Výsledky vyhľadávania - deep conventional autoencoder network

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  1. 1

    Deep convolutional autoencoder for radar-based classification of similar aided and unaided human activities Autor Seyfioglu, Mehmet Saygin, Ozbayoglu, Ahmet Murat, Gurbuz, Sevgi Zubeyde

    ISSN: 0018-9251, 1557-9603
    Vydavateľské údaje: New York IEEE 01.08.2018
    “… This architecture is shown to be more effective than other deep learning architectures, such as convolutional neural networks and autoencoders, as well as conventional classifiers…”
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    Smartphone Motion Sensor-Based Complex Human Activity Identification Using Deep Stacked Autoencoder Algorithm for Enhanced Smart Healthcare System Autor Alo, Uzoma Rita, Nweke, Henry Friday, Teh, Ying Wah, Murtaza, Ghulam

    ISSN: 1424-8220, 1424-8220
    Vydavateľské údaje: Switzerland MDPI AG 05.11.2020
    Vydané v Sensors (Basel, Switzerland) (05.11.2020)
    “…Human motion analysis using a smartphone-embedded accelerometer sensor provided important context for the identification of static, dynamic, and complex…”
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    A deep neural network approach to QRS detection using autoencoders Autor Belkadi, Mohamed Amine, Daamouche, Abdelhamid, Melgani, Farid

    ISSN: 0957-4174, 1873-6793
    Vydavateľské údaje: New York Elsevier Ltd 01.12.2021
    Vydané v Expert systems with applications (01.12.2021)
    “…In this paper, a stacked autoencoder deep neural network is proposed to extract the QRS complex from raw ECG signals without any conventional feature extraction phase…”
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  4. 4

    Automatic Modulation Classification Using Deep Learning Based on Sparse Autoencoders With Nonnegativity Constraints Autor Ali, Afan, Fan Yangyu

    ISSN: 1070-9908, 1558-2361
    Vydavateľské údaje: IEEE 01.11.2017
    Vydané v IEEE signal processing letters (01.11.2017)
    “…We demonstrate a novel method for the automatic modulation classification based on a deep learning autoencoder network, trained by a nonnegativity constraint algorithm…”
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    Convolutional Autoencoder for Spectral-Spatial Hyperspectral Unmixing Autor Palsson, Burkni, Ulfarsson, Magnus O., Sveinsson, Johannes R.

    ISSN: 0196-2892, 1558-0644
    Vydavateľské údaje: New York IEEE 01.01.2021
    “…). In this article, we present a new spectral-spatial linear mixture model and an associated estimation method based on a convolutional neural network autoencoder unmixing (CNNAEU…”
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    A Wasserstein GAN Autoencoder for SCMA Networks Autor Miuccio, Luciano, Panno, Daniela, Riolo, Salvatore

    ISSN: 2162-2337, 2162-2345
    Vydavateľské údaje: Piscataway IEEE 01.06.2022
    Vydané v IEEE wireless communications letters (01.06.2022)
    “… In this letter, we design an end-to-end SCMA en/deconding structure based on the integration between a state-of-the-art autoencoder architecture and a novel Wasserstein Generative Adversarial Network (WGAN…”
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    Deep Spectral Clustering Using Dual Autoencoder Network Autor Yang, Xu, Deng, Cheng, Zheng, Feng, Yan, Junchi, Liu, Wei

    ISSN: 1063-6919
    Vydavateľské údaje: IEEE 01.06.2019
    “… Deep clustering combines embedding and clustering together to obtain optimal embedding subspace for clustering, which can be more effective compared with conventional clustering methods…”
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    Segmentation of digital rock images using deep convolutional autoencoder networks Autor Karimpouli, Sadegh, Tahmasebi, Pejman

    ISSN: 0098-3004
    Vydavateľské údaje: Elsevier Ltd 01.05.2019
    Vydané v Computers & geosciences (01.05.2019)
    “… Recently, deep learning and machine learning algorithms have proposed several algorithms working with images, including Convolutional Neural Networks (CNN…”
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    LSTM-based autoencoder models for real-time quality control of wastewater treatment sensor data Autor Seshan, Siddharth, Vries, Dirk, Immink, Jasper, van der Helm, Alex, Poinapen, Johann

    ISSN: 1464-7141, 1465-1734
    Vydavateľské údaje: IWA Publishing 01.02.2024
    Vydané v Journal of hydroinformatics (01.02.2024)
    “… long short-term memory (LSTM) autoencoder (AE) models, to reconcile faulty sensor signals in WWTPs as compared to autoregressive integrated moving average (ARIMA) models…”
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    EEG-Based Emotion Classification Using a Deep Neural Network and Sparse Autoencoder Autor Liu, Junxiu, Wu, Guopei, Luo, Yuling, Qiu, Senhui, Yang, Su, Li, Wei, Bi, Yifei

