Spatiotemporal integration of visual stimuli and its relevance to the use of a divisional power supply scheme for retinal prosthesis
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Po-Kang Lin | Chuan-Chin Chiao | Yueh-Chun Tsai | José Jiun-Shian Wu | Bo-Jyun Lin | Pin-Shiou Wang | Ching-Hsiang Liu | Chung-Yu Wu | Chung-Yu Wu | C. Chiao | Yueh-Chun Tsai | P. Lin | José Jiun-Shian Wu | B. Lin | P. Wang | Ching-Hsiang Liu
[1] F A Wichmann,et al. Ning for Helpful Comments and Suggestions. This Paper Benefited Con- Siderably from Conscientious Peer Review, and We Thank Our Reviewers the Psychometric Function: I. Fitting, Sampling, and Goodness of Fit , 2001 .
[2] Chung-Yu Wu,et al. The design of CMOS self-powered 256-pixel implantable chip with on-chip photovoltaic cells and active pixel sensors for subretinal prostheses , 2015, 2015 IEEE Biomedical Circuits and Systems Conference (BioCAS).
[3] Alfred Stett,et al. Subretinal electronic chips allow blind patients to read letters and combine them to words , 2010, Proceedings of the Royal Society B: Biological Sciences.
[4] D. E. Irwin,et al. Visual Sensory Memory , 2008 .
[5] Daniel Palanker,et al. Design of a high-resolution optoelectronic retinal prosthesis , 2005, Journal of neural engineering.
[6] W. Levick,et al. Responses of cat retinal ganglion cells to brief flashes of light , 1970, The Journal of physiology.
[7] Vincent Di Lollo,et al. Temporal integration in visual memory. , 1980, Journal of experimental psychology. General.
[8] Farhad Hafezi,et al. Temporal properties of visual perception on electrical stimulation of the retina. , 2012, Investigative ophthalmology & visual science.
[9] David Tsai,et al. Frequency-dependent reduction of voltage-gated sodium current modulates retinal ganglion cell response rate to electrical stimulation , 2011, Journal of neural engineering.
[10] R. Jensen,et al. Thresholds for activation of rabbit retinal ganglion cells with relatively large, extracellular microelectrodes. , 2005, Investigative ophthalmology & visual science.
[11] A. Milam,et al. Histopathology of the human retina in retinitis pigmentosa. , 1998, Progress in retinal and eye research.
[12] C W Eriksen,et al. Some temporal characteristics of visual pattern perception. , 1967, Journal of experimental psychology.
[13] H. Barlow. Temporal and spatial summation in human vision at different background intensities , 1958, The Journal of physiology.
[14] Roland Thewes,et al. Electrical stimulation of retinal neurons in epiretinal and subretinal configuration using a multicapacitor array. , 2012, Journal of neurophysiology.
[15] W. Weibull. A Statistical Distribution Function of Wide Applicability , 1951 .
[16] M. Coltheart,et al. Iconic memory and visible persistence , 1980, Perception & psychophysics.
[17] Jun Ohta,et al. Improved Charge Pump Design and Ex Vivo Experimental Validation of CMOS 256-Pixel Photovoltaic-Powered Subretinal Prosthetic Chip , 2020, IEEE Transactions on Biomedical Engineering.
[18] Chung-Yu Wu,et al. Responses of rabbit retinal ganglion cells to subretinal electrical stimulation using a silicon-based microphotodiode array. , 2011, Investigative ophthalmology & visual science.
[19] R. Jensen,et al. Responses of ganglion cells to repetitive electrical stimulation of the retina , 2007, Journal of neural engineering.
[20] Gordon E. Legge,et al. Human efficiency for recognizing and detecting low-pass filtered objects , 1995, Vision Research.
[21] Joseph F Rizzo,et al. Thresholds for activation of rabbit retinal ganglion cells with a subretinal electrode. , 2006, Experimental eye research.
[22] G. M. Long,et al. Relative rod and cone contributions in iconic storage , 1978, Perception & psychophysics.
[23] Ernest Greene,et al. Information persistence in the integration of partial cues for object recognition , 2007, Perception & psychophysics.
[24] B. Wilhelm,et al. Spatial resolution and perception of patterns mediated by a subretinal 16-electrode array in patients blinded by hereditary retinal dystrophies. , 2011, Investigative ophthalmology & visual science.
[25] Robert J Greenberg,et al. Temporal interactions during paired-electrode stimulation in two retinal prosthesis subjects. , 2011, Investigative ophthalmology & visual science.
[26] Chih-Cheng Hsieh,et al. A 0.8-V 4096-Pixel CMOS Sense-and-Stimulus Imager for Retinal Prosthesis , 2013, IEEE Transactions on Electron Devices.
[27] Daniel Palanker,et al. Optimization of return electrodes in neurostimulating arrays , 2016, Journal of neural engineering.
[28] Marco Buiatti,et al. Temporal Integration in Visual Word Recognition , 2010, Journal of Cognitive Neuroscience.
[29] V Di Lollo,et al. Inverse-intensity effect in duration of visible persistence. , 1995, Psychological bulletin.
[30] C W Eriksen,et al. Sensory traces versus the psychological moment in the temporal organization of form. , 1968, Journal of experimental psychology.
[31] Gui-Shuang Ying,et al. The role of apoptosis in age-related macular degeneration. , 2002, Archives of ophthalmology.
[32] V. Lollo,et al. Temporal characteristics of iconic memory , 1977, Nature.
[33] S. Hecht,et al. INTERMITTENT STIMULATION BY LIGHT : VI. AREA AND THE RELATION BETWEEN CRITICAL FREQUENCY AND INTENSITY. , 1936 .
[34] E. Greene,et al. Recognition of letters displayed as briefly flashed dot patterns , 2015, Attention, perception & psychophysics.
[35] Chuanqing Zhou,et al. Chinese character recognition using simulated phosphene maps. , 2011, Investigative ophthalmology & visual science.
[36] H. Strasburger,et al. Fitting the psychometric function , 1999, Perception & psychophysics.
[37] N H Lovell,et al. Electric crosstalk impairs spatial resolution of multi-electrode arrays in retinal implants , 2011, Journal of neural engineering.
[38] Robert J Greenberg,et al. Spatiotemporal interactions in retinal prosthesis subjects. , 2010, Investigative ophthalmology & visual science.
[39] A. Sher,et al. Photovoltaic Retinal Prosthesis with High Pixel Density , 2012, Nature Photonics.
[40] UTE LEONARDS,et al. The Influence of Temporal Phase Differences on Texture Segmentation , 1996, Vision Research.
[41] Gert Cauwenberghs,et al. Towards high-resolution retinal prostheses with direct optical addressing and inductive telemetry , 2016, Journal of neural engineering.