• 제목/요약/키워드: Web recommendation service

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Personalized Web Service Recommendation Method Based on Hybrid Social Network and Multi-Objective Immune Optimization

  • Cao, Huashan
    • Journal of Information Processing Systems
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    • 제17권2호
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    • pp.426-439
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    • 2021
  • To alleviate the cold-start problem and data sparsity in web service recommendation and meet the personalized needs of users, this paper proposes a personalized web service recommendation method based on a hybrid social network and multi-objective immune optimization. The network adds the element of the service provider, which can provide more real information and help alleviate the cold-start problem. Then, according to the proposed service recommendation framework, multi-objective immune optimization is used to fuse multiple attributes and provide personalized web services for users without adjusting any weight coefficients. Experiments were conducted on real data sets, and the results show that the proposed method has high accuracy and a low recall rate, which is helpful to improving personalized recommendation.

고객 감성에 기반한 웹 추천 서비스 설계 (Design of Web Recommendation Service Based on Consumer's Sensibility)

  • 전용웅;김재국;박지영;조암
    • 대한인간공학회지
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    • 제27권4호
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    • pp.85-94
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    • 2008
  • Internet shopping has been getting more rousing due to extension of supply with PC(personal computer) and a rapid rise of use of internet. Some companies have been continually researching in how to serve individuals with each ordered information, which aimed at getting ordinary customers to induce to be loyal customers. For that, there is progress of a service of a web-recommendation which considers individual attribution. This study is suggested a method which is a service of the web-recommendation by access to sensibility ergonomics approach. Previous studies established that service had a weak point. It did not manage to realize new needs of customers. Proposed service of the web-recommendation has been designed, which preferentially propose goods included customer's sensibility to the customer who wants it. This study is expected that it will encourage a rise of products' purchasing power of customers, make an increase in a profit of both sellers and people who operate electric commercial and satisfaction of customers will go up in the same. Also, products accord with sensibility of customers will be recommended customers by the suggested service of the web-recommendation. In addition, there will be a decline of time-consuming about making a choice among some products.

키워드 기반 콘텐츠 추천 웹서비스 (Keyword-Based Contents Recommendation Web Service)

  • 박동진;김민근;송현섭;윤석민;김영종
    • 한국정보처리학회:학술대회논문집
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    • 한국정보처리학회 2022년도 춘계학술발표대회
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    • pp.346-348
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    • 2022
  • Keyword-Based Contents Recommendation Web Service(서비스명 'mobodra')는 미디어 종류 및 장르 취향을 유저별로 분석하여 이에 맞는 콘텐츠를 추천하는 웹 서비스이다. 유저들은 회원가입 시 웹에서 제공하는 랜덤한 작품 중에 일부를 선택하며 서버에서 이를 토대로 취향을 분석한다. 해당 분석을 토대로 유저별 선호 콘텐츠를 추천한다. 본 논문에서는 아이템 기반 협업 필터링(Item-Based Collaborative Filtering)을 통해 콘텐츠 추천 알고리즘을 구현한다. 유저의 활동 데이터 혹은 선호도 재조사 시 위 과정을 다시 실행하여 사용자의 취향을 갱신한다.

Clustering and Recommendation for Semantic Web Service in Time Series

  • Yu, Lei;Wang, Zhili;Meng, Luoming;Qiu, Xuesong
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제8권8호
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    • pp.2743-2762
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    • 2014
  • Promoted by cloud technology and new websites, plenty and variety of Web services are emerging in the Internet. Meanwhile some Web services become outdated even obsolete due to new versions, and a normal phenomenon is that some services work well only with other services of older versions. These laggard or improper services are lowering the performance of the composite service they involved in. In addition, using current technology to identify proper semantic services for a composite service is time-consuming and inaccurate. Thus, we proposed a clustering method and a recommendation method to deal with these problems. Clustering technology is used to classify semantic services according to their topics, functionality and other aspects from plenty of services. Recommendation technology is used to predict the possible preference of a composite service, and recommend possible component services to the composite service according to the history information of invocations and similar composite services. The experiments show that our clustering method with the help of Ontology and TF/IDF technology is more accurate than others, and our recommendation method has less average error than others in the series of missing rate.

온라인 추천 서비스를 위한 감성 기반 웹 에이전트 개발 (Development of Human Sensibility Based Web Agent for On-line Recommendation Service)

  • 임치환;정규웅
    • 대한인간공학회지
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    • 제23권3호
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    • pp.1-12
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    • 2004
  • In recent years, with the advent of e-Commerce the need for personalized services and one-to-one marketing has been emphasized. To be successful in increasingly competitive Internet marketplace, it is essential to capture customer loyalty. In this paper, we provide an intelligent agent approach to incorporate human sensibility into an one-to-one recommendation service in cyber shopping mall. Our system exploits human sensibility ergonomics and on-line preference matching technologies to tailor to the customer the suggestion of goods and the description of store catalog. Customizing the system`s behavior requires the parallel execution of several tasks during the interaction (e. g., identifying the customer`s emotional preference and dynamically generating the pages of the store catalog). The recommendation agent system composed of five modules including specialized agents carries on these tasks. By presenting goods that are consistent with user interests as well as user sensibility, the accuracy and satisfaction of the recommendation service may be improved.

