Výsledky vyhledávání - Stacked denoising variational autoencoder model

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  1. 1

    Stacked Denoising Variational Auto Encoder Model for Extractive Web Text Summarization Autor Yadav, Madhuri, Katarya, Rahul

    ISSN: 2228-6179, 2364-1827
    Vydáno: Cham Springer International Publishing 01.12.2024
    “… of a lot of storage and time. To solve this issue, the continuous bag of words text vectorization model has been used that reduce the processing time by producing a distributed combination of words in vector arrangement…”
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    Journal Article
  2. 2

    Robust prediction of remaining useful lifetime of bearings using deep learning Autor Magadán, L., Granda, J.C., Suárez, F.J.

    ISSN: 0952-1976, 1873-6769
    Vydáno: Elsevier Ltd 01.04.2024
    “… With the technological advances of Industry 4.0, physical models for prognostics and RUL prediction have been replaced by data-driven models that require no expert feature extraction…”
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  3. 3

    Reliable Fault Diagnosis of Bearings Using an Optimized Stacked Variational Denoising Auto-Encoder Autor Yan, Xiaoan, Xu, Yadong, She, Daoming, Zhang, Wan

    ISSN: 1099-4300, 1099-4300
    Vydáno: Switzerland MDPI AG 24.12.2021
    Vydáno v Entropy (Basel, Switzerland) (24.12.2021)
    “… Therefore, in order to improve the anti-noise performance of the VAE model and adaptively select its parameters, this paper proposes an optimized stacked variational denoising autoencoder (OSVDAE…”
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  4. 4

    Support Vector Machine – Recursive Feature Elimination for Feature Selection on Multi-omics Lung Cancer Data Autor Azman, Nuraina Syaza, A Samah, Azurah, Lin, Ji Tong, Abdul Majid, Hairudin, Ali Shah, Zuraini, Wen, Nies Hui, Howe, Chan Weng

    ISSN: 2637-1049, 2637-1049
    Vydáno: HH Publisher 04.04.2023
    “…Biological data obtained from sequencing technologies is growing exponentially. Multi-omics data is one of the biological data that exhibits high…”
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  5. 5

    Comparative Analysis of Deep Learning Algorithm for Cancer Classification using Multi-omics Feature Selection Autor Azmi, Nur Sabrina, A Samah, Azurah, Sirgunan, Vivekaanan, Ali Shah, Zuraini, Abdul Majid, Hairudin, Howe, Chan Weng, Wen, Nies Hui, Azman, Nuraina Syaza

    ISSN: 2637-1049, 2637-1049
    Vydáno: HH Publisher 06.10.2022
    “… This study aims to investigate how deep learning algorithms, namely stacked denoising autoencoder (SDAE…”
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  7. 7

    Augmenting deviation of faults from the normal using fault assistant Gaussian mixture prior variational autoencoder Autor Lee, Yi Shan, Chen, Junghui

    ISSN: 1876-1070, 1876-1089
    Vydáno: Elsevier B.V 01.01.2022
    “…•Abnormal data are used to augment the deviation of the fault from the normal.•Non-negative information sharing and transferring improve model accuracy…”
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  8. 8

    VMD-SEAE-TL-Based Data-Driven soft sensor modeling for a complex industrial batch processes Autor Ren, Jun-Chao, Liu, Ding, Wan, Yin

    ISSN: 0263-2241, 1873-412X
    Vydáno: Elsevier Ltd 01.07.2022
    “…•A stack enhanced autoencoder algorithm based on VMD is proposed in this paper. Here, VMD is implemented by decomposing and reconstructing the original data to eliminate the noise in the data…”
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  9. 9

    A comprehensive review on encoder–decoder architectures in ECG signal compression and denoising: opportunities, challenges, and prospects Autor Das, Maumita, Sahana, Bikash Chandra

