Search Results for author: Eero Simoncelli

Found 6 papers, 3 papers with code

Learning Efficient Coding of Natural Images with Maximum Manifold Capacity Representations

1 code implementation NeurIPS 2023 Thomas Yerxa, Yilun Kuang, Eero Simoncelli, SueYeon Chung

The resulting method is closely related to and inspired by advances in the field of self supervised learning (SSL), and we demonstrate that MMCRs are competitive with state of the art results on standard SSL benchmarks.

Contrastive Learning Object Recognition +1

Impression learning: Online representation learning with synaptic plasticity

1 code implementation NeurIPS 2021 Colin Bredenberg, Benjamin Lyo, Eero Simoncelli, Cristina Savin

Understanding how the brain constructs statistical models of the sensory world remains a longstanding challenge for computational neuroscience.

Bayesian Inference Representation Learning

Stochastic Solutions for Linear Inverse Problems using the Prior Implicit in a Denoiser

no code implementations NeurIPS 2021 Zahra Kadkhodaie, Eero Simoncelli

Two recent lines of work – Denoising Score Matching and Plug-and-Play – propose methodologies for drawing samples from this implicit prior and using it to solve inverse problems, respectively.

Compressive Sensing Deblurring +2

Learning efficient task-dependent representations with synaptic plasticity

1 code implementation NeurIPS 2020 Colin Bredenberg, Eero Simoncelli, Cristina Savin

Neural populations encode the sensory world imperfectly: their capacity is limited by the number of neurons, availability of metabolic and other biophysical resources, and intrinsic noise.

Flexible information routing in neural populations through stochastic comodulation

no code implementations NeurIPS 2019 Caroline Haimerl, Cristina Savin, Eero Simoncelli

It has been observed that trial-to-trial neural activity is modulated by a shared, low-dimensional, stochastic signal that introduces task-irrelevant noise.

Decision Making

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