• 제목/요약/키워드: Category based search

검색결과 119건 처리시간 0.019초

구매자 카테고리 기반 지능형 e-Commerce 메타 서치 엔진 (Buyer Category-Based Intelligent e-Commerce Meta-Search Engine)

  • 김경필;우상훈;김창욱
    • 산업공학
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    • 제19권3호
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    • pp.225-235
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    • 2006
  • In this paper, we propose an intelligent e-commerce meta-search engine which integrates distributed e-commerce sites and provides a unified search to the sites. The meta-search engine performs the following functions: (1) the user is able to create a category-based user query, (2) by using the WordNet, the query is semantically refined for increasing search accuracy, and (3) the meta-search engine recommends an e-commerce site which has the closest product information to the user’s search intention by matching the user query with the product catalogs in the e-commerce sites linked to the meta-search engine. An experiment shows that the performance of our model is better than that of general keyword-based search.

User Category-Based Intelligent e-Commerce Meta-Search Engine

  • 우상훈;김경필;김창욱
    • 한국지능정보시스템학회:학술대회논문집
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    • 한국지능정보시스템학회 2005년도 공동추계학술대회
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    • pp.346-355
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    • 2005
  • In this paper, we propose a meta-search engine which provides distributed product information through a unified access to multiple e-commerce. The meta-search engine proposed in this paper performs the following functions: (I) The user is able to create a category-based user query, (2) by using the WordNet, the query is semantical refined fined for increasing search accuracy, and (3) the meta-search engine recommends an e-commerce site which has the closest product information to the user's search intention, by matching the user query with the product catalogs in the e-commerce sites linked to the meta-search engine. An experiment shows that the performance of our model is better than that of general keyword-based search.

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비주얼 의류 검색기술을 위한 의류 속성 기반 Annotation 기법 개발 (Annotation Technique Development based on Apparel Attributes for Visual Apparel Search Technology)

  • 이은경;김양원;김선숙
    • 한국의류산업학회지
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    • 제17권5호
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    • pp.731-740
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    • 2015
  • Mobile (smartphone) search engine marketing is increasingly important. Accordingly, the development of visual apparel search technology to obtain easier and faster access to visual information in the apparel field is urgently needed. This study helps establish a proper classifying system for an apparel search after an analysis of search techniques for apparel search applications and existing domestic and overseas apparel sites. An annotation technique is developed in accordance with visual attributes and apparel categories based on collected data obtained by web crawling and apparel images collecting. The categorical composition of apparel is divided into wearing, image and style. The web evaluation site traces the correlations of the apparel category and apparel factors as dependent upon visual attributes. An appraisal team of 10 individuals evaluated 2860 pieces of merchandise images. Data analysis consisted of correlations between apparel, sleeve length and apparel category (based on an average analysis), and correlation between fastener and apparel category (based on an average analysis). The study results can be considered as an epoch-making mobile apparel search system that can contribute to enhancing consumer convenience since it enables an effective search of type, price, distributor, and apparel image by a mobile photographing of the wearing state.

An analysis of user behaviors on the search engine results pages based on the demographic characteristics

  • Bitirim, Yiltan;Ertugrul, Duygu Celik
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제14권7호
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    • pp.2840-2861
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    • 2020
  • The purpose of this survey-based study is to make an analysis of search engine users' behaviors on the Search Engine Results Pages (SERPs) based on the three demographic characteristics gender, age, and program studying. In this study, a questionnaire was designed with 12 closed-ended questions. Remaining questions other than the demographic characteristic related ones were about "tab", "advertisement", "spelling suggestion", "related query suggestion", "instant search suggestion", "video result", "image result", "pagination" and the amount of clicking results. The questionnaire was used and the data collected were analyzed with the descriptive statistics as well as the inferential statistics. 84.2% of the study population was reached. Some of the major results are as follows: Most of each demographic characteristic category (i.e. female, male, under-20, 20-24, above-24, English computer engineering, Turkish computer engineering, software engineering) have rarely or more click for tab, spelling suggestion, related query suggestion, instant search suggestion, video result, image result, and pagination. More than 50.0% of female category click advertisement rarely; however, for the others, 50.0% or more never click advertisement. For every demographic characteristic category, between 78.0% and 85.4% click 10 or fewer results. This study would be the first attempt with its complete content and design. Search engine providers and researchers would gain knowledge to user behaviors about the usage of the SERPs based on the demographic characteristics.

