Eye movements between saccades: Measuring ocular drift and tremor
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[1] R. W. Ditchburn. Eye-movements and visual perception , 1973 .
[2] Markus Bongard,et al. Retinal ganglion cell synchronization by fixational eye movements improves feature estimation , 2002, Nature Neuroscience.
[3] Marcus Nyström,et al. The influence of calibration method and eye physiology on eyetracking data quality , 2013, Behavior research methods.
[4] G. Westheimer,et al. Fluctuations of accommodation under steady viewing conditions , 1959, The Journal of physiology.
[5] H. Collewijn,et al. Binocular retinal image motion during active head rotation , 1980, Vision Research.
[6] WILLIAM LANT CARPENTER. Deep-Sea Soundings , 1872, Nature.
[7] Michael H Herzog,et al. Different types of feedback change decision criterion and sensitivity differently in perceptual learning. , 2012, Journal of vision.
[8] A. A. Skavenski,et al. Contr of eye position in the dark. , 1970, Vision research.
[9] Michele Rucci,et al. The Visual Input to the Retina during Natural Head-Free Fixation , 2014, The Journal of Neuroscience.
[10] S. B. Stevenson,et al. Binocular eye tracking with the Tracking Scanning Laser Ophthalmoscope , 2016, Vision Research.
[11] Ralf Engbert,et al. An integrated model of fixational eye movements and microsaccades , 2011, Proceedings of the National Academy of Sciences.
[12] Jeff B. Pelz,et al. Compensating for eye tracker camera movement , 2006, ETRA.
[13] J. Victor,et al. Temporal Encoding of Spatial Information during Active Visual Fixation , 2012, Current Biology.
[14] P. A. Gorry. General least-squares smoothing and differentiation by the convolution (Savitzky-Golay) method , 1990 .
[15] S. Stevenson,et al. Eye movement testing in clinical examination , 2013, Vision Research.
[16] J NACHMIAS,et al. Two-dimensional motion of the retinal image during monocular fixation. , 1959, Journal of the Optical Society of America.
[17] F. H. Adler,et al. INFLUENCE OF FIXATION ON THE VISUAL ACUITY , 1934 .
[18] R V Sansbury,et al. Normal fixation of eccentric targets. , 1973, Journal of the Optical Society of America.
[19] A. A. Skavenski,et al. Miniature eye movement. , 1973, Science.
[20] Mark M J Houben,et al. Recording three-dimensional eye movements: scleral search coils versus video oculography. , 2006, Investigative ophthalmology & visual science.
[21] Pablo Artal,et al. Lens Oscillations in the Human Eye. Implications for Post-Saccadic Suppression of Vision , 2014, PloS one.
[22] K. Shapiro,et al. The contingent negative variation (CNV) event-related potential (ERP) predicts the attentional blink , 2008 .
[23] Martina Poletti,et al. A compact field guide to the study of microsaccades: Challenges and functions , 2016, Vision Research.
[24] D. Snodderly,et al. Selective activation of visual cortex neurons by fixational eye movements: Implications for neural coding , 2001, Visual Neuroscience.
[25] J D Rattle,et al. Effect of target size on monocular fixation. , 1969, Optica acta.
[26] Austin Roorda,et al. Eye tracking with the adaptive optics scanning laser ophthalmoscope , 2010, ETRA.
[27] Jan Drewes,et al. Smaller Is Better: Drift in Gaze Measurements due to Pupil Dynamics , 2014, PloS one.
[28] D. Snodderly,et al. A physiological perspective on fixational eye movements , 2016, Vision Research.
[29] Heinrich H. Bülthoff,et al. Learned Non-Rigid Object Motion is a View-Invariant Cue to Recognizing Novel Objects , 2012, Front. Comput. Neurosci..
[30] Bennet-Clark Hc. THE OCULOMOTOR RESPONSE TO SMALL TARGET REPLACEMENTS. , 1964 .
