• 제목/요약/키워드: Visual Search

검색결과 452건 처리시간 0.027초

A Content Analysis of the Trends in Vision Research With Focus on Visual Search, Eye Movement, and Eye Track

  • Rhie, Ye Lim;Lim, Ji Hyoun;Yun, Myung Hwan
    • 대한인간공학회지
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    • 제33권1호
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    • pp.69-76
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    • 2014
  • Objective: This study aims to present literature providing researchers with insights on specific fields of research and highlighting the major issues in the research topics. A systematic review is suggested using content analysis on literatures regarding "visual search", "eye movement", and "eye track". Background: Literature review can be classified as "narrative" or "systematic" depending on its approach in structuring the content of the research. Narrative review is a traditional approach that describes the current state of a study field and discusses relevant topics. However, since literatures on specific area cover a broad range, reviewers inherently give subjective weight on specific issues. On the contrary, systematic review applies explicit structured methodology to observe the study trends quantitatively. Method: We collected meta-data of journal papers using three search keywords: visual search, eye movement, and eye track. The collected information contains an unstructured data set including many natural languages which compose titles and abstracts, while the keyword of the journal paper is the only structured one. Based on the collected terms, seven categories were evaluated by inductive categorization and quantitative analysis from the chronological trend of the research area. Results: Unstructured information contains heavier content on "stimuli" and "condition" categories as compared with structured information. Studies on visual search cover a wide range of cognitive area whereas studies on eye movement and eye track are closely related to the physiological aspect. In addition, experimental studies show an increasing trend as opposed to the theoretical studies. Conclusion: By systematic review, we could quantitatively identify the characteristic of the research keyword which presented specific research topics. We also found out that the structured information was more suitable to observe the aim of the research. Chronological analysis on the structured keyword data showed that studies on "physical eye movement" and "cognitive process" were jointly studied in increasing fashion. Application: While conventional narrative literature reviews were largely dependent on authors' instinct, quantitative approach enabled more objective and macroscopic views. Moreover, the characteristics of information type were specified by comparing unstructured and structured information. Systematic literature review also could be used to support the authors' instinct in narrative literature reviews.

객체의 움직임을 고려한 탐색영역 설정에 따른 가중치를 공유하는 CNN구조 기반의 객체 추적 (Object Tracking based on Weight Sharing CNN Structure according to Search Area Setting Method Considering Object Movement)

  • 김정욱;노용만
    • 한국멀티미디어학회논문지
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    • 제20권7호
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    • pp.986-993
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    • 2017
  • Object Tracking is a technique for tracking moving objects over time in a video image. Using object tracking technique, many research are conducted such a detecting dangerous situation and recognizing the movement of nearby objects in a smart car. However, it still remains a challenging task such as occlusion, deformation, background clutter, illumination variation, etc. In this paper, we propose a novel deep visual object tracking method that can be operated in robust to many challenging task. For the robust visual object tracking, we proposed a Convolutional Neural Network(CNN) which shares weight of the convolutional layers. Input of the CNN is a three; first frame object image, object image in a previous frame, and current search frame containing the object movement. Also we propose a method to consider the motion of the object when determining the current search area to search for the location of the object. Extensive experimental results on a authorized resource database showed that the proposed method outperformed than the conventional methods.

An Optimized e-Lecture Video Search and Indexing framework

  • Medida, Lakshmi Haritha;Ramani, Kasarapu
    • International Journal of Computer Science & Network Security
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    • 제21권8호
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    • pp.87-96
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    • 2021
  • The demand for e-learning through video lectures is rapidly increasing due to its diverse advantages over the traditional learning methods. This led to massive volumes of web-based lecture videos. Indexing and retrieval of a lecture video or a lecture video topic has thus proved to be an exceptionally challenging problem. Many techniques listed by literature were either visual or audio based, but not both. Since the effects of both the visual and audio components are equally important for the content-based indexing and retrieval, the current work is focused on both these components. A framework for automatic topic-based indexing and search depending on the innate content of the lecture videos is presented. The text from the slides is extracted using the proposed Merged Bounding Box (MBB) text detector. The audio component text extraction is done using Google Speech Recognition (GSR) technology. This hybrid approach generates the indexing keywords from the merged transcripts of both the video and audio component extractors. The search within the indexed documents is optimized based on the Naïve Bayes (NB) Classification and K-Means Clustering models. This optimized search retrieves results by searching only the relevant document cluster in the predefined categories and not the whole lecture video corpus. The work is carried out on the dataset generated by assigning categories to the lecture video transcripts gathered from e-learning portals. The performance of search is assessed based on the accuracy and time taken. Further the improved accuracy of the proposed indexing technique is compared with the accepted chain indexing technique.

