Výsledky vyhledávání - "convolutional adversarial autoencoder"

  1. 1

    Reducing variations in multi-center Alzheimer’s disease classification with convolutional adversarial autoencoder Autor Cobbinah, Bernard M., Sorg, Christian, Yang, Qinli, Ternblom, Arvid, Zheng, Changgang, Han, Wei, Che, Liwei, Shao, Junming

    ISSN: 1361-8415, 1361-8423, 1361-8423
    Vydáno: Elsevier B.V 01.11.2022
    Vydáno v Medical image analysis (01.11.2022)
    “…Based on brain magnetic resonance imaging (MRI), multiple variations ranging from MRI scanners to center-specific parameter settings, imaging protocols, and…”
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    Journal Article
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    Unsupervised anomaly detection of nuclear power plants under noise background based on convolutional adversarial autoencoder combining self-attention mechanism Autor Sun, Xiang, Guo, Shunsheng, Liu, Shiqiao, Guo, Jun, Du, Baigang

    ISSN: 0029-5493
    Vydáno: Elsevier B.V 01.11.2024
    Vydáno v Nuclear engineering and design (01.11.2024)
    “…•This study involves an anomaly detection problem of NPPs under a noisy background, which is rarely studied in previous research.•A novel unsupervised anomaly…”
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    Journal Article
  3. 3

    Parameter Space Compression and Random Structure Automatic Generation for the Inverse Design of Photonic Crystal Fibers Based on Convolutional Adversarial Autoencoder Autor Yu, Haomiao, Huang, Wei, Xiao, Fangxin, Song, Binbin, Chen, Shengyong

    ISSN: 0733-8724, 1558-2213
    Vydáno: New York IEEE 15.11.2024
    Vydáno v Journal of lightwave technology (15.11.2024)
    “…) is proposed based on convolutional adversarial autoencoder (CAAE) and forward prediction convolutional neural network (PCNN…”
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    Journal Article
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    A Novel Fault Detection Method Based on One-Dimension Convolutional Adversarial Autoencoder (1DAAE) Autor Wang, Jian, Li, Yakun, Han, Zhiyan

    ISSN: 2227-9717, 2227-9717
    Vydáno: Basel MDPI AG 01.02.2023
    Vydáno v Processes (01.02.2023)
    “… To deal with this problem, this paper proposes a novel unsupervised fault detection method named one-dimension convolutional adversarial autoencoder (1DAAE…”
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    Journal Article
  6. 6

    Anomaly Detection Using Convolutional Adversarial Autoencoder and One-class SVM for Landslide Area Detection from Synthetic Aperture Radar Images Autor Mabu, Shingo, Hirata, Soichiro, Kuremoto, Takashi

    ISSN: 2405-9021, 2352-6386
    Vydáno: Dordrecht Springer Netherlands 2021
    “… for the training, where the proposed model combines a convolutional adversarial autoencoder, principal component analysis, and one-class support vector machine…”
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    Journal Article
  7. 7

    A data-driven methodology for bridge indirect health monitoring using unsupervised computer vision Autor Hurtado, A. Calderon, Alamdari, M. Makki, Atroshchenko, E., Chang, K.C., Kim, C.W.

    ISSN: 0888-3270, 1096-1216
    Vydáno: Elsevier Ltd 15.03.2024
    “…In recent years, researchers have extensively explored the application of drive-by inspection technology for bridge damage assessment. This approach involves…”
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  8. 8

    Intelligent Unsupervised Network Traffic Classification Method Using Adversarial Training and Deep Clustering for Secure Internet of Things Autor Zhang, Weijie, Zhang, Lanping, Zhang, Xixi, Wang, Yu, Liu, Pengfei, Gui, Guan

    ISSN: 1999-5903, 1999-5903
    Vydáno: Basel MDPI AG 01.09.2023
    Vydáno v Future internet (01.09.2023)
    “…Network traffic classification (NTC) has attracted great attention in many applications such as secure communications, intrusion detection systems. The…”
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    Integration of Adversarial Autoencoders With Residual Dense Convolutional Networks for Estimation of Non‐Gaussian Hydraulic Conductivities Autor Mo, Shaoxing, Zabaras, Nicholas, Shi, Xiaoqing, Wu, Jichun

    ISSN: 0043-1397, 1944-7973
    Vydáno: Washington John Wiley & Sons, Inc 01.02.2020
    Vydáno v Water resources research (01.02.2020)
    “… In this study, we develop a convolutional adversarial autoencoder (CAAE) to parameterize non‐Gaussian conductivity fields with heterogeneous conductivity within each facies using a low…”
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    Journal Article
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    Deep Learning for Simultaneous Inference of Hydraulic and Transport Properties Autor Zhou, Zitong, Zabaras, Nicholas, Tartakovsky, Daniel M.

