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Empowering Convolutional Neural Networks with MetaSin Activation

Empowering Convolutional Neural Networks with MetaSin Activation

by America Ortiz | Dec 9, 2023 | Video Processing, Visual Computing

Empowering Convolutional Neural Networks with MetaSin Activation In this work, we propose replacing a baseline network’s existing activations with a novel ensemble function with trainable parameters. The proposed METASIN activation can be trained reliably without...
An Implicit Physical Face Model Driven by Expression and Style

An Implicit Physical Face Model Driven by Expression and Style

by America Ortiz | Nov 29, 2023 | Capture, Visual Computing

An Implicit Physical Face Model Driven by Expression and Style We propose a new face model based on a data-driven implicit neural physics model that can be driven by both expression and style separately. At the core, we present a framework for learning implicit...
Neural Video Compression with Spatio-Temporal Cross-Covariance Transformers

Neural Video Compression with Spatio-Temporal Cross-Covariance Transformers

by America Ortiz | Oct 28, 2023 | Video Processing, Visual Computing

Neural Video Compression with Spatio-Temporal Cross-Covariance Transformers This work aims to effectively and jointly leverage robust temporal and spatial information by proposing a new 3D-based transformer module: Spatio-Temporal Cross- Covariance Transformer...
A Perceptual Shape Loss for Monocular 3D Face Reconstruction

A Perceptual Shape Loss for Monocular 3D Face Reconstruction

by America Ortiz | Oct 9, 2023 | Capture, Visual Computing

A Perceptual Shape Loss for Monocular 3D Face Reconstruction In this work, we propose a new loss function for monocular face capture, inspired by how humans would perceive the quality of a 3D face reconstruction given a particular image. It is widely known that...
Controllable Inversion of Black-Box Face Recognition Models via Diffusion

Controllable Inversion of Black-Box Face Recognition Models via Diffusion

by America Ortiz | Oct 2, 2023 | Machine Learning

Controllable Inversion of Black-Box Face Recognition Models via Diffusion We tackle the challenging task of inverting the latent space of pre-trained face recognition models without full model access (i.e. black-box setting). Our method, the identity denoising...
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