Search Results - "variational autoencoder"

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  1. 1

    Crafting imperceptible on-manifold adversarial attacks for tabular data by He, Zhipeng, Stevens, Alexander, Ouyang, Chun, De Smedt, Johannes, Barros, Alistair, Moreira, Catarina

    ISSN: 1568-4946
    Published: Elsevier B.V 01.01.2026
    Published in Applied soft computing (01.01.2026)
    “…Adversarial attacks on tabular data present unique challenges due to the heterogeneous nature of mixed categorical and numerical features. Unlike images where…”
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    Journal Article
  2. 2

    Anomaly detection for multivariate times series through the multi-scale convolutional recurrent variational autoencoder by Xie, Tianming, Xu, Qifa, Jiang, Cuixia

    ISSN: 0957-4174, 1873-6793
    Published: Elsevier Ltd 30.11.2023
    Published in Expert systems with applications (30.11.2023)
    “…To realize the anomaly detection for industrial multi-sensor data, we develop a novel multi-scale convolutional recurrent variational autoencoder (MSCRVAE)…”
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  3. 3

    Robust Semantic Communications with Masked VQ-VAE Enabled Codebook by Hu, Qiyu, Zhang, Guangyi, Qin, Zhijin, Cai, Yunlong, Yu, Guanding, Li, Geoffrey Ye

    ISSN: 1536-1276, 1558-2248
    Published: New York IEEE 01.12.2023
    “…Although semantic communications have exhibited satisfactory performance on a large number of tasks, the impact of semantic noise and the robustness of the…”
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  4. 4

    VAE-based Deep SVDD for anomaly detection by Zhou, Yu, Liang, Xiaomin, Zhang, Wei, Zhang, Linrang, Song, Xing

    ISSN: 0925-2312, 1872-8286
    Published: Elsevier B.V 17.09.2021
    Published in Neurocomputing (Amsterdam) (17.09.2021)
    “…Anomaly detection is an essential task for different fields in the real world. The imbalanced data and lack of labels make the task challenging. Deep learning…”
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  5. 5

    Recognition of geochemical anomalies using a deep variational autoencoder network by Luo, Zijing, Xiong, Yihui, Zuo, Renguang

    ISSN: 0883-2927, 1872-9134
    Published: Elsevier Ltd 01.11.2020
    Published in Applied geochemistry (01.11.2020)
    “…Deep learning (DL) algorithms have received increased attention in various fields. In the field of geoscience, DL has been shown to be a powerful tool for…”
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  6. 6

    Discriminative Hamiltonian variational autoencoder for accurate tumor segmentation in data-scarce regimes by Kebaili, Aghiles, Lapuyade-Lahorgue, Jérôme, Vera, Pierre, Ruan, Su

    ISSN: 0925-2312
    Published: Elsevier B.V 14.11.2024
    Published in Neurocomputing (Amsterdam) (14.11.2024)
    “…Deep learning has gained significant attention in medical image segmentation. However, the limited availability of annotated training data presents a challenge…”
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  7. 7

    Intrusion Detection System After Data Augmentation Schemes Based on the VAE and CVAE by Liu, Chang, Antypenko, Ruslan, Sushko, Iryna, Zakharchenko, Oksana

    ISSN: 0018-9529, 1558-1721
    Published: New York IEEE 01.06.2022
    Published in IEEE transactions on reliability (01.06.2022)
    “…Industrial Internet of Things (IoT) is the most rapidly developing industry in the current IoT industry, and the intrusion detection system (IDS) remains one…”
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  8. 8

    Spectrum-compatible artificial accelerograms via conditional variational autoencoder with generative adversarial networks by Hu, Xiaohu, Chen, Su, Ding, Yi, Fu, Lei, Li, Xiaojun

    ISSN: 0141-0296
    Published: Elsevier Ltd 01.02.2026
    Published in Engineering structures (01.02.2026)
    “…The need for spectrum-compatible ground motions in structural seismic design has driven the development of artificial seismic waveform generation techniques…”
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  9. 9

    Deep learning methods for forecasting COVID-19 time-Series data: A Comparative study by Zeroual, Abdelhafid, Harrou, Fouzi, Dairi, Abdelkader, Sun, Ying

    ISSN: 0960-0779, 1873-2887, 0960-0779
    Published: England Elsevier Ltd 01.11.2020
    Published in Chaos, solitons and fractals (01.11.2020)
    “…•Developed deep learning methods to forecast the COVID19 spread.•Five deep learning models have been compared for COVID-19 forecasting.•Time-series COVID19…”
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  10. 10

    Deep Clustering Analysis via Dual Variational Autoencoder With Spherical Latent Embeddings by Yang, Lin, Fan, Wentao, Bouguila, Nizar

    ISSN: 2162-237X, 2162-2388, 2162-2388
    Published: United States IEEE 01.09.2023
    “…In recent years, clustering methods based on deep generative models have received great attention in various unsupervised applications, due to their…”
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  11. 11

    Intelligent Condition-Based Monitoring of Rotary Machines With Few Samples by Dixit, Sonal, Verma, Nishchal K.

