Search Results - "Denoising autoencoder (DAE)"

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  1. 1

    Deep learning-based motion artifact removal in functional near-infrared spectroscopy by Gao, Yuanyuan, Chao, Hanqing, Cavuoto, Lora, Yan, Pingkun, Kruger, Uwe, Norfleet, Jack E., Makled, Basiel A., Schwaitzberg, Steven, De, Suvranu, Intes, Xavier

    ISSN: 2329-423X, 2329-4248
    Published: United States Society of Photo-Optical Instrumentation Engineers 01.10.2022
    Published in Neurophotonics (Print) (01.10.2022)
    “… To the best of our knowledge, this is the first investigation to report on the use of a denoising autoencoder (DAE…”
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    Journal Article
  2. 2

    Combined Denoising and Suppression of Transient Artifacts in Arterial Spin Labeling MRI Using Deep Learning by Hales, Patrick W., Pfeuffer, Josef, Clark, Chris

    ISSN: 1053-1807, 1522-2586, 1522-2586
    Published: Hoboken, USA John Wiley & Sons, Inc 01.11.2020
    Published in Journal of magnetic resonance imaging (01.11.2020)
    “… Field Strength/Sequence 3T / pseudo‐continuous and pulsed ASL with 3D gradient‐and‐spin‐echo readout. Assessment A denoising autoencoder…”
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    Journal Article
  3. 3

    EEG Connectivity Analysis Using Denoising Autoencoders for the Detection of Dyslexia by Martinez-Murcia, Francisco J, Ortiz, Andres, Gorriz, Juan Manuel, Ramirez, Javier, Lopez-Abarejo, Pedro Javier, Lopez-Zamora, Miguel, Luque, Juan Luis

    ISSN: 1793-6462, 1793-6462
    Published: Singapore 01.07.2020
    Published in International journal of neural systems (01.07.2020)
    “…The Temporal Sampling Framework (TSF) theorizes that the characteristic phonological difficulties of dyslexia are caused by an atypical oscillatory sampling at…”
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    Journal Article
  4. 4

    Heart rate detection of ballistocardiogram based on improved DAE and template matching method by Mou, Zonglei, Han, Lei, Chen, Yu

    ISSN: 2631-8695, 2631-8695
    Published: IOP Publishing 01.12.2023
    Published in Engineering Research Express (01.12.2023)
    “…) and an improved Denoising Autoencoder (DAE), referred to as the GDAE model, to accurately detect heart rate in noise-contaminated signals…”
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    Journal Article
  5. 5

    Mood detection from daily conversational speech using denoising autoencoder and LSTM by Kun-Yi Huang, Chung-Hsien Wu, Ming-Hsiang Su, Hsiang-Chi Fu

    ISSN: 2379-190X
    Published: IEEE 01.03.2017
    “… Then, a denoising autoencoder (DAE) is used to construct an emotion conversion model to characterize the relationship between the perceived…”
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    Conference Proceeding
  6. 6

    EEG Connectivity Analysis Using Denoising Autoencoders for the Detection of Dyslexia by Francisco Jesus Martinez-Murcia, Ortiz, Andrés, Górriz, Juan Manuel, Ramírez, Javier, Lopez-Perez, Pedro Javier, López-Zamora, Miguel, Luque, Juan Luis

    ISSN: 2331-8422
    Published: Ithaca Cornell University Library, arXiv.org 23.11.2023
    Published in arXiv.org (23.11.2023)
    “…The Temporal Sampling Framework (TSF) theorizes that the characteristic phonological difficulties of dyslexia are caused by an atypical oscillatory sampling at…”
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    Paper
  7. 7

    Denoising-Based Domain Adaptation Network for EEG Source Imaging by Li, Runze

    ISBN: 9798382635507
    Published: ProQuest Dissertations & Theses 01.01.2023
    “… However, it is still a major challenge to deal with the domain shift problem between the datasets of different subjects or sessions in ESI problem…”
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    Dissertation
  8. 8

    EMG Based Rehabilitation Gesture Recognition Using DAE-CNN-LSTM Hybrid Model by Cao, Wujing, Guo, Xinqiang, Zou, Yupeng, Zhang, Shuo, Luo, Mingxiang, Kobsiriphat, Worawarit, Wu, Xinyu, Yin, Meng

    Published: IEEE 23.08.2024
    “… We adopt a strategy combining denoising autoencoder (DAE), convolutional neural network (CNN), and long short-term memory…”
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    Conference Proceeding
  9. 9

    Denoising-based UNMT is more robust to word-order divergence than MASS-based UNMT by Banerjee, Tamali, Rudra Murthy V, Bhattacharyya, Pushpak

    ISSN: 2331-8422
    Published: Ithaca Cornell University Library, arXiv.org 02.03.2023
    Published in arXiv.org (02.03.2023)
    “…We aim to investigate whether UNMT approaches with self-supervised pre-training are robust to word-order divergence between language pairs. We achieve this by…”
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    Paper
  10. 10
  11. 11

    Representative Random Sampling for Feature Engineering of -Omics Data: Using Machine Learning to Identify Biomarkers for Head and Neck Squamous Cell Carcinoma by Rendleman, Michael C

    ISBN: 9798790625770
    Published: ProQuest Dissertations & Theses 01.01.2021
    “…High-dimensional cancer data can be burdensome to analyze, with complex relationships between molecular measurements, clinical diagnostics, and treatment…”
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    Dissertation
  12. 12

    Improving The Robustness Of Right Whale Detection In Noisy Conditions Using Denoising Autoencoders And Augmented Training by Vickers, W., Milner, B., Lee, R.

    ISSN: 2379-190X
    Published: IEEE 06.06.2021
    “…The aim of this paper is to examine denoising autoencoders (DAEs) for improving the detection of right whales recorded in harsh marine environments…”
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    Conference Proceeding