Suchergebnisse - convolutional LSTM autoencoder

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    ConvAE-LSTM: Convolutional Autoencoder Long Short-Term Memory Network for Smartphone-Based Human Activity Recognition von Thakur, Dipanwita, Biswas, Suparna, Ho, Edmond S. L., Chattopadhyay, Samiran

    ISSN: 2169-3536, 2169-3536
    Veröffentlicht: Piscataway IEEE 2022
    Veröffentlicht in IEEE access (2022)
    “… , accelerometer and gyroscope data. Convolutional neural networks (CNNs), autoencoders (AEs), and long short-term memory (LSTM …”
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    Journal Article
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    The Prediction of the Remaining Useful Life of Rotating Machinery Based on an Adaptive Maximum Second-Order Cyclostationarity Blind Deconvolution and a Convolutional LSTM Autoencoder von Gao, Yangde, Ahmad, Zahoor, Kim, Jong-Myon

    ISSN: 1424-8220, 1424-8220
    Veröffentlicht: Switzerland MDPI AG 09.04.2024
    Veröffentlicht in Sensors (Basel, Switzerland) (09.04.2024)
    “… ) and a convolutional LSTM autoencoder to achieve the feature extraction, health index analysis, and RUL prediction for rotating machinery …”
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    A Deep Learning Model for Smart Manufacturing Using Convolutional LSTM Neural Network Autoencoders von Essien, Aniekan, Giannetti, Cinzia

    ISSN: 1551-3203, 1941-0050
    Veröffentlicht: Piscataway IEEE 01.09.2020
    Veröffentlicht in IEEE transactions on industrial informatics (01.09.2020)
    “… The model comprises a deep convolutional …”
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    Hybrid convolutional Bi-LSTM autoencoder framework for short-term wind speed prediction von Kosana, Vishalteja, Teeparthi, Kiran, Madasthu, Santhosh

    ISSN: 0941-0643, 1433-3058
    Veröffentlicht: London Springer London 01.08.2022
    Veröffentlicht in Neural computing & applications (01.08.2022)
    “… Encoder and decoder are the two parts of the proposed hybrid model. In this study, a one-dimensional convolutional neural network (1D-CNN …”
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    Prediction of Ocean Weather Based on Denoising AutoEncoder and Convolutional LSTM von Kim, Ki-Su, Lee, June-Beom, Roh, Myung-Il, Han, Ki-Min, Lee, Gap-Heon

    ISSN: 2077-1312, 2077-1312
    Veröffentlicht: Basel MDPI AG 01.10.2020
    Veröffentlicht in Journal of marine science and engineering (01.10.2020)
    “… The path planning of a ship requires much information, and one of the essential factors is predicting the ocean environment. Ocean weather can generally be …”
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    Watershed groundwater level multistep ahead forecasts by fusing convolutional-based autoencoder and LSTM models von Kow, Pu-Yun, Liou, Jia-Yi, Sun, Wei, Chang, Li-Chiu, Chang, Fi-John

    ISSN: 0301-4797, 1095-8630, 1095-8630
    Veröffentlicht: England Elsevier Ltd 01.02.2024
    Veröffentlicht in Journal of environmental management (01.02.2024)
    “… This study proposed a novel ConvAE-LSTM model, which fused a Convolutional-based Autoencoder model (ConvAE …”
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    Semantic Segmentation of SLAR Imagery with Convolutional LSTM Selectional AutoEncoders von Gallego, Antonio-Javier, Gil, Pablo, Pertusa, Antonio, Fisher, Robert B.

    ISSN: 2072-4292, 2072-4292
    Veröffentlicht: Basel MDPI AG 12.06.2019
    Veröffentlicht in Remote sensing (Basel, Switzerland) (12.06.2019)
    “… The proposed approach introduces a new type of neural architecture named Convolutional Long Short Term Memory Selectional AutoEncoders (CMSAE …”
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    A novel dimensionality reduction approach for ECG signal via convolutional denoising autoencoder with LSTM von Dasan, Evangelin, Panneerselvam, Ithayarani

    ISSN: 1746-8094, 1746-8108
    Veröffentlicht: Elsevier Ltd 01.01.2021
    Veröffentlicht in Biomedical signal processing and control (01.01.2021)
    “… •Compressing the signal before transmission can reduce the signal transmission cost in wearable technology.•Reduced transmission time can increase the battery …”
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    Multistage Convolutional Autoencoder and BCM-LSTM Networks for RUL Prediction of Rolling Bearings von Wang, Zhaozong, Cheng, Jiangfeng, Zheng, Hui, Zou, Xiaofu, Tao, Fei

    ISSN: 0018-9456, 1557-9662
    Veröffentlicht: New York IEEE 2023
    “… This article presents a rolling bearing RUL prediction method based on multistage convolutional autoencoder (MSCAE …”
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    Fall Detection of the Elderly Using Denoising LSTM-Based Convolutional Variant Autoencoder von Yi, Myung-Kyu, Han, Kyunghyun, Hwang, Seong Oun

