The impact of higher-order aberrations on the strength of directional signals produced by accommodative microfluctuations.
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Humza J. Tahir | Clifton M Schor | Humza J Tahir | S. Metlapally | C. Schor | Jianliang Tong | Sangeetha Metlapally | Jianliang L Tong
[1] C Leahy,et al. Temporal dynamics and statistical characteristics of the microfluctuations of accommodation: dependence on the mean accommodative effort. , 2010, Optics express.
[2] Sotiris Plainis,et al. The effect of ocular aberrations on steady-state errors of accommodative response. , 2005, Journal of Vision.
[3] D. Goss,et al. Accommodative response under monocular and binocular conditions as a function of phoria in symptomatic and asymptomatic subjects , 2014, Clinical & experimental optometry.
[4] Takashi Fujikado,et al. Effect of tear film break-up on higher-order aberrations measured with wavefront sensor. , 2002, American journal of ophthalmology.
[5] P Artal,et al. Temporal dynamics of ocular aberrations: monocular vs binocular vision , 2009, Ophthalmic & physiological optics : the journal of the British College of Ophthalmic Opticians.
[6] Ian J Murray,et al. Higher-order aberrations produce orientation-specific notches in the defocused contrast sensitivity function. , 2009, Journal of vision.
[7] E. Irving,et al. Effect of heterophoria type and myopia on accommodative and vergence responses during sustained near activity in children , 2012, Vision Research.
[8] A. Bradley,et al. Accuracy and precision of objective refraction from wavefront aberrations. , 2004, Journal of vision.
[9] Karen M. Hampson,et al. Effect of temporal location of correction of monochromatic aberrations on the dynamic accommodation response , 2010, Biomedical optics express.
[10] C. Miège,et al. Mean response and oscillations of accommodation for various stimulus vergences in relation to accommodation feedback control , 1988, Ophthalmic & physiological optics : the journal of the British College of Ophthalmic Opticians.
[11] Arthur Bradley,et al. Readily visible changes in color contrast are insufficient to stimulate accommodation , 1990, Vision Research.
[12] Susana Marcos,et al. Accommodative lag and fluctuations when optical aberrations are manipulated. , 2009, Journal of vision.
[13] E F FINCHAM,et al. The Accommodation Reflex and its Stimulus * , 1951, The Journal of physiology.
[14] B. Jiang,et al. The effects of spherical aberration on static accommodative responses in emmetropes and myopes , 2011, Ophthalmic & physiological optics : the journal of the British College of Ophthalmic Opticians.
[15] A IVANOFF. On the influence of accommodation on spherical aberration in the human eye, an attempt to interpret night myopia. , 1947, Journal of the Optical Society of America.
[16] G. Heath,et al. Components of accommodation. , 1956, American journal of optometry and archives of American Academy of Optometry.
[17] J. Tassinari. Monocular Estimate Method Retinoscopy: Central Tendency Measures and Relationship to Refractive Status and Heterophoria , 2002, Optometry and vision science : official publication of the American Academy of Optometry.
[18] W N Charman,et al. Accommodation as a Function of Object Form , 1978, American journal of optometry and physiological optics.
[19] Wilson S Geisler,et al. Region grouping in natural foliage scenes: image statistics and human performance. , 2010, Journal of vision.
[20] Edward A H Mallen,et al. Effect of correction of ocular aberration dynamics on the accommodation response to a sinusoidally moving stimulus. , 2009, Optics letters.
[21] M. Alpern,et al. Variability of accommodation during steady fixation at various levels of illuminance. , 1958, Journal of the Optical Society of America.
[22] F. Toates,et al. Accommodation function of the human eye. , 1972, Physiological reviews.
[23] W. N. Charman,et al. Dependence of accommodation response on the spatial frequency spectrum of the observed object , 1977, Vision Research.
[24] A Bradley,et al. Optical and visual impact of tear break-up in human eyes. , 2000, Investigative ophthalmology & visual science.
[25] C. A. Dvorak,et al. Detection and discrimination of blur in edges and lines , 1981 .
[26] Norberto López-Gil,et al. Effect of third-order aberrations on dynamic accommodation , 2007, Vision Research.
[27] G WESTHEIMER,et al. Significance of fluctuations of accommodation. , 1958, Journal of the Optical Society of America.
[28] L M Smithline. Accommodative response to blur. , 1974, Journal of the Optical Society of America.
[29] D. Fender,et al. CONTROL MECHANISMS OF THE EYE. , 1964, Scientific American.
