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"pruning methods" » "drying methods" (Expand Search), "freezing methods" (Expand Search), "thinking methods" (Expand Search)
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"pruning methods" » "drying methods" (Expand Search), "freezing methods" (Expand Search), "thinking methods" (Expand Search)
"sensing method" » "scanning method" (Expand Search)
"tuning method" » "mining method" (Expand Search), "counting method" (Expand Search), "etching method" (Expand Search)
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161
Layer-wise learning framework for deep networks
Published 2024“…The case examples demonstrate a rational compromise regarding layer-wise trainability and precision while validating the applicability of the proposed layer-wise learning method to determine the optimal number of layers for real-world scenarios.…”
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Thesis-Master by Coursework -
162
Design of interactive multimedia courseware in data structures & algorithms - IV
Published 2016“…Online learning has also become a more popular platform than the traditional classroom learning method. Data Structures and Algorithms as one of the key foundations that one should possess before developing software applications or getting in programming related field, is incorporated in this project as an E-Learning courseware. …”
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Final Year Project (FYP) -
163
Generalized RBF feature maps for efficient detection
Published 2010“…Furthermore, we investigate a learning method using l1 regularization to encourage sparsity in the final vector representation, and thus reduce its dimension. …”
Conference item -
164
Compressed sensing: a discrete optimization approach
Published 2024“…When used as a component of a multi-label classification algorithm, our approach achieves greater classification accuracy than benchmark compressed sensing methods. This improved accuracy comes at the cost of an increase in computation time by several orders of magnitude. …”
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Article -
165
A generalized stereotypical trust model
Published 2013“…We then propose a fuzzy semantic decision tree (FSDT) learning method to construct trust stereotypes that generalizes over seller non-nominal attributes by splitting their values in a fuzzy manner, and generalizes over nominal attributes by replacing their specific values with more general terms according to the ontology. …”
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Conference Paper -
166
Joint Feature Learning for Face Recognition
Published 2016“…Unlike many existing face recognition systems, where conventional feature descriptors, such as local binary patterns and Gabor features, are used for face representation, we propose an unsupervised feature learning method to learn hierarchical feature representation. …”
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Journal Article -
167
Data-driven approach for task-driven medical image reconstruction and analysis
Published 2020“…Thus, it is necessary to figure out how the different deep learning method work and also important to apply them on different dataset. …”
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Thesis-Master by Coursework -
168
Incremental learning technologies for semantic segmentation
Published 2022“…To solve this problem, an incremental learning method: Combination of Old Prediction and Modified Label (COPML) is developed in this dissertation project. …”
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Thesis-Master by Coursework -
169
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 -
170
Interpretable Predictive Models to Understand Risk Factors for Maternal and Fetal Outcomes
Published 2024“…We use an Explainable Boosting Machine (EBM), a high-accuracy glass-box learning method, for the prediction and identification of important risk factors. …”
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Article -
171
Image classification by multimodal subspace learning
Published 2013“…According to the “Patch Alignment” Framework, we developed a new subspace learning method, termed Semi-Supervised Multimodal Subspace Learning (SS-MMSL), in which we can encode different features from different modalities to build a meaningful subspace. …”
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Journal Article -
172
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 -
173
User Profiling Based on Nonlinguistic Audio Data
Published 2021“…Secondly, we propose a gender-assisted multi-task learning method to combat dynamics in human behavior by integrating gender differences and the correlation of personality traits. …”
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Article -
174
E-learning for mobile learning platform
Published 2015“…By studying the way people learn, methods can be created to increase learning potential and efficiency. …”
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Final Year Project (FYP) -
175
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 -
176
Aiding therapy using speech emotion recognition
Published 2021“…We will explore the use of a Convolutional Neural network, a type of Deep Learning method, to train and predict human emotions. …”
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Final Year Project (FYP) -
177
Video surveillance for intelligent transportation system
Published 2019“…Artificial Intelligence (AI) with matching learning method had been widely used in this field in recent years. …”
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Final Year Project (FYP) -
178
Adaptive function modal learning neural networks
Published 2011“…Modal learning method is a neural network learning term that refers to a single neural network which combines with more than one mode of learning. …”
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Thesis -
179
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 -
180
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