Suchergebnisse - Hybrid robust convolutional autoencoder
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Hybrid robust convolutional autoencoder for unsupervised anomaly detection of machine tools under noises
ISSN: 0736-5845, 1879-2537, 1879-2537Veröffentlicht: Elsevier Ltd 01.02.2023Veröffentlicht in Robotics and computer-integrated manufacturing (01.02.2023)“… •A new FDD loss function to suppress the noises is designed.•Construct the PCDF module to enhance the robustness of the network.•The unsupervised anomaly …”
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DHCAE: Deep Hybrid Convolutional Autoencoder Approach for Robust Supervised Hyperspectral Unmixing
ISSN: 2072-4292, 2072-4292Veröffentlicht: Basel MDPI AG 01.09.2022Veröffentlicht in Remote sensing (Basel, Switzerland) (01.09.2022)“… In this paper, we present a new method for robust supervised HSU based on a deep hybrid (3D and 2D) convolutional autoencoder …”
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Hybrid Graph Convolutional Network With Online Masked Autoencoder for Robust Multimodal Cancer Survival Prediction
ISSN: 0278-0062, 1558-254X, 1558-254XVeröffentlicht: United States IEEE 01.08.2023Veröffentlicht in IEEE transactions on medical imaging (01.08.2023)“… This manuscript proposes a novel hybrid graph convolutional network, entitled HGCN, which is equipped with an online masked autoencoder paradigm for robust multimodal cancer survival prediction …”
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Hybrid Attention-Enhanced Regularized Convolutional Autoencoder for Robust EEG Feature Extraction in Seizure Prediction
ISSN: 2169-3536, 2169-3536Veröffentlicht: Piscataway IEEE 2025Veröffentlicht in IEEE access (2025)“… Consequently, this study proposes a novel hybrid attention-enhanced regularized convolutional autoencoder (HA-RCAE …”
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Robust Sensor Fault Detection in Wireless Sensor Networks Using a Hybrid Conditional Generative Adversarial Networks and Convolutional Autoencoder
ISSN: 1530-437X, 1558-1748Veröffentlicht: New York IEEE 15.04.2025Veröffentlicht in IEEE sensors journal (15.04.2025)“… Addressing the challenge of sensor fault detection, we propose a novel hybrid technique to enhance the classification of sensor fault data in WSNs …”
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A novel hybrid framework for wind speed forecasting using autoencoder‐based convolutional long short‐term memory network
ISSN: 2050-7038, 2050-7038Veröffentlicht: Hoboken John Wiley & Sons, Inc 01.11.2021Veröffentlicht in International transactions on electrical energy systems (01.11.2021)“… ) autoencoder, convolutional neural network (CNN), and LSTM model for enhanced WSF. The proposed hybrid approach is divided into two main components …”
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Hybrid data-driven feature extraction-enabled surface modeling for metal additive manufacturing
ISSN: 0268-3768, 1433-3015Veröffentlicht: London Springer London 01.08.2022Veröffentlicht in International journal of advanced manufacturing technology (01.08.2022)“… Metal additive manufacturing (AM) has become popular in a large variety of applications due to its excellent capabilities of handling complex geometries and …”
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Driver distracted detection using a new hybrid deep convolutional neural network based on Autoencoder
ISSN: 2631-8695, 2631-8695Veröffentlicht: IOP Publishing 31.12.2025Veröffentlicht in Engineering Research Express (31.12.2025)“… To counter these problems, we propose a novel deep convolutional network with the introduction of an Autoencoder-based feature dimensionality reduction, an Attention mechanism towards better feature …”
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RACMF: robust attention convolutional matrix factorization for rating prediction
ISSN: 1433-7541, 1433-755XVeröffentlicht: London Springer London 01.11.2019Veröffentlicht in Pattern analysis and applications : PAA (01.11.2019)“… To overcome the data sparsity problem, we present a hybrid model named robust attention convolutional matrix factorization (RACMF …”
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Unsupervised Convolutional Transformer Autoencoder for Robust Health Indicator Construction and RUL Prediction in Rotating Machinery
ISSN: 2076-3417, 2076-3417Veröffentlicht: Basel MDPI AG 01.10.2025Veröffentlicht in Applied sciences (01.10.2025)“… Specifically, a sequential autoencoder integrating a convolutional neural network (CNN) and vision Transformer (Vi …”
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3D-Convolutional Neural Network with Generative Adversarial Network and Autoencoder for Robust Anomaly Detection in Video Surveillance
