A Collection of Variational Autoencoders (VAE) in PyTorch.
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Updated
Jun 13, 2024 - Python
A Collection of Variational Autoencoders (VAE) in PyTorch.
Unifying Variational Autoencoder (VAE) implementations in Pytorch (NeurIPS 2022)
Implementation of a Hybrid Variational Autoencoder (VAE) for label information-guided dimensionality reduction.
There are C language computer programs about the simulator, transformation, and test statistic of continuous Bernoulli distribution. More than that, the book contains continuous Binomial distribution and continuous Trinomial distribution.
Pytorch implementation of Gaussian Mixture Variational Autoencoder GMVAE
Tensorflow 2.x implementation of the beta-TCVAE (arXiv:1802.04942).
An official repository for a VAE tutorial of Probabilistic Modelling and Reasoning (2023/2024) - a University of Edinburgh master's course.
Python implementation of N-gram Models, Log linear and Neural Linear Models, Back-propagation and Self-Attention, HMM, PCFG, CRF, EM, VAE
Implementation of LiteVAE
Variational Auto Encoders (VAEs), Generative Adversarial Networks (GANs) and Generative Normalizing Flows (NFs) and are the most famous and powerful deep generative models.
Implementation of the variational autoencoder with PyTorch and Fastai
Implementation of CVAE. Trained CVAE on faces from UTKFace Dataset to produce synthetic faces with a given degree of happiness/smileyness.
A re-implementation of the Sentence VAE paper, Generating Sentences from a Continuous Space
Towards Generative Modeling from (variational) Autoencoder to DCGAN
The GUI for RaptGen developed with React and FastAPI
Autoencoders (Standard, Convolutional, Variational), implemented in tensorflow
Utilized a VAE (Variational Autoencoder) and CGAN (Conditional Generative Adversarial Network) models to generate synthetic chatter signals, addressing the challenge of imbalanced data in turning operations. Compared othe performance of synthetic chatter signals.
VAE and CVAE pytorch implement based on MNIST
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