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Revolutionizing pharmacology: AI-powered approaches in molecular modeling and ADMET prediction
Published 2025-12-01Get full text
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RGB and RGNIR image dataset for machine learning in plastic waste detectionZENODO
Published 2025-06-01Get full text
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In-Memory Versus Disk-Based Computing with Random Forest for Stock Analysis: A Comparative Study
Published 2025-08-01Get full text
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Rethinking the Paradigm of Using Ps for Diagnosing Compartment Syndrome
Published 2025-06-01“…The combinations were tested for predictive power using 2 machine learning algorithms. Results:. Pressure on palpation was the strongest clinical predictor of ACS while pain was the weakest. …”
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Machine learning-based prediction method for open-pit mining truck speed distribution in manned operation
Published 2025-06-01Get full text
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SECONDGRAM: Self-conditioned diffusion with gradient manipulation for longitudinal MRI imputation
Published 2025-05-01Get full text
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Construction and demolition waste material library based on vision systems dataZenodo
Published 2025-10-01Get full text
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Prediction of Flexural Ultimate Capacity for Reinforced UHPC Beams Using Ensemble Learning and SHAP Method
Published 2025-03-01Get full text
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Machine Learning and Interpretability Study for Predicting 30-Day Unplanned Readmission Risk of Schizophrenia: A Retrospective Study
Published 2025-07-01“…The model was constructed using five ML algorithms: logistic regression (LR), decision tree (DT), random forest (RF), support vector machine (SVM), and extreme gradient boosting (XGB). …”
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2519
Interpretable machine learning for predicting isolated basal septal hypertrophy.
Published 2025-01-01“…The data were divided into training and test sets in a 7:3 ratio. Five machine learning algorithms -XGBoost, Random Forest(RF), Dicision tree(DT), K-Nearest Neighbor classification(KNN), and Naive Bayes(NB) were applied to construct the models, combined with logistic regression (LR) based on Lasso regression. …”
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