• Title/Summary/Keyword: 패턴 유사성 검색

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Pattern Similarity Retrieval of Data Sequences for Video Retrieval System (비디오 검색 시스템을 위한 데이터 시퀀스 패턴 유사성 검색)

  • Lee Seok-Lyong
    • The KIPS Transactions:PartD
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    • v.13D no.3 s.106
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    • pp.347-356
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    • 2006
  • A video stream can be represented by a sequence of data points in a multidimensional space. In this paper, we introduce a trend vector that approximates values of data points in a sequence and represents the moving trend of points in the sequence, and present a pattern similarity matching method for data sequences using the trend vector. A sequence is partitioned into multiple segments, each of which is represented by a trend vector. The query processing is based on the comparison of these vectors instead of scanning data elements of entire sequences. Using the trend vector, our method is designed to filter out irrelevant sequences from a database and to find similar sequences with respect to a query. We have performed an extensive experiment on synthetic sequences as well as video streams. Experimental results show that the precision of our method is up to 2.1 times higher and the processing time is up to 45% reduced, compared with an existing method.

Grid-based Similar Trajectory Search for Moving Objects on Road Network (공간 네트워크에서 이동 객체를 위한 그리드 기반 유사 궤적 검색)

  • Kim, Young-Chang;Chang, Jae-Woo
    • Journal of Korea Spatial Information System Society
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    • v.10 no.1
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    • pp.29-40
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    • 2008
  • With the spread of mobile devices and advances in communication techknowledges, the needs of application which uses the movement patterns of moving objects in history trajectory data of moving objects gets Increasing. Especially, to design public transportation route or road network of the new city, we can use the similar patterns in the trajectories of moving objects that move on the spatial network such as road and railway. In this paper, we propose a spatio-temporal similar trajectory search algorithm for moving objects on road network. For this, we define a spatio-temporal similarity measure based on the real road network distance and propose a grid-based index structure for similar trajectory search. Finally, we analyze the performance of the proposed similar trajectory search algorithm in order to show its efficiency.

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Design Pattern Base4 Component Classification and Retrieval using E-SARM (설계 패턴 기반 컴포넌트 분류와 E-SARM을 이용한 검색)

  • Kim, Gui-Jung;Han, Jung-Soo;Song, Young-Jae
    • The KIPS Transactions:PartD
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    • v.11D no.5
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    • pp.1133-1142
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    • 2004
  • This paper proposes a method to classify and retrieve components in repository using the idea of domain orientation for the successful reuse of components. A design pattern was applied to existing systems and a component classification method is suggested here to compare the structural similarity between each component in relevant domain and criterion patterns. Classifying reusable components by their functionality and then depicting their structures with a diagram can increase component reusability and portability between platforms. Efficiency of component reuse can be raised because the most appropriate component to query and similar candidate components are provided in priority by use of-SARM algorithm.

A Study of Similarity Measures on Multidimensional Data Sequences Using Semantic Information (의미 정보를 이용한 다차원 데이터 시퀀스의 유사성 척도 연구)

  • Lee, Seok-Lyong;Lee, Ju-Hong;Chun, Seok-Ju
    • The KIPS Transactions:PartD
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    • v.10D no.2
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    • pp.283-292
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    • 2003
  • One-dimensional time-series data have been studied in various database applications such as data mining and data warehousing. However, in the current complex business environment, multidimensional data sequences (MDS') become increasingly important in addition to one-dimensional time-series data. For example, a video stream can be modeled as an MDS in the multidimensional space with respect to color and texture attributes. In this paper, we propose the effective similarity measures on which the similar pattern retrieval is based. An MDS is partitioned into segments, each of which is represented by various geometric and semantic features. The similarity measures are defined on the basis of these segments. Using the measures, irrelevant segments are pruned from a database with respect to a given query. Both data sequences and query sequences are partitioned into segments, and the query processing is based upon the comparison of the features between data and query segments, instead of scanning all data elements of entire sequences.

Trend Similarity Search In Time-Series Databases (시계열 데이터베이스에서의 트렌드 유사도 탐색)

  • 이지은;윤종필
    • Proceedings of the Korean Information Science Society Conference
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    • 1999.10a
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    • pp.337-339
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    • 1999
  • 최근 시계열 데이터에서 유사한 패턴을 탐색하는 기법이 다양한 응용분야에서 중요한 연구 주제로 자리잡고 있다. 본 논문에서는 시계열의 트랜드를 정의하고 유사한 트랜드를 가지 시계열을 찾음으로써 유사성의 개념을 좀 더 확장, 발전시켰다. 즉, 시계열에서의 트렌드를 두 개의 이동 평균 선의 관계를 통해 정의함으로써 두 시계열 간의 거리만으로 유사도를 측정했던 기존 연구와는 달리 좀 더 패턴을 가진 수열들을 찾고 이것을 기존의 DFT방법을 이용하여 대용량의 시계열 데이터베이스에서 사용자가 정의한 임계치 이하로 차이가 나는 시계열에 대해 유사 시계열로서 최종적으로 검색하게 된다.

