Search Results - Fully connected sparse autoencoder

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  1. 1

    A deep learning algorithm using a fully connected sparse autoencoder neural network for landslide susceptibility prediction by Huang, Faming, Zhang, Jing, Zhou, Chuangbing, Wang, Yuhao, Huang, Jinsong, Zhu, Li

    ISSN: 1612-510X, 1612-5118
    Published: Berlin/Heidelberg Springer Berlin Heidelberg 01.01.2020
    Published in Landslides (01.01.2020)
    “… In this paper, a novel deep learning–based algorithm, the fully connected spare autoencoder (FC-SAE), is proposed for LSP…”
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    Journal Article
  2. 2

    Intelligent Fault Diagnosis Method for Blade Damage of Quad-Rotor UAV Based on Stacked Pruning Sparse Denoising Autoencoder and Convolutional Neural Network by Yang, Pu, Wen, Chenwan, Geng, Huilin, Liu, Peng

    ISSN: 2075-1702, 2075-1702
    Published: Basel MDPI AG 01.12.2021
    Published in Machines (Basel) (01.12.2021)
    “… autoencoder includes a fully connected autoencoding network, the features extracted from the front layer of the network…”
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    Journal Article
  3. 3

    Optimisation of sparse deep autoencoders for dynamic network embedding by Tang, Huimei, Zhang, Yutao, Ma, Lijia, Lin, Qiuzhen, Huang, Liping, Li, Jianqiang, Gong, Maoguo

    ISSN: 2468-2322, 2468-6557, 2468-2322
    Published: Beijing John Wiley & Sons, Inc 01.12.2024
    “… SPDNE tries to use an optimal sparse architecture to replace the fully connected architecture in the deep autoencoder while maintaining the performance of these models in the dynamic NE…”
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    Journal Article
  4. 4

    Compressive Reconstruction Based on Sparse Autoencoder Network Prior for Single-Pixel Imaging by Zeng, Hong, Dong, Jiawei, Li, Qianxi, Chen, Weining, Dong, Sen, Guo, Huinan, Wang, Hao

    ISSN: 2304-6732, 2304-6732
    Published: Basel MDPI AG 01.10.2023
    Published in Photonics (01.10.2023)
    “… the feature extraction and increase the burden of the system. In this paper, we propose a novel sparse autoencoder network prior for the reconstruction of the single-pixel…”
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    Journal Article
  5. 5

    Auto encoder Based Tomato Leaf Disease Identification by Saranya, S Mohana, Prabavathi, R, Brindha, V Devi, Subha, P, Mohanapriya, S, Deepa, B

    Published: IEEE 14.12.2022
    “… Initially Autoencoder is used to remove the noise as an initial preprocessing step. Various autoencoders like Simple autoencoder based on fully-connected layer, sparse…”
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    Conference Proceeding
  6. 6

    Patch-based Sparse and Convolutional Autoencoders for Anomaly Detection in Hyperspectral Images by Rezvanian, Amir Reza, Imani, Maryam, Ghassemian, Hassan

    ISSN: 2642-9527
    Published: IEEE 04.08.2020
    “… The proposed networks are deep fully-connected sparse autoencoders (SAE) and deep one-dimensional convolutional autoencoders (CAE…”
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    Conference Proceeding
  7. 7

    Long-Distance Pipeline Safety Early Warning: A Distributed Optical Fiber Sensing Semi-Supervised Learning Method by Yang, Yiyuan, Zhang, Haifeng, Li, Yi

    ISSN: 1530-437X, 1558-1748
    Published: New York IEEE 01.09.2021
    Published in IEEE sensors journal (01.09.2021)
    “… Concretely, the sparse stacked autoencoder trained…”
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    Journal Article
  8. 8

    Improved Multi-Echo Gradient-Echo-Based Myelin Water Fraction Mapping Using Dimensionality Reduction by Song, Jae Eun, Kim, Dong-Hyun

    ISSN: 0278-0062, 1558-254X, 1558-254X
    Published: United States IEEE 01.01.2022
    Published in IEEE transactions on medical imaging (01.01.2022)
    “… Specifically, we implemented a fully connected deep autoencoder to extract the low-dimensional features of complex-valued signals and incorporated a sparse regularization to separate the anomaly…”
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    Journal Article
  9. 9

    Research on Graphene Thermoacoustic Speakers Based on a Sparse Autoencoder-Back Propagation Neural Network Model by Li, Huabo, Wang, Debo, Chen, Jie, Liang, Huaxiang

    Published: IEEE 06.12.2024
    “…To mitigate the complexities of traditional theoretical models for graphene thermoacoustic speakers, which are hampered by multifarious influencing factors…”
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    Conference Proceeding
  10. 10

    Stacked pruning sparse denoising autoencoder based intelligent fault diagnosis of rolling bearings by Zhu, Haiping, Cheng, Jiaxin, Zhang, Cong, Wu, Jun, Shao, Xinyu

    ISSN: 1568-4946, 1872-9681
    Published: Elsevier B.V 01.03.2020
    Published in Applied soft computing (01.03.2020)
    “… Different from the traditional autoencoder, the proposed sPSDAE model, including a fully connected autoencoder network, uses the superior features extracted in all the previous layers to participate…”
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    Journal Article
  11. 11

    Perturbation of deep autoencoder weights for model compression and classification of tabular data by Abrar, Sakib, Samad, Manar D.

