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81
Medicine distribution pattern detection in pharmaceutical supply chains: a new Kth-proximity density-distance-based method
Published 2024“…Originality/value: In this research, the machine learning method based on the nearest neighbor has been used for the first time in the design of the supply chain network.…”
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Article -
82
Minimum number of inertial measurement units needed to identify signiicant variations in walk patterns of overweight individuals walking on irregular surfaces
Published 2023“…We then used deep learning method to verify whether the IMU data recorded from the identified body locations could classify walk patterns across the surfaces. …”
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Article -
83
Statistical modeling of fully nonlinear hydrodynamic loads on offshore wind turbine monopile foundations using wave episodes and targeted CFD simulations through active sampling
Published 2024“…The novelty of our framework lies in its efficient construction of the surrogate model, utilizing the Gaussian process regression machine learning technique and a Bayesian active learning method to sequentially sample wave episodes that contribute to accurate predictions of extreme hydrodynamic forces. …”
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Article -
84
Lane detection algorithm for autonomous vehicle using machine learning
Published 2023“…Hence, there is a need to shift from traditional computer vision algorithms to deep learning method in feature extraction. Convolution neural network (CNN) has been the de facto feature extraction module in computer vision. …”
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Final Year Project (FYP) -
85
Reallocation of time between device-measured movement behaviours and risk of incident cardiovascular disease
Published 2021“…</p> <p><strong>Conclusion</strong> Machine-learning methods classified movement behaviours accurately in free-living accelerometer data. …”
Journal article -
86
The Effect Of Blended Learning And critical Thinking On Tertiary EFL Argumentative Writing In China
Published 2024“…With the rapid development of Information and Communications Technology (ICT), the blended learning method is widespread in English-as-a-Foreign-Language (EFL) instruction. …”
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Thesis -
87
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88
Refining learning models in grammatical inference
Published 2008“…We introduce the use of recurrent neural networks (RNNs) and present a pruning learning method to avoid the exponential space costs. …”
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Thesis -
89
Factor modeling for clustering high-dimensional time series
Published 2023“…We propose a new unsupervised learning method for clustering a large number of time series based on a latent factor structure. …”
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Journal Article -
90
Data-efficient modeling for power consumption estimation of quadrotor operations using ensemble learning
Published 2023“…We employed an ensemble learning method, namely stacking, to develop a data-driven model using flight records of three different types of quadrotors. …”
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Journal Article -
91
Robot programming using augmented reality
Published 2014“…The Piecewise Linear Parameterization (PLP) algorithm and a curve learning method based on Bayesian neural networks and reparameterization are proposed. …”
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Thesis -
92
Exploring disease axes as an alternative to distinct clusters for characterizing sepsis heterogeneity
Published 2023“…The top-down transfer learning method (model trained on cohorts with greater severity was transferred to cohorts with lower severity score) had a higher NMI value than the bottom-up approach (median [Q1, Q3]: 0.64 [0.49, 0.78] vs. 0.23 [0.2, 0.31], p < 0.001). …”
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Article -
93
A Non‐Intrusive Machine Learning Framework for Debiasing Long‐Time Coarse Resolution Climate Simulations and Quantifying Rare Events Statistics
Published 2024“…Here, the scope is to formulate a learning method that allows for correction of dynamics and quantification of extreme events with longer return period than the training data. …”
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94
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95
Transfer-recursive-ensemble learning for multi-day COVID-19 prediction in India using recurrent neural networks
Published 2023“…Each of the four models then gives 7-day ahead predictions using the recursive learning method for the Indian test data. The final prediction comes from an ensemble of the predictions of the different models. …”
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Journal Article -
96
Visual event recognition in videos by learning from web data
Published 2013“…Second, we propose a new transfer learning method, referred to as Adaptive Multiple Kernel Learning (A-MKL), in order to 1) fuse the information from multiple pyramid levels and features (i.e., space-time features and static SIFT features) and 2) cope with the considerable variation in feature distributions between videos from two domains (i.e., web video domain and consumer video domain). …”
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Journal Article -
97
Enhanced intrusion detection model based on principal component analysis and variable ensemble machine learning algorithm
Published 2024“…This paper proposes a variable ensemble machine learning method to solve the problem and achieve a low variance model with high accuracy and low false alarm. …”
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Article -
98
Speeding up deep neural network training with decoupled and analytic learning
Published 2021“…A fully decoupled learning method using delayed gradients (FDG) is first proposed which addresses all the three lockings. …”
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Thesis-Doctor of Philosophy -
99
Transferring a deep learning model from healthy subjects to stroke patients in a motor imagery brain-computer interface
Published 2024“…Motor imagery (MI) brain-computer interfaces (BCIs) based on electroencephalogram (EEG) have been developed primarily for stroke rehabilitation, however, due to limited stroke data, current deep learning methods for cross-subject classification rely on healthy data. …”
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Journal Article -
100
High cycle fatigue characterisation and modelling of 316L stainless steel processed by laser powder bed fusion
Published 2020“…Lastly, considering the numerous influencing factors arising from the process and the associated failure behaviours, a neuro-fuzzy-based machine learning method was applied to provide an effective unifying approach for high cycle fatigue life prediction. …”
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Thesis-Doctor of Philosophy