다조건 상품 검색을 지원하는 지능형 검색 시스템 (Intelligent Search System Providing The Various Conditional Product Search)

  • 서양진;한상용
    • 한국전자거래학회지
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    • 제4권3호
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    • pp.179-196
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    • 1999
  • A cyber shopping mall is a place where consumers acquire the product information and make purchase decision in the cyber space. Even though there are many advantages over traditional malls, there are still several limitations to do shopping in an existing cyber mall. One of them is the absence of efficient search tool to handle various products specifications. Existing search systems usually support the "keyword search only" with limited product information. Consumers spend lots of their time and efforts in searching products and comparing them. Recently, some web sites provide the shopping mall comparison service that supports the additional search conditions such as price and maker. These services improve the situation but it is not still acceptable. In this paper, we propose an intelligent product search system based on a mediator which supports various conditional search for each product. Our system provides consumers with search results that satisfy purchase specifications. Our system is implemented in Visual basic and pert and experimental results show satisfactory performance.

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이중 능동보 모델을 이용한 영상 추적 알고리즘 (Visual tracking algorithm using the double active bar models)

  • 고국원;김재선;조형석
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 1996년도 한국자동제어학술회의논문집(국내학술편); 포항공과대학교, 포항; 24-26 Oct. 1996
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    • pp.89-92
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    • 1996
  • In this paper, we developed visual tracking algorithm using double active bar. The active bar model to represent the object can reduce the search space of energy surface and better performance than those of snake model. However, the contour will not find global equilibrium when driving force caused by image may be weak. To overcome this problem. Double active bar is proposed for finding the global minimum point without any dependence on initialization. To achieve the goal, an deformable model with two initial contours in attempted to search for a global minimum within two specific initial contours. This approach improve the performance of finding the contour of target. To evaluate the performance, some experiments are executed. We can achieved the good result for tracking a object on noisy image.

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비주얼 씽킹과 SNS를 활용한 진로교육에 관한 연구 (A Study on Career Education through Visual Thinking and Social Network Service)

  • 송기정;마대성
    • 정보교육학회논문지
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    • 제22권2호
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    • pp.275-284
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    • 2018
  • 본 연구는 비주얼 씽킹과 SNS를 활용한 진로교육을 실시하여 학생들의 진로 인식을 제고하고자 하였다. 또한 학부모들의 자녀의 진로에 대한 관심을 증대시키며, 초등학교 진로교육의 목표인 학생의 발달 단계에 맞는 진로교육을 통해 자신의 적성과 능력에 알맞은 진로를 탐색하도록 하였다. 비교 연구 결과 실험반이 '진로에 대한 의견 및 태도', '정보탐색 및 합리적인 의사결정', '직업에 대한 지식' 전 영역에서 비교반에 비해 유의미한 결과를 가져왔다. 연구 결과 비주얼 씽킹과 SNS를 활용한 진로교육이 학생들의 진로 인식을 고취하고 진로 탐색에 적극적인 태도를 가져오는 긍정적인 효과를 보이는 것으로 나타났다.

비교 검색을 위한 지능형 검색 시스템 (Intelligent Search System for Comparative Searches)

  • Yangjin Seo;Sangyong Han
    • 한국전자거래학회:학술대회논문집
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    • 한국전자거래학회 2001년도 International Conference CALS/EC KOREA
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    • pp.625-629
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    • 2001
  • A cyber shopping mall is a place where consumers acquire product information, and make purchase decisions in the cyber space. Even though it offers many advantages over traditional malls, there are still several limitations to do shopping in an existing cyber mall. One of these limitations is the absence of an efficient shopping aid to compare multiple items from multiple malls. Existing search systems usually support a keyword search with limited conditions. Consumers spend lots of their time to compare multiple alternatives from search results. In this paper, we propose an intelligent product search system. There are two main features in our system. The first one is a full support of comparison shopping with multiple perspectives based on commercial search engines. The second one is an enhancement to the shopping aid based on a new concept of Shopping AssistanT. Our system is implemented in Visual Basic and PERL, and experimental results show a satisfactory performance.

