Search Results - sparse convolutional autoencoder ((scae OR cae))

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  1. 1

    SCAE—Stacked Convolutional Autoencoder for Fault Diagnosis of a Hydraulic Piston Pump with Limited Data Samples by Eraliev, Oybek, Lee, Kwang-Hee, Lee, Chul-Hee

    ISSN: 1424-8220, 1424-8220
    Published: Switzerland MDPI AG 18.07.2024
    Published in Sensors (Basel, Switzerland) (18.07.2024)
    “… In this study, we propose a novel DL model based on a stacked convolutional autoencoder (SCAE) to address the challenge of limited data…”
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    Journal Article
  2. 2

    Sparse convolutional autoencoder‐based fault location for drive circuits in nuclear reactors by Yang, Cheng, Yuan, Yannan, Wang, Fu, Li, Jueying, Li, Ang, Min, Yuan, Zhang, Qiang

    ISSN: 0748-8017, 1099-1638
    Published: Bognor Regis Wiley Subscription Services, Inc 01.03.2024
    “…Drive circuit is a critical part of instrumentation and control systems in nuclear reactors, and its performance directly influences the operation of nuclear…”
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  3. 3

    A Novel Convolutional Autoencoder-Based Clutter Removal Method for Buried Threat Detection in Ground-Penetrating Radar by Temlioglu, Eyyup, Erer, Isin

    ISSN: 0196-2892, 1558-0644
    Published: New York IEEE 2022
    “… A new clutter removal method based on convolutional autoencoders (CAEs) is introduced. The raw GPR image is encoded via successive convolution and pooling layers and then decoded to provide the clutter-free GPR image…”
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  4. 4

    Unsupervised Spatial-Spectral Feature Learning by 3D Convolutional Autoencoder for Hyperspectral Classification by Mei, Shaohui, Ji, Jingyu, Geng, Yunhao, Zhang, Zhi, Li, Xu, Du, Qian

    ISSN: 0196-2892, 1558-0644
    Published: New York IEEE 01.09.2019
    “…) convolutional autoencoder (3D-CAE). The proposed 3D-CAE consists of 3D or elementwise operations only, such as 3D convolution, 3D pooling, and 3D batch normalization, to maximally explore spatial-spectral structure information for feature extraction…”
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  5. 5

    Improving brain MRI denoising using convolutional AutoEncoder and sparse representations by Velayudham, A, Madhan Kumar, K., Krishna Priya, MS

    ISSN: 0957-4174
    Published: Elsevier Ltd 05.03.2025
    Published in Expert systems with applications (05.03.2025)
    “… However, noise often degrades image quality, leading to inaccurate diagnoses. To address this issue, a Convolutional AutoEncoder-based Orthogonal Matching Pursuit (CAE-OMP…”
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  6. 6

    Sparse autoencoder for unsupervised nucleus detection and representation in histopathology images by Hou, Le, Nguyen, Vu, Kanevsky, Ariel B., Samaras, Dimitris, Kurc, Tahsin M., Zhao, Tianhao, Gupta, Rajarsi R., Gao, Yi, Chen, Wenjin, Foran, David, Saltz, Joel H.

    ISSN: 0031-3203, 1873-5142
    Published: England Elsevier Ltd 01.02.2019
    Published in Pattern recognition (01.02.2019)
    “…We propose a sparse Convolutional Autoencoder (CAE) for simultaneous nucleus detection and feature extraction in histopathology tissue images…”
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  7. 7

    Multi-resolution reconstruction of longitudinal streambed footprints using embedded sparse convolutional autoencoders by Yang, Yifan, Tang, Zihao, Shao, Dong, Xu, Zhonghou

    ISSN: 0022-1694
    Published: Elsevier B.V 01.06.2025
    Published in Journal of hydrology (Amsterdam) (01.06.2025)
    “… This study introduces an embedded convolutional autoencoder (CAE) architecture designed for the multi-resolution reconstruction of longitudinal streambed footprints as sparse heatmaps…”
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  8. 8

    Investigating Beta-Variational Convolutional Autoencoders for the Unsupervised Classification of Chest Pneumonia by Akila, Serag Mohamed, Imanov, Elbrus, Almezhghwi, Khaled

    ISSN: 2075-4418, 2075-4418
    Published: Switzerland MDPI AG 28.06.2023
    Published in Diagnostics (Basel) (28.06.2023)
    “…The world’s population is increasing and so is the challenge on existing healthcare infrastructure to cope with the growing demand in medical diagnosis and…”
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  9. 9

    Unsupervised deep learning approach for network intrusion detection combining convolutional autoencoder and one-class SVM by Binbusayyis, Adel, Vaiyapuri, Thavavel

    ISSN: 0924-669X, 1573-7497
    Published: New York Springer US 01.10.2021
    “…With the rapid advancement in network technologies, the need for cybersecurity has gained increasing momentum in recent years. As a primary defense mechanism,…”
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  10. 10

    Enhanced fault detection in digital VLSI circuits using convolutional autoencoders by Savalam, Chandrasekhar, Medisetti, Sanjay, Korapati, Prasanti

