Results 41 to 50 of about 80 (58)
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Neurogeometry of color vision

Journal of Physiology-Paris, 2012
In neurogeometry, principles of differential geometry and neuron dynamics are used to model the representation of forms in the primary visual cortex, V1. This approach is well-suited for explaining the perception of illusory contours such as Kanizsa's figure (see Petitot (2008) for a review). In its current version, neurogeometry uses achromatic inputs
Alleysson, David, Méary, David
openaire   +5 more sources

Neurogeometry and potential synaptic connectivity

Trends in Neurosciences, 2005
The advent of high-quality 3D reconstructions of neuronal arbors has revived the hope of inferring synaptic connectivity from the geometric shapes of axons and dendrites, or 'neurogeometry'. A quantitative description of connectivity must be built on a sound theoretical framework.
Armen, Stepanyants, Dmitri B, Chklovskii
openaire   +4 more sources

Landmarks for Neurogeometry

Lecture Notes in Morphogenesis, 2014
We present a historical survey of the way Neurogeometry links the modelling of the functional architectures of primary visual areas with sub-Riemannian geometry.
Petitot Jean
openaire   +3 more sources

Measurement of the electric field induced into inhomogeneous volume conductors by magnetic coils: application to human spinal neurogeometry

Electroencephalography and Clinical Neurophysiology/Evoked Potentials Section, 1991
We measured the electric fields induced by round and figure "8" magnetic coils (MCs) in homogeneous and inhomogeneous volume conductors. In homogeneous media, the round MC held tangential (i.e., flat) to the volume conductor induced an annular electric field.
P J, Maccabee   +6 more
openaire   +4 more sources

The neurogeometry of pinwheels as a sub-Riemannian contact structure

Journal of Physiology-Paris, 2003
We present a geometrical model of the functional architecture of the primary visual cortex (V1) and, more precisely, of its pinwheel structure. The problem is to understand from within how the internal "imminent" geometry of the visual cortex can produce the "transcendent" geometry of the external space.
Jean Petitot
openaire   +4 more sources

Neurogeometry of neural functional architectures

Chaos, Solitons & Fractals, 2013
zbMATH Open Web Interface contents unavailable due to conflicting licenses.
openaire   +3 more sources

Elements of Neurogeometry

Lecture Notes in Morphogenesis, 2017
openaire   +3 more sources

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