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G Weyand

Showing results (11-20 of 74) with videos related to

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Royal Society Open Science|September 25, 2025
Sex performance differences in vertical and horizontal jumpingEmily L Haag, Peter G Weyand
The Journal of Comparative Neurology|August 22, 1986
Thalamic inputs to visual areas 1 and 2 in the rabbitT G Weyand, H A Swadlow
The Journal of Comparative Neurology|December 20, 1981
Efferent systems of the rabbit visual cortex: laminar distribution of the cells of origin, axonal conduction velocities, and identification of axonal branchesH A Swadlow, T G Weyand
Journal of Neurophysiology|April 1, 1987
Corticogeniculate neurons, corticotectal neurons, and suspected interneurons in visual cortex of awake rabbits: receptive-field properties, axonal properties, and effects of EEG arousalH A Swadlow, T G Weyand
American Journal of Physiology. Regulatory, Integrative and Comparative Physiology|December 4, 2004
Energetics of high-speed running: integrating classical theory and contemporary observationsPeter G Weyand, Matthew W Bundle
Journal of Neurophysiology|June 1, 1993
Responses of neurons in primary visual cortex are modulated by eye positionT G Weyand, J G Malpeli
Brain, Behavior and Evolution|January 1, 1980
Interhemispheric striate projections in the prosimian primate, Galago senegalensisT G Weyand, H A Swadlow
Visual Neuroscience|February 11, 1998
Activity of neurons in area 6 of the cat during fixation and eye movementsT G Weyand, A C Gafka
Visual Neuroscience|February 11, 1998
Corticostriatal and corticotectal neurons in area 6 of the cat during fixation and eye movementsT G Weyand, A C Gafka
Journal of Applied Physiology (Bethesda, Md. : 1985)|August 18, 2022
Sex differences in human running performance: smaller gaps at shorter distances?Emily L McClelland, Peter G Weyand
Pageof 8

Showing results (11-20 of 74) with videos related to

Sort By:
Pageof 8
Royal Society Open Science|September 25, 2025
Sex performance differences in vertical and horizontal jumpingEmily L Haag, Peter G Weyand
The Journal of Comparative Neurology|August 22, 1986
Thalamic inputs to visual areas 1 and 2 in the rabbitT G Weyand, H A Swadlow
The Journal of Comparative Neurology|December 20, 1981
Efferent systems of the rabbit visual cortex: laminar distribution of the cells of origin, axonal conduction velocities, and identification of axonal branchesH A Swadlow, T G Weyand
Journal of Neurophysiology|April 1, 1987
Corticogeniculate neurons, corticotectal neurons, and suspected interneurons in visual cortex of awake rabbits: receptive-field properties, axonal properties, and effects of EEG arousalH A Swadlow, T G Weyand
American Journal of Physiology. Regulatory, Integrative and Comparative Physiology|December 4, 2004
Energetics of high-speed running: integrating classical theory and contemporary observationsPeter G Weyand, Matthew W Bundle
Journal of Neurophysiology|June 1, 1993
Responses of neurons in primary visual cortex are modulated by eye positionT G Weyand, J G Malpeli
Brain, Behavior and Evolution|January 1, 1980
Interhemispheric striate projections in the prosimian primate, Galago senegalensisT G Weyand, H A Swadlow
Visual Neuroscience|February 11, 1998
Activity of neurons in area 6 of the cat during fixation and eye movementsT G Weyand, A C Gafka
Visual Neuroscience|February 11, 1998
Corticostriatal and corticotectal neurons in area 6 of the cat during fixation and eye movementsT G Weyand, A C Gafka
Journal of Applied Physiology (Bethesda, Md. : 1985)|August 18, 2022
Sex differences in human running performance: smaller gaps at shorter distances?Emily L McClelland, Peter G Weyand
Pageof 8