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Virtual Screening of Conjugated Polymers for Organic Photovoltaic Devices Using Support Vector Machines and Ensemble Learning
Published 2019-01-01“…Additionally, the predictive performance could be further improved by “blending” the results of the SVM and random forest models. The resulting ensemble learning algorithm might open up a new opportunity for more precise, high-throughput virtual screening of conjugated polymers for OPV devices.…”
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542
Analysis of imaging differences between high-resolution CT and digital radiography chest films in pneumoconiosis screening
Published 2025-03-01“…HRCT enables systematic observation of the evolution and progression of pneumoconiosis, providing reliable evidence for diagnosis.ObjectiveTo provide reliable evidences for the early screening of pneumoconiosis, By analyzing the imaging difference between HRCT and DR chestfilms in pneumoconiosis screening.MethodsSix casting workers in a casting forging company suspected of early stage of pneumoconiosis through regular occupational health examination screening were recruited , and 64 rows of spiral CT thin layer were scanned and reconstructed by high-resolution bone algorithm. …”
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543
Screening of endoplasmic reticulum stress characteristic genes and immune infiltration manifestations in chronic obstructive pulmonary disease
Published 2024-07-01“…Three machine learning algorithms, LASSO, SVM-RFE, and RF, were used to screen the characteristic genes, and their diagnostic performance was verified and evaluated in the GSE10006. …”
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544
NLP for computational insights into nutritional impacts on colorectal cancer care
Published 2025-06-01“…Colorectal cancer (CRC) is one of the most prominent cancers globally, with its incidence rising among younger adults due to improved screening practices. However, existing algorithms for CRC prediction are frequently trained on datasets that primarily reflect older persons, thus limiting their usefulness in more diverse populations. …”
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545
Review of Josh Simons’ Book "Algorithms for the People – Democracy in the Age of AI"
Published 2025-05-01“… Increasingly, artificial intelligence, algorithms and machine learning models guide what Internet users see and read on their screens. …”
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546
Changed definition of disease and broader screening criteria had little impact on prevalence of gestational diabetes mellitus
Published 2022-06-01“…Conclusions The introduction of broader screening criteria and a more liberal case definition increased the population eligible for GDM screening by 45%. …”
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547
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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548
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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549
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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550
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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551
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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552
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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553
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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554
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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Optimizing diabetic retinopathy detection with electric fish algorithm and bilinear convolutional networks
Published 2025-04-01“…Abstract Diabetic Retinopathy (DR) is a leading cause of vision impairment globally, necessitating regular screenings to prevent its progression to severe stages. …”
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HMCFormer (hierarchical multi-scale convolutional transformer): a hybrid CNN+Transformer network for intelligent VIA screening
Published 2025-08-01“…This will attract more low-income women to volunteer for regular cervical cancer screening. …”
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560
Fault detection algorithm for underground conveyor belt deviation based on improved RT-DETR
Published 2025-03-01“…Three improvements were made to the RT-DETR backbone network: ① To reduce the number of parameters and floating-point operations (FLOPs), FasterNet Block was used to replace the BasicBlock in ResNet34. ② To enhance model accuracy and efficiency, the concept of structural reparameterization was introduced into the FasterNet Block structure. ③ To improve the feature extraction capability of FasterNet Block, an efficient multi-scale attention (EMA) Module was incorporated to capture both global and local feature maps more effectively. …”
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