논문 검색 결과의 효과적인 브라우징을 위한 단어 군집화 기반의 결과 내 군집화 기법 (A Search-Result Clustering Method based on Word Clustering for Effective Browsing of the Paper Retrieval Results)

  • 배경만;황재원;고영중;김종훈
    • 한국정보과학회논문지:소프트웨어및응용
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    • 제37권3호
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    • pp.214-221
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    • 2010
  • 검색 결과 내 군집화(search-result clustering)는 검색 엔진으로부터 검색된 결과 내에서 비슷한 문서를 자동으로 군집화하는 기법이다. 본 논문에서는 논문 검색 서비스에 전문화된 새로운 결과 내 군집화 기법을 제안한다. 제안하는 시스템은 '범주체계생성기(Category Hierarchy Generation System)'와 '논문군집기(Paper Clustering System)'로 구성되어있다. '범주체계생생기'는 KOSEF의 연구 범주 체계를 이용하여 분야 시소러스라 불리는 범주 체계를 생성하고, K-means 알고리즘을 이용한 단어 군집화 알고리즘을 사용하여 분야 시소러스의 키워드 집합을 확장한다. '논문군집기'는 top-down 방식과 bottom-up 방식을 이용하여 각 논문의 범주를 결정한다. 제안하는 시스템은 논문 검색 서비스와 같은 전문 분야에 대한 검색 서비스에 유용하게 사용될 수 있을 것이다.

범주 기반 평가를 이용한 검색시스템의 성능 향상 (Improving Performance of Search Engine Using Category based Evaluation)

  • 김형일;윤현님
    • 한국콘텐츠학회논문지
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    • 제13권1호
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    • pp.19-29
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    • 2013
  • 정보에 대한 공간 복잡도가 높은 현재의 인터넷 환경에서는 사용자가 원하는 정보를 정확히 제공하는 것이 검색엔진의 목표이다. 그러나 대다수 검색엔진이 활용하는 내용 기반 기법은 현재의 인터넷 환경에서는 효과적인 도구로 사용될 수 없다. 내용 기반 기법은 어휘의 형태적 특성을 이용하여 웹페이지 가중치를 결정하기 때문에 웹페이지에 대한 변별력이 우수하지 못하다는 단점이 있다. 이러한 문제점을 해결하여 사용자에게 효과적인 정보를 제공하기 위해, 본 논문에서는 범주 기반 평가 기법을 제안한다. 범주 기반 평가 기법은 질의어를 의미관계로 확장하여 웹페이지와 유사성을 측정한다. 웹페이지 가중치 적용에 있어서, 범주 기반 평가 기법은 웹페이지 검색에 대한 사용자 반응과 질의어 범주를 가중치에 활용함으로써 웹페이지에 대한 변별력을 증가시킨다. 본 논문에서 제안한 기법은 사용자가 원하는 정보를 검색엔진을 통해 효과적으로 제공할 수 있는 장점이 있으며, 다양한 실험을 통해 범주 기반 평가 기법의 활용성을 확인하였다.