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Comparison of Visual Task Performance between CRT and TFT-LCD

  • Kim, Sang-Ho;Chang, Sung-Ho
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2002년도 International Meeting on Information Display
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    • pp.1064-1067
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    • 2002
  • The effects of different optical characteristics between desktop CRT and TFT-LCD were compared in terms of visual performance during a 4-hr visual text and icon search tasks. The result showed that CRT is more suitable for presenting graphic information whereas TFT-LCD is suitable for presenting text information at the state of the art display technology.

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정보기기 디자인에 있어서 사용자의 감성을 고려한 콘텐츠 개발방법 - 보행자의 이동지원을 목적으로 한 감성정보검색을 사례로 - (Design of Information Appliances Based on User's Preference - in the Case of Information Retrieval Method for Pedestrians' Navigation -)

  • 김돈한
    • 디자인학연구
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    • 제20권3호
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    • pp.203-214
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    • 2007
  • 본 논문은 이동(Navigation)지원을 목적으로 하는 정보기기 콘텐츠를 개발하기 위하여 보행자의 감성이 반영된 감성정보처리법을 퍼지이론에 기초하여 제안하였다. 먼저, 가상의 목적지로 설정한 상업공간의 감성평가를 실시하고, 시각적 특징과 감성적 특징 사이의 인과관계를 규명하여 내비게이션 지식베이스로 구축하는 방법을 제안하였다. 지식베이스는 감성적 특징 사이의 상관관계모델, 시각적 특징량과 감성적 특징량 사이의 인과관계모델, 그리고 시각적 특징량과 물리적 특징량 사이의 변환모델로 구축된다. 다음으로, 보행자의 목적지에 대한 감성적 취향과 내비게이션에 주어지는 시간적 제약조건에 따라 목적지 탐색을 4가지 유형으로 분류하고 각각의 유형에 적합한 목적지 탐색방법을 제시하였다. 마지막으로, 구축된 지식베이스와 감성검색 알고리즘을 이용하여 내비게이션 유형별로 목적지 탐색을 시뮬레이션 하여 보행자의 감성을 고려한 정보탐색방법으로서의 유효성을 검증하였다. 본 연구에서 제안한 감성정보처리법은 다양한 분야의 정보기기 콘텐츠를 개발함에 있어 사용자의 감성기능을 적용하는 방법론으로 활용될 수 있을 것으로 기대된다.

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Mapping Studies on Visual Search, Eye Movement, and Eye track by Bibliometric Analysis

  • Rhie, Ye Lim;Lim, Ji Hyoun;Yun, Myung Hwan
    • 대한인간공학회지
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    • 제34권5호
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    • pp.377-399
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    • 2015
  • Objective: The aim of this study is to understand and identify the critical issues in vision research area using content analysis and network analysis. Background: Vision, the most influential factor in information processing, has been studied in a wide range of area. As studies on vision are dispersed across a broad area of research and the number of published researches is ever increasing, a bibliometric analysis towards literature would assist researchers in understanding and identifying critical issues in their research. Method: In this study, content and network analysis were applied on the meta-data of literatures collected using three search keywords: 'visual search', 'eye movement', and 'eye tracking'. Results: Content analysis focuses on extracting meaningful information from the text, deducting seven categories of research area; 'stimuli and task', 'condition', 'measures', 'participants', 'eye movement behavior', 'biological system', and 'cognitive process'. Network analysis extracts relational aspect of research areas, presenting characteristics of sub-groups identified by community detection algorithm. Conclusion: Using these methods, studies on vision were quantitatively analyzed and the results helped understand the overall relation between concepts and keywords. Application: The results of this study suggests that the use of content and network analysis helps identifying not only trends of specific research areas but also the relational aspects of each research issue while minimizing researchers' bias. Moreover, the investigated structural relationship would help identify the interrelated subjects from a macroscopic view.