Publications
Peripheral targets attenuate miniature eye movements during fixation. Nature Scientific Reports, 23(13), 7426. http://doi.org/https://doi.org/10.1038/s41598-023-34066-2
. (2023). A covered eye fails to follow an object moving in depth. Scientific Reports, 11. http://doi.org/https://doi.org/10.1038/s41598-021-90371-8
. (2021). A common mechanism modulates saccade timing during pursuit and fixation. Journal Of Neurophysiology .
. (2019). Human Eye Movements Reveal Video Frame Importance. Computer, 52(5), 48–57. http://doi.org/10.1109/MC.2019.2903246
. (2019). Choosing a foveal goal recruits the saccadic system during smooth pursuit. Journal Of Neurophysiology , 120(2), 489-496. http://doi.org/ 10.1152/jn.00418.2017
. (2018). Foveated convolutional neural networks for video summarization. Multimedia Tools And Applications, 77(22), 29245-29267. http://doi.org/https://doi.org/10.1007/s11042-018-5953-1
. (2018). Illusory motion reveals velocity matching, not foveation, drives smooth pursuit of large objects. Journal Of Vision, 17(12).
. (2017). Monocular and Binocular Smooth Pursuit in Central Field Loss. Vision Research.
. (2017). A Subconscious Interaction between Fixation and Anticipatory Pursuit. Journal Of Neuroscience, 37(47), 11424-11430. http://doi.org/10.1523/JNEUROSCI.2186-17.2017
. (2017). . (2016).
Gaze Changes from Binocular to Monocular Viewing during Smooth Pursuit in Macular Degeneration. Investigative Ophthalmology & Visual Science.
. (2016). . (2016).
Allocation of attention during pursuit of large objects is no different than during fixation. Journal Of Vision, 15, 9–9.
. (2015). Different time scales of motion integration for anticipatory smooth pursuit and perceptual adaptation. Journal Of Vision, 15, 16.
. (2015). Evaluation of Smooth Pursuit in Individuals with Central Field Loss. European Conference on Eye Movements. Vienna, Austria: Vienna, Austria.
. (2015). A foveal target increases catch-up saccade frequency during smooth pursuit. Journal Of Neurophysiology, jn–00774.
. (2015). A mechanism for decision rule discrimination by supplementary eye field neurons. Experimental Brain Research, 233, 459–476.
. (2015). Contrasting the roles of the supplementary and frontal eye fields in ocular decision making. Journal Of Neurophysiology, 111, 2644–2655.
. (2014). Motion Integration for Ocular Pursuit Does Not Hinder Perceptual Segregation of Moving Objects. The Journal Of Neuroscience, 34, 5835–5841.
. (2014). . (2013).
. (2011).
Flexible interpretation of a decision rule by supplementary eye field neurons. Journal Of Neurophysiology, 106, 2992–3000.
. (2011). . (2010).