Automatical gender detection for unconstrained video sequences based on collaborative representation

Many intelligent systems are required to deal with the situation of human-computer interaction. As one of the most important front ends, gender classification plays an irreplaceable role. For practical use, a real-time robust gender classification system is presented in this paper. The system consis...

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Veröffentlicht in:2014 12th International Conference on Signal Processing (ICSP) S. 1263 - 1267
Hauptverfasser: Lijia Lu, Weiyang Liu, Yandong Wen, Yuexian Zou
Format: Tagungsbericht
Sprache:Englisch
Veröffentlicht: IEEE 01.10.2014
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ISBN:9781479921881, 1479921882
ISSN:2164-5221
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Abstract Many intelligent systems are required to deal with the situation of human-computer interaction. As one of the most important front ends, gender classification plays an irreplaceable role. For practical use, a real-time robust gender classification system is presented in this paper. The system consists of three principal modules: image preprocessing, face detector and gender classifier. To enhance the classification accuracy with affordable complexity, Haar-like features and Ada-Boost-trained classifier are applied to the face detector while Eigenface features and collaborative representation classifier are embedded to the gender classifier. Experimental results verify the real-time ability and gender classification accuracy of the proposed system. It is worth mentioning that the system performs well when handling faces with occlusion and complex background.
AbstractList Many intelligent systems are required to deal with the situation of human-computer interaction. As one of the most important front ends, gender classification plays an irreplaceable role. For practical use, a real-time robust gender classification system is presented in this paper. The system consists of three principal modules: image preprocessing, face detector and gender classifier. To enhance the classification accuracy with affordable complexity, Haar-like features and Ada-Boost-trained classifier are applied to the face detector while Eigenface features and collaborative representation classifier are embedded to the gender classifier. Experimental results verify the real-time ability and gender classification accuracy of the proposed system. It is worth mentioning that the system performs well when handling faces with occlusion and complex background.
Author Lijia Lu
Weiyang Liu
Yuexian Zou
Yandong Wen
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  surname: Weiyang Liu
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  surname: Yandong Wen
  fullname: Yandong Wen
  email: wen.yandong@mail.scut.edu.cn
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  surname: Yuexian Zou
  fullname: Yuexian Zou
  email: zouyx@pkusz.edu.cn
  organization: Sch. of Electron. & Comput. Eng., Peking Univ., Beijing, China
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Snippet Many intelligent systems are required to deal with the situation of human-computer interaction. As one of the most important front ends, gender classification...
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StartPage 1263
SubjectTerms Ada-Boost algorithm
Automatical gender detection
Classification algorithms
Collaborative representation classifier
Detectors
Face
Feature extraction
Real-time system
Real-time systems
Robustness
Title Automatical gender detection for unconstrained video sequences based on collaborative representation
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