    ISSN: 1530-437X, 1558-1748
    Veröffentlicht: New York IEEE 01.06.2024
    Veröffentlicht in IEEE sensors journal (01.06.2024)
    “… )-based convolutional variational autoencoder (CVAE) model to solve the problem of lack of fall data …”
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    Enhancing Video Anomaly Detection Using Spatio-Temporal Autoencoders and Convolutional LSTM Networks von Almahadin, Ghayth, Subburaj, Maheswari, Hiari, Mohammad, Sathasivam Singaram, Saranya, Kolla, Bhanu Prakash, Dadheech, Pankaj, Vibhute, Amol D., Sengan, Sudhakar

    ISSN: 2661-8907, 2662-995X, 2661-8907
    Veröffentlicht: Singapore Springer Nature Singapore 11.01.2024
    Veröffentlicht in SN computer science (11.01.2024)
    “… Identifying suspicious activities or behaviors is essential in the domain of Anomaly Detection (AD). In crowded scenes, the presence of inter-object occlusions …”
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    Novel Soft Smart Shoes for Motion Intent Learning of Lower Limbs Using LSTM With a Convolutional Autoencoder von Yang, Jiantao, Yin, Yuehong

    ISSN: 1530-437X, 1558-1748
    Veröffentlicht: New York IEEE 15.01.2021
    Veröffentlicht in IEEE sensors journal (15.01.2021)
    “… This study presents novel soft smart shoes designed for motion intent learning at unspecified walking speeds using long short-term memory with a convolutional autoencoder …”
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    Air Traffic Prediction as a Video Prediction Problem Using Convolutional LSTM and Autoencoder von Kim, Hyewook, Lee, Keumjin

    ISSN: 2226-4310, 2226-4310
    Veröffentlicht: Basel MDPI AG 01.10.2021
    Veröffentlicht in Aerospace (01.10.2021)
    “… An autoencoder with convolutional long short-term memory (ConvLSTM) is used, and a mixed loss function technique is proposed to generate better air traffic images than those obtained by using conventional L1 or L2 loss function …”
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    Optimizing dotted Arabic expiration date recognition with ARABEX: a convolutional autoencoder with bidirectional LSTM and CRNN approach von Zaki, Hozaifa, Soliman, Ghada

    ISSN: 1433-2833, 1433-2825
    Veröffentlicht: Berlin/Heidelberg Springer Berlin Heidelberg 01.12.2025
    “… In this study, we introduced an approach for Automated Dotted Arabic Expiration Date Extraction using an Optimized Convolutional Autoencoder with a bidirectional LSTM …”
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    Enhanced Intelligent Video Monitoring using Hybrid Integration of Spatiotemporal Autoencoders and Convolutional LSTMs von Umale-Nagmote, Ankita, Goel, Charu, Lal, Nidhi

    ISSN: 0350-5596, 1854-3871
    Veröffentlicht: Ljubljana Slovenian Society Informatika / Slovensko drustvo Informatika 01.04.2025
    Veröffentlicht 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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    A deep learning approach for error detection and quantification in extrusion-based bioprinting von Bonatti, Amedeo Franco, Vozzi, Giovanni, Kai Chua, Chee, De Maria, Carmelo

    ISSN: 2214-7853, 2214-7853
    Veröffentlicht: Elsevier Ltd 2022
    Veröffentlicht in Materials today : proceedings (2022)
    “… features from a training dataset and generalize to new, unseen data. In this work, we present a novel application of a deep learning model to EBB, namely a convolutional Long Short-Term Memory (LSTM …”
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    FA-SconvAE-LSTM: Feature-Aligned Stacked Convolutional Autoencoder with Long Short-Term Memory Network for Soft Sensor Modeling von Wu, Ping, Miao, Zengdi, Wang, Ke, Gao, Jinfeng, Zhang, Xujie, Lou, Siwei, Yang, Chunjie

    ISSN: 0952-1976
    Veröffentlicht: Elsevier Ltd 15.06.2025
    Veröffentlicht in Engineering applications of artificial intelligence (15.06.2025)
    “… In this study, a spatio-temporal model, termed the feature-aligned stacked convolutional autoencoder with long short-term memory, is proposed to develop soft sensors for nonlinear dynamic industrial processes …”
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    Abnormal Event Detection in Videos using LSTM Convolutional Autoencoder von Berroukham, Abdelhafid, Housni, Khalid, Lahraichi, Mohammed

    ISSN: 2768-0754
    Veröffentlicht: IEEE 08.05.2024
    Veröffentlicht in Intelligent Systems and Computer Vision (Online) (08.05.2024)
    “… This research investigates the application of a novel LSTM Convolutional Autoencoder (LSTM-CAE …”
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