Showing 161 - 180 results of 1,264 for search '(( freezing methods) OR ( learning methods))', query time: 0.11s Refine Results
  1. 161

    Personalized question recommendation for English grammar learning by Fang, Lanting, Tuan, Luu Anh, Hui, Siu Cheung, Wu, Lenan

    Published 2019
    “…Additionally, we incorporated the proposed recommendation method into a Web‐based English grammar learning system and presented its performance evaluation in this paper. …”
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    Journal Article
  2. 162

    Active learning with applications in biomedical document annotation by Han, Xu

    Published 2017
    “…We also apply our active learning method for the task of named entity recognition. …”
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    Thesis
  3. 163

    Residual learning diagnosis detection: an advanced residual learning diagnosis detection system for COVID-19 in industrial internet of things by Zhang, Mingdong, Chu, Ronghe, Dong, Chaoyu, Wei, Jianguo, Lu, Wenhuan, Xiong, Naixue

    Published 2022
    “…Early diagnosis and isolation are effective and imperative strategies for epidemic prevention and control. Most diagnostic methods for the COVID-19 is based on nucleic acid testing (NAT), which is expensive and time-consuming. …”
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    Journal Article
  4. 164

    Enhanced extreme learning machines for image classification by Cui, Dongshun

    Published 2019
    “…Among numerous machine learning methods, we choose the Extreme Learning Machine (ELM) for our image classification applications. …”
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    Thesis
  5. 165

    Enabling open-ended questions in team-based learning using automated marking: impact on student achievement, learning and engagement by Tan, Sophia Huey Shan, Thibault, Guillaume, Chew, Anna Chia Yin, Rajalingam, Preman

    Published 2022
    “…Methods: MCQs and OEQs test scores of N = 66 students were automatically captured in Learning Activity Management System (LAMS) and were compared using a switching replications quasi-experimental design with pre- and post-tests to answer the research questions. …”
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    Journal Article
  6. 166

    Learning hierarchical review graph representations for recommendation by Liu, Yong, Yang, Susen, Zhang, Yinan, Miao, Chunyan, Nie, Zaiqing, Zhang, Juyong

    Published 2022
    “…Previous review-based recommendation methods usually employ sophisticated compositional models, such as Recurrent Neural Networks (RNN) and Convolutional Neural Networks (CNN), to learn semantic representations from the review data for recommendation. …”
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    Journal Article
  7. 167

    Development of a learning system for robot control by Leong, Marcus Khee Ing

    Published 2020
    “…This project aims to develop a learning algorithm that can learn the Jacobian matrix of the robot with the use of neural network and control the end-effector to follow a predefined trajectory without modelling the robot kinematics. …”
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    Final Year Project (FYP)
  8. 168

    Synthesizing photorealistic images with deep generative learning by Zheng, Chuanxia

    Published 2021
    “…Extensive experiments demonstrate superior performance compared to previous CNN-based methods on several datasets. Part 3 combines recognitive learning and the latest generative modeling into a holistic scene decomposition and completion framework, where a network is trained to decompose a scene into individual objects, infer their underlying occlusion relationships, and moreover imagine what the originally occluded objects may look like, while using only a single image as input. …”
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    Thesis-Doctor of Philosophy
  9. 169

    Elementwise overparameterisation for single and multi-task learning by Ribli, Vincent

    Published 2022
    “…To solve such an issue, methods such as overparameterisation, along with multi-task learning, have been proposed. …”
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    Final Year Project (FYP)
  10. 170
  11. 171
  12. 172

    Quantum photonic sensors array with machine learning by Ho, Ping-Chien

    Published 2021
    “…DQS-CV protocol can also be used to help improve machine learning which is called the supervised learning assisted by and entangled sensor network(SLAEN).SLAEN converge in less step compared to the conventional algorithm and can find better hyperplanes. …”
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    Thesis-Master by Coursework
  13. 173

    Deep learning for anomaly detection in computational imaging by Du, Xinglin

    Published 2022
    “…For supervised method, three methods are used: multilayer perceptron, convolutional neural network and transfer learning. …”
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    Thesis-Master by Coursework
  14. 174

    Unsupervised Learning for Generative Scene Editing and Motion by Fang, David S.

    Published 2024
    “…Unsupervised learning for images and videos is important for many applications in computer vision. …”
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    Thesis
  15. 175

    Object recognition using deep learning features by Zhu, Daiqing

    Published 2015
    “…However, previous algorithms need to train classifier to rank proposal and learn from object class recognition datasets. That is time consuming since those classifiers need to be trained again when new object category comes and database grow. …”
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    Final Year Project (FYP)
  16. 176

    Differentiable Vector Graphics Rasterization for Editing and Learning by Li, Tzu-Mao, Lukac, Mike, Gharbi, Michael, Ragan-Kelley, Jonathan

    Published 2025
    “…We introduce a differentiable rasterizer that bridges the vector graphics and raster image domains, enabling powerful raster-based loss functions, optimization procedures, and machine learning techniques to edit and generate vector content. …”
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    Article
  17. 177

    Robustness to training disturbances in SpikeProp Learning by Shrestha, Sumit Bam, Song, Qing

    Published 2020
    “…The performance of learning using this scheme has been compared with the prevailing methods for different benchmark data sets and the results show that this method has stable learning reflected by minimal surges during learning, higher success in training instances, and faster learning as well.…”
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    Journal Article
  18. 178

    Vehicle re-identification using machine learning by Tang, Lisha

    Published 2022
    “…Finally, we address this Re-ID issue as a multi-task problem and employ Homoscedastic Uncertainty Learning to automatically balance the loss weightings. …”
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    Thesis-Master by Research
  19. 179

    An analytic end-to-end collaborative learning algorithm by Li, Sitan, Cheah, Chien Chern

    Published 2024
    “…However, most current deep learning methods are black-box approaches that are more focused on empirical studies. …”
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    Conference Paper
  20. 180

    Goal modelling for deep reinforcement learning agents by Leung, Jonathan, Shen, Zhiqi, Zeng, Zhiwei, Miao, Chunyan

    Published 2022
    “…The experiments demonstrate that our method is more sample efficient and can obtain higher average rewards than other related methods that incorporate prior human knowledge in similar ways.…”
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    Conference Paper