[31] A. Savitzky,et al. Smoothing and Differentiation of Data by Simplified Least Squares Procedures. , 1964 .
[32] Vision Research , 1961, Nature.
[33] Ralf Engbert,et al. Microsaccades Keep the Eyes' Balance During Fixation , 2004, Psychological science.
[34] P. E. Hallett,et al. Power spectra for ocular drift and tremor , 1985, Vision Research.
[35] F. W. Weymouth,et al. Visual perception and the retinal mosaic. II. The influence of eye-movements on the displacement threshold. , 1925 .
[36] B. Richmond,et al. Implantation of magnetic search coils for measurement of eye position: An improved method , 1980, Vision Research.
[37] C. Bolger,et al. Dominant frequency content of ocular microtremor from normal subjects , 1999, Vision Research.
[38] Leslie Weingeist Lennarson. Minute Eye Movement and Brain Stem Function , 1984 .
[39] J. C. Kotulak,et al. Temporal variations in accommodation during steady-state conditions. , 1986, Journal of the Optical Society of America. A, Optics and image science.
[40] L. Arend. Spatial differential and integral operations in human vision: implications of stabilized retinal image fading. , 1973, Psychological review.
[41] Alan Kennedy,et al. Book Review: Eye Tracking: A Comprehensive Guide to Methods and Measures , 2016, Quarterly journal of experimental psychology.
[42] H C BENNET-CLARK. THE OCULOMOTOR RESPONSE TO SMALL TARGET REPLACEMENTS. , 1964, Optica acta.
[43] Heiner Deubel,et al. Perceptual consequences of ocular lens overshoot during saccadic eye movements , 1995, Vision Research.
[44] Jan Drewes,et al. Shifts in reported gaze position due to changes in pupil size: ground truth and compensation , 2012, ETRA '12.
[45] R. Steinman. Effect of Target Size, Luminance, and Color on Monocular Fixation* , 1965 .
[46] M. Rucci,et al. A model of the dynamics of retinal activity during natural visual fixation , 2007, Visual Neuroscience.
[47] Sheikh Shanawaz Mostafa,et al. Performance Analysis of Savitzky-Golay Smoothing Filter Using ECG Signal , 2011 .
[48] Frank Schaeffel,et al. Variations of pupil centration and their effects on video eye tracking , 2013, Ophthalmic & physiological optics : the journal of the British College of Ophthalmic Opticians.
[49] J Merchant,et al. Remote measurement of eye direction allowing subject motion over one cubic foot of space. , 1974, IEEE transactions on bio-medical engineering.
[50] J. R. Rosenberg,et al. The origin of ocular microtremor in man , 1999, Experimental Brain Research.
[51] R. Remmel,et al. An Inexpensive Eye Movement Monitor Using the Scleral Search Coil Technique , 1984, IEEE Transactions on Biomedical Engineering.
[52] L Matin,et al. Measurement of eye movements by contact lens techniques: analysis of measuring systems and some new methodology for three-dimensional recording. , 1964, Journal of the Optical Society of America.
[53] A. A. Skavenski,et al. Quality of retinal image stabilization during small natural and artificial body rotations in man , 1979, Vision Research.
[54] J. Nachmias. Determiners of the drift of the eye during monocular fixation. , 1961, Journal of the Optical Society of America.
[55] Ehud Ahissar,et al. Seeing via Miniature Eye Movements: A Dynamic Hypothesis for Vision , 2012, Front. Comput. Neurosci..
[56] D. Snodderly,et al. Saccades and drifts differentially modulate neuronal activity in V1: effects of retinal image motion, position, and extraretinal influences. , 2008, Journal of vision.
[57] M. Rucci,et al. Precision of sustained fixation in trained and untrained observers. , 2012, Journal of vision.
[58] H. D. Crane,et al. Accurate three-dimensional eyetracker. , 1978, Applied optics.
