Showing 161 - 180 results of 189 for search '(((("pruning methods") OR ("tuning method"))) OR ("learning method"))', query time: 0.14s Refine Results
  1. 161

    Using AI for music source separation by Lee, Jasline Jie Yu

    Published 2021
    “…In recent years, supervised deep learning methods are known to be state-of-the-art source separation technology and can be categorised as Spectrogram-based and Waveform-based methods. …”
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    Final Year Project (FYP)
  2. 162

    Feature selection for demand forecasting incorporating external covariates by Mantri, Raghav

    Published 2021
    “…We utilise machine learning methods for this purpose and perform feature selection to use only relevant features. …”
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    Final Year Project (FYP)
  3. 163

    Crowd-based people detection using deep learning by Chen, Lei

    Published 2022
    “…This project first reviewed an extensive list of literature related to object detection based on handcraft and deep learning methods. Then, two state of art neural networks were introduced (EfficientDet and YOLOv5), and through further analysis, I analyzed the components and the thesis and the subsequent source codes, deduced the complete network structure, and explained the specific implementation process of the critical parts. …”
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    Thesis-Master by Coursework
  4. 164

    Deep learning for communication signal classification – part A by Wang, Chien Wei

    Published 2023
    “…Deep Learning methods have seen significant success in a variety of applications in recent years. …”
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    Final Year Project (FYP)
  5. 165

    Sensor fusion for object detection under adverse weather by Soh, Brandon Jian Zheng

    Published 2023
    “…In recent years, there has been a rise in the use of deep learning methods relying on LiDARs and Radars, given their long history of achieving state of art performance in different types of applications. …”
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    Final Year Project (FYP)
  6. 166

    Investigation on effective solutions against insider attacks by Ang, Jun Hao

    Published 2018
    “…This report investigates the effectiveness of dimensionality reduction techniques in reducing this high demand needed by the machine learning methods used for insider threat detection. The dimensionality reduction techniques discussed in this report are feature selection methods i.e. …”
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    Final Year Project (FYP)
  7. 167

    Machine Learning Prediction of Treatment Response to Inhaled Corticosteroids in Asthma by Ong, Mei-Sing, Sordillo, Joanne E., Dahlin, Amber, McGeachie, Michael, Tantisira, Kelan, Wang, Alberta L., Lasky-Su, Jessica, Brilliant, Murray, Kitchner, Terrie, Roden, Dan M., Weiss, Scott T., Wu, Ann Chen

    Published 2024
    “…Conclusions: An accurate risk prediction of ICS response can be obtained using machine learning methods, with the potential to inform personalized treatment decisions. …”
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    Article
  8. 168

    Accelerating Urban Building Energy Modeling by Le Hong, Zoe, Wolk, Samuel

    Published 2024
    “…Identifying machine learning methods as a viable approach, we implement convolutional neural networks (CNNs) which embed timeseries from hourly weather data and building schedules; the embeddings are then combined with static building characteristics and projected to monthly heating and cooling loads. …”
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    Thesis
  9. 169

    Camera domain transfer for video-based person re-identification by Ding, Bangjie

    Published 2022
    “…Besides, feature learning based on deep learning methods is prone to overfitting on the relatively small scale video dataset. …”
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    Thesis-Master by Coursework
  10. 170

    Optimising public transit using big data and machine learning by Lee, Kelvin

    Published 2024
    “…Despite decades of research on optimisation of public transit, recent advances in big data collection and machine learning methods have created new possibilities for further optimisation. …”
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    Thesis-Doctor of Philosophy
  11. 171

    Outlier detection by Li, Shukai

    Published 2013
    “…Subsequently, a set of largely violated labeling vectors are combined via multiple kernel learning methods to robustly detect the outliers. To further enhance the efficacy of our outlier detector, we also explore the use of the Maximum Volume Criterion to measure the quality of separation between the outliers and the normal patterns. …”
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    Thesis-Doctor of Philosophy
  12. 172

