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MoLPre: A Machine Learning Model to Predict Metastasis of cT1 Solid Lung Cancer
Published 2025-04-01“…Furthermore, we embedded this model in a web application called MoLPre (https://molpre.cqmu.edu.cn/), a user‐friendly tool assisting in the metastasis prediction of cT1 solid lung cancer.…”
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Development and validation of an explainable machine learning model for predicting osteoporosis in patients with type 2 diabetes mellitus
Published 2025-08-01“…Eight supervised ML algorithms were applied to construct predictive models. Model performance was evaluated based on the area under the receiver operating characteristic curve (AUC), calibration plots, decision curve analysis (DCA), accuracy, sensitivity, specificity, and F1 score. …”
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Development of a predictive model for systemic lupus erythematosus incidence risk based on environmental exposure factors
Published 2024-11-01“…Leave-one-out cross-validation confirmed that the ForestMDG model had the best accuracy (0.8338). Finally, we developed a dynamic nomogram for practical use, which is accessible via the following link: https://yingzhang99321.shinyapps.io/dynnomapp/.Conclusion We created a user-friendly dynamic nomogram for predicting the relative risk of SLE onset based on occupational and living environmental exposures.Trial registration number ChiCTR2000038187.…”
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Development of a Predictive Model for Hepatitis B Virus (HBV) Status Using Gender and Serum Biomarkers
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Clinical characteristics, outcomes, and predictive modeling of patients diagnosed with immune checkpoint inhibitor therapy-related pneumonitis
Published 2025-05-01“…The grading of pneumonitis was defined in accordance with ASCO guidelines (Schneider et al. in J Clin Oncol 39(36):4073–4126, 2021. https://doi.org/10.1200/JCO.21.01440 ). Predictive modeling was performed using gradient boosting machine learning technology, XGBoost (Chen in 1(4):1, 2015), to conduct binary classification and model reverse engineering using Shapley statistics (Lundberg and Lee in Adv Neural Inf Process Syst 30, 2017). …”
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Machine learning models for accurately predicting properties of CsPbCl3 Perovskite quantum dots
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A multi-task learning model for global soil moisture prediction based on adaptive weight allocation
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A Hybrid Deep Learning Model Based on FFT-STL Decomposition for Ocean Wave Height Prediction
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rbpTransformer: A novel deep learning model for prediction of piRNA and mRNA bindings.
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Predictive Modeling of Acute Respiratory Distress Syndrome Using Machine Learning: Systematic Review and Meta-Analysis
Published 2025-05-01“…While machine learning (ML) models are increasingly being used for ARDS prediction, there is a lack of consensus on the most effective model or methodology. …”
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