[59] H. Collewijn,et al. Precise recording of human eye movements , 1975, Vision Research.
[60] W. Singer,et al. Synchronization of neuronal responses in primary visual cortex of monkeys viewing natural images. , 2008, Journal of neurophysiology.
[61] J L Gallant,et al. Sparse coding and decorrelation in primary visual cortex during natural vision. , 2000, Science.
[62] J. Victor,et al. The unsteady eye: an information-processing stage, not a bug , 2015, Trends in Neurosciences.
[63] Heiner Deubel,et al. Fourth Purkinje image signals reveal eye-lens deviations and retinal image distortions during saccades , 1995, Vision Research.
[64] Randolph Blake,et al. Pupil size dynamics during fixation impact the accuracy and precision of video-based gaze estimation , 2016, Vision Research.
[65] Ehud Ahissar,et al. Figuring Space by Time , 2001, Neuron.
[66] Austin Roorda,et al. High-speed, image-based eye tracking with a scanning laser ophthalmoscope , 2012, Biomedical optics express.
[67] JoHiN KRAUSKOPFt. Analysis of eye movements during monocular and binocular fixation. , 2004 .
[68] L. Riggs,et al. Involuntary motions of the eye during monocular fixation. , 1950, Journal of experimental psychology.
[69] R. W. Ditchburn,et al. Involuntary eye movements during fixation , 1953, The Journal of physiology.
[70] P. Welch. The use of fast Fourier transform for the estimation of power spectra: A method based on time averaging over short, modified periodograms , 1967 .
[71] L A RIGGS,et al. Motions of the retinal image during fixation. , 1954, Journal of the Optical Society of America.
[72] Haim Sompolinsky,et al. Bayesian model of dynamic image stabilization in the visual system , 2010, Proceedings of the National Academy of Sciences.
[73] Martina Poletti,et al. Control and Functions of Fixational Eye Movements. , 2015, Annual review of vision science.
[74] H. Collewijn,et al. The significance of microsaccades for vision and oculomotor control. , 2008, Journal of vision.
[75] P. Boyce. Monocular fixation in human eye movement , 1967, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[76] G. Buzsáki. Rhythms of the brain , 2006 .
[77] L. Riggs,et al. Visual acuity and the normal tremor of the eyes. , 1951, Science.
[78] J. G. Thomas,et al. Fixation Tremor in relation to Eyeball–Muscle Mechanics , 1968, Nature.
[79] Martina Poletti,et al. Miniature eye movements enhance fine spatial detail , 2007, Nature.
[80] Austin Roorda,et al. Correcting for miniature eye movements in high resolution scanning laser ophthalmoscopy , 2005 .
[81] M. Rolfs. Microsaccades: Small steps on a long way , 2009, Vision Research.
[82] Z Pizlo,et al. When push comes to shove: compensation for passive perturbation of the head during natural gaze shifts. , 1995, Journal of vestibular research : equilibrium & orientation.
[83] Michele Rucci,et al. Decorrelation of neural activity during fixational instability: Possible implications for the refinement of V1 receptive fields , 2004, Visual Neuroscience.
[84] Emery N. Brown,et al. Context Matters: The Illusive Simplicity of Macaque V1 Receptive Fields , 2012, PloS one.
[85] Michele Rucci,et al. EyeRIS: A general-purpose system for eye-movement-contingent display control , 2007, Behavior research methods.
[86] H D Crane,et al. Generation-V dual-Purkinje-image eyetracker. , 1985, Applied optics.
[87] D. Robinson,et al. A METHOD OF MEASURING EYE MOVEMENT USING A SCLERAL SEARCH COIL IN A MAGNETIC FIELD. , 1963, IEEE transactions on bio-medical engineering.
[88] William T. Newsome,et al. Tracking the eye non-invasively: simultaneous comparison of the scleral search coil and optical tracking techniques in the macaque monkey , 2012, Front. Behav. Neurosci..