    ISSN: 0893-6080, 1879-2782, 1879-2782
    Published: United States Elsevier Ltd 01.12.2022
    Published in Neural networks (01.12.2022)
    “…Fully connected deep neural networks (DNN) often include redundant weights leading to overfitting and high memory requirements…”
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    Journal Article
  12. 12

    DSFC-AE: A New Hyperspectral Unmixing Method Based on Deep Shared Fully Connected Autoencoder by Chen, Hao, Chen, Tao, Zhang, Yuxiang, Du, Bo, Plaza, Antonio

    ISSN: 1939-1404, 2151-1535
    Published: Piscataway IEEE 2024
    “… Hyperspectral unmixing (HU) techniques serve as effective means to address this issue. In recent years, deep learning methods, particularly autoencoders (AEs…”
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    Journal Article
  13. 13

    XAI-DSCSA: explainable-AI-based deep semi-supervised convolutional sparse autoencoder for facial expression recognition by Mohana, M., Subashini, P., Ghinea, George

    ISSN: 1863-1703, 1863-1711
    Published: London Springer London 01.05.2025
    Published in Signal, image and video processing (01.05.2025)
    “… as the Deep Semi-supervised Convolutional Sparse Autoencoder to address the aforementioned issues and enhance FER performance and prediction…”
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    Journal Article
  14. 14

    Electroencephalogram Sensor Data Compression Using an Asymmetrical Sparse Autoencoder with a Discrete Cosine Transform Layer by Zhu, Xin, Pan, Hongyi, Rong, Shuaiang, Cetin, Ahmet Enis

    ISSN: 2379-190X
    Published: IEEE 14.04.2024
    “… The encoder module of the autoencoder has a combination of a fully connected linear layer and the DCT layer to reduce redundant data using hard-thresholding nonlinearity…”
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    Conference Proceeding
  15. 15

    Local receptive field constrained stacked sparse autoencoder for classification of hyperspectral images by Wan, Xiaoqing, Zhao, Chunhui

    ISSN: 1520-8532, 1520-8532
    Published: United States 01.06.2017
    “…As a competitive machine learning algorithm, the stacked sparse autoencoder (SSA) has achieved outstanding popularity in exploiting high-level features for classification of hyperspectral images…”
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    Journal Article
  16. 16

    Unmixing Autoencoder for Image Reconstruction from Hyperspectral Data by Liu, Xuyang, Duan, Chaoshu, Cai, Wensheng, Shao, Xueguang

    ISSN: 1520-6882, 1520-6882
    Published: United States 31.12.2024
    Published in Analytical chemistry (Washington) (31.12.2024)
    “…) was developed in this work for the separation of the mixed spectra in HSI. The proposed model is composed of an encoder and a fully connected (FC) layer…”
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    Journal Article
  17. 17

    Semi-Symmetrical, Fully Convolutional Masked Autoencoder for TBM Muck Image Segmentation by Lei, Ke, Tan, Zhongsheng, Wang, Xiuying, Zhou, Zhenliang

    ISSN: 2073-8994, 2073-8994
    Published: Basel MDPI AG 01.02.2024
    Published in Symmetry (Basel) (01.02.2024)
    “… Addressing this challenge, this study presents a semi-symmetrical, fully convolutional masked autoencoder designed for self-supervised pre-training on extensive unlabeled muck image datasets…”
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    Journal Article
  18. 18

    Deep Sparse Representation-Based Classification by Abavisani, Mahdi, Patel, Vishal M.

    ISSN: 1070-9908, 1558-2361
    Published: New York IEEE 01.06.2019
    Published in IEEE signal processing letters (01.06.2019)
    “… The proposed network consists of a convolutional autoencoder along with a fully connected layer…”
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    Journal Article
  19. 19

    GADRP: graph convolutional networks and autoencoders for cancer drug response prediction by Wang, Hong, Dai, Chong, Wen, Yuqi, Wang, Xiaoqi, Liu, Wenjuan, He, Song, Bo, Xiaochen, Peng, Shaoliang

    ISSN: 1467-5463, 1477-4054, 1477-4054
    Published: England Oxford University Press 19.01.2023
    Published in Briefings in bioinformatics (19.01.2023)
    “…) that can alleviate over-smoothing problem is utilized to learn DCP features. And finally, fully connected network is employed to make prediction…”
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    Journal Article
  20. 20

    Input-aware Sparse Tensor Storage Format Selection for Optimizing MTTKRP by Sun, Qingxiao, Liu, Yi, Yang, Hailong, Dun, Ming, Luan, Zhongzhi, Gan, Lin, Yang, Guangwen, Qian, Depei

    ISSN: 0018-9340, 1557-9956
    Published: New York IEEE 01.08.2022
    Published in IEEE transactions on computers (01.08.2022)
    “…). To optimize the performance of MTTKRP, various sparse tensor formats have been proposed such as CSF and HiCOO…”
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    Journal Article