• Title/Summary/Keyword: 순회패턴

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Discovery of Frequent Traversal Patterns on Weighted Graph with Priority (중요도를 고려한 가중치 그래프에서의 빈발 순회패턴 탐사)

  • Lee Seong-Dae;Park Hyu-Chan
    • Proceedings of the Korean Information Science Society Conference
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    • 2005.11b
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    • pp.169-171
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    • 2005
  • 그래프를 사용하는 데이터 표현법은 직$\cdot$간접적으로 실세계를 표현하는 다양한 데이터 모델 중에서 가장 일반화된 방법으로 알려져 있다. 기본적으로 그래프는 정점과 간선으로 구성되며, 정점과 간선은 그 중요도나 운영 목적에 따라 다양한 가중치가 부여될 수 있다. 특히, 이러한 그래프를 순회하는 트랜잭션들로부터 중요한 순회패턴을 탐사하는 것은 흥미로운 일이다. 본 논문에서는, 정점과 간선에 가중치가 있고 방향성을 가진 기반 그래프가 주어졌을 때, 그 그래프를 순회하는 트랜잭션들로부터 가중치를 고려하여 빈발 순회패턴을 탐사하는 방법을 제안한다. 또한, 이렇게 탐사한 결과에 가중치를 고려한 중요도를 평가하여 빈발 순회패턴들 간의 우선순위를 결정할 수 있도록 한다. 이 과정에서 발생할 수 있는 트랜잭션 노이즈는 기반 그래프의 간선 가중치의 평균과 표준편차를 이용하여 제거함으로써 보다 신뢰성 있는 빈발 순회패턴을 탐사할 수 있다. 제안한 논문은 웹 로그 마이닝 등 그래프를 이용하는 다양한 응용 분야에 적용할 수 있을 것이다.

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Discovery of Frequent Traversal Patterns from Weighted Traversals and Performance Enhancement by Traversal Split (가중치 순회로부터 빈발 순회패턴의 탐사 및 순회분할을 통한 성능향상)

  • Lee, Seong-Dae;Park, Hyu-Chan
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.11 no.5
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    • pp.940-948
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    • 2007
  • Many real world problems can be modeled as a graph and traversals on the graph. The structure of Web pages can be represented as a graph, for example, and user's navigation paths on the Web pages can be model as a traversal on the graph. It is interesting to discover valuable patterns, such as frequent patterns, from such traversals. In this paper, we propose an algorithm to discover frequent traversal patterns when a directed graph and weighted traversals on the graph are given. Furthermore, we propose a performance enhancement by traversal split and then verify it through experiments.

Dynamic Link Recommendation Based on Anonymous Weblog Mining (익명 웹로그 탐사에 기반한 동적 링크 추천)

  • Yoon, Sun-Hee;Oh, Hae-Seok
    • The KIPS Transactions:PartC
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    • v.10C no.5
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    • pp.647-656
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    • 2003
  • In Webspace, mining traversal patterns is to understand user's path traversal patterns. On this mining, it has a unique characteristic which objects (for example, URLs) may be visited due to their positions rather than contents, because users move to other objects according to providing information services. As a consequence, it becomes very complex to extract meaningful information from these data. Recently discovering traversal patterns has been an important problem in data mining because there has been an increasing amount of research activity on various aspects of improving the quality of information services. This paper presents a Dynamic Link Recommendation (DLR) algorithm that recommends link sets on a Web site through mining frequent traversal patterns. It can be employed to any Web site with massive amounts of data. Our experimentation with two real Weblog data clearly validate that our method outperforms traditional method.

An Extended Dynamic Web Page Recommendation Algorithm Based on Mining Frequent Traversal Patterns (빈발 순회패턴 탐사에 기반한 확장된 동적 웹페이지 추천 알고리즘)

  • Lee KeunSoo;Lee Chang Hoon;Yoon Sun-Hee;Lee Sang Moon;Seo Jeong Min
    • Journal of Korea Multimedia Society
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    • v.8 no.9
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    • pp.1163-1176
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    • 2005
  • The Web is the largest distributed information space but, the individual's capacity to read and digest contents is essentially fixed. In these Web environments, mining traversal patterns is an important problem in Web mining with a host of application domains including system design and information services. Conventional traversal pattern mining systems use the inter-pages association in sessions with only a very restricted mechanism (based on vector or matrix) for generating frequent K-Pagesets. We extend a family of novel algorithms (termed WebPR - Web Page Recommend) for mining frequent traversal patterns and then pageset to recommend. We add a WebPR(A) algorithm into a family of WebPR algorithms, and propose a new winWebPR(T) algorithm introducing a window concept on WebPR(T). Including two extended algorithms, our experimentation with two real data sets, including LadyAsiana and KBS media server site, clearly validates that our method outperforms conventional methods.

