• 제목/요약/키워드: Face Detecting

검색결과 194건 처리시간 0.022초

프라이빗 건물의 딥러닝을 활용한 언택트 기반 엘리베이터 운영시스템 설계 (Untact-based elevator operating system design using deep learning of private buildings)

  • 이민혜;강선경;신성윤;문형진
    • 한국정보통신학회:학술대회논문집
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    • 한국정보통신학회 2021년도 춘계학술대회
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    • pp.161-163
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    • 2021
  • 아파트나 프라이빗 건물에서 사용자가 양손에 짐을 들고 있거나 비슷한 상황에서 엘리베이터의 버튼을 조작하기는 어렵다. 코로나 19과 같은 전염성 높은 바이러스로 인해 사람 간의 접촉이 최소화되어야 하는 환경에서의 부득이하게 언택트 기반으로 엘리베이터 조작이 필요하다. 본 논문은 엘리베이터 버튼을 누르지 않고도 사용자의 얼굴을 통한 영상처리 및 사용자의 음성을 이용하여 엘리베이터의 조작이 가능한 운영 시스템을 제안한다. 엘리베이터 안에 설치된 카메라로부터 출입자의 얼굴을 감지하고, 사전에 등록된 정보와 매칭하여 버튼을 누르지 않아도 지정된 층으로 엘리베이터가 운영이 가능하다. 출입자의 얼굴 인식이 어려운 경우에는 2차적으로 마이크를 통해 사용자의 음성을 이용하여 엘리베이터의 층을 제어하고 출입 정보를 자동으로 기록하여 언택트 환경에서의 엘리베이터 사용의 편의성을 높이고자 한다.

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영유아 이상징후 감지를 위한 표정 인식 알고리즘 개선 (The improved facial expression recognition algorithm for detecting abnormal symptoms in infants and young children)

  • 김윤수;이수인;석종원
    • 전기전자학회논문지
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    • 제25권3호
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    • pp.430-436
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    • 2021
  • 비접촉형 체온 측정 시스템은 광학 및 열화상 카메라를 활용하여 집단시설의 발열성 질병을 관리하는 핵심 요소 중 하나이다. 기존 체온 측정 시스템은 딥러닝 기반 얼굴검출 알고리즘이 사용되어 얼굴영역의 단순 체온 측정에는 활용할 수 있지만, 의사표현이 어려운 영유아의 이상 징후를 인지하는데 한계가 있다. 본 논문에서는 기존의 체온 측정 시스템에서 영유아의 이상징후 감지를 위해 표정인식 알고리즘을 개선한다. 제안된 방법은 객체탐지 모델을 사용하여 영상에서 영유아를 검출한 후 얼굴영역을 추출하고 표정인식의 핵심 요소인 눈, 코, 입의 좌표를 획득한다. 이후 획득된 좌표를 기반으로 선택적 샤프닝 필터를 적용하여 표정인식을 진행한다. 실험결과에 따르면 제안된 알고리즘은 UTK 데이터셋에서 무표정, 웃음, 슬픔 3가지 표정에 대해 각각 2.52%, 1.12%, 2.29%가 향상되었다.

인간-로봇 상호작용을 위한 자세가 변하는 사용자 얼굴검출 및 얼굴요소 위치추정 (Face and Facial Feature Detection under Pose Variation of User Face for Human-Robot Interaction)

  • 박성기;박민용;이태근
    • 제어로봇시스템학회논문지
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    • 제11권1호
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    • pp.50-57
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    • 2005
  • We present a simple and effective method of face and facial feature detection under pose variation of user face in complex background for the human-robot interaction. Our approach is a flexible method that can be performed in both color and gray facial image and is also feasible for detecting facial features in quasi real-time. Based on the characteristics of the intensity of neighborhood area of facial features, new directional template for facial feature is defined. From applying this template to input facial image, novel edge-like blob map (EBM) with multiple intensity strengths is constructed. Regardless of color information of input image, using this map and conditions for facial characteristics, we show that the locations of face and its features - i.e., two eyes and a mouth-can be successfully estimated. Without the information of facial area boundary, final candidate face region is determined by both obtained locations of facial features and weighted correlation values with standard facial templates. Experimental results from many color images and well-known gray level face database images authorize the usefulness of proposed algorithm.

