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"riveting methods" » "driven methods" (Expand Search), "existing methods" (Expand Search), "freezing methods" (Expand Search)
"learning method" » "learning methods" (Expand Search)
"pruning methods" » "tuning method" (Expand Search), "learning methods" (Expand Search), "freezing methods" (Expand Search)
"drying methods" » "learning methods" (Expand Search)
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121
The technological-industrial complex and education : navigating algorithms, datafication, and artificial intelligence in comparative and international education /
Published 2024“…The advent of advanced technologies, particularly AI, has been a game changer for research, teaching, and learning methods. It is within this context and at the intersection of deglobalization (and the retreat towards regionalization) and the rise of the fourth industrial revolution -- that blends the biological, physical, and cyber-physical together -- that this project seeks to describe the benefits and consequences of datafication and AI for the field of CIE…”
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122
Using AI / machine learning to solve real world problems
Published 2021“…With the development of technology, it is common to see machine learning methods used and adopted to help solve real-world problems of both individuals and well as large corporations. …”
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Final Year Project (FYP) -
123
Cross-modal retrieval: a review of methodologies, datasets, and future perspectives
Published 2024“…Currently, the most popular deep learning methods have achieved remarkable results in the field of data processing and graphics. …”
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Article -
124
Microencapsulation of ciplukan (Physalis angulata L.) extract as food ingredients: Effect of water ratio and maltodextrin concentration variables on product characteristics
Published 2023“…The present work evaluated the characteristics of ciplukan (Physalis angulata L.) microcapsule extracts prepared by spray drying method. Different water ratios namely X1 (1:2), X2 (1:5), and X3 (1:10), and maltodextrin concentrations namely Y1 (5%) and Y2 (10%) were applied in a spray drying system to produce microcapsule extracts. …”
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125
Investigation of the sequential accelerator on the perceptron for pattern recognition
Published 2013“…Machine Learning methods have been widely used in recent years in many areas, such as object recognition, autonomous vehicle, recovery rate of symptoms and stock prediction. …”
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Thesis -
126
An Intelligent Cooperative Control Architecture
Published 2009“…This paper presents an extension of existing cooperative control algorithms that have been developed for multi-UAV applications to utilize real-time observations and/or performance metric(s) in conjunction with learning methods to generate a more intelligent planner response. …”
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Working Paper -
127
Constrained neuro fuzzy inference methodology for explainable personalised modelling with applications on gene expression data
Published 2023“…Thus far, most machine learning methods applied to gene expression datasets, including deep neural networks, lack personalised interpretability. …”
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Journal Article -
128
Deep Reinforcement Learning in complex environments
Published 2021“…The presence of multiple agents breaks some of the key assumptions that provide necessary stability to standard learning methods, creating unique and interesting problems. …”
Thesis -
129
Measuring the predictability of life outcomes with a scientific mass collaboration
Published 2021“…Despite using a rich dataset and applying machine-learning methods optimized for prediction, the best predictions were not very accurate and were only slightly better than those from a simple benchmark model. …”
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Article -
130
Enhanced extreme learning machines for image classification
Published 2019“…Among numerous machine learning methods, we choose the Extreme Learning Machine (ELM) for our image classification applications. …”
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Thesis -
131
Precious metal price prediction using deep neural networks
Published 2021“…Keywords: gold price prediction, deep learning methods, regression models, the LSTM network, the Bi-LSTM model, multiple factors…”
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Thesis-Master by Coursework -
132
QR-code based real-time interactive learning in iOS
Published 2019“…The final year project titled “QR-Code Based Real-Time Interactive Learning in iOS” aims to develop a mobile application for Apple iOS Devices (iPhone, iPad) to enhance the learning methods, in-class participation, engagement and interaction between the lecturer and the students. …”
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Final Year Project (FYP) -
133
Output-weighted and relative entropy loss functions for deep learning precursors of extreme events
Published 2024“…Such problems present a challenging task for data-driven modelling, with many naive machine learning methods failing to predict or accurately quantify such events. …”
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Article -
134
Detecting Human Memory Processes via Bio-Signals
Published 2024“…Using this data, we propose multi-modal, machine learning methods to predict and evaluate whether a user is in a cognitive state of learning, recognition, or recall. …”
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Thesis -
135
Estimation of diaphragm wall deflections for deep braced excavation in anisotropic clays using ensemble learning
Published 2021“…Surrogate models were developed via ensemble learning methods (ELMs), including the eXtreme Gradient Boosting (XGBoost), and Random Forest Regression (RFR) to predict the maximum lateral wall deformation (δhmax). …”
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Journal Article -
136
Image artefact removal using deep learning
Published 2022“…This report implements variations of the deep learning methods, namely a combination of the AR CNN and DnCNN in the form of a Residual AR CNN, a GAN which uses PatchGAN for its discriminator and a Residual GAN which uses residual learning. …”
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Final Year Project (FYP) -
137
Applications of deep learning to neurodevelopment in pediatric imaging: achievements and challenges
Published 2023“…We first introduce the commonly used deep learning methods and architectures in neuroimaging, such as convolutional neural networks, auto-encoders, and generative adversarial networks. …”
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Journal Article -
138
Host genetics maps to behaviour and brain structure in developmental mice
Published 2025“…The influence of genetics, sex, and early life stress on behaviour and neuroanatomy was determined using traditional statistical and machine learning methods. Analytical results demonstrated that neuroanatomical diversity was primarily associated with genotype whereas behavioural phenotypic diversity was observed to be more susceptible to gene-environment variation. …”
Journal article -
139
Comparison of different binary classification models on radiomic features
Published 2021“…By applying different machine learning methods to the abundance of data provided by radiomic features, it will assist in carrying out cancer detection, prognosis as well as the prediction of treatment response. …”
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Final Year Project (FYP) -
140
Machine learning for anomaly detection on intelligent transportation time series data
Published 2022“…Experimental results have shown that the proposed algorithm performs better than several other machine learning methods.…”
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Thesis-Master by Coursework