    ISSN: 2446-4732, 2446-4740
    Vydáno: Cham Springer International Publishing 01.12.2025
    Vydáno v Research on biomedical engineering (01.12.2025)
    “… For effective real-time ECG signal transmission via wearables or telemetry systems, the denoising autoencoder (DAE…”
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  10. 10

    Deep Autoencoder Architectures For Foreground Object Detection In Video Sequences Based On Probabilistic Mixture Models Autor Garcia-Gonzalez, Jorge, Molina-Cabello, Miguel A., Luque-Baena, Rafael M., Ortiz-de-Lazcano-Lobato, Juan M., Lopez-Rubio, Ezequiel

    ISSN: 2381-8549
    Vydáno: IEEE 01.10.2020
    “… Therefore, different types of autoencoders, deterministic and variational, with different architectures, activation functions and number of layers, are analyzed…”
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    Konferenční příspěvek
  11. 11

    A Three-Stage Ensemble Short-Term Wind Power Prediction Method Based on VMD-WT Transform and SDAE Deep Learning Autor Xiaosheng, Peng, Zuowei, Zhang, Qiyou, Xu, Bo, Wang, Jianfeng, Che, Fan, Yang, Wenze, Li, Zian, Huang

    Vydáno: IEEE 01.07.2020
    “… Second, in stage two, multiple stacked denoising auto-encoders (SDAE) are constructed based on the subsequences to perform WPPs separately…”
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    Konferenční příspěvek
  12. 12

    Stochastic Gradient Variational Bayes for deep learning-based ASR Autor Tjandra, Andros, Sakti, Sakriani, Nakamura, Satoshi, Adriani, Mirna

    Vydáno: IEEE 01.12.2015
    “…Many successful methods for training deep neural networks (DNN) rely on an unsupervised pretraining algorithm. It is particularly effective when the number of…”
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    Konferenční příspěvek
  13. 13

    Variational Discriminative Stacked Auto-Encoder: Feature Representation Using a Prelearned Discriminator, and Its Application to Industrial Process Monitoring Autor Huang, Jian, Sun, Xiaoyang, Ding, Steven X., Yang, Xu, Ersoy, Okan K.

    ISSN: 2162-237X, 2162-2388, 2162-2388
    Vydáno: United States IEEE 01.05.2025
    “…In deep-learning-based process monitoring, obtaining an effective feature representation is a critical step in constructing a reliable deep-learning monitoring model…”
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  14. 14

    A short‐term wind power prediction method based on deep learning and multistage ensemble algorithm Autor Peng, Xiaosheng, Li, Cong, Jia, Shiyuan, Zhou, Liangsong, Wang, Bo, Che, Jianfeng

    ISSN: 1095-4244, 1099-1824
    Vydáno: Bognor Regis John Wiley & Sons, Inc 01.09.2022
    Vydáno v Wind energy (Chichester, England) (01.09.2022)
    “… In the second stage, based on the decomposition sequences, the stacked denoising autoencoder (SDAE), long short‐term memory (LSTM), and bidirectional long short…”
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  15. 15

    Forecasting regional carbon prices in china with a hybrid model based on quadratic decomposition and comprehensive feature screening Autor Yi, Yaoyang

    ISSN: 1932-6203, 1932-6203
    Vydáno: United States Public Library of Science 30.06.2025
    Vydáno v PloS one (30.06.2025)
    “… This work presents a hybrid model incorporating comprehensive feature screening, optimized quadratic decomposition, and the Optuna-Attention-LSTM prediction method, aiming to improve the accuracy…”
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    Depth feature extraction-based deep ensemble learning framework for high frequency futures price forecasting Autor Wang, Jujie, Chen, Yu, Zhu, Shuzhou, Xu, Wenjie

    ISSN: 1051-2004, 1095-4333
    Vydáno: Elsevier Inc 01.07.2022
    Vydáno v Digital signal processing (01.07.2022)
    “…), an improved denoising variational mode decomposition (VMD) is proposed to extract the fluctuation characteristics of futures price signal and eliminate the interference of complex components…”
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