• Title/Summary/Keyword: 이벤트패턴

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An Integrated Network Monitoring Based on Event Correlation Analysis (상관관계분석 기반 통합망 장애감시)

  • Cho, D.K.
    • Proceedings of the KIEE Conference
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    • 2005.07d
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    • pp.2970-2973
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    • 2005
  • 본 논문에서 상관관계분석 기술을 이용하여 IP망과 전송망에서 발생되는 장애유형을 패턴화하였으며, 이를 Rule로써 자동처리가 가능하도록 시스템화하였다. 정의된 Rule로 인하여 이벤트 자동분석 및 장애근원 도출이 가능해졌으며, 도출된 근원 이벤트는 운용자에게 이벤트 분류를 위한 수고를 덜어주고, 궁극적으로 신속한 대처가 가능하게 하였다. 알고리듬의 효율성을 보이기 위하여 IP망과 전송망을 대상으로 10여개의 장애유형 표준을 패턴화하고 Rule로서 정의하여 적용한다.

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A Study of Data Mining Techniques for CEP (CEP를 위한 데이터 마이닝 기법 연구)

  • Kang, Donghyun;Hwang, Buhyun
    • Proceedings of the Korea Information Processing Society Conference
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    • 2012.04a
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    • pp.1116-1117
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    • 2012
  • 최근에 이슈가 되고 있는 빅 데이터 처리 방법중의 하나로 CEP가 있다. 그러나 CEP는 사전에 정의된 질의에 해당되는 이벤트만을 선별하여 패턴 매칭 등의 기능을 수행하므로, 새로이 발견되는 이벤트를 찾는데 제약이 있다. 또한 실시간으로 생산되는 빅 데이터에 기초한 다양한 패턴 탐사에 한계를 노출하고 있다. 이 논문에서는, CEP 환경에서 빅 데이터 사이에 존재하는 다양한 이벤트와 패턴 탐사를 위한 실시간 데이터 마이닝 기법을 제안한다. 제안 방법은 CEP 엔진을 위한 고급의 패턴 매칭을 개발하고, CEP를 위한 실시간 데이터 마이닝 기법을 개발한다. 마지막으로, 기존의 CQL을 확장하여 개발한다. 이라한 방법을 통하여 기존의 CEP의 기능적인 한계를 극복할 수 있다.

Recognition of Car Driving Patterns using a 3-Axis Accelerometer and Orientation Sensor (3축 가속도 센서와 방향센서를 이용한 운전패턴 인식)

  • Song, Chung-Won;Nam, Kwang-Woo;Lee, Chang-Woo
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2012.01a
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    • pp.7-10
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    • 2012
  • 본 논문에서는 스마트폰을 이용하여 도로 주행 정보를 기록하고 운전자에게 패턴 별 주행정보를 제공하는 라이프로그(Lifelog) 형태의 서비스에 목적을 두고 있다. 운전자의 도로 주행 데이터를 데이터베이스화한 이 정보는 다양하게 이용될 수 있다. 주행 패턴 인식은 이벤트 구간 검출 과정을 통한 패턴 구간을 검출하고 가속도 센서와 방향 센서, 즉 멀티 센서 기반으로 주행패턴을 인식한다. 주행 패턴을 분석 후 시간 정보를 이용하여 촬영된 영상 데이터에서의 패턴 구간 영상을 같이 제공한다. 이렇게 패턴 구간의 센서 스트리밍 정보와 영상을 제공하면 운전자의 운전 성향 및 주행 기록을 분석하는데 이용될 수 있다. 따라서 주행패턴 인식 알고리즘을 프로토타입으로 제안한다.

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Named Entity and Event Annotation Tool for Cultural Heritage Information Corpus Construction (문화유산정보 말뭉치 구축을 위한 개체명 및 이벤트 부착 도구)

  • Choi, Ji-Ye;Kim, Myung-Keun;Park, So-Young
    • Journal of the Korea Society of Computer and Information
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    • v.17 no.9
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    • pp.29-38
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    • 2012
  • In this paper, we propose a named entity and event annotation tool for cultural heritage information corpus construction. Focusing on time, location, person, and event suitable for cultural heritage information management, the annotator writes the named entities and events with the proposed tool. In order to easily annotate the named entities and the events, the proposed tool automatically annotates the location information such as the line number or the word number, and shows the corresponding string, formatted as both bold and italic, in the raw text. For the purpose of reducing the costs of the manual annotation, the proposed tool utilizes the patterns to automatically recognize the named entities. Considering the very little training corpus, the proposed tool extracts simple rule patterns. To avoid error propagation, the proposed patterns are extracted from the raw text without any additional process. Experimental results show that the proposed tool reduces more than half of the manual annotation costs.

