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Predicting Visual Discomfort of Stereoscopic Images Using Human Attention Model.

, , , , and . IEEE Trans. Circuits Syst. Video Technol., 23 (12): 2077-2082 (2013)

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Predicting Visual Discomfort Using Object Size and Disparity Information in Stereoscopic Images., , , and . IEEE Trans. Broadcast., 59 (1): 28-37 (2013)Subjective and objective measurements of visual fatigue induced by excessive disparities in stereoscopic images., , , , , and . SD&A, volume 8648 of SPIE Proceedings, page 86480M. SPIE, (2013)Investigation of object thickness for visual discomfort prediction in stereoscopic images., , , , and . SD&A, volume 8288 of SPIE Proceedings, page 82880Q. SPIE, (2012)Predicting Visual Discomfort of Stereoscopic Images Using Human Attention Model., , , , and . IEEE Trans. Circuits Syst. Video Technol., 23 (12): 2077-2082 (2013)Disparity remapping to ameliorate visual comfort of stereoscopic video., , , , and . SD&A, volume 8648 of SPIE Proceedings, page 86480Y. SPIE, (2013)Attention model-based visual comfort assessment for stereoscopic depth perception., , , , and . DSP, page 1-6. IEEE, (2011)Visual discomfort induced by fast salient object motion in stereoscopic video., , , , and . SD&A, volume 7863 of SPIE Proceedings, page 786305. SPIE, (2011)Visualizing the Perceived Discomfort of Stereoscopic Video., , , and . ISM, page 169-174. IEEE Computer Society, (2012)Crosstalk reduction in stereoscopic displays: A combined approach of disparity adjustment and crosstalk cancellation., , , and . IVMSP, page 1-4. IEEE, (2013)Visual Importance- and Discomfort Region-Selective Low-Pass Filtering for Reducing Visual Discomfort in Stereoscopic Displays., , , , and . IEEE Trans. Circuits Syst. Video Technol., 23 (8): 1408-1421 (2013)