    ISSN: 0043-1397, 1944-7973
    Vydáno: Washington John Wiley & Sons, Inc 01.10.2022
    Vydáno v Water resources research (01.10.2022)
    “… We use a convolutional adversarial autoencoder (CAAE) to parameterize a heterogeneous non…”
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    Journal Article
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    Detecting In-vehicle Intrusion via Semi-supervised Learning-based Convolutional Adversarial Autoencoders Autor Hoang, Thien-Nu, Kim, Daehee

    ISSN: 2331-8422
    Vydáno: Ithaca Cornell University Library, arXiv.org 04.04.2022
    Vydáno v arXiv.org (04.04.2022)
    “…With the development of autonomous vehicle technology, the controller area network (CAN) bus has become the de facto standard for an in-vehicle communication…”
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    Paper
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    Unsupervised Prostate Cancer Detection on H&E using Convolutional Adversarial Autoencoders Autor Bulten, Wouter, Litjens, Geert

    ISSN: 2331-8422
    Vydáno: Ithaca Cornell University Library, arXiv.org 19.04.2018
    Vydáno v arXiv.org (19.04.2018)
    “…We propose an unsupervised method using self-clustering convolutional adversarial autoencoders to classify prostate tissue as tumor or non-tumor without any labeled training data…”
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    An adversarial model for electromechanical actuator fault diagnosis under nonideal data conditions Autor Wang, Chao, Tao, Laifa, Ding, Yu, Lu, Chen, Ma, Jian

    ISSN: 0941-0643, 1433-3058
    Vydáno: London Springer London 01.04.2022
    Vydáno v Neural computing & applications (01.04.2022)
    “…; this severely limits the applications of intelligent data-driven diagnosis approaches. Therefore, this paper provides an extended convolutional adversarial autoencoder (ECAAE…”
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    Journal Article
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    A Novel Fault Detection Method Based on Reconstruction Error and Clustering of Latent Variables Autor Wang, Jian, Xu, Jing, Li, Yakun

    Vydáno: IEEE 28.10.2022
    “… In this paper, we propose a novel unsupervised fault detection method named One Dimension Convolutional Adversarial AutoEncoder (1DAAE…”
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    Konferenční příspěvek
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    Deep Learning for Simultaneous Inference of Hydraulic and Transport Properties Autor Zhou, Zitong, Zabaras, Nicholas, Tartakovsky, Daniel M

    ISSN: 2331-8422
    Vydáno: Ithaca Cornell University Library, arXiv.org 19.09.2022
    Vydáno v arXiv.org (19.09.2022)
    “… We use a convolutional adversarial autoencoder (CAAE) for the parameterization of the heterogeneous non-Gaussian conductivity field with a low-dimensional latent representation…”
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    Paper
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    A Fault Diagnosis Method for Mechanical Rotating Components Based on Automatic Learning of Pseudo Labels Autor Yin, Shuangyan, Yang, Jingli, Yang, Cheng

    Vydáno: IEEE 21.10.2021
    “…). First, Self-normalizing Convolutional Adversarial Autoencoder (SCAAE) is designed to obtain deep representation feature sets with labeled and unlabeled samples in unsupervised learning mode…”
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    Konferenční příspěvek
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    Integration of adversarial autoencoders with residual dense convolutional networks for estimation of non-Gaussian hydraulic conductivities Autor Mo, Shaoxing, Zabaras, Nicholas, Shi, Xiaoqing, Wu, Jichun

    ISSN: 2331-8422
    Vydáno: Ithaca Cornell University Library, arXiv.org 13.01.2020
    Vydáno v arXiv.org (13.01.2020)
    “… In this study, we develop a convolutional adversarial autoencoder (CAAE) to parameterize non-Gaussian conductivity fields with heterogeneous conductivity within each facies using a low-dimensional latent representation…”
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    Paper
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    Development of an Advanced Data-Driven Methodology for Bridge Structural Health Monitoring Based on Drive-By Inspection Technology Autor Hurtado, Andres Felipe Calderon

    ISBN: 9798290620480
    Vydáno: ProQuest Dissertations & Theses 01.01.2025
    “…Bridges are susceptible to structural damage over time due to various conditions, such as variations in load conditions, environmental factors and material…”
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    Dissertation
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    Deep Neural Network Surrogates for Inverse Problems Autor Zhou, Zitong

    ISBN: 9798494463135
    Vydáno: ProQuest Dissertations & Theses 01.01.2021
    “…Inverse problems in subsurface flow are generally challenging due to the need for a large number of expensive numerical solutions to partial di↵erential…”
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    Dissertation