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Methodology for Estimating the Cost of Construction Equipment Based on the Analysis of Important Characteristics Using Machine Learning Methods
Published 2023-01-01“…The study built and analyzed models using machine learning methods (linear and polynomial regression, decision trees, random forest, support vector machine, and neural network). …”
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102
Improving fluoroprobe sensor performance through machine learning
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103
Fault Detection in Photovoltaic Systems Using a Machine Learning Approach
Published 2025-01-01“…The proposed fault detection solutions rely on analyzing different algorithms, including Support Vector Machine, Artificial Neural Network, Random Forest, Decision Tree, and Logistic Regression. …”
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104
Hybrid Model for 6G Network Traffic Prediction and Wireless Resource Optimization
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105
Data Mining Classification Techniques for Diabetes Prediction
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106
Comparative Analysis of Diabetes Prediction Models Using the Pima Indian Diabetes Database
Published 2025-01-01“…The K-means model operates by grouping data points into separate clusters according to their characteristics, achieving an accuracy of 90.04% in diabetes prediction. In comparison, the random forest model, which builds multiple decision trees (DT) to do their predictions, demonstrates superior performance over several widely used algorithms such as K-Nearest Neighbours (KNN), Logistic Regression (LR), DT, Support Vector Machines (SVM), and Gradient Boosting (GB). …”
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Shape Penalized Decision Forests for Imbalanced Data Classification
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110
Acoustic-based models to assess herd-level calves' emotional state: A machine learning approach
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Eco-Driving Level Evaluation Model for Electric Buses Entering and Leaving Stops
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113
Hierarchical Classification of Variable Stars Using Deep Convolutional Neural Networks
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114
Neoantigen prioritization based on antigen processing and presentation
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115
UAV-Multispectral Based Maize Lodging Stress Assessment with Machine and Deep Learning Methods
Published 2024-12-01“…The results indicate that the Random Forest (RF) model outperforms the other four ML algorithms, achieving an overall accuracy (OA) of 89.29% and a Kappa coefficient of 0.8852. …”
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116
Hyperspectral estimation of chlorophyll density in winter wheat using fractional-order derivative combined with machine learning
Published 2025-01-01“…Hyperspectral monitoring models for winter wheat ChD were constructed using 8 machine learning algorithms, including partial least squares regression, support vector regression, multi-layer perceptron regression, random forest regression, extra-trees regression (ETsR), decision tree regression, K-nearest neighbors regression, and gaussian process regression, based on the full spectrum band and the band selected by competitive adaptive reweighted sampling (CARS). …”
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AI-powered IoT and UAV systems for real-time detection and prevention of illegal logging
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119
Development and Validation of DIANA (Diabetes Novel Subgroup Assessment tool): A web-based precision medicine tool to determine type 2 diabetes endotype membership and predict indi...
Published 2025-08-01“…Its performance was compared with an algorithm determined based on conditional pre-determined cut-offs and weights for each clinical feature [age at diagnosis, BMI, waist, HbA1c, Serum Triglycerides, HDL-Cholesterol, (C-peptide fasting, C-peptide stimulated) - optional. …”
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