Výsledky vyhľadávania - Sparse Approximate Variational Autoencoder

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  1. 1

    Sparse-Coding Variational Autoencoders Autor Geadah, Victor, Barello, Gabriel, Greenidge, Daniel, Charles, Adam S, Pillow, Jonathan W

    ISSN: 1530-888X, 1530-888X
    Vydavateľské údaje: United States 19.11.2024
    Vydané v Neural computation (19.11.2024)
    “…) fitting relied on approximate inference methods that ignored uncertainty. Although subsequent work has developed several methods to overcome these obstacles, we propose a novel solution inspired by the variational autoencoder (VAE) framework…”
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    Journal Article
  2. 2

    Robust Multiple-Measurement Sparsity-Aware STAP with Bayesian Variational Autoencoder Autor Zhang, Chenxi, Zhao, Huiliang, Chen, Wenchao, Chen, Bo, Wang, Penghui, Jia, Changrui, Liu, Hongwei

    ISSN: 2072-4292, 2072-4292
    Vydavateľské údaje: Basel MDPI AG 01.08.2022
    Vydané v Remote sensing (Basel, Switzerland) (01.08.2022)
    “…−time adaptive processing (STAP) often suffers remarkable performance degradation in the heterogeneous clutter environment. Sparse recovery (SR…”
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    Journal Article
  3. 3

    A High-Generalization Variational Denoising Autoencoder for Micronewton Thrust Signal Noise Removal and Step Reconstruction Autor Chen, Xingyu, Zhao, Liye, Xu, Jiawen, Liu, Zhikang, Dai, Zhuoping, Xu, Luxiang, Guo, Ning, Zhang, Hong

    ISSN: 0018-9456, 1557-9662
    Vydavateľské údaje: New York IEEE 2025
    “… In this study, we have developed a novel generative denoising method, named variational denoising autoencoder (VDAE…”
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    Journal Article
  4. 4

    Leveraging Cross Feedback of User and Item Embeddings with Attention for Variational Autoencoder based Collaborative Filtering Autor Yuan, Jin, Zhao, He, Liu, Ming, Zhu, Ye, Du, Lan, Gao, Longxiang, Zhang, He, Li, Yunfeng

    ISSN: 2331-8422
    Vydavateľské údaje: Ithaca Cornell University Library, arXiv.org 22.08.2022
    Vydané v arXiv.org (22.08.2022)
    “… Variational autoencoders (VAE) can address this issue by capturing complex mappings between the posterior parameters and the data…”
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    Paper
  5. 5

    Scalable Weibull Graph Attention Autoencoder for Modeling Document Networks Autor Wang, Chaojie, Liu, Xinyang, Wang, Dongsheng, Zhang, Hao, Chen, Bo, Zhou, Mingyuan

    ISSN: 2331-8422
    Vydavateľské údaje: Ithaca Cornell University Library, arXiv.org 13.10.2024
    Vydané v arXiv.org (13.10.2024)
    “…Although existing variational graph autoencoders (VGAEs) have been widely used for modeling and generating graph-structured data, most of them…”
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    Paper
  6. 6

    A semi-supervised temporal modeling strategy integrating VAE and Wasserstein GAN under sparse sampling constraints Autor Hu, Yujie, Xie, Changrui, Chen, Xi

    ISSN: 0959-1524
    Vydavateľské údaje: Elsevier Ltd 01.08.2025
    Vydané v Journal of process control (01.08.2025)
    “… To address this issue, a semi-supervised modeling strategy based on Variational Autoencoder (VAE…”
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    Journal Article
  7. 7

    Application of Deep Generative Models for Anomaly Detection in Complex Financial Transactions Autor Tang, Tengda, Yao, Jianhua, Wang, Yixian, Sha, Qiuwu, Feng, Hanrui, Xu, Zhen

    Vydavateľské údaje: IEEE 25.04.2025
    “… By combining Generative Adversarial Networks (GAN) and Variational Autoencoders (VAE), the algorithm is designed to detect abnormal behaviors in financial transactions…”
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    Konferenčný príspevok..
  8. 8

    A Comparative Analysis of Data Synthesis Techniques to Improve Classification Accuracy of Raman Spectroscopy Data Autor Flanagan, Aaron R, Glavin, Frank G

    ISSN: 1549-960X, 1549-960X
    Vydavateľské údaje: United States 08.04.2024
    “… Open-source data are difficult to obtain and often sparse; furthermore, the collecting and curating of new spectra require expertise and resources…”
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    Journal Article
  9. 9

    Machine learning : a Bayesian and optimization perspective Autor Theodoridis, Sergios

    ISBN: 9780128188033, 0128188030
    Vydavateľské údaje: London Academic Press 2020
    “…/Bayesian learning, as well as short courses on sparse modeling, deep learning, and probabilistic graphical models…”
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    E-kniha Kniha
  10. 10

    Making Model Aware: Pattern Recognition and Analysis in Environmental and Healthcare Data With Machine Learning Models Autor Jiang, Ziyang

    ISBN: 9798302168887
    Vydavateľské údaje: ProQuest Dissertations & Theses 01.01.2024
    “…Discovering intrinsic patterns in environmental and healthcare data is often very helpful for analyzing correlations and causations among different variables…”
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    Dissertation
  11. 11

    Inferential Gans and Deep Feature Selection with Applications Autor Chen, Yao

    ISBN: 9798379823917
    Vydavateľské údaje: ProQuest Dissertations & Theses 01.01.2020
    “… In unsupervised learning, variational autoencoders (VAEs) and generative adverarial networks (GANs) are two most popular and successful generative models…”
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    Dissertation
  12. 12

    One-Bit Compressed Sensing in the Presence of Noise Autor Kafle, Swatantra

    ISBN: 9798535511313
    Vydavateľské údaje: ProQuest Dissertations & Theses 01.01.2021
    “…) for signal reconstruction and parameter estimation. We first consider the problem of joint sparse support estimation with one-bit measurements in a distributed setting…”
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    Dissertation
  13. 13

    Advances in Machine Learning: Nearest Neighbour Search, Learning to Optimize and Generative Modelling Autor Li, Ke

    ISBN: 9781392717806, 1392717809
    Vydavateľské údaje: ProQuest Dissertations & Theses 01.01.2019
    “…Machine learning is the embodiment of an unapologetically data-driven philosophy that has increasingly become one of the most important drivers of progress in…”
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    Dissertation
  14. 14

    A Non-negative VAE:the Generalized Gamma Belief Network Autor Duan, Zhibin, Wen, Tiansheng, Wang, Muyao, Chen, Bo, Zhou, Mingyuan

    ISSN: 2331-8422
    Vydavateľské údaje: Ithaca Cornell University Library, arXiv.org 15.08.2024
    Vydané v arXiv.org (15.08.2024)
    “… Its notable capability to acquire interpretable latent factors is partially attributed to sparse and non-negative gamma-distributed latent variables…”
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    Paper
  15. 15

    SIReN-VAE: Leveraging Flows and Amortized Inference for Bayesian Networks Autor Mouton, Jacobie, Kroon, Steve

    ISSN: 2331-8422
    Vydavateľské údaje: Ithaca Cornell University Library, arXiv.org 23.04.2022
    Vydané v arXiv.org (23.04.2022)
    “…Initial work on variational autoencoders assumed independent latent variables with simple distributions…”
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    Paper