Search alternatives:
selection algorithm » detection algorithm (Expand Search), detection algorithms (Expand Search)
based optimization » whale optimization (Expand Search)
sample selection » sample collection (Expand Search)
binary data » primary data (Expand Search), dietary data (Expand Search)
data sample » data samples (Expand Search)
binary wave » binary image (Expand Search)
wave based » made based (Expand Search), game based (Expand Search), rate based (Expand Search)
selection algorithm » detection algorithm (Expand Search), detection algorithms (Expand Search)
based optimization » whale optimization (Expand Search)
sample selection » sample collection (Expand Search)
binary data » primary data (Expand Search), dietary data (Expand Search)
data sample » data samples (Expand Search)
binary wave » binary image (Expand Search)
wave based » made based (Expand Search), game based (Expand Search), rate based (Expand Search)
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Modeling Pregnancy Outcomes Through Sequentially Nested Regression Models
Published 2022“…Our approach explicitly bridges the connections across nested outcomes through computationally easy algorithms and enjoys theoretical guarantee of estimation and variable selection. …”
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An Extension of the Unified Skew-Normal Family of Distributions and its Application to Bayesian Binary Regression
Published 2024“…We discuss in detail the popular logit case, and we show that, when a logistic regression model is combined with a Gaussian prior, posterior summaries such as cumulants and normalizing constants can easily be obtained through the use of an importance sampling approach, opening the way to straightforward variable selection procedures. …”
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Data_Sheet_1_Alzheimer’s Disease Diagnosis and Biomarker Analysis Using Resting-State Functional MRI Functional Brain Network With Multi-Measures Features and Hippocampal Subfield...
Published 2022“…Finally, we implemented and compared the different feature selection algorithms to integrate the structural features, brain networks, and voxel features to optimize the diagnostic identifications of AD using support vector machine (SVM) classifiers. …”