Showing 81 - 100 results of 1,272 for search '(( ((pruning methods) OR (freezing methods))) OR ( learning methods))', query time: 0.14s Refine Results
  1. 81

    Weighted online sequential extreme learning machine for class imbalance learning by Lin, Zhiping, Mirza, Bilal., Toh, Kar-Ann.

    Published 2013
    “…Most of the existing sequential learning methods for class imbalance learn data in chunks. …”
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    Journal Article
  2. 82

    Learning driver-specific behavior for overtaking : a combined learning framework by Lu, Chao, Wang, Huaji, Lv, Chen, Gong, Jianwei, Xi, Junqiang, Cao, Dongpu

    Published 2020
    “…However, traditional offline learning methods lack the ability to adapt to individual driving behavior. …”
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    Journal Article
  3. 83

    Effects of problem-based learning on EFL learning: a systematic review by Guo, Qian, Jamil, Halimah, Ismail, Lilliati, Luo, Shujie, Sun, Zhubin

    Published 2024
    “…Problem-based learning (PBL) is an innovative pedagogical approach that facilitates students’ self-regulated learning, thereby improving their English proficiency. …”
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    Article
  4. 84

    Graph representation learning by Zhang, Xinyi

    Published 2022
    “…Besides different techniques used in graph representation learning, according to the fineness of the objects for embedding, the graph representation learning methods can be mainly divided into node-level, edge-level, and graph-level representation learning methods. …”
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    Thesis-Doctor of Philosophy
  5. 85

    Librarian class attendance : methods, outcomes and opportunities by Cmor, Dianne, Marshall, Victoria.

    Published 2013
    “…This paper describes the setting, methods, and outcomes associated with having librarians attend courses as active members in an evolving learning environment. …”
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    Conference Paper
  6. 86

    Online learning with kernels by Fan, Haijin

    Published 2014
    “…Kernel methods are popular nonparametric modeling tools in machine learning. …”
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    Thesis
  7. 87
  8. 88

    Software development and integration for continual reassessment method by Lim, Siew Kim.

    Published 2008
    “…This is followed by a validation study of the software after a learning process of CRM from concept to detail procedures.…”
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    Thesis
  9. 89

    Towards robust sensing and recognition : from statistical learning to transfer learning by Yang, Jianfei

    Published 2020
    “…To this end, we propose a Siamese deep model with both spatial and temporal feature extractors, which discards the intrinsic noises of CSI data during feature learning. The proposed method also allows user to fine-tune the system using few samples, and thus is user-friendly. …”
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    Thesis-Doctor of Philosophy
  10. 90

    A study on open set recognition methods by Sun, Xin

    Published 2021
    “…To have a shorter running time, we proposed an OSR method, called Discriminative Loss. We combine the proposed loss function with the Softmax loss function, which is used in most Convolutional Neural Networks (CNNs), to force learned features in different classes to be close to different centroids for Gaussian modeling. …”
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    Thesis-Doctor of Philosophy
  11. 91

    Interactive learning on ECG by Zhu, Yu Ting

    Published 2024
    “…This report demonstrates the various interactive learning methods with the implementation of hardware components and software development. …”
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    Final Year Project (FYP)
  12. 92

    Multifidelity Methods for Design of Transition MetalComplexes by Janet, Jon Paul

    Published 2024
    “…Multiple sources of uncertainty that would limit the application of these methods to TM complexes are addressed. Surrogate models are trained to estimate system-specific DFT uncertainty by including data from DFT calculations with different fractions of exact exchange, and a novel uncertainty metric for data-driven discovery is proposed that quantifies the ability of ANNs to generalize to unseen data based on similarity in the learned latent space. …”
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    Thesis
  13. 93

    From public health to AI safety: improving machine learning approaches by collecting, selecting, or reducing the need for high-quality data by Brauner, J

    Published 2024
    “…In the process, we develop novel machine learning (ML) methods to tackle various challenges. …”
    Thesis
  14. 94

    Biometric contrastive learning for data-efficient deep learning from electrocardiographic images by Sangha, V, Khunte, A, Holste, G, Mortazavi, BJ, Wang, Z, Oikonomou, EK, Khera, R

    Published 2024
    “…We compared BCL with ImageNet initialization and general-purpose self-supervised contrastive learning for images (simCLR).</p> <p><strong>Results:&nbsp;</strong>While with 100% labeled training data, BCL performed similarly to other approaches for detecting AF/Gender/LVEF&thinsp;&lt;&thinsp;40% with an AUROC of 0.98/0.90/0.90 in the held-out test sets, it consistently outperformed other methods with smaller proportions of labeled data, reaching equivalent performance at 50% of data. …”
    Conference item
  15. 95

    Visual recognition using deep learning (video captioning using deep learning) by Thong, Jing Lin

    Published 2021
    “…Thereafter, reinforcement learning techniques were used to further optimise the model. …”
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    Final Year Project (FYP)
  16. 96

    The rise of deep learning in cyber security: Bibliometric analysis of deep learning and malware by Nur Khairani, Kamarudin, Ahmad Firdaus, Zainal Abidin, Mohd Zamri, Osman, Alanda, Alde, Erianda, Aldo, Shahreen, Kasim, Mohd Faizal, Ab Razak

    Published 2024
    “…Deep learning is a machine learning technology that allows computational models to learn via experience, mimicking human cognitive processes. …”
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    Article
  17. 97

    The devil is in the details: an evaluation of recent feature encoding methods by Chatfield, K, Lempitsky, V, Vedaldi, A, Zisserman, A

    Published 2011
    “…While several authors have reported very good results on the challenging PASCAL VOC classification data by means of these new techniques, differences in the feature computation and learning algorithms, missing details in the description of the methods, and different tuning of the various components, make it impossible to compare directly these methods and hard to reproduce the results reported. …”
    Conference item
  18. 98

    Robust partial-to-partial point cloud registration in a full range by Pan, Liang, Cai, Zhongang, Liu, Ziwei

    Published 2024
    “…Extensive experiments show that GMCNet outperforms previous state-of-the-art methods for PPR.…”
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    Journal Article
  19. 99

    Image retrieval with deep learning by Tan, Joe Chin Yong

    Published 2017
    “…The query images are distorted with the 3 methods mentioned with different values of sigma, variance and quality. …”
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    Final Year Project (FYP)
  20. 100

    Efficient rare event sampling with unsupervised normalizing flows by Asghar, Solomon, Pei, Qing-Xiang, Volpe, Giorgio, Ni, Ran

    Published 2025
    “…Classical computational methods to sample rare events remain prohibitively inefficient and are bottlenecks for enhanced samplers that require prior data. …”
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    Journal Article