[30] D A Goss,et al. Relationship of accommodative response and nearpoint phoria in a sample of myopic children. , 1999, Optometry and vision science : official publication of the American Academy of Optometry.
[31] P B Kruger,et al. Small Amounts of Chromatic Aberration Influence Dynamic Accommodation , 1995, Optometry and vision science : official publication of the American Academy of Optometry.
[32] R. Watt,et al. The recognition and representation of edge blur: Evidence for spatial primitives in human vision , 1983, Vision Research.
[33] 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.
[34] W. N. Charman,et al. Visual sensitivity to temporal change in focus and its relevance to the accommodation response , 1988, Vision Research.
[35] J. C. Kotulak,et al. The effects of optical vergence, contrast, and luminance on the accommodative response to spatially bandpass filtered targets , 1987, Vision Research.
[36] David R Williams,et al. Accommodation with higher-order monochromatic aberrations corrected with adaptive optics. , 2006, Journal of the Optical Society of America. A, Optics, image science, and vision.
[37] Kevin J. MacKenzie,et al. Accommodation to multiple-focal-plane displays: Implications for improving stereoscopic displays and for accommodation control. , 2010, Journal of vision.
[38] I. Ohzawa,et al. A comparison of contrast detection and discrimination , 1986, Vision Research.
[39] J. C. Kotulak,et al. A computational model of the error detector of human visual accommodation , 1986, Biological Cybernetics.
[40] Austin Roorda,et al. A population study on changes in wave aberrations with accommodation. , 2004, Journal of vision.
[41] H. Ohtsuki,et al. Accuracy of accommodation in heterophoric patients: testing an interaction model in a large clinical sample , 2005, Ophthalmic & physiological optics : the journal of the British College of Ophthalmic Opticians.
[42] K. Hampson,et al. Role of ocular aberrations in dynamic accommodation control , 2009, Clinical & experimental optometry.
[43] Norberto López-Gil,et al. Spherical Aberration and the Sign of Defocus , 2013, Optometry and vision science : official publication of the American Academy of Optometry.
[44] David A. Atchison,et al. Measurement of monochromatic ocular aberrations of human eyes as a function of accommodation by the howland aberroscope technique , 1995, Vision Research.
[45] P Artal,et al. Dynamics of the eye's wave aberration. , 2001, Journal of the Optical Society of America. A, Optics, image science, and vision.
[46] D. A. Owens. A comparison of accommodative responsiveness and contrast sensitivity for sinusoidal gratings , 1980, Vision Research.
[47] W. Charman,et al. Postblink changes in total and corneal ocular aberrations. , 2004, Ophthalmology.
[48] Norberto López-Gil,et al. Accommodation-related changes in monochromatic aberrations of the human eye as a function of age. , 2008, Investigative ophthalmology & visual science.
[49] D A Atchison,et al. Predicting the effects of optical defocus on human contrast sensitivity. , 1998, Journal of the Optical Society of America. A, Optics, image science, and vision.
[50] Austin Roorda,et al. Determining the accommodative response from wavefront aberrations. , 2010, Journal of vision.
[51] J. E. Raymond,et al. The effect of contrast on sustained detection , 1984, Vision Research.
[52] Clifton Schor,et al. The influence of interactions between accommodation and convergence on the lag of accommodation , 1999, Ophthalmic & physiological optics : the journal of the British College of Ophthalmic Opticians.
[53] G WESTHEIMER,et al. Factors influencing accommodation responses of the human eye. , 1959, Journal of the Optical Society of America.
[54] Corina van de Pol,et al. Normal‐eye Zernike coefficients and root‐mean‐square wavefront errors , 2006, Journal of cataract and refractive surgery.
[55] Austin Roorda,et al. Monochromatic aberrations provide an odd-error cue to focus direction. , 2002, Journal of the Optical Society of America. A, Optics, image science, and vision.
[56] A. Bradley,et al. Statistical variation of aberration structure and image quality in a normal population of healthy eyes. , 2002, Journal of the Optical Society of America. A, Optics, image science, and vision.
[57] W N Charman,et al. Fluctuations in accommodation: a review , 1988, Ophthalmic & physiological optics : the journal of the British College of Ophthalmic Opticians.
[58] Pablo Artal,et al. Study on the effects of monochromatic aberrations in the accommodation response by using adaptive optics. , 2005, Journal of the Optical Society of America. A, Optics, image science, and vision.
[59] A ARNULF,et al. [The transmission of contrasts by the optical system of the eye and the retinal thresholds of contrast]. , 1960, Comptes rendus hebdomadaires des seances de l'Academie des sciences.