Suchergebnisse - stacked denoised autoencoder

  1. 1

    Fault detection and recognition of multivariate process based on feature learning of one-dimensional convolutional neural network and stacked denoised autoencoder von Zhang, Chengyi, Yu, Jianbo, Wang, Shijin

    ISSN: 0020-7543, 1366-588X
    Veröffentlicht: London Taylor & Francis 18.04.2021
    Veröffentlicht in International journal of production research (18.04.2021)
    “… ) and stacked denoising auto-encoders (SDAE) to extract high level features from complex process signals …”
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  2. 2

    Coupled fault diagnosis for centrifugal pumps through Boruta-Shap feature selection and rime-enhanced stacked denoised autoencoder von Hu, Kang, Sun, Hui, Fan, Wei, Si, Qiaorui, Wu, Yu, Yuan, Shouqi

    ISSN: 0952-1976
    Veröffentlicht: Elsevier Ltd 24.12.2025
    Veröffentlicht in Engineering applications of artificial intelligence (24.12.2025)
    “… from feature redundancy and poor generalization. An artificial intelligence (AI)-driven framework is proposed by integrating Boruta-Shap interpretable feature selection with a Rime-optimized Stacked Denoising Auto-Encoder (SDAE …”
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  3. 3

    基于改进堆叠降噪自编码器的配电网高阻接地故障检测方法 von 罗国敏, 杨雪凤, 尚博阳, 罗思敏, 和敬涵, 王小君

    ISSN: 1674-3415
    Veröffentlicht: 北京交通大学电气工程学院,北京 100044 16.12.2024
    Veröffentlicht in 电力系统保护与控制 (16.12.2024)
    “… 针对配电网高阻故障判定阈值选取难、噪声影响大和识别精度低等问题,提出了一种基于改进堆叠降噪自编码器的高阻接地故障检测方法,从特征提取及网络模型两个层面增强检测方法 …”
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  4. 4

    A Novel Method Based on Hybridization of Generative Adversarial Imputation Nets and SDAE-Kriging for RUL Prediction of Lithium-Ion Battery in Scenarios of Missing and Incomplete Data von Li, Wei, Li, Yongsheng, Wang, Ningbo, Garg, Akhil, Gao, Liang, Bose, Bibaswan, Shankhwar, Kalpana

    ISSN: 0093-9994, 1939-9367
    Veröffentlicht: New York IEEE 01.05.2025
    Veröffentlicht in IEEE transactions on industry applications (01.05.2025)
    “… ) and Stacked denoised autoencoder with Kriging (SDAE-Kriging) for the prediction of RUL of LIBs in scenarios of missing and incomplete data …”
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  5. 5

    Automated Analysis of Sleep Study Parameters Using Signal Processing and Artificial Intelligence von Sohaib, Muhammad, Ghaffar, Ayesha, Shin, Jungpil, Hasan, Md Junayed, Suleman, Muhammad Taseer

    ISSN: 1660-4601, 1661-7827, 1660-4601
    Veröffentlicht: Switzerland MDPI AG 14.10.2022
    “… In this research work, an empirical mode decomposition is used in combination with stacked autoencoders to conduct automatic sleep stage classification with reliable analytical performance …”
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  6. 6

    Rolling Bearing Incipient Fault Detection via Optimized VMD Using Mode Mutual Information von Tan, Shuai, Wang, Aimin, Shi, Hongbo, Guo, Lei

    ISSN: 1598-6446, 2005-4092
    Veröffentlicht: Bucheon / Seoul Institute of Control, Robotics and Systems and The Korean Institute of Electrical Engineers 01.04.2022
    “… The complete failure of the rolling bearing is a deterioration process from the incipient weak fault to the severe fault, thus it is important to alarm when …”
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  7. 7

    Denoising Letter Images from Scanned Invoices Using Stacked Autoencoders von Ibrahim, Muhammad, Hanif, Muhammad, Ahmad, Shabir, Jamil, Faisal, Sehar, Tayyaba, Lee, YunJung, Kim, DoHyeun

    ISSN: 1546-2226, 1546-2218, 1546-2226
    Veröffentlicht: Henderson Tech Science Press 2022
    Veröffentlicht in Computers, materials & continua (2022)
    “… This affects the OCR (optical character recognition) detection accuracy. In this paper, letter data obtained from images of invoices are denoised using a modified autoencoder based deep learning method …”
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  8. 8

    Fault Diagnosis for Hydraulic Servo System: A Stacked Denoising Autoencoder Method based on Self-Learning of Robustness Features von Wang, Zhenya, Fan, Jiaxuan, Huang, Hu, Han, Te

    ISSN: 2688-0938
    Veröffentlicht: IEEE 06.11.2020
    Veröffentlicht in Chinese Automation Congress (Online) (06.11.2020)
    “… Thus this paper proposes a stacked deep learning based model to represent robust feature information in terms of the advantage of cognitive computing and pattern classification theory, which is shown …”
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    Denoised Bottleneck Features From Deep Autoencoders for Telephone Conversation Analysis von Janod, Killian, Morchid, Mohamed, Dufour, Richard, Linares, Georges, De Mori, Renato

    ISSN: 2329-9290, 2329-9304
    Veröffentlicht: Piscataway IEEE 01.09.2017
    “… Recently, denoisng autoencoders (DAE) and stacked autoencoders (SAE) have been proposed with interesting results for acoustic feature denoising tasks …”
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  10. 10

    Denoising magnetic resonance spectroscopy (MRS) data using stacked autoencoder for improving signal‐to‐noise ratio and speed of MRS von Wang, Jing, Ji, Bing, Lei, Yang, Liu, Tian, Mao, Hui, Yang, Xiaofeng