    Self-supervised Self2Self denoising strategy for OCT speckle reduction with a single noisy image by Ge, Chenkun, Yu, Xiaojun, Yuan, Miao, Fan, Zeming, Chen, Jinna, Shum, Perry Ping, Liu, Linbo

    Published 2024
    “…Results compared with those of the existing methods demonstrate that S2Snet not only outperforms those existing self-supervised deep learning methods but also achieves better performances than those non-deep learning ones in different cases. …”
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    Journal Article
  13. 173

    Memory and fluctuations in chemical dynamics by Farahvash, Ardavan

    Published 2024
    “…I discuss how the strategic application of machine learning methods can drastically reduce the number of electronic structure calculations needed to produce a complete exciton trajectory. …”
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    Thesis
  14. 174

    Semantic segmentation with less annotation efforts by Zhang, Tianyi

    Published 2020
    “…To alleviate the content misalignment problem, two approaches are proposed in this thesis to regularize adversarial learning methods: the first is to embed the global structure knowledge into the feature-level adversarial learning step. …”
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    Thesis-Doctor of Philosophy
  15. 175

    The analysis of teaching quality evaluation for the college sports dance by Convolutional Neural Network model and Deep Learning by Guo, Shuqing, Yang, Xiaoming, Farizan, Noor Hamzani, Samsudin, Shamsulariffin

    Published 2024
    “…This study aims to comprehensively analyze and evaluate the quality of college physical dance education using Convolutional Neural Network (CNN) models and deep learning methods. The study introduces a teaching quality evaluation (TQE) model based on one-dimensional CNN, addressing issues such as subjectivity and inconsistent evaluation criteria in traditional assessment methods. …”
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    Article
  16. 176

    Predicting drivers’ route trajectories in last-mile delivery using a pair-wise attention-based pointer neural network by Mo, Baichuan, Wang, Qingyi, Guo, Xiaotong, Winkenbach, Matthias, Zhao, Jinhua

    Published 2024
    “…Results from an extensive case study on real operational data from Amazon’s last-mile delivery operations in the US show that our proposed method can significantly outperform traditional optimization-based approaches and other machine learning methods (such as the Long Short-Term Memory encoder–decoder and the original pointer network) in finding stop sequences that are closer to high-quality routes executed by experienced drivers in the field. …”
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    Article
  17. 177

    15.665B Power and Negotiation, Fall 2002 by Williams, Michele

    Published 2002
    “…You will learn and practice the technical skills and analytic frameworks that are necessary to negotiate successfully with peers from other top business schools, and you will learn methods for developing the powerful social capital you will need to rise in the executive ranks of any organization. …”
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    Learning Object
  18. 178

    Computational Approaches for Understanding and Redesigning Enzyme Catalysis by Karvelis, Elijah

    Published 2025
    “…The approach combined statistical mechanical path sampling algorithms and machine learning methods to identify the structural characteristics of enzyme-substrate complexes primed for successful conversion of substrate to product, which were then energetically stabilized by mutating KARI. …”
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    Thesis
  19. 179

    Transforming kernel-based learners to incorporate domain knowledge from climate science by Bouabid, S

    Published 2024
    “…<p>In the face of persistent modelling and observational challenges in climate science, which hinder our understanding of the climate system, statistical machine learning has emerged as a potential ally in recent years. Modern machine learning methods promise to leverage the vast volumes of data from climate model simulations, satellite imagery, or in-situ measurements to advance our understanding of the climate system and, thereby, our ability to anticipate the adverse consequences of climate change. …”
    Thesis
  20. 180

    Building occupant sensing : occupancy prediction and behavior recognition by Zhu, Qingchang

    Published 2018
    “…To achieve these goals in smart buildings, it is necessary to study the problem of occupant sensing by leveraging machine learning methods to understand occupants based on sensor signals. …”
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    Thesis