    ISSN: 1662-5137, 1662-5137
    Vydavateľské údaje: Switzerland Frontiers Media S.A 02.09.2020
    Vydané v Frontiers in systems neuroscience (02.09.2020)
    “…), Sparse Autoencoder (SAE), and Deep Neural Network (DNN) together. In the proposed network, the features extracted by the CNN are first sent to SAE for encoding and decoding…”
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    Heterogeneous Hypergraph Variational Autoencoder for Link Prediction Autor Fan, Haoyi, Zhang, Fengbin, Wei, Yuxuan, Li, Zuoyong, Zou, Changqing, Gao, Yue, Dai, Qionghai

    ISSN: 0162-8828, 1939-3539, 2160-9292, 1939-3539
    Vydavateľské údaje: United States IEEE 01.08.2022
    “…) for link prediction in heterogeneous information networks (HINs). It first maps a conventional HIN to a heterogeneous hypergraph with a certain kind of semantics…”
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    uDAS: An Untied Denoising Autoencoder With Sparsity for Spectral Unmixing Autor Qu, Ying, Qi, Hairong

    ISSN: 0196-2892, 1558-0644
    Vydavateľské údaje: New York IEEE 01.03.2019
    “… . Conventional approaches use either geometrical- or statistical-based approaches. In this paper, we address the challenges of spectral unmixing with unsupervised deep…”
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    A deep learning algorithm using a fully connected sparse autoencoder neural network for landslide susceptibility prediction Autor Huang, Faming, Zhang, Jing, Zhou, Chuangbing, Wang, Yuhao, Huang, Jinsong, Zhu, Li

    ISSN: 1612-510X, 1612-5118
    Vydavateľské údaje: Berlin/Heidelberg Springer Berlin Heidelberg 01.01.2020
    Vydané v 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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    Deep embedding clustering based on contractive autoencoder Autor Diallo, Bassoma, Hu, Jie, Li, Tianrui, Khan, Ghufran Ahmad, Liang, Xinyan, Zhao, Yimiao

    ISSN: 0925-2312
    Vydavateľské údaje: Elsevier B.V 14.04.2021
    Vydané v Neurocomputing (Amsterdam) (14.04.2021)
    “… To that end, we first introduce Contractive Autoencoders. Then we propose a deep embedding clustering framework based on contractive autoencoder (DECCA…”
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    Lightweight Multi-Class Autoencoder Model for Malicious Traffic Detection in Private 5G Networks Autor Kim, Jinha, Kim, Hwankuk

    ISSN: 2076-3417, 2076-3417
    Vydavateľské údaje: Basel MDPI AG 01.11.2025
    Vydané v Applied sciences (01.11.2025)
    “…This study proposes a lightweight autoencoder-based detection framework for the efficient detection of multi-class malicious traffic within a private 5G network slicing environment…”
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    CyCU-Net: Cycle-Consistency Unmixing Network by Learning Cascaded Autoencoders Autor Gao, Lianru, Han, Zhu, Hong, Danfeng, Zhang, Bing, Chanussot, Jocelyn

    ISSN: 0196-2892, 1558-0644
    Vydavateľské údaje: New York IEEE 01.01.2022
    “…) applications due to its powerful learning and data fitting ability. The autoencoder (AE) framework, as an unmixing baseline network, achieves good performance in HU by automatically learning low-dimensional embeddings and reconstructing data…”
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    Gated Mixture Variational Autoencoders for Value Added Tax audit case selection Autor Kleanthous, Christos, Chatzis, Sotirios

    ISSN: 0950-7051, 1872-7409
    Vydavateľské údaje: Amsterdam Elsevier B.V 05.01.2020
    Vydané v Knowledge-based systems (05.01.2020)
    “… To this end, we devise a novel Gated Mixture Variational Autoencoder deep network, that can be effectively trained with data from a limited number of audited taxpayers, combined with a large corpus of filed VAT returns…”
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    A comprehensive survey on design and application of autoencoder in deep learning Autor Li, Pengzhi, Pei, Yan, Li, Jianqiang

    ISSN: 1568-4946, 1872-9681
    Vydavateľské údaje: Elsevier B.V 01.05.2023
    Vydané v Applied soft computing (01.05.2023)
    “… With the development of deep learning technology, autoencoder has attracted the attention of many scholars…”
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    A hybrid Intrusion Detection System based on Sparse autoencoder and Deep Neural Network Autor Narayana Rao, K., Venkata Rao, K., P.V.G.D., Prasad Reddy

    ISSN: 0140-3664
    Vydavateľské údaje: Elsevier B.V 01.12.2021
    Vydané v Computer communications (01.12.2021)
    “… In the second stage, the Deep Neural Network (DNN) was used to predict and classify attacks. The classifier classifies multi attack classification from the extracted…”
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