업데이트된 피부색을 이용한 얼굴 추적 시스템 (Face Tracking System Using Updated Skin Color)

  • 안경희;김종호
    • 한국멀티미디어학회논문지
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    • 제18권5호
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    • pp.610-619
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    • 2015
  • *In this paper, we propose a real-time face tracking system using an adaptive face detector and a tracking algorithm. An image is divided into the regions of background and face candidate by a real-time updated skin color identifying system in order to accurately detect facial features. The facial characteristics are extracted using the five types of simple Haar-like features. The extracted features are reinterpreted by Principal Component Analysis (PCA), and the interpreted principal components are processed by Support Vector Machine (SVM) that classifies into facial and non-facial areas. The movement of the face is traced by Kalman filter and Mean shift, which use the static information of the detected faces and the differences between previous and current frames. The proposed system identifies the initial skin color and updates it through a real-time color detecting system. A similar background color can be removed by updating the skin color. Also, the performance increases up to 20% when the background color is reduced in comparison to extracting features from the entire region. The increased detection rate and speed are acquired by the usage of Kalman filter and Mean shift.

다면기법 SPFACS 영상객체를 이용한 AAM 알고리즘 적용 미소검출 설계 분석 (Using a Multi-Faced Technique SPFACS Video Object Design Analysis of The AAM Algorithm Applies Smile Detection)

  • 최병관
    • 디지털산업정보학회논문지
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    • 제11권3호
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    • pp.99-112
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    • 2015
  • Digital imaging technology has advanced beyond the limits of the multimedia industry IT convergence, and to develop a complex industry, particularly in the field of object recognition, face smart-phones associated with various Application technology are being actively researched. Recently, face recognition technology is evolving into an intelligent object recognition through image recognition technology, detection technology, the detection object recognition through image recognition processing techniques applied technology is applied to the IP camera through the 3D image object recognition technology Face Recognition been actively studied. In this paper, we first look at the essential human factor, technical factors and trends about the technology of the human object recognition based SPFACS(Smile Progress Facial Action Coding System)study measures the smile detection technology recognizes multi-faceted object recognition. Study Method: 1)Human cognitive skills necessary to analyze the 3D object imaging system was designed. 2)3D object recognition, face detection parameter identification and optimal measurement method using the AAM algorithm inside the proposals and 3)Face recognition objects (Face recognition Technology) to apply the result to the recognition of the person's teeth area detecting expression recognition demonstrated by the effect of extracting the feature points.

Security Verification of Video Telephony System Implemented on the DM6446 DaVinci Processor

  • Ghimire, Deepak;Kim, Joon-Cheol;Lee, Joon-Whoan
    • International Journal of Contents
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    • 제8권1호
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    • pp.16-22
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    • 2012
  • In this paper we propose a method for verifying video in a video telephony system implemented in DM6446 DaVinci Processor. Each frame is categorized either error free frame or error frame depending on the predefined criteria. Human face is chosen as a basic means for authenticating the video frame. Skin color based algorithm is implemented for detecting the face in the video frame. The video frame is classified as error free frame if there is single face object with clear view of facial features (eyes, nose, mouth etc.) and the background of the image frame is not different then the predefined background, otherwise it will be classified as error frame. We also implemented the image histogram based NCC (Normalized Cross Correlation) comparison for video verification to speed up the system. The experimental result shows that the system is able to classify frames with 90.83% of accuracy.

