Literature DB >> 34145330

Prediction of venous thromboembolism with machine learning techniques in young-middle-aged inpatients.

Hua Liu1, Hua Yuan2, Yongmei Wang3, Weiwei Huang1, Hui Xue4, Xiuying Zhang5.   

Abstract

Accumulating studies appear to suggest that the risk factors for venous thromboembolism (VTE) among young-middle-aged inpatients are different from those among elderly people. Therefore, the current prediction models for VTE are not applicable to young-middle-aged inpatients. The aim of this study was to develop and externally validate a new prediction model for young-middle-aged people using machine learning methods. The clinical data sets linked with 167 inpatients with deep venous thrombosis (DVT) and/or pulmonary embolism (PE) and 406 patients without DVT or PE were compared and analysed with machine learning techniques. Five algorithms, including logistic regression, decision tree, feed-forward neural network, support vector machine, and random forest, were used for training and preparing the models. The support vector machine model had the best performance, with AUC values of 0.806-0.944 for 95% CI, 59% sensitivity and 99% specificity, and an accuracy of 87%. Although different top predictors of adverse outcomes appeared in the different models, life-threatening illness, fibrinogen, RBCs, and PT appeared to be more consistently featured by the different models as top predictors of adverse outcomes. Clinical data sets of young and middle-aged inpatients can be used to accurately predict the risk of VTE with a support vector machine model.

Entities:  

Year:  2021        PMID: 34145330     DOI: 10.1038/s41598-021-92287-9

Source DB:  PubMed          Journal:  Sci Rep        ISSN: 2045-2322            Impact factor:   4.379


  35 in total

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4.  Pulmonary Embolism Hospitalization, Readmission, and Mortality Rates in US Older Adults, 1999-2015.

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Journal:  JAMA       Date:  2019-08-13       Impact factor: 56.272

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Journal:  Thromb Haemost       Date:  2018-02-01       Impact factor: 5.249

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Authors:  John A Heit
Journal:  Nat Rev Cardiol       Date:  2015-06-16       Impact factor: 32.419

8.  Quality of Life 3 and 12 Months Following Acute Pulmonary Embolism: Analysis From a Prospective Multicenter Cohort Study.

Authors:  Luca Valerio; Stefano Barco; Marius Jankowski; Stephan Rosenkranz; Mareike Lankeit; Matthias Held; Felix Gerhardt; Leonhard Bruch; Ralf Ewert; Martin Faehling; Julia Freise; Hossein-Ardeschir Ghofrani; Ekkehard Grünig; Michael Halank; Marius M Hoeper; Frederikus A Klok; Hanno H Leuchte; Eckhard Mayer; F Joachim Meyer; Claus Neurohr; Christian Opitz; Kai-Helge Schmidt; Hans-Jürgen Seyfarth; Franziska Trudzinski; Rolf Wachter; Heinrike Wilkens; Philipp S Wild; Stavros V Konstantinides
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10.  Incidence, risk factors, and thrombotic load of pulmonary embolism in patients hospitalized for COVID-19 infection.

Authors:  Alberto García-Ortega; Grace Oscullo; Pilar Calvillo; Raquel López-Reyes; Raúl Méndez; José Daniel Gómez-Olivas; Amina Bekki; Carles Fonfría; Laura Trilles-Olaso; Enrique Zaldívar; Ana Ferrando; Gabriel Anguera; Andrés Briones-Gómez; Juan Pablo Reig-Mezquida; Laura Feced; Paula González-Jiménez; Soledad Reyes; Carlos F Muñoz-Núñez; Ainhoa Carreres; Ricardo Gil; Carmen Morata; Nuria Toledo-Pons; Luis Martí-Bonmati; Rosario Menéndez; Miguel Ángel Martínez-García
Journal:  J Infect       Date:  2021-01-10       Impact factor: 6.072

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  1 in total

1.  The new SUMPOT to predict postoperative complications using an Artificial Neural Network.

Authors:  Cosimo Chelazzi; Gianluca Villa; Andrea Manno; Viola Ranfagni; Eleonora Gemmi; Stefano Romagnoli
Journal:  Sci Rep       Date:  2021-11-22       Impact factor: 4.379

  1 in total

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