    ISSN: 0167-9260
    Published: Elsevier B.V 01.03.2026
    Published in Integration (Amsterdam) (01.03.2026)
    “… A Convolutional Autoencoder (CAE) is employed to extract spatial and structural features from circuit test patterns, effectively reducing dimensionality while preserving fault-related information…”
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  11. 11

    Leveraging variant of CAE with sparse convolutional embedding and two-stage application-driven data augmentation for image clustering by Liu, Yanming, Liu, Jinglei

    ISSN: 1432-7643, 1433-7479
    Published: Berlin/Heidelberg Springer Berlin Heidelberg 01.02.2025
    Published in Soft computing (Berlin, Germany) (01.02.2025)
    “… To achieve this, we propose a variant of the convolutional autoencoder (CAE) called SCDAC, which incorporates sparse convolutional embedding and a two-stage application-driven data augmentation approach…”
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  12. 12

    Temperature scaling unmixing framework based on convolutional autoencoder by Xu, Jin, Xu, Mingming, Liu, Shanwei, Sheng, Hui, Yang, Zhiru

    ISSN: 1569-8432, 1872-826X
    Published: Elsevier B.V 01.05.2024
    “…•The framework is a new spatial level constraint method and can be transferred to other convolutional autoencoder-based methods…”
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  13. 13

    Deep Learning Augmented Data Assimilation: Reconstructing Missing Information with Convolutional Autoencoders by Wang, Yueya, Shi, Xiaoming, Lei, Lili, Fung, Jimmy Chi-Hung

    ISSN: 0027-0644, 1520-0493
    Published: Washington American Meteorological Society 01.08.2022
    Published in Monthly weather review (01.08.2022)
    “… By training a convolutional autoencoder (CAE) with a long simulation at a coarse “forecast” resolution (T63), we obtained a deep learning approximation…”
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  14. 14

    Representation learning via an integrated autoencoder for unsupervised domain adaptation by ZHU, Yi, WU, Xindong, QIANG, Jipeng, YUAN, Yunhao, LI, Yun

    ISSN: 2095-2228, 2095-2236
    Published: Beijing Higher Education Press 01.10.2023
    Published in Frontiers of Computer Science (01.10.2023)
    “… Recently, deep learning methods based on autoencoder have achieved sound performance in representation learning, and many dual or serial autoencoder-based methods take different characteristics…”
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  15. 15

    Constructing fine-granularity functional brain network atlases via deep convolutional autoencoder by Zhao, Yu, Dong, Qinglin, Chen, Hanbo, Iraji, Armin, Li, Yujie, Makkie, Milad, Kou, Zhifeng, Liu, Tianming

    ISSN: 1361-8415, 1361-8423, 1361-8423
    Published: Netherlands Elsevier B.V 01.12.2017
    Published in Medical image analysis (01.12.2017)
    “…•A new deep 3D convolutional autoencoder to model brain network maps.•Derived fine-granularity functional brain network atlases…”
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  16. 16

    Deep hyperspectral clustering using attention-enhanced 3D-2D convolutional autoencoder for mineral mapping by Peyghambari, Sima, Zhang, Yun

    ISSN: 2352-9385, 2352-9385
    Published: Elsevier B.V 01.08.2025
    Published in Remote sensing applications (01.08.2025)
    “… However, the most commonly used 3D-convolutional autoencoder (3D-CAE) models have several disadvantages, including intensive computational costs and the potential to lose spatial information…”
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  17. 17

    Deep spectral unmixing framework via 3D denoising convolutional autoencoder by Jia, Peiyuan, Zhang, Miao, Shen, Yi

    ISSN: 1751-9659, 1751-9667
    Published: Wiley 01.05.2021
    Published in IET image processing (01.05.2021)
    “…‐based framework for unmixing problem. It contains two parts: a three‐dimensional convolutional autoencoder for hyperspectral denoising (denoising 3D CAE…”
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  18. 18

    Out-of-Roundness Wheel Damage Identification in Railway Vehicles Using AutoEncoder Models by Melo, Renato, Finotti, Rafaelle, Guedes, António, Gonçalves, Vítor, Meixedo, Andreia, Ribeiro, Diogo, Barbosa, Flávio, Cury, Alexandre

    ISSN: 2076-3417, 2076-3417
    Published: Basel MDPI AG 01.03.2025
    Published in Applied sciences (01.03.2025)
    “…), Sparse AutoEncoder (SAE), and Convolutional AutoEncoder (CAE)—to detect and quantify structural anomalies in railway vehicle wheels, such as polygonization…”
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  19. 19

    Structural Damage Identification Using Autoencoders: A Comparative Study by Spínola Neto, Marcos, Finotti, Rafaelle, Barbosa, Flávio, Cury, Alexandre

    ISSN: 2075-5309, 2075-5309
    Published: Basel MDPI AG 01.07.2024
    Published in Buildings (Basel) (01.07.2024)
    “… Autoencoders, as unsupervised learning models, offer promise for SHM by learning data features and reducing dimensionality…”
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  20. 20

    The effect of whitening transformation on pooling operations in convolutional autoencoders by Li, Zuhe, Fan, Yangyu, Liu, Weihua

    ISSN: 1687-6180, 1687-6172, 1687-6180
    Published: Cham Springer International Publishing 14.04.2015
    “…Convolutional autoencoders (CAEs) are unsupervised feature extractors for high-resolution images…”
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