• Title/Summary/Keyword: 사용자 분류

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User Behavior Classification for Contents Configuration of Life-logging Application (라이프로깅 애플리케이션 콘텐츠 구성을 위한 사용자 행태 분류)

  • Kwon, Jieun;Kwak, Sojung;Lim, Yoon Ah;Whang, Min Cheol
    • Science of Emotion and Sensibility
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    • v.19 no.4
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    • pp.13-20
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    • 2016
  • Recently, life-logging service which has expanded to measure and record the daily life of the users and to share with others are increasing. In particular, as life-logging services based on the application has become popular with the development of wearable-devices and smart-phones, the contents of this service are produced by user behavior and are provided in infographic menu form. The purpose of this paper is to extract user behavior and classify for making contents items of life-logging service. For this paper, the first of all, we discuss the definition and characteristics of life-logging and research the contents based on user behavior related to life-logging by the publications including thesis, articles, and books. Secondly, we extract and classify the user behavior to build the contents for life-logging service. We gather users' action words from publication materials, researches, and contents of existing life-logging service. And then collected words are analyzed by FGI (Focus Group Interview) and survey. As the result, 39 words which suit for contents of life-logging service are extracted by verify suitability. Finally, the extracted 39 words are classified for 19 categories -'Eat', 'Keep house', 'Diet', 'Travel', 'Work out', 'Transit', 'Shoot', 'Meet', 'Feel', 'Talk', 'Care for', 'Drive', 'Listen', 'Go online', 'Sleep', 'Go', 'Work', 'Learn', 'Watch' - which are suggested by the surveys, statistical analysis, and FGI. We will discuss the role and limitations of this results to build contents configuration based on life-logging application in this study.

Designing mobile personal assistant agent based on users' experience and their position information (위치정보 및 사용자 경험을 반영하는 모바일 PA에이전트의 설계)

  • Kang, Shin-Bong;Noh, Sang-Uk
    • Journal of Internet Computing and Services
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    • v.12 no.1
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    • pp.99-110
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    • 2011
  • Mobile environments rapidly changing and digital convergence widely employed, mobile devices including smart phones have been playing a critical role that changes users' lifestyle in the areas of entertainments, businesses and information services. The various services using mobile devices are developing to meet the personal needs of users in the mobile environments. Especially, an LBS (Location-Based Service) is combined with other services and contents such as augmented reality, mobile SNS (Social Network Service), games, and searching, which can provide convenient and useful services to mobile users. In this paper, we design and implement the prototype of mobile personal assistant (PA) agents. Our personal assistant agent helps users do some tasks by hiding the complexity of difficult tasks, performing tasks on behalf of the users, and reflecting the preferences of users. To identify user's preferences and provide personalized services, clustering and classification algorithms of data mining are applied. The clusters of the log data using clustering algorithms are made by measuring the dissimilarity between two objects based on usage patterns. The classification algorithms produce user profiles within each cluster, which make it possible for PA agents to provide users with personalized services and contents. In the experiment, we measured the classification accuracy of user model clustered using clustering algorithms. It turned out that the classification accuracy using our method was increased by 17.42%, compared with that using other clustering algorithms.

User Behavior Model Based on Shooting Photograph Interaction for Funology ; Focused on 'PhoDoSee' Kiosk (퍼놀로지를 위한 사진 촬영 인터랙션 기반에서의 사용자 행태 모델 ; '포도씨' 키오스크를 중심으로)

  • Kim, Hanjae;Kwon, Jieun
    • Cartoon and Animation Studies
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    • s.36
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    • pp.643-667
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    • 2014
  • Recently, shooting photographs have become highly popular among general public and been used by various media such as digital camera, mobile, and kiosk. We could find that users prefer to Funology which is combined by fun and hardware technology on emotional point of view. Shooting photographs attracts user participation and makes effect of design to expand. The goal of this study is to classify user actions in a electronic kiosk which includes digital photography function based on the perspective of Funology and to bulit user behaviors model. Therefore user group model will be defined, and then interaction design guidelines of shooting photographs will be proposed. For this research, first of all, the concepts of Funology and user interaction with taking photographs are classified to three types which is based on literature investigation. Secondly, "Phodosee" kiosk is examined with Funology design elements which have been categorized beforehand. Then user's behaviors which are shown their interaction with "Phodosee" kiosk are observed and analyzed using video ethnography based on Funology perspectives. Finally, four persona models are suggested based on user's behaviors as follows; 1) to avoid being taken photography, 2) to try to shoot photography, 3) to participate shooting photography and 4) to lead others to take photography. To summarize this study, effects and limitations of Funology design elements using digital photography are discussed and guideline is suggested to improve user experience design.

Gesture Recognition Method using Tree Classification and Multiclass SVM (다중 클래스 SVM과 트리 분류를 이용한 제스처 인식 방법)

  • Oh, Juhee;Kim, Taehyub;Hong, Hyunki
    • Journal of the Institute of Electronics and Information Engineers
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    • v.50 no.6
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    • pp.238-245
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    • 2013
  • Gesture recognition has been widely one of the research areas for natural user interface. This paper presents a novel gesture recognition method using tree classification and multiclass SVM(Support Vector Machine). In the learning step, 3D trajectory of human gesture obtained by a Kinect sensor is classified into the tree nodes according to their distributions. The gestures are resampled and we obtain the histogram of the chain code from the normalized data. Then multiclass SVM is applied to the classified gestures in the node. The input gesture classified using the constructed tree is recognized with multiclass SVM.