    ISSN: 1530-437X, 1558-1748
    Published: New York IEEE 01.12.2020
    Published in IEEE sensors journal (01.12.2020)
    “…Recently, intelligent condition based monitoring systems build on deep learning methods have gained popularity. The success of these methods relies upon the…”
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  12. 12
  13. 13

    Cloud-VAE: Variational autoencoder with concepts embedded by Liu, Yue, Liu, Zitu, Li, Shuang, Yu, Zhenyao, Guo, Yike, Liu, Qun, Wang, Guoyin

    ISSN: 0031-3203, 1873-5142
    Published: Elsevier Ltd 01.08.2023
    Published in Pattern recognition (01.08.2023)
    “…•The initial concepts in latent space are described as prior distribution obtained by the proposed cloud model-based clustering algorithm.•Variational lower…”
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  14. 14

    Uncertainty-aware probabilistic travel demand prediction for mobility-on-demand services by Peng, Tao, Gao, Jie, Cats, Oded

    ISSN: 0968-090X
    Published: Elsevier Ltd 01.12.2025
    “…•Spatial-temporal deep learning framework for probabilistic MoD demand prediction.•Nonparametric approach for uncertainty quantification in travel demand…”
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  15. 15

    A review of molecular representation in the age of machine learning by Wigh, Daniel S., Goodman, Jonathan M., Lapkin, Alexei A.

    ISSN: 1759-0876, 1759-0884
    Published: Hoboken, USA Wiley Periodicals, Inc 01.09.2022
    “…Research in chemistry increasingly requires interdisciplinary work prompted by, among other things, advances in computing, machine learning, and artificial…”
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  16. 16

    Hyperbolic Adversarial Variational Embedding for item recommendation by Sun, Zhongchuan, Chen, Liming, Wang, Youwei, Zhang, Mingming, Wu, Yunpeng, Ye, Yangdong

    ISSN: 0952-1976
    Published: Elsevier Ltd 15.01.2026
    “…Variational autoencoders (VAEs) have shown great promise in recommender systems due to their advantage of handling implicit feedback. However, existing…”
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  17. 17

    DiffuseVAE++: Mitigating training-sampling mismatch based on additional noise for higher fidelity image generation by Yang, Xiaobao, Luo, Wei, Ning, Hailong, Zhang, Guorui, Sun, Wei, Ma, Sugang

    ISSN: 0925-2312
    Published: Elsevier B.V 07.06.2025
    Published in Neurocomputing (Amsterdam) (07.06.2025)
    “…Denoising Diffusion Probabilistic Models (DDPMs) have demonstrated remarkable results in image generation. However, there exist a mismatch between the training…”
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  18. 18

    A generative design method of airfoil based on conditional variational autoencoder by Wang, Xu, Qian, Weiqi, Zhao, Tun, Chen, Hai, He, Lei, Sun, Haisheng, Tian, Yuan

    ISSN: 0952-1976
    Published: Elsevier Ltd 01.01.2025
    “…The challenges in multi-objective and multi-dimensional optimization design of airfoils, marked by prolonged optimization cycles and low accuracy, call for an…”
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  19. 19

    PFEMed: Few-shot medical image classification using prior guided feature enhancement by Dai, Zhiyong, Yi, Jianjun, Yan, Lei, Xu, Qingwen, Hu, Liang, Zhang, Qi, Li, Jiahui, Wang, Guoqiang

    ISSN: 0031-3203, 1873-5142
    Published: Elsevier Ltd 01.02.2023
    Published in Pattern recognition (01.02.2023)
    “…•A novel dual-encoder architecture is introduced to extract feature representation.•To our knowledge, we are the first to investigate the proposed VAE…”
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  20. 20

    Joint Coding-Modulation for Digital Semantic Communications via Variational Autoencoder by Bo, Yufei, Duan, Yiheng, Shao, Shuo, Tao, Meixia

    ISSN: 0090-6778, 1558-0857
    Published: New York IEEE 01.09.2024
    Published in IEEE transactions on communications (01.09.2024)
    “…Semantic communications have emerged as a new paradigm for improving communication efficiency by transmitting the semantic information of a source message that…”
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