Search Results for author: Vijay Veerabadran

Found 6 papers, 1 papers with code

Bio-inspired learnable divisive normalization for ANNs

no code implementations NeurIPS Workshop SVRHM 2021 Vijay Veerabadran, Ritik Raina, Virginia R. de Sa

In this work we introduce DivNormEI, a novel bio-inspired convolutional network that performs divisive normalization, a canonical cortical computation, along with lateral inhibition and excitation that is tailored for integration into modern Artificial Neural Networks (ANNs).

Image Classification Object Recognition

Learning compact generalizable neural representations supporting perceptual grouping

no code implementations21 Jun 2020 Vijay Veerabadran, Virginia R. de Sa

Work at the intersection of vision science and deep learning is starting to explore the efficacy of deep convolutional networks (DCNs) and recurrent networks in solving perceptual grouping problems that underlie primate visual recognition and segmentation.

Pathfinder Transfer Learning

V1Net: A computational model of cortical horizontal connections

no code implementations25 Sep 2019 Vijay Veerabadran, Virginia R. de Sa

The primate visual system builds robust, multi-purpose representations of the external world in order to support several diverse downstream cortical processes.

Boundary Detection Object Recognition

Learning long-range spatial dependencies with horizontal gated-recurrent units

1 code implementation NeurIPS 2018 Drew Linsley, Junkyung Kim, Vijay Veerabadran, Thomas Serre

As a prime example, convolutional neural networks, a type of feedforward neural networks, are now approaching -- and sometimes even surpassing -- human accuracy on a variety of visual recognition tasks.

Contour Detection

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