• Thumbnail for Autoencoder
    An autoencoder is a type of artificial neural network used to learn efficient codings of unlabeled data (unsupervised learning). An autoencoder learns...
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  • Thumbnail for Variational autoencoder
    In machine learning, a variational autoencoder (VAE) is an artificial neural network architecture introduced by Diederik P. Kingma and Max Welling. It...
    27 KB (3,967 words) - 05:53, 30 April 2025
  • Thumbnail for Vision transformer
    CNN. The masked autoencoder (2022) extended ViT to work with unsupervised training. The vision transformer and the masked autoencoder, in turn, stimulated...
    37 KB (4,127 words) - 20:13, 29 April 2025
  • machine learning, particularly in variational inference, variational autoencoders, and stochastic optimization. It allows for the efficient computation...
    11 KB (1,706 words) - 13:19, 6 March 2025
  • conditional text-to-image generation. LDM consists of a variational autoencoder (VAE), a modified U-Net, and a text encoder. The VAE encoder compresses...
    19 KB (2,184 words) - 20:00, 19 April 2025
  • Thumbnail for Generative adversarial network
    algorithm". An adversarial autoencoder (AAE) is more autoencoder than GAN. The idea is to start with a plain autoencoder, but train a discriminator to...
    95 KB (13,881 words) - 09:25, 8 April 2025
  • Thumbnail for Feature learning
    as gradient descent. Classical examples include word embeddings and autoencoders. Self-supervised learning has since been applied to many modalities through...
    45 KB (5,114 words) - 14:51, 30 April 2025
  • and to sparse coding models used in deep learning algorithms such as autoencoder. The simplest training algorithm for vector quantization is: Pick a sample...
    13 KB (1,649 words) - 10:50, 3 February 2024
  • principal component analysis (PCA), Boltzmann machine learning, and autoencoders. After the rise of deep learning, most large-scale unsupervised learning...
    31 KB (2,770 words) - 08:47, 30 April 2025
  • often achieved using autoencoders, which are a type of neural network architecture used for representation learning. Autoencoders consist of an encoder...
    18 KB (2,047 words) - 16:20, 4 April 2025
  • NSynth (a portmanteau of "Neural Synthesis") is a WaveNet-based autoencoder for synthesizing audio, outlined in a paper in April 2017. The model generates...
    10 KB (806 words) - 07:42, 11 December 2024
  • store and retrieve multidimensional aperiodic signals. An oscillatory autoencoder has also been demonstrated, which uses a combination of oscillators and...
    2 KB (205 words) - 18:48, 12 December 2024
  • Thumbnail for Nonlinear dimensionality reduction
    to high-dimensional space. Although the idea of autoencoders is quite old, training of deep autoencoders has only recently become possible through the use...
    48 KB (6,112 words) - 15:28, 18 April 2025
  • such as the wake-sleep algorithm. They are a precursor to variational autoencoders, which are instead trained using backpropagation. Helmholtz machines...
    3 KB (358 words) - 08:04, 23 February 2025
  • approach to nonlinear dimensionality reduction is through the use of autoencoders, a special kind of feedforward neural networks with a bottleneck hidden...
    21 KB (2,248 words) - 07:14, 18 April 2025
  • procedure of granting degrees based on work experience in France Variational autoencoder, an artificial neural network architecture All pages with titles beginning...
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  • Thumbnail for Generative pre-trained transformer
    representation for downstream applications such as facial recognition. The autoencoders similarly learn a latent representation of data for later downstream...
    65 KB (5,342 words) - 13:55, 1 May 2025
  • k-NN Local outlier factor Isolation forest Artificial neural network Autoencoder Deep learning Feedforward neural network Recurrent neural network LSTM...
    64 KB (6,206 words) - 19:48, 1 May 2025
  • (instead of emitting a target value). Therefore, autoencoders are unsupervised learning models. An autoencoder is used for unsupervised learning of efficient...
    89 KB (10,702 words) - 10:21, 19 April 2025
  • Malla, D.B. & Sogabe, T. 2019, Convolution filter embedded quantum gate autoencoder, Cornell University Library, arXiv.org, Ithaca. Chiu, Ching-Kai; Teo...
    7 KB (745 words) - 09:59, 31 March 2025
  • contrast, many alternative generative modeling methods such as variational autoencoder (VAE) and generative adversarial network do not explicitly represent...
    26 KB (3,917 words) - 03:42, 14 March 2025
  • we could branch off towards the development of an importance-weighted autoencoder, but we will instead continue with the simplest case with N = 1 {\displaystyle...
    18 KB (3,926 words) - 02:03, 6 January 2025
  • the restricted Boltzmann machine, deep belief net, deep autoencoder, stacked denoising autoencoder and recursive neural tensor network, word2vec, doc2vec...
    17 KB (1,378 words) - 02:36, 11 February 2025
  • recognition algorithms and artificial neural networks such as variational autoencoders (VAEs) and generative adversarial networks (GANs). In turn, the field...
    206 KB (19,391 words) - 16:56, 1 May 2025
  • recursive autoencoders. The main concept is to produce a vector representation of a sentence and its components by recursively using an autoencoder. The vector...
    24 KB (2,945 words) - 22:25, 27 February 2025
  • Examples include dictionary learning, independent component analysis, autoencoders, matrix factorisation and various forms of clustering. Manifold learning...
    140 KB (15,513 words) - 11:41, 29 April 2025
  • Thumbnail for Text-to-image model
    previously-introduced DRAW architecture (which used a recurrent variational autoencoder with an attention mechanism) to be conditioned on text sequences. Images...
    20 KB (1,925 words) - 13:44, 30 April 2025
  • high-fidelity audio. Generative Adversarial Networks (GANs) and Variational Autoencoders (VAEs) are being used more and more in new audio texture synthesis and...
    61 KB (6,981 words) - 10:36, 26 April 2025
  • Thumbnail for Generative artificial intelligence
    of generative modeling. In 2014, advancements such as the variational autoencoder and generative adversarial network produced the first practical deep...
    163 KB (13,826 words) - 19:09, 30 April 2025
  • Thumbnail for Internet
    detection using transferred generative adversarial networks based on deep autoencoders" (PDF). Information Sciences. 460–461: 83–102. doi:10.1016/j.ins.2018...
    155 KB (16,498 words) - 09:57, 25 April 2025