• Title/Summary/Keyword: 실시간 검색어

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Selecting a key issue through association analysis of realtime search words (실시간 검색어 연관 분석을 통한 핵심 이슈 선정)

  • Chong, Min-Yeong
    • Journal of Digital Convergence
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    • v.13 no.12
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    • pp.161-169
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    • 2015
  • Realtime search words of typical portal sites appear every few seconds in descending order by search frequency in order to show issues increasing rapidly in interest. However, the characteristics of realtime search words reordering within too short a time cause problems that they go over the key issues of the day. This paper proposes a method for deriving a key issue through association analysis of realtime search words. The proposed method first makes scores of realtime search words depending on the ranking and the relative interest, and derives the top 10 search words through descriptive statistics for groups. Then, it extracts association rules depending on 'support' and 'confidence', and chooses the key issue based on the results as a graph visualizing them. The results of experiments show that the key issue through association rules is more meaningful than the first realtime search word.

Estimating long-term sustainability of real-time issues on portal sites (포털사이트 실시간이슈 지속가능성 평가)

  • Chong, Min-Young
    • Journal of Digital Convergence
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    • v.17 no.12
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    • pp.255-260
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    • 2019
  • Real-time search keywords are not only limited to search keywords that are rapidly increasing interest in real-time, but also have a limitation that they are difficult to determine the sustainability as there is a difference in ranking between portal sites. Estimating sustainability for real-time search keywords is significant in terms of overcoming these limitations and providing some predictability. In particular, long-term search keywords that last for more than a month are of high value as long-lasting social issues. Therefore, in this paper, we analyze the interest based on the ranking of the real-time search keywords and the duration based on sustained weeks, days and hours of real-time search keywords by each portal site and the integrated portal site, and then estimating sustainability based on high level of interest and duration, and present a method to derive real-time search issues with high long-term sustainability.

Evaluating real-time search query variation for intelligent information retrieval service (지능 정보검색 서비스를 위한 실시간검색어 변화량 평가)

  • Chong, Min-Young
    • Journal of Digital Convergence
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    • v.16 no.12
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    • pp.335-342
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    • 2018
  • The search service, which is a core service of the portal site, presents search queries that are rapidly increasing among the inputted search queries based on the highest instantaneous search frequency, so it is difficult to immediately notify a search query having a high degree of interest for a certain period. Therefore, it is necessary to overcome the above problems and to provide more intelligent information retrieval service by bringing improved analysis results on the change of the search queries. In this paper, we present the criteria for measuring the interest, continuity, and attention of real-time search queries. In addition, according to the criteria, we measure and summarize changes in real-time search queries in hours, days, weeks, and months over a period of time to assess the issues that are of high interest, long-lasting issues of interest, and issues that need attention in the future.

An Analysis on Internet Information using Real Time Search Words (실시간 검색어 분석을 이용한 인터넷 정보 관심도 분석)

  • Noh, Giseop
    • The Journal of the Convergence on Culture Technology
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    • v.4 no.4
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    • pp.337-341
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    • 2018
  • As the online media continues to evolve and the mobile computing environment has improved dramatically, the distribution of Internet information has rapidly changed from one-sided to consumer-oriented. Therefore, measuring the interest of Internet information has become an important issue for suppliers and consumers. In this paper, we analyze the Internet information interest by analyzing the duration of real - time query by collecting data for one month by implementing real - time search word provided by domestic Internet information provider.

Topic based Question-Answering System using Real-Time Search Terms (실시간 검색어를 이용한 주제어 기반의 질의응답시스템)

  • Song, Il-Hyeon;Kang, Sang-Woo;Seo, Jung-Yun
    • Annual Conference on Human and Language Technology
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    • 2011.10a
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    • pp.33-37
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    • 2011
  • 본 논문에서는 실시간 검색어를 이용한 주제어 기반의 질의응답 시스템을 제안한다. 제안 시스템은 주제어로 사용자의 질의 범위를 제한함으로써 질의과정에서 발생할 수 있는 오류의 감소를 기대할 수 있다. 제안 시스템은 주제어 기반의 질의응답을 수행하기 위해 검색대상문서 색인, 질의유형결정, 검색결과의 순위화 과정을 거친다. 제안한 방법으로 기준시스템에 비해 P@5에서 질의유형별 평균 69%의 성능향상을 얻었다.

