Pornographic image region detection based on visual attention model in compressed domain
According to biological attention mechanism, a region of interest (ROI) detection based on visual attention model is closer to human visual system. Taken into account the characteristics of pornographic image during regions detection, a pornographic image region detection method based on visual atte...
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Published in | IET image processing Vol. 7; no. 4; pp. 384 - 391 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
Published |
Stevenage
The Institution of Engineering and Technology
01.06.2013
Institution of Engineering and Technology The Institution of Engineering & Technology |
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Online Access | Get full text |
ISSN | 1751-9659 1751-9667 |
DOI | 10.1049/iet-ipr.2012.0381 |
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Abstract | According to biological attention mechanism, a region of interest (ROI) detection based on visual attention model is closer to human visual system. Taken into account the characteristics of pornographic image during regions detection, a pornographic image region detection method based on visual attention model in compressed domain is proposed in this study, which includes the following four steps: (i) the skin colour regions of pornographic images are detected in compressed domain; (ii) visual saliency map in compressed domain is computed to construct visual attention model; (iii) threshold segmentation method is used for visual saliency map, and then the torso information is retained as pornographic regions; and (iv) four features of colour, texture, intensity and skin are extracted to represent pornographic region. The experimental results show that the proposed method can perform well on the speed/accuracy of pornographic regions detection and representation. |
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AbstractList | According to biological attention mechanism, a region of interest (ROI) detection based on visual attention model is closer to human visual system. Taken into account the characteristics of pornographic image during regions detection, a pornographic image region detection method based on visual attention model in compressed domain is proposed in this study, which includes the following four steps: (i) the skin colour regions of pornographic images are detected in compressed domain; (ii) visual saliency map in compressed domain is computed to construct visual attention model; (iii) threshold segmentation method is used for visual saliency map, and then the torso information is retained as pornographic regions; and (iv) four features of colour, texture, intensity and skin are extracted to represent pornographic region. The experimental results show that the proposed method can perform well on the speed/accuracy of pornographic regions detection and representation. [PUBLICATION ABSTRACT] According to biological attention mechanism, a region of interest (ROI) detection based on visual attention model is closer to human visual system. Taken into account the characteristics of pornographic image during regions detection, a pornographic image region detection method based on visual attention model in compressed domain is proposed in this study, which includes the following four steps: (i) the skin colour regions of pornographic images are detected in compressed domain; (ii) visual saliency map in compressed domain is computed to construct visual attention model; (iii) threshold segmentation method is used for visual saliency map, and then the torso information is retained as pornographic regions; and (iv) four features of colour, texture, intensity and skin are extracted to represent pornographic region. The experimental results show that the proposed method can perform well on the speed/accuracy of pornographic regions detection and representation. |
Author | Zhuo, Li Zhang, Jing Li, Zhenwei Sui, Lei |
Author_xml | – sequence: 1 givenname: Jing surname: Zhang fullname: Zhang, Jing email: zhj@bjut.edu.cn organization: Signal and Information Processing Laboratory, Beijing University of Technology, Beijing 100124, People's Republic of China – sequence: 2 givenname: Lei surname: Sui fullname: Sui, Lei organization: Signal and Information Processing Laboratory, Beijing University of Technology, Beijing 100124, People's Republic of China – sequence: 3 givenname: Li surname: Zhuo fullname: Zhuo, Li organization: Signal and Information Processing Laboratory, Beijing University of Technology, Beijing 100124, People's Republic of China – sequence: 4 givenname: Zhenwei surname: Li fullname: Li, Zhenwei organization: Signal and Information Processing Laboratory, Beijing University of Technology, Beijing 100124, People's Republic of China |
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Cites_doi | 10.1109/FSKD.2009.824 10.1109/CVPR.2001.990517 10.1109/TIP.2004.840706 10.1016/j.neucom.2007.10.005 10.1109/CISP.2010.5646985 10.1109/ISM.2011.107 10.1117/12.476255 10.1142/S0218001409007739 10.1109/TCSVT.2009.2022822 10.1109/WCSP.2011.6096718 10.5244/C.26.30 10.1049/iet-ipr.2011.0005 10.1109/TMM.2005.858414 10.1016/S0042-6989(99)00163-7 10.1109/FGCNS.2008.41 |
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Copyright | The Institution of Engineering and Technology 2021 The Authors. IET Image Processing published by John Wiley & Sons, Ltd. on behalf of The Institution of Engineering and Technology 2014 INIST-CNRS Copyright The Institution of Engineering & Technology Jun 2013 |
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Keywords | human visual system ROI detection biological attention mechanism skin colour regions object detection image texture threshold segmentation method pornographic image region detection visual attention model image segmentation torso information image intensity pornographic regions representation image representation region of interest detection visual saliency map image colour analysis image coding compressed domain Interest region Accuracy Segmentation Pattern recognition Visual saliency Image sensor Visual attention Texture Signal detection Image method |
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SubjectTerms | Applied sciences biological attention mechanism Color Colour Compressed compressed domain Detection, estimation, filtering, equalization, prediction Exact sciences and technology human visual system image coding image colour analysis Image detection image intensity image representation image segmentation image texture Information, signal and communications theory object detection Pattern recognition pornographic image region detection pornographic regions representation Pornography region of interest detection ROI detection Signal and communications theory Signal processing Signal, noise skin colour regions Surface layer Telecommunications and information theory Texture threshold segmentation method torso information Visual visual attention model visual saliency map |
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Title | Pornographic image region detection based on visual attention model in compressed domain |
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