Výsledky vyhľadávania - Multi-modal autoencoder

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  1. 1

    MC-RVAE: Multi-channel recurrent variational autoencoder for multimodal Alzheimer’s disease progression modelling Autor Martí-Juan, Gerard, Lorenzi, Marco, Piella, Gemma

    ISSN: 1053-8119, 1095-9572, 1095-9572
    Vydavateľské údaje: United States Elsevier Inc 01.03.2023
    Vydané v NeuroImage (Orlando, Fla.) (01.03.2023)
    “…•A multi-channel model based on recurrent variational autoencoders was proposed to capture spatial and temporal evolution of AD using multimodal data…”
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    Dmvae: a dual-stream multi-modal variational autoencoder for multi-task fake news detection Autor Guo, Ying, Hu, Shuting, Li, Yao, Di, Chong, Liu, Jie

    ISSN: 1433-7541, 1433-755X
    Vydavateľské údaje: London Springer London 01.06.2025
    “…The proliferation of fake news on social media platforms, facilitated by the development of the Internet, has become a pressing social issue, intensifying the urgency of detecting its diverse multi-modal forms…”
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    PathME: pathway based multi-modal sparse autoencoders for clustering of patient-level multi-omics data Autor Lemsara, Amina, Ouadfel, Salima, Fröhlich, Holger

    ISSN: 1471-2105, 1471-2105
    Vydavateľské údaje: London BioMed Central 16.04.2020
    Vydané v BMC bioinformatics (16.04.2020)
    “… Results We propose a multi-modal sparse denoising autoencoder framework coupled with sparse non-negative matrix factorization to robustly cluster patients based on multi-omics data…”
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    Representation learning using step-based deep multi-modal autoencoders Autor Bhatt, Gaurav, Jha, Piyush, Raman, Balasubramanian

    ISSN: 0031-3203, 1873-5142
    Vydavateľské údaje: Elsevier Ltd 01.11.2019
    Vydané v Pattern recognition (01.11.2019)
    “… of ‘canonical correlation-based’ approaches and ‘autoencoder-based’ approaches. In this paper, we investigate the performance of deep autoencoder-based methods on multi-view data…”
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    Multi-modal semantic autoencoder for cross-modal retrieval Autor Wu, Yiling, Wang, Shuhui, Huang, Qingming

    ISSN: 0925-2312, 1872-8286
    Vydavateľské údaje: Elsevier B.V 28.02.2019
    Vydané v Neurocomputing (Amsterdam) (28.02.2019)
    “… In this paper, we propose a two-stage learning method to learn multi-modal mappings that project multi-modal data to low dimensional embeddings that preserve both feature and semantic information…”
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    A novel transformer autoencoder for multi-modal emotion recognition with incomplete data Autor Cheng, Cheng, Liu, Wenzhe, Fan, Zhaoxin, Feng, Lin, Jia, Ziyu

    ISSN: 0893-6080, 1879-2782, 1879-2782
    Vydavateľské údaje: United States Elsevier Ltd 01.04.2024
    Vydané v Neural networks (01.04.2024)
    “…Multi-modal signals have become essential data for emotion recognition since they can represent emotions more comprehensively…”
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    Joint ECG–EMG–EEG signal compression and reconstruction with incremental multimodal autoencoder approach Autor Dasan, Evangelin, Gnanaraj, Rajakumar

    ISSN: 0278-081X, 1531-5878
    Vydavateľské údaje: New York Springer US 01.11.2022
    “…–EEG signals before sending to the receiver. This work proposes multimodal deep denoising convolutional autoencoder architecture for joint compression (encoding…”
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    Robust anomaly detection through multi-modal autoencoder fusion for small vehicle damage detection Autor Khan, Sara, Yüksel, Mehmed, Kirchner, Frank

    ISSN: 2666-8270, 2666-8270
    Vydavateľské údaje: Elsevier Ltd 01.12.2025
    Vydané v Machine learning with applications (01.12.2025)
    “… This work introduces a novel multi-modal architecture based on anomaly detection to address these issues…”
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    Multimodal Imputation-Based Multimodal Autoencoder Framework for AQI Classification and Prediction of Indian Cities Autor Srinivasa Rao, Routhu, Rao Kalabarige, Lakshmana, Holla, M. Raviraja, Kumar Sahu, Aditya

    ISSN: 2169-3536, 2169-3536
    Vydavateľské údaje: IEEE 2024
    Vydané v IEEE access (2024)
    “…) with the features of multi-modal autoencoder (MMA) and fed to an XGBoost(XGB) algorithm for AQI prediction and classification…”
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    Multi-Modal masked autoencoder and parallel Mamba for 3D brain tumor segmentation Autor Huang, Yaya, Liu, Litong, Zhang, Tianzhen, Wang, Sisi, Ting, Chee-Ming

