Eye Movement Features in the Depth and Spatial Perspective Perception of Paintings and Other Static Scenes
DOI:
https://doi.org/10.6000/1929-4409.2020.09.198Keywords:
Eye Movement, Binocular Eye Tracker, Disparity, Binocular Depth Perception.Abstract
In this paper, using the example of two scenes, they showed that it is possible to perceive the depth and spatial perspective of painting images (and other static scenes) without the condition of binocular disparity (hereinafter referred to as the 3D phenomenon). To study the 3D phenomenon, eye movement is recorded. The students of the Institute of Physics at Kazan Federal University and an experienced researcher of the 3D phenomenon, the author and the developer of the working methodology took part in the surveys on eye movement record. To identify the perception of spatial perspective, 3D raster images are used mounted on the same static stimulus scenes (pictures). The first plot includes obtaining information on eye movement in the conditions of perception of two paintings with the elements of a monocular perspective of images. Histograms show that students perceive the perspective of the pictures displayed on the monitor screen. In two scenes presented, eye focusing occurs outside the plane of stimulus images. When students demonstrate a monitor screen with text and a white sheet of the histogram, they show that the focus planes are located between the screen and the students' eyes.
References
Abromavicius, V., Serackis, A., Katkevicius, A., & Plonis, D. (2018). Evaluation of EEG-based Complementary Features for Assessment of Visual Discomfort based on Stable Depth Perception Time. Radioengineering, 27(4), 1138-1146. https://doi.org/10.13164/re.2018.1138
Angelaki, D.E., & Hess, B.J. (2005). Self-motion-induced eye movements: effects on visual acuity and navigation. Nature Reviews Neuroscience, 6, 966–976. https://doi.org/10.17223/17267080/67/11
Antipov, V.N., & Fazlyyyakhmatov, M.G. (2018). Evaluating Model of Conditions for Forming Volumetric Visual Perception of Flat Images. Sibirskiy Psikhologicheskiy Zhurnal-Siberian Journal of Psychology, 67, 149–171.
Antipov, V.N., & Zhegallo, A.V. (2014). Three-dimensional perception of planar images in a computerized environment. Experimental Psychology, 7(3), 97–111.
Antipov, V.N., Minzaripov, R.G., Fazlyyyakhmatov, M.G., Yakushev, R.S., & Zhegallo, A.V. (2019). On the Impact of Visual Information on Religion, Culture and Art”, Lecture Notes in Arts and Humanities, 315, 55–58.
Antipov, V.N., Zhegallo, A.V., Galimullin, D.Z., & Fazlyyyakhmatov, M.G. (2018). The experimental study of the visual perception of depth the flat images, eye movement registration. Psychology, Journal of the Higher School of Economics, 15(2), 384–399.
Backus, B.T., Fleet, D.J., Parker, A.J., Heeger, D.J. (2001). Human cortical activity correlates with stereoscopic depth perception. Journal of Neurophysiology, 86, 2054–2068. https://doi.org/10.1152/jn.2001.86.4.2054
Barabanschikov, V.A., & Zhegallo, A.V. (2013). Registration and analysis of the human gaze direction. Moscow: Publishing House “Institute of Psychology RAS”, 316 p.
Bucci, M.P., Bremond-Gignac, D., & Kapoula, Z.A.A. (2008). Poor binocular coordination of saccades in dyslexic children. Graefe's Archive for Clinical and Experimental Ophthalmology, 246, 417-428. https://doi.org/10.1007/s00417-007-0723-1
Cazzato, D., Leo, M., Distante, C., & Voos, H. (2020). When i look into your eyes: A survey on computer vision contributions for human gaze estimation and tracking. Sensors, 20(13), 3739. https://doi.org/10.3390/s20133739
Fazlyyyakhmatov, M., & Antipov, V. (2019). Creative and Cognitive Perception of the Planar Images. International Journal of Education Sciences, 27(1-3), 70-77. https://doi.org/10.31901/24566322.2019/27.1-3.1105
Fazlyyyakhmatov, M., Zwezdochkina, N., & Antipov, V. (2018). The EEG Activity during Binocular Depth Perception of 2D Images. Computational Intelligence and Neuroscience, 2018, Art. No. 5623165. https://doi.org/10.1155/2018/5623165
Gómez-Huélamo, C., Del Egido, J., Bergasa, L. M., Barea, R., Ocana, M., Arango, F., & Gútierrez, R. (2020). Real-time bird’s eye view multi-object tracking system based on fast encoders for object detection. In 2020 IEEE Intelligent Transportation Systems Conference (ITSC). IEEE
Gregory, R.L. (1997). Eye and brain: the psychology of seeing. Princeton University Press. https://doi.org/10.1515/9781400866861
Iijima, A., Komagata, S., & Kiryu, T. (2012). Vergence Eye Movements Signifying 3D Depth Perception from 2D Movies”, Displays, 33(2), 91–97. https://doi.org/10.1016/j.displa.2011.11.001
Kliegl, R., Nuthmann, A., & Engbert, R. (2006). Tracking the mind during reading: The influence of past, present, and futures words on fixation durations. Journal of Experimental Psychology, 135, 12-35. https://doi.org/10.1037/0096-3445.135.1.12
Liu, M., & Nijhuis, S. (2020). Mapping landscape spaces: Methods for understanding spatial-visual characteristics in landscape design. Environmental Impact Assessment Review, 82, 106376. https://doi.org/10.1016/j.eiar.2020.106376
Minzaripov, R.G., Antipov, V.N., Chitalin, N.A., Shaposhnikov, D.A., Baltina, T.V., Skobeltsyna, E.G., & Yakushev, R.S. (2009). On the application of volumetric creative cognitive vision development methods in the innovative educational space. Scientific notes of Kazan University. Series: natural sciences, 151(3), 266-277.
Ringach, D.L., Hawken, M.J., & Shapley, R. (1996). Binocular eye movements caused by the perception of three-dimensional structure from motion. Vision Research, 36, 1479–1492. https://doi.org/10.1016/0042-6989(95)00285-5
Schutz, A.C., Braun, D.I., & Gegenfurtner, K.R. (2011). Eye movements and perception: A selective review. Journal of Vision, 11(5), 9, 1–30. https://doi.org/10.1167/11.5.9
Yao, Y., Liang, X., & Zhao, J. (2018). Binocular Depth Perception in Psychological and Clinical Studies. Advances in Psychology, 8(12), 1795-1803. https://doi.org/10.12677/AP.2018.812209
Zhegallo, A., & Marmalyuk, P. (2015). ETRAN–R Extension. Package for Eye Tracking. Results Analysis, Perception, 44(8–9), 1129–1135. https://doi.org/10.1177/0301006615594944
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