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WebPR : A Dynamic Web Page Recommendation Algorithm Based on Mining Frequent Traversal Patterns (WebPR :빈발 순회패턴 탐사에 기반한 동적 웹페이지 추천 알고리즘)

  • Yoon, Sun-Hee;Kim, Sam-Keun;Lee, Chang-Hoon
    • The KIPS Transactions:PartB
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    • v.11B no.2
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    • pp.187-198
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    • 2004
  • The World-Wide Web is the largest distributed Information space and has grown to encompass diverse information resources. However, although Web is growing exponentially, the individual's capacity to read and digest contents is essentially fixed. From the view point of Web users, they can be confused by explosion of Web information, by constantly changing Web environments, and by lack of understanding needs of Web users. In these Web environments, mining traversal patterns is an important problem in Web mining with a host of application domains including system design and Information services. Conventional traversal pattern mining systems use the inter-pages association in sessions with only a very restricted mechanism (based on vector or matrix) for generating frequent k-Pagesets. We develop a family of novel algorithms (termed WebPR - Web Page Recommend) for mining frequent traversal patterns and then pageset to recommend. Our algorithms provide Web users with new page views, which Include pagesets to recommend, so that users can effectively traverse its Web site. The main distinguishing factors are both a point consistently spanning schemes applying inter-pages association for mining frequent traversal patterns and a point proposing the most efficient tree model. Our experimentation with two real data sets, including Lady Asiana and KBS media server site, clearly validates that our method outperforms conventional methods.

Mining Trip Patterns in the Large Trip-Transaction Database and Analysis of Travel Behavior (대용량 교통카드 트랜잭션 데이터베이스에서 통행 패턴 탐사와 통행 행태의 분석)

  • Park, Jong-Soo;Lee, Keum-Sook
    • Journal of the Economic Geographical Society of Korea
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    • v.10 no.1
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    • pp.44-63
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    • 2007
  • The purpose of this study is to propose mining processes in the large trip-transaction database of the Metropolitan Seoul area and to analyze the spatial characteristics of travel behavior. For the purpose. this study introduces a mining algorithm developed for exploring trip patterns from the large trip-transaction database produced every day by transit users in the Metropolitan Seoul area. The algorithm computes trip chains of transit users by using the bus routes and a graph of the subway stops in the Seoul subway network. We explore the transfer frequency of the transit users in their trip chains in a day transaction database of three different years. We find the number of transit users who transfer to other bus or subway is increasing yearly. From the trip chains of the large trip-transaction database, trip patterns are mined to analyze how transit users travel in the public transportation system. The mining algorithm is a kind of level-wise approaches to find frequent trip patterns. The resulting frequent patterns are illustrated to show top-ranked subway stations and bus stops in their supports. From the outputs, we explore the travel patterns of three different time zones in a day. We obtain sufficient differences in the spatial structures in the travel patterns of origin and destination depending on time zones. In order to examine the changes in the travel patterns along time, we apply the algorithm to one day data per year since 2004. The results are visualized by utilizing GIS, and then the spatial characteristics of travel patterns are analyzed. The spatial distribution of trip origins and destinations shows the sharp distinction among time zones.

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Retargetable Intermediate Code Optimization System Using Tree Pattern Matching Techniques (트리패턴매칭기법의 재목적 가능한 중간코드 최적화 시스템)

  • Kim, Jeong-Suk;O, Se-Man
    • The Transactions of the Korea Information Processing Society
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    • v.6 no.8
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    • pp.2253-2261
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    • 1999
  • ACK generates optimized code using the string pattern matching technique in pattern table generator and peephole optimizer. But string pattern matching method is not effective due to the many comparative actions in pattern selection. We designed and implemented the EM intermediate code optimizer using tree pattern matching algorithm composed of EM tree generator, optimization pattern table generator and tree pattern matcher. Tree pattern matching algorithm practices the pattern matching that centering around root node with refer to the pattern table, with traversing the EM tree by top-down method. As a result, compare to ACK string pattern matching methods, we found that the optimized code effected to pattern selection time, and contributed to improved the pattern selection time by about 10.8%.

