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481
Mortality impact, risks, and benefits of general population screening for ovarian cancer: the UKCTOCS randomised controlled trial
Published 2023-05-01“…Screening itself did not cause anxiety unless more intense repeat testing was required following abnormal screens. …”
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482
Molecular characterization and prognostic modeling associated with M2-like tumor-associated macrophages in breast cancer: revealing the immunosuppressive role of DLG3
Published 2025-08-01“…Consensus clustering analysis identified three molecular subtypes with distinct clinical features, and we explored potential differences in genomic mutations, pathway enrichment, and immune infiltration in patients between subtypes. Machine learning algorithms were used to screen key genes and construct M2-like macrophage-associated prognostic models. …”
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483
A machine learning algorithm to increase COVID-19 inpatient diagnostic capacity.
Published 2020-01-01“…The algorithm was based on basic demographic and laboratory features to serve as a screening tool at hospitals where testing is scarce or unavailable. …”
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484
Comparative analysis of machine learning models for malaria detection using validated synthetic data: a cost-sensitive approach with clinical domain knowledge integration
Published 2025-07-01“…Machine learning offers promising solutions for automated detection, but systematic algorithm comparison using clinically validated data remains limited. …”
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485
Rapid screening and optimization of CO2 enhanced oil recovery operations in unconventional reservoirs: A case study
Published 2025-04-01“…Based on the results of model interpretability, the genetic algorithm (GA) was coupled with RF (RF-GA model) to optimize the CO2-EOR process. …”
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486
Leveraging ECG images for predicting ejection fraction using machine learning algorithms
Published 2025-05-01“…Conclusions: Actual images of ECGs with simple pre-processing and model architecture can be used as a reliable tool to screen for LVD. …”
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487
Development and evaluation of a mobile-optimized daily self-rating depression screening app: A preliminary study.
Published 2018-01-01“…Therefore, the K-CESD-R Mobile app using algorithm (B) could be a more potential candidate for a depression screening tool than the K-CESD-R Mobile app using algorithm (A).…”
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488
Plasma proteomics-based risk scores for psoriasis prediction: a novel approach to early diagnosis
Published 2025-07-01Get full text
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489
A differential diagnostic model based on immunological evaluation and routine laboratory tests: distinguishing multiple myeloma from other disorders with aberrant immunoglobulin el...
Published 2025-08-01“…A discriminative diagnostic model was developed using a multivariate logistic regression algorithm. …”
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490
Exploration and comparison of the effectiveness of swarm intelligence algorithm in early identification of cardiovascular disease
Published 2025-02-01“…The results of this study show that swarm intelligence algorithms can effectively screen key and informative feature sets, significantly improve model classification accuracy, and provide strong support for the early diagnosis of cardiovascular diseases.…”
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491
Construction of an oligometastatic prediction model for nasopharyngeal carcinoma patients based on pathomics features and dynamic multi-swarm particle swarm optimization support ve...
Published 2025-06-01“…A demo of the DMS-PSO-SVM modeling algorithm code used in this study can be found on Github (https://github.com/Edward-E-S-Wang/DMS-PSO-SVM).…”
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492
Advancing Diabetic Retinopathy Screening: A Systematic Review of Artificial Intelligence and Optical Coherence Tomography Angiography Innovations
Published 2025-03-01“…In comparison to conventional ML techniques, our results indicated that DL algorithms significantly improve the accuracy, sensitivity, and specificity of DR screening. …”
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493
The role of hypoxia-senescence co-related molecular subtypes and prognostic characteristics in hepatocellular carcinoma
Published 2025-04-01“…SVM algorithm was used to classify HCC patients based on HSCRGs. …”
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494
Machine learning based screening of biomarkers associated with cell death and immunosuppression of multiple life stages sepsis populations
Published 2025-08-01“…Nine machine learning algorithms (Logistic Regression LR, Decision Tree DT, Gradient Boosting Machine GBM, K-Nearest Neighbors KNN, LASSO, Principal Component Analysis PCA, Random Forest RF, Support Vector Machine SVM, and XGBoost) were applied to training and testing datasets with 10-fold cross-validation to select three optimized algorithm models. …”
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495
Non-Invasive Detection of Breast Cancer by Low-Coverage Whole-Genome Sequencing from Plasma
Published 2023-07-01“…Our approach adopted principal component analysis and a generalized linear model algorithm to distinguish between breast cancer and normal samples. …”
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496
Multimodal data integration with machine learning for predicting PARP inhibitor efficacy and prognosis in ovarian cancer
Published 2025-06-01“…Patient-specific efficacy and prognosis prediction models were then constructed using various machine learning algorithms.ResultsTotal bile acids (TBAs) and CA-199 present as an independent risk factor in Cox multivariate analysis for primary and recurrent ovarian cancer patients respectively (P < 0.05). …”
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497
Adaptive Estimation Algorithm for Photoplethysmographic Heart Rate Based on Finite State Machine
Published 2024-12-01“…The results of the experiment show that compared with other dominant algorithms, the proposed algorithm estimates heart rate with a smaller mean absolute error and can extract heart rate more effectively.…”
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498
Clinical efficacy of DSA-based features in predicting outcomes of acupuncture intervention on upper limb dysfunction following ischemic stroke
Published 2024-11-01“…We applied three deep-learning algorithms (YOLOX, FasterRCNN, and TOOD) to develop the object detection model. …”
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499
Development of a PANoptosis-related LncRNAs for prognosis predicting and immune infiltration characterization of gastric Cancer
Published 2025-03-01“…PANoptosis-related genes were obtained from molecular characteristic databases, and PANlncRNAs were screened through Pearson correlation analysis. Based on this, PANlncRNAs were subjected to univariate Cox regression analysis using the least absolute shrinkage and selection operator (LASSO) algorithm to obtain lncRNA associated with survival outcomes, which were subsequently used to calculate survival scores and to construct signatures. …”
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500
Regional Brain Aging Disparity Index: Region-Specific Brain Aging State Index for Neurodegenerative Diseases and Chronic Disease Specificity
Published 2025-06-01“…This study proposes a novel brain-region-level aging assessment paradigm based on Shapley value interpretation, aiming to overcome the interpretability limitations of traditional brain age prediction models. Although deep-learning-based brain age prediction models using neuroimaging data have become crucial tools for evaluating abnormal brain aging, their unidimensional brain age–chronological age discrepancy metric fails to characterize the regional heterogeneity of brain aging. …”
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