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Automated Detection of Reduced Ejection Fraction Using an ECG-Enabled Digital Stethoscope
Published 2025-03-01“…Recently, electrocardiogram-based algorithms have shown promise in detecting ALVSD. Objectives: The authors developed and validated a convolutional neural network (CNN) model using single-lead electrocardiogram and phonocardiogram inputs captured by a digital stethoscope to assess its utility in detecting individuals with actionably low ejection fractions (EF) in a large cohort of patients. …”
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1222
Multi-Target Mechanism of Compound Qingdai Capsule for Treatment of Psoriasis: Multi-Omics Analysis and Experimental Verification
Published 2025-06-01“…CQC ingredients-targets network was constructed using these ingredients and their targets. Screening of CQC anti-psoriasis core targets using machine learning algorithm. …”
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1223
Unveiling diagnostic biomarkers and therapeutic targets in lung adenocarcinoma using bioinformatics and experimental validation
Published 2025-07-01“…In addition, a machine learning model constructed based on Stepglm[backward] with the random forest algorithm achieved the highest C-index (0.999) and screened eight core genes, among which ST14 was noted for its excellent predictive ability. …”
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1224
Shared and Distinctive Inflammation-Related Protein Profiling in Idiopathic Inflammatory Myopathy with/without Anti-MDA5 Autoantibodies
Published 2025-05-01“…The least absolute shrinkage and selection operator (Lasso) regression algorithm of machine learning was used to screen biomarkers related to anti-MDA5+ DM.Results: Compared with HCs, 36 inflammation-related proteins were identified as DEPs. …”
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1225
Exhaled volatile organic compounds as novel biomarkers for early detection of COPD, asthma, and PRISm: a cross-sectional study
Published 2025-05-01“…Subsequently, classification models were established by machine learning algorithms, based on these VOC markers along with baseline characteristics. …”
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1226
Cell death-related signature genes: risk-predictive biomarkers and potential therapeutic targets in severe sepsis
Published 2025-05-01“…Further combining cell death-related gene screening and four machine learning algorithms (including LASSO-logistic, Gradient Boosting Machine, Random Forest and xGBoost), nine SeALAR-characterized cell death genes (SeDGs) were screened and a risk prediction model based on SeDGs was constructed that demonstrated good prediction performance. …”
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1227
Opening closed doors: using machine learning to explore factors associated with marital sexual violence in a cross-sectional study from India
Published 2021-12-01“…Analyses included iterative thematic analysis (L-1 regularised regression followed by iterative qualitative thematic coding of L-2 regularised regression results) and neural network modelling.Outcome measure Participants reported their experiences of sexual violence perpetrated by their current (or most recent) husband in the previous 12 months. …”
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1228
Improving the accuracy of remotely sensed TSS and turbidity using quality enhanced water reflectance by a statistical resampling technique
Published 2025-08-01“…The statistical resampling approach based on GMM was applied to Sentinel-2 (S2) imagery to produce input to Machine Learning (ML) algorithms to retrieve the TSS and turbidity for target river sections. …”
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1229
Characterization and stratification of risk factors of stroke in people living with HIV: A theory-informed systematic review
Published 2025-05-01“…Predictive and preventative models should target factors with a high causality index and low investigative costs. …”
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1230
Forward first: Joystick interactions of toddlers during digital play.
Published 2024-01-01“…These findings inform the design of assistive algorithms for joystick-enabled computer play and developmentally appropriate technologies for toddlers.…”
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1231
A Deep Learning Method for Pneumoconiosis Staging on Chest X-Ray Under Label Noise
Published 2025-01-01“…The ambiguous properties of small opacities in pneumoconiosis chest radiographs can cause diagnostic drift, which in turn leads to the presence of noisy labels in the datasets collected from hospitals that can negatively impact the generalization of deep learning models. To tackle this issue, we propose COFINE, a novel coarse-to-fine noise-tolerant deep learning method for the staging of pneumoconiosis chest radiographs, which comprises two procedures: coarse screening and fine learning. …”
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1232
Integrating digital and narrative medicine in modern healthcare: a systematic review
Published 2025-12-01“…The increasing integration of digital technologies in healthcare, such as electronic health records, telemedicine, and diagnostic algorithms, improved efficiency but raised concerns about the depersonalization of care. …”
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1233
Mechanical positioning of multiple nuclei in muscle cells.
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1234
Spatial and temporal distribution patterns and factors influencing hepatitis B in China: a geo-epidemiological study
Published 2025-04-01“…Spatial autocorrelation analysis and spatiotemporal scanning were used to analyze the spatiotemporal distribution characteristics. The random forest algorithm was used to screen the potential influencing factors. …”
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1235
Harnessing the potential of human induced pluripotent stem cells, functional assays and machine learning for neurodevelopmental disorders
Published 2025-01-01“…In this review, we compare two-dimensional and three-dimensional hiPSC formats for disease modeling, discuss the applications of functional assays, and offer insights on incorporating ML into hiPSC-based NDD research and drug screening.…”
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1236
Identification and verification of XDH genes in ROS induced oxidative stress response of osteoarthritis based on bioinformatics analysis
Published 2025-08-01“…An artificial neural network model was constructed for the hub genes, and immune analysis was conducted using the ssGSEA algorithm. …”
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1237
Uso de inteligencia artificial para predecir complicaciones en cirugías de columna toracolumbar degenerativa: revisión sistemática
Published 2025-09-01“…Due to heterogeneity in samples, outcomes of interest, and algorithm evaluation metrics, a meta-analysis was not performed. …”
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1238
[Translated article] Use of artificial intelligence to predict complications in degenerative thoracolumbar spine surgery: A systematic review
Published 2025-09-01“…In 5 (41.6%) articles, the effectiveness of artificial intelligence predictive models was compared with conventional techniques. …”
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1239
Exploring pesticide risk in autism via integrative machine learning and network toxicology
Published 2025-06-01“…Each combination of 1–23 targets was used to construct predictive models using eight different machine learning algorithms. …”
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1240
Machine learning-derived prognostic signature integrating programmed cell death and mitochondrial function in renal clear cell carcinoma: identification of PIF1 as a novel target
Published 2025-02-01“…Finally, a novel RCC prognostic marker PIF1 was identified in model genes. The knockdown of PIF1 in vitro inhibited the progression of renal carcinoma cells. …”
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