• 제목/요약/키워드: real-time dynamic face recognition

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Parallel Multi-task Cascade Convolution Neural Network Optimization Algorithm for Real-time Dynamic Face Recognition

  • Jiang, Bin;Ren, Qiang;Dai, Fei;Zhou, Tian;Gui, Guan
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제14권10호
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    • pp.4117-4135
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    • 2020
  • Due to the angle of view, illumination and scene diversity, real-time dynamic face detection and recognition is no small difficulty in those unrestricted environments. In this study, we used the intrinsic correlation between detection and calibration, using a multi-task cascaded convolutional neural network(MTCNN) to improve the efficiency of face recognition, and the output of each core network is mapped in parallel to a compact Euclidean space, where distance represents the similarity of facial features, so that the target face can be identified as quickly as possible, without waiting for all network iteration calculations to complete the recognition results. And after the angle of the target face and the illumination change, the correlation between the recognition results can be well obtained. In the actual application scenario, we use a multi-camera real-time monitoring system to perform face matching and recognition using successive frames acquired from different angles. The effectiveness of the method was verified by several real-time monitoring experiments, and good results were obtained.

스마트폰 환경의 인증 성능 최적화를 위한 다중 생체인식 융합 기법 연구 (Authentication Performance Optimization for Smart-phone based Multimodal Biometrics)

  • 문현준;이민형;정강훈
    • 디지털융복합연구
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    • 제13권6호
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    • pp.151-156
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    • 2015
  • 본 논문에서는 스마트폰 환경의 얼굴 검출, 인식 및 화자 인증 기반 다중생체인식 개인인증 시스템을 제안한다. 제안된 시스템은 Modified Census Transform과 gabor filter 및 k-means 클러스터 분석 알고리즘을 통해 얼굴의 주요 특징을 추출하여 얼굴인식을 위한 데이터 전처리를 수행한다. 이후 Linear Discriminant Analysis기반 본인 인증을 수행하고(얼굴인식), Mel Frequency Cepstral Coefficient기반 실시간성 검증(화자인증)을 수행한다. 화자인증에 사용하는 음성 정보는 실시간으로 변화하므로 본 논문에서는 Dynamic Time Warping을 통해 이를 해결한다. 제안된 다중생체인식 시스템은 얼굴 및 음성 특징 정보를 융합 및 스마트폰 환경에 최적화하여 실시간 얼굴검출, 인식과 화자인증 과정을 수행하며 단일 생체인식에 비해 약간 낮은 95.1%의 인식률을 보이지만 1.8%의 False Acceptance Ratio를 통해 객관적인 실시간 생체인식 성능을 입증하여 보다 신뢰할 수 있는 시스템을 완성한다.

A Face-Detection Postprocessing Scheme Using a Geometric Analysis for Multimedia Applications

  • Jang, Kyounghoon;Cho, Hosang;Kim, Chang-Wan;Kang, Bongsoon
    • JSTS:Journal of Semiconductor Technology and Science
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    • 제13권1호
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    • pp.34-42
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    • 2013
  • Human faces have been broadly studied in digital image and video processing fields. An appearance-based method, the adaptive boosting learning algorithm using integral image representations has been successfully employed for face detection, taking advantage of the feature extraction's low computational complexity. In this paper, we propose a face-detection postprocessing method that equalizes instantaneous facial regions in an efficient hardware architecture for use in real-time multimedia applications. The proposed system requires low hardware resources and exhibits robust performance in terms of the movements, zooming, and classification of faces. A series of experimental results obtained using video sequences collected under dynamic conditions are discussed.

다차원 데이터의 동적 얼굴 이미지그래픽 표현 (Representation of Dynamic Facial ImageGraphic for Multi-Dimensional)

  • 최철재;최진식;조규천;차홍준
    • 한국컴퓨터산업학회논문지
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    • 제2권10호
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    • pp.1291-1300
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    • 2001
  • 이 논문은 실시간 변화가 가능한 동적 그래픽스를 기반하며, 인간의 감성적 인식을 위해서 이미지 영상을 다차원 데이터의 그래픽 요소로 조작하는 시각화 표현 기법으로 연구되었다. 이 구현의 중요한 사상은 사람의 얼굴 특징 점과 기존의 화상 인식 알고리즘을 바탕으로 획득한 모수 제어 값을 다차원 데이터에 대응시켜 그 변화하는 수축 표정에 따라 감성 표현의 가상 이미지를 생성하는 이미지그래픽으로 표현한다. 제안된 DyFIG 시스템은 감성적인 표현을 할 수 있는 얼굴 그래픽의 모듈을 제안하고 구현하며, 조작과 실험을 통해 감성 데이터 표현 기술과 기법이 실현 가능함을 보인다.

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Dynamic Manipulation of a Virtual Object in Marker-less AR system Based on Both Human Hands

  • Chun, Jun-Chul;Lee, Byung-Sung
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제4권4호
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    • pp.618-632
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    • 2010
  • This paper presents a novel approach to control the augmented reality (AR) objects robustly in a marker-less AR system by fingertip tracking and hand pattern recognition. It is known that one of the promising ways to develop a marker-less AR system is using human's body such as hand or face for replacing traditional fiducial markers. This paper introduces a real-time method to manipulate the overlaid virtual objects dynamically in a marker-less AR system using both hands with a single camera. The left bare hand is considered as a virtual marker in the marker-less AR system and the right hand is used as a hand mouse. To build the marker-less system, we utilize a skin-color model for hand shape detection and curvature-based fingertip detection from an input video image. Using the detected fingertips the camera pose are estimated to overlay virtual objects on the hand coordinate system. In order to manipulate the virtual objects rendered on the marker-less AR system dynamically, a vision-based hand control interface, which exploits the fingertip tracking for the movement of the objects and pattern matching for the hand command initiation, is developed. From the experiments, we can prove that the proposed and developed system can control the objects dynamically in a convenient fashion.