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Predicting changes of realtime search words using time series analysis and artificial neural networks (시계열분석과 인공신경망을 이용한 실시간검색어 변화 예측)

  • Chong, Min-Yeong
    • Journal of Digital Convergence
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    • v.15 no.12
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    • pp.333-340
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    • 2017
  • Since realtime search words are centered on the fact that the search growth rate of an issue is rapidly increasing in a short period of time, it is not possible to express an issue that maintains interest for a certain period of time. In order to overcome these limitations, this paper evaluates the daily and hourly persistence of the realtime words that belong to the top 10 for a certain period of time and extracts the search word that are constantly interested. Then, we present the method of using the time series analysis and the neural network to know how the interest of the upper search word changes, and show the result of forecasting the near future change through the actual example derived through the method. It can be seen that forecasting through time series analysis by date and artificial neural networks learning by time shows good results.

Implementation of Query Expansion Multimedia Data Retrieval System using "FUN" Based Ontology of Emotion (재미 감성 주제 온톨로지를 이용한 질의어 확장 멀티미디어 데이터 검색 시스템 구현)

  • Lee, Jung-Song;Byun, Dong-Ryul;Park, Soon-Cheol
    • Proceedings of the Korean Information Science Society Conference
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    • 2010.06c
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    • pp.279-284
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    • 2010
  • 최근 컴퓨터와 네트워크의 기술 발달로 멀티미디어 데이터가 폭발적으로 증가하고 있다. 따라서 정보검색 시스템도 텍스트 데이터 위주에서 벗어나 멀티미디어 데이터 검색이 큰 비중을 차지하고 있다. 또한 멀티미디어 데이터 질의어처리도 기술적인 변화와 함께 다양한 질의어 확장으로 검색의 정확성을 높이고 있다. 본 논문에서는 인간의 감성에 대한 '재미' 주제 온톨로지를 구축하여 질의어 확장에 응용하였고, 한편의 동영상에서 재미 요소를 찾아내는 멀티미디어 데이터 검색 시스템을 구축하였다. 온톨로지 구축은 한글 워드넷(KorLex)에서 "재미"라는 특정 감소 요소의 의미 계층 구조를 파악하고 토픽맵을 이용하여 구축하였다. 또한, 온톨로지에 정의된 용어들 사이의 가중치는 실시간으로 계산하여 질의어를 확장에 적용하였으며, 따라서 검색의 효율성과 질을 높였다. 검색방법은 사용자가 질의어를 직접 입력하는 텍스트 입력 검색과 온톨로지 구조를 이용한 GUI 인터페이스 검색방법으로 나누어 사용자의 편의성을 증대시켰다.

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Human Powered Question and Answering System by using Real-Time Interactive Communication : rPodo System (실시간 상호커뮤니케이션에 의한 인력기반 질의응답시스템 : rPodo)

  • Lim, Heuiseok;Hong, Sunghoon;Ryu, Kigon
    • Annual Conference on Human and Language Technology
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    • 2007.10a
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    • pp.179-182
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    • 2007
  • 우리가 현재 사용하고 있는 정보검색 시스템은 사용자의 질의와 연관있는 문서 집합만을 제공하므로 사용자가 원하는 정답을 찾기 위해서 사용자는 문서 집합을 브라우징하는 수고를 하여야 하며, 이러한 수고를 덜어주기 위해 개발되는 자동 질의응답시스템은 의미 분석 및 지식 추출 등의 기술적 한계로 사용자에게 만족할 만한 서비스를 제공하고 있지 못한 실정이다. 본 논문은 인터넷에 연결되어 있는 사람 중에 질의어에 대한 응답을 할 수 있는 지혜 제공자를 자동으로 검색 분류하여, 질의자와 실시간으로 연결하여 사용자와 지혜 제공자가 실시간 상호커뮤니케이션을 이용하여 지혜를 교류할 수 있는 인력기반 질의응답시스템인 알포도 시스템을 제안한다. 알포도 시스템은 질의응답모듈, 메티스 관리 모듈, 실시간 커뮤니케이션 모듈, 그리고 지식 추출 및 관리 모듈로 구성되며 현재 베타 서비스를 실시 중이다.