Adapted Sequential Pattern Mining Algorithms for Business Service Identification (비즈니스 서비스 식별을 위한 변형 순차패턴 마이닝 알고리즘)

  • Lee, Jung-Won
    • Journal of the Korea Society of Computer and Information
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    • v.14 no.4
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    • pp.87-99
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    • 2009
  • The top-down method for SOA delivery is recommended as a best way to take advantage of SOA. The core step of SOA delivery is the step of service modeling including service analysis and design based on ontology. Most enterprises know that the top-down approach is the best but they are hesitant to employ it because it requires them to invest a great deal of time and money without it showing any immediate results, particularly because they use well-defined component based systems. In this paper, we propose a service identification method to use a well-defined components maximally as a bottom-up approach. We assume that user's inputs generates events on a GUI and the approximate business process can be obtained from concatenating the event paths. We first find the core GUIs which have many outgoing event calls and form event paths by concatenating the event calls between the GUIs. Next, we adapt sequential pattern mining algorithms to find the maximal frequent event paths. As an experiment, we obtained business services with various granularity by applying a cohesion metric to extracted frequent event paths.

Event Detection System Using Twitter Data (트위터를 이용한 이벤트 감지 시스템)

  • Park, Tae Soo;Jeong, Ok-Ran
    • Journal of Internet Computing and Services
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    • v.17 no.6
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    • pp.153-158
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    • 2016
  • As the number of social network users increases, the information on event such as social issues and disasters receiving attention in each region is promptly posted by the bucket through social media site in real time, and its social ripple effect becomes huge. This study proposes a detection method of events that draw attention from users in specific region at specific time by using twitter data with regional information. In order to collect Twitter data, we use Twitter Streaming API. After collecting data, We implemented event detection system by analyze the frequency of a keyword which contained in a twit in a particular time and clustering the keywords that describes same event by exploiting keywords' co-occurrence graph. Finally, we evaluates the validity of our method through experiments.

Pattern-based RFID Logistic Process Triggering Using Complex Event (복합 이벤트를 이용한 패턴 기반 RFID 물류 프로세스 트리거링)

  • Yu, Yeong-Woong;Bae, Hye-Rim;Das, Sajal K.;Koo, Hoon-Young
    • The Journal of Society for e-Business Studies
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    • v.14 no.4
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    • pp.315-332
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    • 2009
  • In logistic environments, a process, in that it manages the flow of materials among partners, involves more than one organization. In this regard, a logistic process, as a combined process consisting of multiple sub processes, needs to be managed with controling interaction among partners. In achieving systematic management of a logistic process, traditional Business Process Management (BPM) cannot be used for the entire flow, since it lacks the ability to manage interactions among partners. Particularly in logistic environments where RFID technologies are used, how to deal with the connection between RFID event and logistic flow has not been properly addressed. To overcome this limitation, this paper proposes a new method of managing multi-organizational logistic processes based on RFID events. We define inter-workflow pattern, and suggest ECA(Event-Condition-Action) rules for auto triggering of logistic processes. To adjust the rules to RFID events, we invent RFID-based ECA rules using complex event. A prototype system has been developed for the purpose of demonstrating the effectiveness of our approach.

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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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Kinematic Access For Generation of Realistic Behavior of Artificial Fish in Virtual Merine World (가상해저공간에서 Artificial Fish의 사실적인 행동 생성을 위한 운동학적 접근)

  • Kim, Chong-Han;Jung, Seung-Moon;Shin, Min-Woo;Kang, Im-Chul
    • The Journal of the Korea Contents Association
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    • v.8 no.1
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    • pp.308-317
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    • 2008
  • The objects real time rendered in the 3D cyber space can interact with each others according to the events which are happened when satisfying some conditions. But to representing the behaviors with these interactions, too many event conditions are considered because each behavior pattern and event must be corresponded in a one-to-one ratio. It leads to problems which increase the system complexity. So, in this paper, we try to physical method based on elasticity force for representing more realistic behaviors of AI fish and apply to the deformable multi-detection sensor, so we suggest the new method which can create the various behavior patterns responding to one evasion event.

Visual Analytics for Abnormal Event detection using Seasonal-Trend Decomposition and Serial-Correlation (Seasonal-Trend Decomposition과 시계열 상관관계 분석을 통한 비정상 이벤트 탐지 시각적 분석 시스템)

  • Yeon, Hanbyul;Jang, Yun
    • Journal of KIISE
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    • v.41 no.12
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    • pp.1066-1074
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    • 2014
  • In this paper, we present a visual analytics system that uses serial-correlation to detect an abnormal event in spatio-temporal data. Our approach extracts the topic-model from spatio-temporal tweets and then filters the abnormal event candidates using a seasonal-trend decomposition procedure based on Loess smoothing (STL). We re-extract the topic from the candidates, and then, we apply STL to the second candidate. Finally, we analyze the serial-correlation between the first candidates and the second candidate in order to detect abnormal events. We have used a visual analytic approach to detect the abnormal events, and therefore, the users can intuitively analyze abnormal event trends and cyclical patterns. For the case study, we have verified our visual analytics system by analyzing information related to two different events: the 'Gyeongju Mauna Resort collapse' and the 'Jindo-ferry sinking'.