan
    • Journal of the Korean Institute of Intelligent Systems
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    • v.19 no.3
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    • pp.343-349
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    • 2009
  • In this paper, it would be shown that individuals can have different responses to the same email based on their preferences through computing the distributions of user clusters' email responses from clustering results based on email users' preference information. This paper presents an approach that incorporates user preferences to construct an anti-spam mail system, which is different from the conventional content-based ones. We consider email category information derived from the email content as well as user preference information. We also build a user preference ontology to formally represent the important concepts and rules derived from a data mining process and then apply a rule optimization procedure to exclude unnecessary rules. Experimental results show that our user preference based system achieves good performance in terms of accuracy, the rules derived from the system and human comprehensibility.

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 of a Knowledge Inference Algorithm using an Association Mining Method based on Ontologies (온톨로지 기반에서 연관 마이닝 방법을 이용한 지식 추론 알고리즘 연구)

  • Hwang, Hyun-Suk;Lee, Jun-Yeon
    • Journal of Korea Multimedia Society
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    • v.11 no.11
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    • pp.1566-1574
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    • 2008
  • Researches of current information searching focus on providing personalized results as well as matching needed queries in an enormous amount of information. This paper aims at discovering hidden knowledge to provide personalized and inferred search results based on the ontology with categorized concepts and relations among data. The current searching occasionally presents too much redundant information or offers no matching results from large volumes of data. To lessen this disadvantages in the information searching, we propose an inference algorithm that supports associated and inferred searching through the Jess engine based on the OWL ontology constraints and knowledge expressed by SWRL with association rules. After constructing the personalized preference ontology for domains such as restaurants, gas stations, bakeries, and so on, it shows that new knowledge information generated from the ontology and the rules is provided with an example of the domain of gas stations.

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An Ontological and Rule-based Reasoning for Music Recommendation using Musical Moods (음악 무드를 이용한 온톨로지 기반 음악 추천)

  • Song, Se-Heon;Rho, Seung-Min;Hwang, Een-Jun;Kim, Min-Koo
    • Journal of Advanced Navigation Technology
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    • v.14 no.1
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    • pp.108-118
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    • 2010
  • In this paper, we propose Context-based Music Recommendation (COMUS) ontology for modeling user's musical preferences and context and for supporting reasoning about the user's desired emotion and preferences. The COMUS provides an upper Music Ontology that captures concepts about the general properties of music such as title, artists and genre and also provides extensibility for adding domain-specific ontologies, such as Mood and Situation, in a hierarchical manner. The COMUS is music dedicated ontology in OWL constructed by incorporating domain specific classes for music recommendation into the Music Ontology. Using this context ontology, we believe that the use of logical reasoning by checking the consistency of context information, and reasoning over the high-level, implicit context from the low-level, explicit information. As a novelty, our ontology can express detailed and complicated relations among the music, moods and situations, enabling users to find appropriate music for the application. We present some of the experiments we performed as a case-study for music recommendation.