Search Results - Predicting the arrest using Random forest Algorithm
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Authors: et al.
Source: World Journal of Advanced Research and Reviews. 25:498-506
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Authors: et al.
Source: Procedia Computer Science. 2025, Vol. 258, p1123-1130. 8p.
Subject Terms: Coronary artery disease, Random forest algorithms, Decision trees, Heart failure, Cardiac arrest
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Authors: et al.
Source: Acute & Critical Care; Aug2018, Vol. 33 Issue 3, p117-120, 4p
Subject Terms: DEEP learning, CARDIAC arrest, MACHINE learning, ELECTRONIC health records, RANDOM forest algorithms
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Authors:
Source: Advances in Engineering & Intelligence Systems; Sep2025, Vol. 4 Issue 3, p57-70, 14p
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Contributors: Muhammed Cagatay Engin, associate professor doctor
Source: Predicting the Development of Bone Cement Implantation Syndrome in Arthroplasty Operations Using Artificial Intelligence Methods
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Authors:
Source: Proyecto "trIAje": evaluación y optimización Del Triaje telefónico Mediante Modelos de Inteligencia Artificial (IA) Para la detección de Demandas Por patología Tiempo-dependiente en el Centro Coordinador de Urgencias y Emergencias (CCUE).
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Authors: et al.
Source: Medical & Biological Engineering & Computing; Feb2019, Vol. 57 Issue 2, p453-462, 10p, 4 Charts, 4 Graphs
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Authors: et al.
Source: Eastern-European Journal of Enterprise Technologies; 2021, Vol. 113 Issue 7, p59-65, 7p
Subject Terms: FIBER-reinforced concrete, RANDOM forest algorithms, STANDARD deviations, PREDICTION models, STEEL
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Authors: et al.
Source: AIP Conference Proceedings; 2024, Vol. 2971 Issue 1, p1-9, 9p
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Authors: et al.
Source: Mathematics (2227-7390); Jun2022, Vol. 10 Issue 12, p2049-N.PAG, 17p
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Authors: et al.
Source: 2018 Conference on Technologies and Applications of Artificial Intelligence (TAAI). :1-4
Subject Terms: 03 medical and health sciences, 0302 clinical medicine, 3. Good health
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Authors: et al.
Source: Resuscitation Plus, Vol 4, Iss , Pp 100046- (2020)
Subject Terms: Emergency medical services, Prehospital, Cardiac arrest prevention, Early warning score, National Early Warning Score, NEWS, Specialties of internal medicine, RC581-951
File Description: electronic resource
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Authors: et al.
Source: Journal of the American Heart Association: Cardiovascular and Cerebrovascular Disease, Vol 7, Iss 13 (2018)
Subject Terms: artificial intelligence, cardiac arrest, deep learning, machine learning, rapid response system, resuscitation, Diseases of the circulatory (Cardiovascular) system, RC666-701
File Description: electronic resource
Relation: https://doaj.org/toc/2047-9980
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Authors: et al.
Source: Diagnostics (2075-4418); Jul2021, Vol. 11 Issue 7, p1255, 1p
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Authors: et al.
Index Terms: Journal Article
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Authors: et al.
Source: Pharmaceuticals (14248247); Jan2023, Vol. 16 Issue 1, p42, 19p
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Authors: et al.
Source: Cancer Cell International; 6/17/2020, Vol. 20 Issue 1, p1-12, 12p
Subject Terms: HEPATOCELLULAR carcinoma, IMMUNOSTAINING, SUPERVISED learning, RNA sequencing, DIGESTIVE organs
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Authors: et al.
Source: Oncology Letters; Aug2019, Vol. 18 Issue 2, p1597-1606, 10p
Subject Terms: GENE expression, ADENOCARCINOMA, LOG-rank test, PROGNOSIS, RNA sequencing
Company/Entity: PEKING University (Beijing, China)
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Authors: et al.
Source: Journal of Medical Internet Research. Jul2021, Vol. 23 Issue 7, pN.PAG-N.PAG. 1p. 2 Charts.
Subject Terms: *Artificial neural networks, Prediction models, Cardiac arrest, Receiver operating characteristic curves, Random forest algorithms, Medical personnel
Geographic Terms: South Korea
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