This repository contains an overview of important follow-up works based on the original Vision Transformer (ViT) by Google.

Overview

Vision-Transformer-papers

This repository contains a (non-exhaustive) overview of follow-up works based on the original Vision Transformer (ViT) by Google. Feel free to open a PR to add more papers!

Distillation:

New pre-training objectives:

New pre-training tricks, techniques:

Architectural changes:

Investigations of the inner workings (cfr. BERTology):

Applying ViT to other domains besides image classification:

Owner
ML @HuggingFace. Interested in deep learning, NLP. Contributed TAPAS, ViT, DeiT, LUKE, DETR, CANINE to HuggingFace Transformers
BDDM: Bilateral Denoising Diffusion Models for Fast and High-Quality Speech Synthesis

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Character-Input - Create a program that asks the user to enter their name and their age

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Wileless-PDGNet Implementation

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Bolt Online Learning Toolbox

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Modeling Category-Selective Cortical Regions with Topographic Variational Autoencoders

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pytorch implementation of ABC : Auxiliary Balanced Classifier for Class-imbalanced Semi-supervised Learning

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CPU inference engine that delivers unprecedented performance for sparse models

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Multivariate Boosted TRee

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Revisiting Video Saliency: A Large-scale Benchmark and a New Model (CVPR18, PAMI19)

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PyGRANSO: A PyTorch-enabled port of GRANSO with auto-differentiation

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This is an example of object detection on Micro bacterium tuberculosis using Mask-RCNN

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Sample code and notebooks for Vertex AI, the end-to-end machine learning platform on Google Cloud

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Geometric Vector Perceptrons --- a rotation-equivariant GNN for learning from biomolecular structure

Geometric Vector Perceptron Implementation of equivariant GVP-GNNs as described in Learning from Protein Structure with Geometric Vector Perceptrons b

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Official PyTorch Implementation of Learning Architectures for Binary Networks

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Code for the paper "On the Power of Edge Independent Graph Models"

Edge Independent Graph Models Code for the paper: "On the Power of Edge Independent Graph Models" Sudhanshu Chanpuriya, Cameron Musco, Konstantinos So

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FEDn is an open-source, modular and ML-framework agnostic framework for Federated Machine Learning

FEDn is an open-source, modular and ML-framework agnostic framework for Federated Machine Learning (FedML) developed and maintained by Scaleout Systems. FEDn enables highly scalable cross-silo and cr

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Storchastic is a PyTorch library for stochastic gradient estimation in Deep Learning

Storchastic is a PyTorch library for stochastic gradient estimation in Deep Learning

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