• Title/Summary/Keyword: Character Feature Extraction

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Feature Extraction of Hangul Character Based on Chaos Theory (카오스 이론을 이용한 한글 문자 특징 추출에 관한 연구)

  • 손영우;남궁재찬;홍경순
    • Proceedings of the Korean Information Science Society Conference
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    • 1999.10b
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    • pp.315-317
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    • 1999
  • 미세한 차이를 고감도 식별하는 카오스 이론의 프랙탈 차원과 스트레인즈 어트랙터를 생성하는 수정된 에농 함수를 이용하여, 한글 2,350자에 대한 시계열 데이터의 혼도도를 분석하기 위해, 각각의 문자 0트랙터를 구성한 후, 프랙탈 차원을 나타내는 Box-counting Dimension 및 Natural Measure, Information Bit, Information Dimension 등을 구하여 문자 특징을 추출하는 새로운 알고리즘을 제시하였다. 실험결과 한글 2,350자에 대하여 99.23%의 분류율을 나타내어 제안된 방법의 유효성을 보였다.

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Face Feature Extraction for Automatic Character Creation (캐릭터의 자동 생성을 위한 얼굴에서의 특징 추출)

  • 정종률;정승도;조정원;최병욱
    • Proceedings of the IEEK Conference
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    • 2001.09a
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    • pp.161-164
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    • 2001
  • 캐릭터의 자동 생성이란 영상처리 기법을 이용하여 사람의 얼굴에서 특징을 추출하고, 이 특징들을 기반으로 독특한 캐릭터를 자동으로 얻어내는 방법을 의미한다. 본 논문에서는 사람마다의 얼굴의 특성에 기반한 캐릭터를 자동으로 생성하기 위하여 얼굴의 각 구성요소들의 특징을 효과적으로 추출하기 위한 방법을 제시한다. 얼굴을 구성하는 각각의 요소들의 특징을 추출하고, 추출된 특징을 바탕으로 각 구성요소에 해당하는 데이터베이스를 검색하여 특징을 잘 표현할 수 있는 그림을 선택한다. 최종적으로 선택된 그림들은 원 이미지의 비율에 맞도록 재구성하여 얼굴 캐릭터를 생성한다.

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The hand-drawn diagram recognition for OrCAD matching (OrCAD 정합을 위한 수작업 도면 인식)

  • Park, Young-Sik;Kim, Jin-Hong
    • Journal of Institute of Control, Robotics and Systems
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    • v.2 no.3
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    • pp.229-235
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    • 1996
  • CAD diagrams generally consists of many basic components: symbols, character, and connection lines. Thus, to recognize the diagrams, it is necessary to extract each components, and understand their meanings and relation among them. This paper describes a method for linking basic components extracted efficiently from hand-down diagrams to OrCAD data format. Experimental results with a hand-drawn diagrams of electronic and logic circuit show utility of the proposed method.

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Implementation of communication system using signals originating from facial muscle constructions

  • Kim, EungSoo;Eum, TaeWan
    • International Journal of Fuzzy Logic and Intelligent Systems
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    • v.4 no.2
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    • pp.217-222
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    • 2004
  • A person does communication between each other using language. But, In the case of disabled person, cannot communicate own idea to use writing and gesture. We embodied communication system using the EEG so that disabled person can do communication. After feature extraction of the EEG included facial muscle signals, it is converted the facial muscle into control signal, and then did so that can select character and communicate idea.

Recognition of Online Handwritten Digit using Zernike Moment and Neural Network (Zerinke 모멘트와 신경망을 이용한 온라인 필기체 숫자 인식)

  • Mun, Won-Ho;Choi, Yeon-Suk;Cha, Eui-Young
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2010.05a
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    • pp.205-208
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    • 2010
  • We introduce a novel feature extraction scheme for online handwritten digit based on utilizing Zernike moment and angulation feature. The time sequential signal from mouse movement on the writing pad is described as a sequence of consecutive points on the x-y plane. So, we can create data-set which are successive and time-sequential pixel position data by preprocessing. Data preprocessed is used for Zernike moment and angulation feature extraction. this feature is scale-, translation-, and rotation-invariant. The extracted specific feature is fed to a BP(backpropagation) neural network, which in turn classifies it as one of the nine digits. In this paper, proposed method not noly show high recognition rate but also need less learning data for 200 handwritten digit data.

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The Character Area Extraction and the Character Segmentation on the Color Document (칼라 문서에서 문자 영역 추출믹 문자분리)

  • 김의정
    • Journal of the Korean Institute of Intelligent Systems
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    • v.9 no.4
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    • pp.444-450
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    • 1999
  • This paper deals with several methods: the clustering method that uses k-means algorithm to abstract the area of characters on the image document and the distance function that suits for the HIS coordinate system to cluster the image. For the prepossessing step to recognize this, or the method of characters segmentate, the algorithm to abstract a discrete character is also proposed, using the linking picture element. This algorithm provides the feature that separates any character such as the touching or overlapped character. The methods of projecting and tracking the edge have so far been used to segment them. However, with the new method proposed here, the picture element extracts a discrete character with only one-time projection after abstracting the character string. it is possible to pull out it. dividing the area into the character and the rest (non-character). This has great significance in terms of processing color documents, not the simple binary image, and already received verification that it is more advanced than the previous document processing system.

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Character Recognition and Search for Media Editing (미디어 편집을 위한 인물 식별 및 검색 기법)

  • Park, Yong-Suk;Kim, Hyun-Sik
    • Journal of Broadcast Engineering
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    • v.27 no.4
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    • pp.519-526
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    • 2022
  • Identifying and searching for characters appearing in scenes during multimedia video editing is an arduous and time-consuming process. Applying artificial intelligence to labor-intensive media editing tasks can greatly reduce media production time, improving the creative process efficiency. In this paper, a method is proposed which combines existing artificial intelligence based techniques to automate character recognition and search tasks for video editing. Object detection, face detection, and pose estimation are used for character localization and face recognition and color space analysis are used to extract unique representation information.

Sketch-based Image Retrieval System using Optimized Specific Region (최적화된 특정 영역을 이용한 스케치 기반 영상 검색 시스템)

  • Ko Kwang-Hoon;Kim Nac-Woo;Kim Tae-Eun;Choi Jong-Soo
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.30 no.8C
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    • pp.783-792
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    • 2005
  • This paper proposes a feature extraction method for sketch-based image retrieval of animation character. We extract the specific regions using the detection of scene change and correlation points between two frames, and the property of animation production. We detect the area of focused similar colors in extracted specific region. And it is used as feature descriptor for image retrieval that focused color(FC) of regions, size, relation between FCs. Finally, an user can retrieve the similar character using property of animation production and user's sketch as a query Image.

The Hangeul image's recognition and restoration based on Neural Network and Memory Theory (신경회로망과 기억이론에 기반한 한글영상 인식과 복원)

  • Jang, Jae-Hyuk;Park, Joong-Yang;Park, Jae-Heung
    • Journal of the Korea Society of Computer and Information
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    • v.10 no.4 s.36
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    • pp.17-27
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    • 2005
  • In this study, it proposes the neural network system for character recognition and restoration. Proposes system composed by recognition part and restoration part. In the recognition part. it proposes model of effective pattern recognition to improve ART Neural Network's performance by restricting the unnecessary top-down frame generation and transition. Also the location feature extraction algorithm which applies with Hangeul's structural feature can apply the recognition. In the restoration part, it composes model of inputted image's restoration by Hopfield neural network. We make part experiments to check system's performance, respectively. As a result of experiment, we see improve of recognition rate and possibility of restoration.

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