효율적인 상품등록을 위한 워드넷 기반의 오픈마켓 카테고리 검색 시스템 (A WordNet-based Open Market Category Search System for Efficient Goods Registration)

  • 홍명덕;김장우;조근식
    • 한국컴퓨터정보학회논문지
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    • 제17권9호
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    • pp.17-27
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    • 2012
  • 여러 오픈마켓에서 판매자가 동일한 상품을 등록할 시에 각 오픈마켓마다 다른 기준으로 제공되는 카테고리로 인하여 카테고리 선정에 어려움이 발생한다. 본 논문에서는 판매자가 오픈마켓에서 상품 등록 시 다른 오픈마켓에서 기 판매하고 있는 상품의 카테고리와 의미적으로 가장 연관성이 높은 카테고리를 추천하는 방법을 제안한다. 이때 입력받은 카테고리를 의미 분석하는 방법으로 형태소 분석, Wiki 낱말사전, WordNet, Google 번역 서비스를 사용하여 추출된 색인어로 카테고리를 검색한 후, 의미적 연관성 측정을 통하여 가장 의미가 비슷한 카테고리를 추천하는 방법이다. 실험 결과로 색인어 기반의 검색방법 보다 제안하는 의미분석 검색방법이 정확한 검색결과를 보여주어 시스템의 신뢰도를 향상시켰으며, 카테고리를 선택하는데 드는 시간비용을 절감해주는 것을 보인다.

Acquisition of Named-Entity-Related Relations for Searching

  • Nguyen, Tri-Thanh;Shimazu, Akira
    • 한국언어정보학회:학술대회논문집
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    • 한국언어정보학회 2007년도 정기학술대회
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    • pp.349-357
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    • 2007
  • Named entities (NEs) are important in many Natural Language Processing (NLP) applications, and discovering NE-related relations in texts may be beneficial for these applications. This paper proposes a method to extract the ISA relation between a "named entity" and its category, and an IS-RELATED-TO relation between the category and its related object. Based on the pattern extraction algorithm "Person Category Extraction" (PCE), we extend it for solving our problem. Our experiments on Wall Street Journal (WSJ) corpus show promising results. We also demonstrate a possible application of these relations by utilizing them for semantic search.

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시뮬레이션 최적화 기법과 절삭공정에의 응용 (Simulation Optimization Methods with Application to Machining Process)

  • 양병희
    • 한국시뮬레이션학회논문지
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    • 제3권2호
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    • pp.57-67
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    • 1994
  • For many practical and industrial optimization problems where some or all of the system components are stochastic, the objective functions cannot be represented analytically. Therefore, modeling by computer simulation is one of the most effective means of studying such complex systems. In this paper, with discussion of simulation optimization techniques, a case study in machining process for application of simulation optimization is presented. Most of optimization techniques can be classified as single-or multiple-response techniques. The optimization of single-response category, these strategies are gradient based search methods, stochastic approximate method, response surface method, and heuristic search methods. In the multiple-response category, there are basically five distinct strategies for treating the responses and finding the optimum solution. These strategies are graphical method, direct search method, constrained optimization, unconstrained optimization, and goal programming methods. The choice of the procedure to employ in simulation optimization depends on the analyst and the problem to be solved.

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인터넷 검색을 통한 암호화폐 수익률 및 변동성에 대한 인과검정: 적률인과 접근 (Tests for Causality from Internet Search to Return and Volatility of Cryptocurrency: Evidence from Causality in Moments)

  • 정기호;하성호
    • 한국정보시스템학회지:정보시스템연구
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    • 제29권1호
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    • pp.289-301
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    • 2020
  • Purpose This study analyzes whether Internet search of cryptocurrency has a causal relationship to return and volatility of cryptocurrency. Design/methodology/approach Google Trend was used as a measure of the level of Internet search, and the parametric tests of Granger causality in the 1st moment and the 2nd moment were adopted as the analysis method. We used Bitcoin's dollar-based price, which is the No. 1 market value among cryptocurrency. Findings The results showed that the Internet search measured by Google Trends has a causal relationship to cryptocurrency in both average and volatility, while there is a difference in causality and its degree according to the search area and category that Google Trend user should set. Because the Granger causality is based on the improvement of prediction, the analysis results of this study indicate that Internet search can be used as a leading indicator in predicting return and volatility of cryptocurrency.