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Moving Pattern Mining Algorithm of Moving Object for Support of Optimal Path Service (최적 경로 서비스 지원을 위한 이동 객체의 이동 패턴 탐사 알고리즘)

  • Ko, Hyun;Kim, Kwang-Jong;Lee, Yon-Sik
    • Proceedings of the Korea Information Processing Society Conference
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    • 2006.11a
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    • pp.413-416
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    • 2006
  • 최근 위치 측위 기술의 발달 및 GPS 기술의 상용화로 인해 무선 통신 기기의 보급이 증가하면서 다양한 위치 기반 서비스 개발을 위한 노력이 활발히 진행되고 있다. 사용자들의 특성에 맞게 개인화되고 세분화된 위치 기반 서비스를 제공하기 위해서는 방대한 이동 객체의 위치 이동 데이터로부터 의미있는 지식인 유용한 패턴을 추출하기 위한 시간 패턴 탐사가 필요하다. 기존의 시간 패턴 탐사 기법들 중 일부는 이동 객체의 시간에 따른 공간 속성들의 변화를 충분히 고려하지 못하거나 또는 시공간 속성을 동시에 고려한 패턴 탐사는 가능하나 전체 이동 패턴들 중 추출하고자 하는 패턴에 반드시 포함되어야 하는 공간 정보에 대한 제약이 없어 특정 지점들 사이의 최적 이동 경로 탐색 문제나 단위기간 동안 이동 객체가 순회해야 지점들에 대한 스케줄링 경로 예측 문제 등에 적용하기 어렵다. 따라서 본 논문에서는 이동 객체의 위치 이력 데이터들에 대한 시공간 속성들을 고려하여 다양한 이동 패턴들 중 객체의 최적 이동 경로에 해당하는 패턴을 탐색하기 위한 새로운 시간 패턴 마이닝 알고리즘을 제안한다. 제안된 알고리즘은 특정한 지점들 사이를 이동한 객체의 위치 데이터들 중 객체가 가장 빈번하게 이동한 경로를 탐색하여 최적 경로를 결정하는 알고리즘으로, 공간 추상 계층의 각 계층별 영역 내 포함여부를 고려한 위치 일반화를 수행하여 보다 효과적으로 이동 패턴을 탐색할 수 있다.

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Algorithm for Extracting the General Web Search Path Pattern (일반적인 웹 검색 경로패턴 추출 알고리즘)

  • Jang, Min-Seok;Ha, Eun-Mi
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • v.9 no.1
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    • pp.771-773
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    • 2005
  • There have been researches about analyzing the information retrieval patterns of log file to efficiently obtain the users' information research patters in web environment. The methods frequently used in their researches is to suggest the algorithms by which the frequent one is derived from the path traversal patterns in efficient way. But one of their general problems is not to provide the proper solution in case of complex, that is, general topological patterns. Therefore this paper tries to suggest a efficient algorithm after defining the general information retrieval pattern.

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An Effective Searching Method for Timestamped Event Sequences (타임스탬프된 이벤트 시퀀스를 위한 효율적인 검색 방법)

  • 이우준;노국필;강성구;박상현
    • Proceedings of the Korean Information Science Society Conference
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    • 2003.04a
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    • pp.782-784
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    • 2003
  • 시퀀스로부터 원하는 패턴을 효율적으로 검색하는 것은 타임 시리즈 분석이나 네트웍 침입 탐지와 같은 응용 환경에서 필수적이다. 예로서, 특정한 이벤트가 발생할 때마다 이벤트의 유형과 발생 시각을 기록하는 네트웍 이벤트 관리 시스템을 생각해보자. 네트웍 이벤트들의 연관 관계를 발견하기 위한 전형적인 질의 형태는 다음과 같다: "CiscoDCDLinkUp이 발생한 후 20초 이내에 MLMStatusUP이 발생하며 그 후 40초 이내에 CiscoDCDLinkUP이 발생하는 모든 경우를 검색하라." 이 논문은 위와 같은 질의를 효율적으로 처리할 수 있는 방안으로 빈도수 기반, 조인 기반, 트리 순회 기반의 검색 기법들을 제시한다.기법들을 제시한다.

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