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Objective Visual Comfort Assessment Model of Stereo Image Based on Scene Mode |
YING Hongwei①② JIANG Gangyi①③ YU Mei①③ PENG Zongju① SHAO Feng① |
①(Faculty of Information Science and Engineering, Ningbo University, Ningbo 315211, China)
②(School of Electronic and Information Engineering, Ningbo University of Technology, Ningbo 315211, China)
③(State Key Laboratory for Novel Software Technology at Nanjing University, Nanjing 210093, China) |
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Abstract To predict the effects induced by stereo image content on visual health, a new objective Visual Comfort Assessment (VCA) method of stereo image is proposed based on scene modes. Natural scene is abstracted as multiple scene modes according to two position states of foreground object and background region. One is the convex-concave to screen, and the other is the whether locate on zone of comfortable viewing. In the process of mode selection, disparity map is utilized to segment scene into foreground object and background region adaptively. Then, the scene’s mode can be determined by disparity angle features of both foreground object and background region. In the modeling stage, disparity angle features of foreground object and background region, width angle and sinuosity features of foreground object are utilized to build objective VCA models in various scene modes. The experimental results tested on IVY database show that high consistency exists between the proposed model and subjective perception that Pearson linear correlation coefficient is higher than 0.91, Spearman rank-order correlation coefficient is higher than 0.90, Kendall rank-order correlation coefficient is higher than 0.74, Mean Absolute Error (MAE) is lower than 0.24 and Root Mean Squared Error (RMSE) is lower than 0.32. Compared with other existing methods, the proposed model has the better assessment performance and is much closer to the subjective assessment scores.
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Received: 04 March 2015
Published: 04 January 2016
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Fund: The National Natural Science Foundation of China (U1301257, 61171163, 61271270, 61271021, 61311140262), Natural Science Foundation of Ningbo (2013A610113) |
Corresponding Authors:
JIANG Gangyi
E-mail: jianggangyi@126.com
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[1] |
HEWAGE C T E R and MARINI M G. Quality of experience for 3D video streaming[J]. IEEE Communications Magazine, 2013, 51(5): 101-107.
|
[2] |
蒋骁辰, 李国平, 王国中, 等. 基于AVS+实时编码的多核并行视频编码算法[J]. 电子与信息学报, 2014, 36(4): 810-816. doi: 103724/SP.J.1146.2013.00845.
|
|
JIANG Xiaochen, LI Guoping, WANG Guozhong, et al. Multi-core parallel video coding algorithm based on AVS+ real-time encoding[J]. Journal of Electronics & Information Technology, 2014, 36(4): 810-816. doi: 103724/SP.J.1146.2013. 00845.
|
[3] |
KIM D and SOHN K. Visual fatigue prediction for stereoscopic image[J]. IEEE Transactions on Circuits and Systems for Video Technology, 2011, 21(2): 231-236.
|
[4] |
LI J, BARKOWSKY M, and CALLET P L. Visual discomfort of stereoscopic 3D videos: Influence of 3D motion[J]. Displays, 2014, 35(1): 49-57.
|
[5] |
UKAI K and HOWARTH P A. Visual fatigue caused by viewing stereoscopic motion images: Background, theories and observations[J]. Displays, 2008, 29(2): 106-116.
|
[6] |
PARK J, LEE S, and BOVIK A C. 3D visual discomfort prediction: Vergence, foveation, and the physiological optics of accommodation[J]. IEEE Journal of Selected Topics in Signal Processing, 2014, 8(3): 415-427.
|
[7] |
RICHARDS W and KAYE M G. Local versus global stereopsis: two mechanisms[J]. Visual Research, 1974, 14(12): 1345-1347.
|
[8] |
LEE S, JUNG Y J, SOHN H, et al. Effect of stimulus width on the perceived visual discomfort in viewing stereoscopic 3-D-TV[J]. IEEE Transactions on Broadcasting, 2013, 59(4): 580-590.
|
[9] |
SCHOR C, WOOD I, and OGAWA J. Binocular sensory fusion is limited by spatial resolution[J]. Visual Research, 1984, 24(7): 661-665.
|
[10] |
SCHOR C, HECKMANN T, and TYLER C W. Binocular fusion limits are independent of contrast, luminance gradient and component phases[J]. Visual Research, 1989, 29(7): 821-835.
|
[11] |
WOPKING M. Viewing comfort with stereoscopic pictures: an experimental study on the subjective effects of disparity magnitude and depth of focus[J]. Journal of the Society for Information Display, 1995, 3(3): 101-103.
|
[12] |
王勤, 王琼华, 刘春玲. 视差与空间频率对自由立体显示器观看舒适度的影响[J]. 光电子 · 激光, 2012, 23(8): 1604-1608.
|
|
WANG Qin, WANG Qionghua, and LIU Chunling. Effects of parallax and spatial frequency on visual comfort in autostereoscopic display[J]. Journal of Optoelectronics ·Laser, 2012, 23(8): 1604-1608.
|
[13] |
SOHN H, JUNG Y J, LEE S, et al. Predicting visual discomfort using object size and disparity information in stereoscopic images[J]. IEEE Transactions on Broadcasting, 2013, 59(1): 28-37.
|
[14] |
姜求平, 邵枫, 蒋刚毅, 等. 基于视觉重要区域的立体图像视觉舒适度客观评价方法[J]. 电子与信息学报, 2014, 36(4): 875-881. doi: 103724/SP.J.1146.2013.00946.
|
|
JIANG Qiuping, SHAO Feng, JIANG Gangyi, et al. An objective stereoscopic image visual comfort assessment metric based on visual important regions[J]. Journal of Electronics & Information Technology, 2014, 36(4): 875-881. doi: 103724/SP.J.1146.2013.00946.
|
[15] |
KAIST Image and Video System Lab. IVY LAB Stereoscopic 3D image database for visual discomfort prediction[OL]. http://ivylab.kaist.ac.kr/demo/3DVCA/3DVCA.htm. 2013.
|
[16] |
KIM H, LEE S, and BOVIK A C. Saliency prediction on stereoscopic videos[J]. IEEE Transactions on Image Processing, 2014, 23(4): 1476-1490.
|
[17] |
LAMBOOIJ M, IJSSELSTEIJN W, FORTUIN M, et al. Visual discomfort and visual fatigue of stereoscopic displays: a review[J]. Journal of Imaging Science and Technology, 2009, 53(4): 030201.
|
[18] |
HOLLIMAN N. 3D Display Systems[M]. London: UK, IOP Press, 2004: 7-8.
|
[19] |
ISO/IEC JTC1/SC29/WG11 M16923. Depth Estimation Reference Software (DERS) 5.0[R]. Xian, China, 2009.
|
[20] |
WILCOX L M and HESS R F. Dmax for stereopsis depends on size, not spatial frequency content[J]. Visual Research, 1995, 35(9): 1061-1069.
|
|
|
|