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Realtime Wisdom Acquisition System by using User Participation (사용자 참여에 의한 실시간 지혜 획득 시스템)

  • Lyu, Ki-Gon;Lim, Heui-Seok;Yu, Won-Hee
    • Proceedings of the KAIS Fall Conference
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    • 2007.11a
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    • pp.102-105
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    • 2007
  • 우리가 현재 사용하고 있는 정보검색 시스템은 사용자의 질의와 연관있는 문서 집합만을 제공하므로 사용자가 원하는 정답을 찾기 위해서 사용자는 문서 집합을 재탐색하는 수고를 하여야 하며, 이러한 수고를 덜어주기 위해 개발되는 자동 질의응답시스템은 의미 분석 및 지식 추출 등의 기술적 한계로 사용자에게 만족할 만한 서비스를 제공하고 있지 못한 실정이다. 본 논문은 인터넷에 연결되어 있는 사람 중에 질의어에 대한 응답을 할 수 있는 지혜 제공자를 자동으로 검색 분류하여, 질의자와 실시간으로 연결하여 사용자와 지혜 제공자가 실시간 상호커뮤니케이션을 이용하여 지혜를 교류할 수 있는 사용자 참여에 의한 실시간 지혜 획득 시스템인 위크 시스템을 제안한다.

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PIRS : Personalized Information Retrieval System using Adaptive User Profiling and Real-time Filtering for Search Results (적응형 사용자 프로파일기법과 검색 결과에 대한 실시간 필터링을 이용한 개인화 정보검색 시스템)

  • Jeon, Ho-Cheol;Choi, Joong-Min
    • Journal of Intelligence and Information Systems
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    • v.16 no.4
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    • pp.21-41
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    • 2010
  • This paper proposes a system that can serve users with appropriate search results through real time filtering, and implemented adaptive user profiling based personalized information retrieval system(PIRS) using users' implicit feedbacks in order to deal with the problem of existing search systems such as Google or MSN that does not satisfy various user' personal search needs. One of the reasons that existing search systems hard to satisfy various user' personal needs is that it is not easy to recognize users' search intentions because of the uncertainty of search intentions. The uncertainty of search intentions means that users may want to different search results using the same query. For example, when a user inputs "java" query, the user may want to be retrieved "java" results as a computer programming language, a coffee of java, or a island of Indonesia. In other words, this uncertainty is due to ambiguity of search queries. Moreover, if the number of the used words for a query is fewer, this uncertainty will be more increased. Real-time filtering for search results returns only those results that belong to user-selected domain for a given query. Although it looks similar to a general directory search, it is different in that the search is executed for all web documents rather than sites, and each document in the search results is classified into the given domain in real time. By applying information filtering using real time directory classifying technology for search results to personalization, the number of delivering results to users is effectively decreased, and the satisfaction for the results is improved. In this paper, a user preference profile has a hierarchical structure, and consists of domains, used queries, and selected documents. Because the hierarchy structure of user preference profile can apply the context when users perfomed search, the structure is able to deal with the uncertainty of user intentions, when search is carried out, the intention may differ according to the context such as time or place for the same query. Furthermore, this structure is able to more effectively track web documents search behaviors of a user for each domain, and timely recognize the changes of user intentions. An IP address of each device was used to identify each user, and the user preference profile is continuously updated based on the observed user behaviors for search results. Also, we measured user satisfaction for search results by observing the user behaviors for the selected search result. Our proposed system automatically recognizes user preferences by using implicit feedbacks from users such as staying time on the selected search result and the exit condition from the page, and dynamically updates their preferences. Whenever search is performed by a user, our system finds the user preference profile for the given IP address, and if the file is not exist then a new user preference profile is created in the server, otherwise the file is updated with the transmitted information. If the file is not exist in the server, the system provides Google' results to users, and the reflection value is increased/decreased whenever user search. We carried out some experiments to evaluate the performance of adaptive user preference profile technique and real time filtering, and the results are satisfactory. According to our experimental results, participants are satisfied with average 4.7 documents in the top 10 search list by using adaptive user preference profile technique with real time filtering, and this result shows that our method outperforms Google's by 23.2%.