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The Multi Knowledge-based Image Retrieval Technology for An Automobile Head Lamp Retrieval (자동차 전조등 검색을 위한 다중지식기반의 영상검색 기법)

  • 이병일;손병환;홍성욱;손성건;최흥국
    • Journal of the Institute of Convergence Signal Processing
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    • v.3 no.3
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    • pp.27-35
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    • 2002
  • A knowledge-based image retrieval technique is image searching methods using some features from the queried image. The materials in this study are automobile head lamps. The input data is composed of characters and images which have various pattern. The numbers, special symbols, and general letters are under the category of the character. The image informations are made up of the distribution of pixel data, statistical analysis, and state of pattern which are useful for the knowledge data. In this paper, we implemented a retrieval system for the scientific crime detection at traffic accident using the proposed multi knowledge-based image retrieval technique. The values for the multi knowledge-based image features were extracted from color and gray scale each. With this 22 features, we improved the retrieval efficiency about the color information and pattern information. Visual basic, crystal report and MS access DB were used for this application. We anticipate the efficient scientific detection for the traffic accident and the tracking of suspicious vehicle.

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Component Classification and Retrieval using Clustering Algorithm (클러스터링 알고리즘을 이용한 컴포넌트 분유 및 검색)

  • 김귀정
    • The Journal of the Korea Contents Association
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    • v.2 no.3
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    • pp.87-95
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    • 2002
  • This study proposes method to classify components in repository and retrieve them introducing the idea of domain orientation for successful reuse of components. About components of existing systems design pattern was applied to, us suggest component classification method to compare structural similarity between each component in relevant domain and criterion pattern. Component reusability and portability between platforms can be increased through classifying reusable components by function and giving their structures with diagram. Efficiency of component reuse can be raised because the most appropriate component to query and similar candidate components and provided in priority by use of E-SARM algorithm.

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Recommendation of Buying Points for Internet Shopping Malls (인터텟 쇼핑몰에서 구매시점의 추천)

  • 장은실;이용규
    • Proceedings of the Korea Multimedia Society Conference
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    • 2004.05a
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    • pp.491-494
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    • 2004
  • 최근 인터넷 쇼핑몰에서 상품을 구매하는 고객들에게 편의성과 효율성을 제공하기 위하여 구매자들의 선호도나 가격에 맞는 상품을 추천해 주는 연구들이 활발하게 진행되고 있다. 그러나 이러한 상품을 추천하는 연구들은 다양하게 발전하고 있지만 추천된 상품들의 구매시점에 관한 연구는 찾아보기 어렵다. 이에 본 논문에서는 인터넷 쇼핑몰의 적극적인 마케팅 일환으로 상품을 구매할 시점을 추천해 주는 방안을 제안한다. 이를 위하여 과거의 판매 기록 데이터베이스에 있는 판매가격의 기준 시계열 패턴과 유사한 시계열 패턴을 정규화 변환된 유사도로써 검색한다. 검색된 과거 가격 패턴을 기준으로 미래 가격 패턴을 분석하여, 미래 가격 패턴의 변화에 따라 상품 구매시점을 추천한다. 또한 본 논문에서는 이러한 구매시점을 추천하는 상품 추천 시스템을 설계한다.

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Improvement of Retrieval Convenience through the Correlation Analysis between Social Value and Query Pattern (소셜지수와 질의패턴의 상관관계 분석을 통한 검색 편의성 향상)

  • Ahn, Moo-Hyun;Park, Gun-Woo;Lee, Sang-Hoon
    • Proceedings of the Korea Information Processing Society Conference
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    • 2009.04a
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    • pp.391-394
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    • 2009
  • 정보의 양이 폭발적으로 증가함에 따라 웹 사용자가 원하는 적합한 데이터를 찾아내는 것은 매우 어렵다. 이는 웹 사용자마다 서로 다른 검색의도와 질의의 모호성에 의한 것으로, 이와 같은 검색의 어려움을 해결하기 위해 많은 연구들이 수행되어 왔다. 질의 로그는 검색자의 검색 의도가 내포되어 있는 중요한 자료이다. 따라서 웹 사용자별 질의 로그 패턴을 분석하여 유사한 질의를 사용하는 웹 사용자들을 클러스터링 하여 검색에 적용한다면 좀 더 유용한 정보를 획득할 수 있다. 즉, 특정 카테고리와 연관된 질의를 자주 사용하는 웹 사용자들은 해당 분야에 관심이 많을 것이며, 또한 다른 카테고리에 관심이 높은 사람보다 상호간에 소셜지수가 높게 나타날 것이다. 특정 주제에 대해 검색을 할 경우 해당 분야에 관심이 높은 웹 사용자들의 질의 및 클릭한 URL 정보를 상속받을 수 있다면 찾고자 하는 정보에 보다 빨리 접근할 수 있다. 따라서 본 연구는 질의패턴 분석을 통해 카테고리별로 관심도가 높은 웹 사용자들을 클러스터링 한 후 해당 카테고리에 대한 정보 검색시 이들이 사용한 질의와 클릭한 URL 정보를 웹 사용자들에게 제공해줌으로써 정보검색의 편의성을 향상시키기 위한 방안을 제안한다.

Buying Point Recommendation for Internet Shopping Malls Using Time Series Patterns (시계열 패턴을 이용한 인터넷 쇼핑몰에서의 구매시점 추천)

  • Jang, Eun-Sill;Lee, Yong-Kyu
    • Proceedings of the CALSEC Conference
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    • 2005.11a
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    • pp.147-153
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    • 2005
  • When a customer wants to buy an item at the Internet shopping mall, one of the difficulties is to decide when to buy the item because its price changes over time. If the shopping mall can be able to recommend appropriate buying points, it will be greatly helpful for the customer. Therefore, in this presentation, we propose a method to recommend buying points based on the time series analysis using a database that contains past prices data of items. The procedure to provide buying points for an item is as follows. First, we search past time series patterns from the database using normalized similarity, which are similar to the current time series pattern of the item. Second, we analyze the retrieved past patterns and predict the future price pattern of the item. Third, using the future price pattern, we recommend when to buy the item.

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