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vae-implementation

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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.

  • Updated May 6, 2024
  • C++

Pytorch implementation of Gaussian Mixture Variational Autoencoder GMVAE

  • Updated Jun 23, 2024
  • Python

Implementation of LiteVAE

  • Updated Feb 11, 2025
  • Python

Tensorflow 2.x implementation of the beta-TCVAE (arXiv:1802.04942).

  • Updated Nov 12, 2019
  • Python

An official repository for a VAE tutorial of Probabilistic Modelling and Reasoning - a University of Edinburgh master's course.

  • Updated Jan 2, 2024
  • Jupyter Notebook

Symbol emergence using Variational Auto-Encoder and Gaussian Mixture Model (Inter-GMM-VAE)~VAEを活用した実画像からの記号創発~

  • Updated Oct 8, 2025
  • Python

Topics include function approximation, learning dynamics, using learned dynamics in control and planning, handling uncertainty in learned models, learning from demonstration, and model-based and model-free reinforcement learning.

  • Updated Feb 7, 2024
  • Jupyter Notebook

Python implementation of N-gram Models, Log linear and Neural Linear Models, Back-propagation and Self-Attention, HMM, PCFG, CRF, EM, VAE

  • Updated Aug 20, 2020
  • Python

Variational Auto Encoders (VAEs), Generative Adversarial Networks (GANs) and Generative Normalizing Flows (NFs) and are the most famous and powerful deep generative models.

  • Updated Jan 14, 2020
  • Python

Pytorch版本实现的VAE和公式推导

  • Updated Nov 10, 2025
  • Python

Implementation of the variational autoencoder with PyTorch and Fastai

  • Updated Jun 27, 2020
  • Jupyter Notebook

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.

  • Updated Jan 31, 2024
  • Jupyter Notebook

Implementation of CVAE. Trained CVAE on faces from UTKFace Dataset to produce synthetic faces with a given degree of happiness/smileyness.

  • Updated Dec 13, 2021
  • Python

Towards Generative Modeling from (variational) Autoencoder to DCGAN

  • Updated Apr 30, 2020
  • Jupyter Notebook

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