ISSN: 1793-6462, 1793-6462Veröffentlicht: Singapore 01.06.2020Veröffentlicht in International journal of neural systems (01.06.2020)“… We propose a hybrid deep learning model composed of a video feature extractor trained by generative adversarial network with deficient anomaly data and an anomaly detector boosted by transferring the extractor …”
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Anomaly detection for multivariate times series through the multi-scale convolutional recurrent variational autoencoder
ISSN: 0957-4174, 1873-6793Veröffentlicht: Elsevier Ltd 30.11.2023Veröffentlicht in Expert systems with applications (30.11.2023)“… It is a hybrid of convolutional autoencoder and convolutional long short-term memory with variational autoencoder (ConvLSTM-VAE …”
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Spindle Autoencoder-CNN hybrid model for cardiac arrhythmia classification
ISSN: 0010-4825, 1879-0534, 1879-0534Veröffentlicht: United States Elsevier Ltd 01.09.2025Veröffentlicht in Computers in biology and medicine (01.09.2025)“… ) with a Convolutional Neural Network (CNN). Unlike traditional autoencoders, the Spindle Autoencoder utilizes deeper and symmetric hidden layers to extract complex and meaningful representations from ECG signals …”
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Adaptive hybrid convolutional neural network-autoencoder framework for backdoor detection in GenAI-driven semantic communication systems
ISSN: 2616-8375, 2616-8375Veröffentlicht: 15.09.2025Veröffentlicht in ITU journal : ICT discoveries (15.09.2025)“… To address these challenges, we propose a hybrid framework, CNN-AAE, which combines a Convolutional Neural Network (CNN …”
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Enhanced Intelligent Video Monitoring using Hybrid Integration of Spatiotemporal Autoencoders and Convolutional LSTMs
ISSN: 0350-5596, 1854-3871Veröffentlicht: Ljubljana Slovenian Society Informatika / Slovensko drustvo Informatika 01.04.2025Veröffentlicht in Informatica (Ljubljana) (01.04.2025)“… This paper proposes a hybrid deep learning framework that combines spatial-temporal autoencoders with convolutional LSTMs for automated anomaly detection in surveillance videos …”
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Massive Ultrasonic Data Compression Using Wavelet Packet Transformation Optimized by Convolutional Autoencoders
ISSN: 2162-237X, 2162-2388, 2162-2388Veröffentlicht: United States IEEE 01.03.2023Veröffentlicht in IEEE transaction on neural networks and learning systems (01.03.2023)“… Ultrasonic signal acquisition platforms generate considerable amounts of data to be stored and processed, especially when multichannel scanning or beamforming …”
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Revolutionising anomaly detection: a hybrid framework for anomaly detection integrating isolation forest, autoencoder, and Conv. LSTM
ISSN: 0219-1377, 0219-3116Veröffentlicht: London Springer London 01.12.2025Veröffentlicht in Knowledge and information systems (01.12.2025)“… This study aims to develop a robust and scalable hybrid anomaly detection framework that effectively handles the complexities of multidomain data and improves detection accuracy and efficiency …”
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Automatic Facial Expression Recognition Using Modified LPQ and HOG Features with Stacked Deep Convolutional Autoencoders
ISSN: 0929-6212, 1572-834XVeröffentlicht: New York Springer US 01.10.2024Veröffentlicht in Wireless personal communications (01.10.2024)“… and histogram of oriented gradients feature; multi-stage stacked deep convolutional autoencoder (SDCA …”
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Precise single step and multistep short-term photovoltaic parameters forecasting based on reduced deep convolutional stack autoencoder and minimum variance multikernel random vector functional network
ISSN: 0952-1976Veröffentlicht: Elsevier Ltd 01.10.2024Veröffentlicht in Engineering applications of artificial intelligence (01.10.2024)“… To address this, we have developed a novel hybrid model: a reduced deep convolutional stack autoencoder with a minimum variance multikernel random vector functional link network (RDCSAE-MVMRVFLN …”
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A hybrid adversarial autoencoder-graph network model with dynamic fusion for robust scRNA-seq clustering
ISSN: 1471-2164, 1471-2164Veröffentlicht: London BioMed Central 18.08.2025Veröffentlicht in BMC genomics (18.08.2025)“… Results Here, we present a novel deep clustering method, scCAGN, based on an adversarial autoencoder (AAE …”
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