Classical neurogeometric models describe the primary visual cortex as a fibered structure in which retinal position and local orientation are coupled through the geometry of the roto-translation group. We extend this approach to the visuomotor cortex by modeling it as an assemblage of visual and motor cortical geometries. The model combines orientation-selective representations, analogous to those of the primary visual cortex, with movement-direction-selective representations, analogous to those of the primary motor cortex, in order to describe the mixed visual and motor selectivity observed in the visuomotor cortex. We introduce a coupled visuomotor structure in which visual orientation and motor direction coexist over a common spatial plane and interact through a relative-orientation constraint. Neural responses are modeled by orientation- and direction-dependent profile functions, and preference maps are obtained from vectorized population responses. Numerical simulations generate visual, motor, and mixed visuomotor response maps. A competition rule between visual and motor responses produces incidence ratios close to experimental observations in macaque visuomotor cortex. This framework provides a first neurogeometric approximation of visuomotor functional architecture and a mathematical setting for studying visually guided action.
It is demonstrated that an explicit and functionally organized representation of 3D hand position is a fundamental component of primate motor cortex, complementing dynamic motor signals to support high-fidelity motor control.
These findings demonstrate that with appropriate inductive biases, specifically, dual-pathway architectures for multi-scale motion processing and training objectives focused on dynamic visual tasks, ANNs can develop functionally useful representations of motion-defined forms that exhibit better alignment with the visua...
Nastaran Darjani, S. Robert, Maryam Vaziri-Pashkam et al.· bioRxiv· 0 citations
The human cortex is organized around primary sensory-motor landmarks, but the way these distances shape large-scale functional organization remains unclear. Using geodesic measures in males and females, we show that global minimum distance to sensory-motor landmarks aligns with the principal gradient of intrinsic conne...
Lidón Marín-Marín, Xiu-Yi Wang, J. Smallwood et al.· Journal of Neuroscience· 0 citations
Visual deprivation provides a critical model for understanding how sensory experience and developmental constraints shape cortical organization. In blindness, the occipital cortex is recruited for tactile and auditory perception as well as language, memory, mathematical processing, and executive control. The core quest...
Xiang-zhi Xiao, Yu Zhang, Jia-Cheng Zheng et al.· Frontiers in Human Neuroscie...· 0 citations
Discriminating between two stimuli requires that their neural representations become separable by downstream readouts. This can be achieved geometrically, by disentangling the manifolds that population responses form in neural state space. Such reorganization has been observed in associative and motor areas, but never...
Julien Corbo, L. R. Çağlar, O. Erkat et al.· bioRxiv· 0 citations
To move through the world, animals extract visual features from objects. Although the dorsomedial striatum (DMS) contains visual processing circuits, visual perception is considered a cortical attribute. Here, we asked whether neurons from the DMS encode visual features in the absence of behavioral contingencies contri...
Job Perez-Becerra, Ricardo Velazquez-Contreras, Luis A. Tellez et al.· Cell Reports· 0 citations
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