추론엔진을 활용한 웹서비스 기반 추천 시스템 (Web Service based Recommendation System using Inference Engine)

  • 김성태;박수민;양정진
    • 지능정보연구
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    • 제10권3호
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    • pp.59-72
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    • 2004
  • 인터넷의 활용범위는 정보의 검색 및 수집을 넘어서 여러 범위로 확대되고 있고 정보의 양 또한 방대해졌다. 그러나 필요한 정보를 찾기는 더욱 어려워지고 있고, 그에 따라 개인에게 맞는 정보를 제공해주는 시스템이 절실해지고 있다. 본 연구에서는 웹 서비스 기반위에 추론엔진을 사용하여 사용자에게 가장 적합한 상품을 검색하여 추천해주는 추천 시스템의 모델을 제시하고 있다. 현재의 웹 애플리케이션이 사용자에게 필요한 서비스를 제공하는데 비하여 애플리케이션마다 상이한 플랫폼의 구조와 분산된 환경에서 객체간의 통신을 쉽게 하고 통일된 개발을 위해 표준이 필요하게 되었다. 웹 서비스는 프로그램 언어에 독립적이고 상호 운용적 환경을 제공하기 위한 것으로 네트워크를 통해 기술하고 배포하여 실행시킬 수 있는 모듈화된 애플리케이션을 의미한다. 본 논문은 웹 서비스 기반위에 시스템을 구축함으로써 표준 웹 서비스의 실현 가능성을 가늠하고, 추론엔진과 결합하여 사용자의 정보와 변화하는 성향을 토대로 필요한 정보를 예측하여 추천하는 추천시스템 개발에 중점을 둔다.

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감성공학을 이용한 온라인 추천 서비스 알고리즘 (On-line Recommendation Service Algorithm using Human Sensibility Ergonomics)

  • 임치환
    • 산업경영시스템학회지
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    • 제27권1호
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    • pp.38-46
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    • 2004
  • To be successful in increasingly competitive Internet marketplace, it is essential to capture customer loyalty. This paper deals with an intelligent agent approach to incorporate customer's sensibility into an one-to-one recommendation service in on-line shopping mall. In this paper the focus of interest is on-line recommendation service algorithm for development of Human Sensibility based web agent system. The recommendation agent system composed of seven services including specialized algorithm. The on-line recommendation service algorithm use human sensibility ergonomics and on-line preference matching technologies to tailor to the customer the suggestion of goods and the description of store catalog. Customizing the system's behavior requires the parallel execution of several tasks during the interaction (e.g., identifying the customer's emotional preference and dynamically generating the pages of the store catalog). Most of the present shopping malls go through the catalog of goods, but the future shopping malls will have the form of intelligent shopping malls by applying the on-line recommendation service algorithm.

A Study on Recommendation Method Based on Web 3.0

  • Kim, Sung Rim;Kwon, Joon Hee
    • 디지털산업정보학회논문지
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    • 제8권4호
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    • pp.43-51
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    • 2012
  • Web 3.0 is the next-generation of the World Wide Web and is included two main platforms, semantic technologies and social computing environment. The basic idea of web 3.0 is to define structure data and link them in order to more effective discovery, automation, integration, and reuse across various applications. The semantic technologies represent open standards that can be applied on the top of the web. The social computing environment allows human-machine co-operations and organizing a large number of the social web communities. In the recent years, recommender systems have been combined with ontologies to further improve the recommendation by adding semantics to the context on the web 3.0. In this paper, we study previous researches about recommendation method and propose a recommendation method based on web 3.0. Our method scores documents based on context tags and social network services. Our social scoring model is computed by both a tagging score of a document and a tagging score of a document that was tagged by a user's friends.

A Study on Recommendation Methods in Web Services: Existing Solutions and Their Limitations

  • Nasridinov, Aziz;Byun, Jeong-Yong
    • 한국정보처리학회:학술대회논문집
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    • 한국정보처리학회 2014년도 춘계학술발표대회
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    • pp.606-607
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    • 2014
  • Due to Web Services' platform and language independent nature, many business corporations have used them for the integration of various applications. However, the growing amount of available Web Services on Web forms a new problem - how to select and recommend an appropriate Web Service that matches the user requirements. In this paper, we investigate recommendation methods in Web Services, and discuss their strength and limitations.

Web Services deployment model based on WSG(Web Services gateway) in NGN

  • 이강찬;이승윤
    • 한국정보통신학회:학술대회논문집
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    • 한국해양정보통신학회 2008년도 춘계종합학술대회 A
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    • pp.909-912
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    • 2008
  • The 'convergence service' in NGN implies the integration of services in NGN with a unified manner to access each service in order to interwork with each service. This Recommendation defines the convergence model for NGN based on Web Services and provides a detailed scenario of each convergence model in form of Web Services.

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