A Study On Filtering of Newspaper Article by Using Bayesian Classifier (베이지안 분류기를 이용한 신문기사 필터링)

  • 손기준;노태길;이상조
    • Proceedings of the Korean Information Science Society Conference
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    • 2002.04b
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    • pp.490-492
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    • 2002
  • 본 논문에서는 필터링 문제를 이진 문서 분류 문제로 보고 신문기사 필터링에 베이지안 분류자를 사용한다. 신문 기사 필터링 문제에서 베이지안 분류자를 사용할 경우 학습 문서가 고정되어 있지 않기 때문에 여러 가지 파라미터를 사용하여 실험을 하였다. 실험 결과 베이지안 이진 분류기는 제한된 학습 문서에서 더 나은 성능을 보였고 해당 문서 집합에서 10%이상 비율의 문서를 사용자가 선택해야 함을 알 수 있었다.

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Design of Auto Navigation System for Apparel HS Code Based on Big Data Analysis (빅데이터 기반 HS CODE 자동 제안 시스템 설계)

  • Choi, Shinah
    • Proceedings of The KACE
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    • 2018.08a
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    • pp.155-158
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    • 2018
  • 수출입 기업이 관세 혜택을 받거나 올바른 관세를 측정하기 위해서는 통관 진행 시 올바른 품목 분류가 선행되어야 한다. 그러나 품목 분류의 기준이 1만개가 넘을 정도로 방대하여 신규 사용자나 품목에 이해가 부족할 경우 분류에 어려움이 따른다. 이러한 HS Code 분류의 한계점을 보완하기 위해 빅데이터 기반 이미지 분석을 통한 자동 제안 시스템을 목표로 하였다. 본 논문에서는 이미지 분석을 통한 HS Code 자동 제안시스템을 위한 수출입 품목 중 의류 품목의 수출입 품목에 국한하여 의류 HS Code 자동 분류 시스템을 설계하고, 제안한다.

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A Study on Word Semantic Categories for Natural Language Question Type Classification and Answer Extraction (자연어 질의 유형판별과 응답 추출을 위한 어휘 의미체계에 관한 연구)

  • Yoon Sung-Hee
    • Proceedings of the KAIS Fall Conference
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    • 2004.11a
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    • pp.141-144
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    • 2004
  • 질의응답 시스템이 정보검색 시스템과 다른 중요한 점은 질의 처리 과정이며, 자연어 질의 문장에서 사용자의 질의 의도를 파악하여 질의 유형을 분류하는 것이다. 본 논문에서는 질의 주-형을 분류하기 위해 복잡한 분류 규칙이나 대용량의 사전 정보를 이용하지 않고 질의 문장에서 의문사에 해당하는 어휘들을 추출하고 주변에 나타나는 명사들의 의미 정보를 이용하여 세부적인 정답 유형을 결정할 수 있는 질의 유형 분류 방법을 제안한다. 의문사가 생략된 경우의 처리 방법과 동의어 정보와 접미사 정보를 이용하여 질의 유형 분류 성능을 향상시킬 수 있는 방법을 제안한다.

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A Keyword Search Model based on the Collected Information of Web Users (웹 사용자 누적 사용정보 기반의 키워드 검색 모델)

  • Yoon, Sung-Hee
    • The Journal of the Korea institute of electronic communication sciences
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    • v.7 no.4
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    • pp.777-782
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    • 2012
  • This paper proposes a technique for improving performance using word senses and user feedback in web information retrieval, compared with the retrieval based on ambiguous user query and index. Disambiguation using query word senses can eliminating the irrelevant pages from the search result. According to semantic categories of nouns which are used as index for retrieval, we build the word sense knowledge-base and categorize the web pages. It can improve the precision of retrieval system with user feedback deciding the query sense and information seeking behavior to pages.

Personalized Book Recommendation System based on Semantic Web (시맨틱웹 기반 개인 맞춤형 도서 추천 시스템)

  • Kim, Jin-Chun
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.15 no.5
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    • pp.1097-1104
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    • 2011
  • In this paper, we propose a semantic web approach for personalized book recommendation. Our approach takes advantage of the content-based recommendation and improves its disadvantage that users should input their interesting fields into all book search systems they use. Our approach provides the sharing of users' profile with their interesting fields by enabling user's interesting fields to be described over each book classification ontology of various book information providers. We also provide a middleware that manages users' profiles written in RDF and analizes similarity between user's interesting field and each concept over the book classification ontology. Our approach provide better performance than traditional keyword-based search by sharing the user's profile among book recommendation systems.

A Guiding System of Visualization for Quantitative Bigdata Based on User Intention (사용자 의도 기반 정량적 빅데이터 시각화 가이드라인 툴)

  • Byun, Jung Yun;Park, Young B.
    • KIPS Transactions on Software and Data Engineering
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    • v.5 no.6
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    • pp.261-266
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    • 2016
  • Chart suggestion method provided by various existing data visualization tools makes chart recommendations without considering the user intention. Data visualization is not properly carried out and thus, unclear in some tools because they do not follow the segmented quantitative data classification policy. This paper provides a guideline that clearly classifies the quantitative input data and that effectively suggests charts based on user intention. The guideline is two-fold; the analysis guideline examines the quantitative data and the suggestion guideline recommends charts based on the input data type and the user intention. Following this guideline, we excluded charts in disagreement with the user intention and confirmed that the time user spends in the chart selection process has decreased.