Wavelet based Feature Extraction of Human Face

  • Kim, Yoon-ho;Lee, Myung-kil;Ryu, Kwang-ryol
    • 한국정보통신학회:학술대회논문집
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    • 한국해양정보통신학회 2001년도 춘계종합학술대회
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    • pp.656-659
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    • 2001
  • Human have a notable ability to recognize faces, which is one of the most common visual feature in our environment. In regarding face pattern, just like other natural object, a geometrical interpretation of face is difficult to achieve. In this paper, we present wavelet based approach to extract the face features. Proposed approach is similar to the feature based scheme, where the feature is derived from the intensity data without detecting any knowledge of the significant feature. Topological graphs are involved to represent some relations between facial features. In our experiments, proposed approach is less sensitive to the intensity variation.

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이미지 자동배치를 위한 얼굴 방향성 검출 (Detection of Facial Direction for Automatic Image Arrangement)

  • 동지연;박지숙;이환용
    • Journal of Information Technology Applications and Management
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    • 제10권4호
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    • pp.135-147
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    • 2003
  • With the development of multimedia and optical technologies, application systems with facial features hare been increased the interests of researchers, recently. The previous research efforts in face processing mainly use the frontal images in order to recognize human face visually and to extract the facial expression. However, applications, such as image database systems which support queries based on the facial direction and image arrangement systems which place facial images automatically on digital albums, deal with the directional characteristics of a face. In this paper, we propose a method to detect facial directions by using facial features. In the proposed method, the facial trapezoid is defined by detecting points for eyes and a lower lip. Then, the facial direction formula, which calculates the right and left facial direction, is defined by the statistical data about the ratio of the right and left area in facial trapezoids. The proposed method can give an accurate estimate of horizontal rotation of a face within an error tolerance of $\pm1.31$ degree and takes an average execution time of 3.16 sec.

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Wavelet based Feature Extraction of Human face

  • Kim, Yoon-Ho;Lee, Myung-Kil;Ryu, Kwang-Ryol
    • 한국정보통신학회논문지
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    • 제5권2호
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    • pp.349-355
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    • 2001
  • Human have a notable ability to recognize faces, which is one of the most common visual feature in our environment. In regarding face pattern, just like other natural object, a geometrical interpretation of face is difficult to achieve. In this paper, we present wavelet based approach to extract the face features. Proposed approach is similar to the feature based scheme, where the feature is derived from the intensity data without detecting any knowledge of the significant feature. Topological graphs are involved to represent some relations between facial features. In our experiments, proposed approach is less sensitive to the intensity variation.

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얼굴을 관심 영역으로 사용하는 자동 초점을 위한 얼굴 영역 추적 향상 방법 및 하드웨어 구현 (Face Region Tracking Improvement and Hardware Implementation for AF(Auto Focusing) Using Face to ROI)

  • 정효원;하주영;한학용;양훈기;강봉순
    • 한국정보통신학회논문지
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    • 제14권1호
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    • pp.89-96
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    • 2010
  • 본 논문은 얼굴을 관심 영역(ROI)으로 사용하는 자동 초점(AF, Auto Focusing) 시스템을 위 한 얼굴 검출 기능(Face Detection)의 얼굴 추적 향상 방법에 관한 것이다. 피부색을 바탕으로 얼굴을 검출하는 기존의 얼굴 검출 기능에서는 얼굴을 추적하기 위하여 이전 프레임에 검출된 얼굴 영역에 대하여 현재 프레임의 스킨 픽셀 비율을 사용한다. 이 방법은 동영상에서 얼굴 영역의 안정성은 뛰어나지만, 얼굴 추적 성능은 다소 떨어진다. 따라서 얼굴 추적 성능을 향상 시키기 위하여, 이전 프레임에 검출된 얼굴 영역과 현재 프레임에 검출된 얼굴 영역의 겹침을 조사하여 겹치는 영역의 면적을 이용하여 얼굴을 추적하는 방법을 제안하였다. 검증을 위하여 FPGA 보드와 모바일 폰 카메라용 CIS를 이용하여 실시간으로 얼굴 검출을 촬영하였고, 검출된 얼굴의 이동 궤적을 이용하여 성능을 검증하였다.