    ISSN: 0167-8655
    Vydavateľské údaje: Elsevier B.V 01.01.2026
    Vydané v Pattern recognition letters (01.01.2026)
    “…Accurate segmentation of brain tumors from multimodal MRI is essential for diagnosis and treatment planning…”
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    A swarm anomaly detection model for IoT UAVs based on a multi-modal denoising autoencoder and federated learning Autor Lu, Yu, Yang, Tao, Zhao, Chong, Chen, Wen, Zeng, Rong

    ISSN: 0360-8352
    Vydavateľské údaje: Elsevier Ltd 01.10.2024
    Vydané v Computers & industrial engineering (01.10.2024)
    “…•A multimodal denoising autoencoder has been designed to achieve multi-source heterogeneous sensor noise removal…”
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    Multimodal Deep Autoencoder for Human Pose Recovery Autor Hong, Chaoqun, Yu, Jun, Wan, Jian, Tao, Dacheng, Wang, Meng

    ISSN: 1057-7149, 1941-0042, 1941-0042
    Vydavateľské údaje: United States IEEE 01.12.2015
    Vydané v IEEE transactions on image processing (01.12.2015)
    “… It is based on feature extraction with multimodal fusion and back-propagation deep learning…”
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    MOADE: a multimodal autoencoder for dissociating bulk multi-omics data Autor Sun, Jiao, Malik, Ayesha A., Lin, Tong, Bratton, Ayla, Pan, Yue, Smith, Kyle, Onar-Thomas, Arzu, Robinson, Giles W., Zhang, Wei, Northcott, Paul A., Li, Qian

    ISSN: 1474-760X, 1474-7596, 1474-760X
    Vydavateľské údaje: London BioMed Central 30.09.2025
    Vydané v Genome Biology (30.09.2025)
    “… Here, we present MOADE, a multimodal autoencoder pipeline linking multi-dimensional features to jointly predict personalized multi-omic profiles and cellular compositions, using pseudo-bulk data…”
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    Bayesian mixture variational autoencoders for multi-modal learning Autor Liao, Keng-Te, Huang, Bo-Wei, Yang, Chih-Chun, Lin, Shou-De

    ISSN: 0885-6125, 1573-0565
    Vydavateľské údaje: New York Springer US 01.12.2022
    Vydané v Machine learning (01.12.2022)
    “…This paper provides an in-depth analysis on how to effectively acquire and generalize cross-modal knowledge for multi-modal learning. Mixture-of-Expert (MoE…”
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    Disentangled-Multimodal Adversarial Autoencoder: Application to Infant Age Prediction With Incomplete Multimodal Neuroimages Autor Hu, Dan, Zhang, Han, Wu, Zhengwang, Wang, Fan, Wang, Li, Smith, J. Keith, Lin, Weili, Li, Gang, Shen, Dinggang

    ISSN: 0278-0062, 1558-254X, 1558-254X
    Vydavateľské údaje: United States IEEE 01.12.2020
    Vydané v IEEE transactions on medical imaging (01.12.2020)
    “… analysis extremely challenging. With the conventional multimodal fusion strategies, adding fMRI data for age prediction has a high risk of introducing more noises than useful features, which would lead to reduced accuracy…”
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    ZMGA: A ZINB-based multi-modal graph autoencoder enhancing topological consistency in single-cell clustering Autor Yao, Jiaxi, Li, Lin, Xu, Tong, Sun, Yang, Jing, Hongwei, Wang, Chengyuan

    ISSN: 1746-8094
    Vydavateľské údaje: Elsevier Ltd 01.11.2024
    “… To address these challenges, we introduce a topologically consistent multi-modal graph autoencoder…”
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    MMDAE-HGSOC: A novel method for high-grade serous ovarian cancer molecular subtypes classification based on multi-modal deep autoencoder Autor Wang, Hui-Qing, Li, Hao-Lin, Han, Jia-Le, Feng, Zhi-Peng, Deng, Hong-Xia, Han, Xiao

    ISSN: 1476-9271, 1476-928X, 1476-928X
    Vydavateľské údaje: England Elsevier Ltd 01.08.2023
    Vydané v Computational biology and chemistry (01.08.2023)
    “… In this paper, we propose a multi-modal deep autoencoder learning method, MMDAE-HGSOC. MiRNA expression, DNA methylation, and copy number variation…”
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    Anytime 3D Object Reconstruction Using Multi-Modal Variational Autoencoder Autor Yu, Hyeonwoo, Oh, Jean

    ISSN: 2377-3766, 2377-3766
    Vydavateľské údaje: Piscataway IEEE 01.04.2022
    Vydané v IEEE robotics and automation letters (01.04.2022)
    “… In a harsh remote collaboration setting, data compression techniques such as autoencoder can be utilized to obtain and transmit the data in terms of latent variables in a compact form…”
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