    ISSN: 0094-2405, 2473-4209, 2473-4209
    Veröffentlicht: United States 01.12.2023
    Veröffentlicht in Medical physics (Lancaster) (01.12.2023)
    “… Background While magnetic resonance imaging (MRI) provides high resolution anatomical images with sharp soft tissue contrast, magnetic resonance spectroscopy …”
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  11. 11

    A denoising method for ECG signals based on CEEMDAN-TSO and stacked sparse autoencoders von Li, Shun, Li, Juan, Mao, Jiandong, Hong, Wei, Sun, Ao

    ISSN: 0010-4825, 1879-0534, 1879-0534
    Veröffentlicht: United States Elsevier Ltd 01.04.2025
    Veröffentlicht in Computers in biology and medicine (01.04.2025)
    “… ), Tuna Swarm Optimization (TSO), and Stacked Sparse Autoencoder (SSAE), named CEEMDAN-TSO-SSAE …”
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  12. 12

    Temporal denoising and deep feature learning for enhanced defect detection in thermography using stacked denoising convolution autoencoder von Yerneni, Naga Prasanthi, Ghali, V.S., Vesala, G.T., Wang, Fei, Mulaveesala, Ravibabu

    ISSN: 1350-4495
    Veröffentlicht: Elsevier B.V 01.12.2024
    Veröffentlicht in Infrared physics & technology (01.12.2024)
    “… •Temporal denoising of thermal profiles along with deep feature learning for enhanced defect detection in FMTWI is highlighted through a stacked denoising convolution autoencoder …”
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  13. 13

    A Deep Learning Framework for Univariate Time Series Prediction Using Convolutional LSTM Stacked Autoencoders von Essien, Aniekan, Giannetti, Cinzia

    Veröffentlicht: IEEE 01.07.2019
    “… ) and Long Short-Term Memory (LSTM) stacked autoencoders (SAE) are combined towards single-step time series prediction …”
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    A hybrid framework based on extreme learning machine, discrete wavelet transform, and autoencoder with feature penalty for stock prediction von Wu, Dingming, Wang, Xiaolong, Wu, Shaocong

    ISSN: 0957-4174, 1873-6793
    Veröffentlicht: Elsevier Ltd 30.11.2022
    Veröffentlicht in Expert systems with applications (30.11.2022)
    “… ) denoising and extreme learning machine (ELM), and promising outcomes are achieved. The current research presents a hybrid framework using DWT, ELM, and autoencoder (AE …”
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    Soft Sensing for Time Series With Irregular Sampling Internals Based on a Denoising Interval Attention LSTM Network von He, Yuchen, Yang, Xueqin, Qian, Lijuan, Yao, Le, Ye, Lingjian, Wu, Ping, Ye, Gangyue, Ye, Weirong, Shen, Yafang

    ISSN: 2162-237X, 2162-2388, 2162-2388
    Veröffentlicht: United States IEEE 2025
    “… To solve the above problems, this article proposes a stacked supervised and reconstructed input denoising autoencoder integrated with internal attention long short-term memory (SSRDAE-IALSTM …”
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  16. 16

    Multimodal fusion fault diagnosis method under noise interference von Qiu, Zhi, Fan, Shanfei, Liang, Haibo, Liu, Jincai

    ISSN: 0003-682X
    Veröffentlicht: Elsevier Ltd 15.01.2025
    Veröffentlicht in Applied acoustics (15.01.2025)
    “… To address this issue, this paper proposes a multimodal fusion fault diagnosis method based on a multiscale stacked denoising autoencoder and dual-branch feature fusion network (MSSDAE-DBFFN …”
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  17. 17

    Sparsity‐based autoencoders for denoising cluttered radar signatures von Ram, Shobha Sundar, Vishwakarma, Shelly, Sneh, Akanksha, Yasmeen, Kainat

    ISSN: 1751-8784, 1751-8792
    Veröffentlicht: Wiley 01.08.2021
    Veröffentlicht in IET radar, sonar & navigation (01.08.2021)
    “… ‐dependent and target‐independent static and dynamic clutter arising from walls. A stacked and sparse denoising autoencoder (StackedSDAE …”
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  18. 18

    Deep neural ensemble for retinal vessel segmentation in fundus images towards achieving label-free angiography von Lahiri, A., Roy, Abhijit Guha, Sheet, Debdoot, Biswas, Prabir Kumar

    ISSN: 1557-170X, 2694-0604
    Veröffentlicht: United States IEEE 01.08.2016
    “… In this paper we formulate the segmentation challenge as a classification task. Specifically, we employ unsupervised hierarchical feature learning using ensemble of two level of sparsely trained denoised stacked autoencoder …”
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    Adaptive data recovery model for PMU data based on SDAE in transient stability assessment von Wang, Huaiyuan, Ouyang, Yucheng

    ISSN: 0018-9456, 1557-9662
    Veröffentlicht: New York IEEE 2022
    “… With current methods, noisy data are usually denoised according to expected noise. However, the real noise distribution is complex …”
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    CDAE: A Cascade of Denoising Autoencoders for Noise Reduction in the Clustering of Single-Particle Cryo-EM Images von Lei, Houchao, Yang, Yang

    ISSN: 1664-8021, 1664-8021
    Veröffentlicht: Switzerland Frontiers Media S.A 20.01.2021
    Veröffentlicht in Frontiers in genetics (20.01.2021)
    “… In this study, we design an effective cryo-EM image denoising model, CDAE, i.e., a cascade of denoising autoencoders …”
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