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ETHNOS_APP

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Demokratisches Denken bei Gustav Radbruch

Dados Bibliográficos

ID19170246
AutoresMartin D Klein (autor correspondente), Juan M Zambrano Chaves, Andrew L Wentland, Arjun D Desai, Imon Banerjee (0000-0002-3327-8004), Gurkiran Kaur, Ramon Correa, Robert D Boutin, David J Maron (0000-0002-4867-8588), Fátima Rodríguez (0000-0002-5226-0723), Alexander T Sandhu (0000-0003-3208-1143), Daniel Rubin, Akshay S Chaudhari, Bhavik N Patel
Ano2007
Volume13
Fascículo1
Páginas21034-21034
Data de publicação2007-01-01
Open AccessSim
TipoBOOK
EditoraBerliner Wissenschafts-Verlag (PUBLISHER • DE)
DOI10.1038/s41598-023-47895-y
OpenAlexW38030716
IdiomaDE
Citações recebidas2
Referências citadas62

Current risk scores using clinical risk factors for predicting ischemic heart disease (IHD) events-the leading cause of global mortality-have known limitations and may be improved by imaging biomarkers. While body composition (BC) imaging biomarkers derived from abdominopelvic computed tomography (CT) correlate with IHD risk, they are impractical to measure manually. Here, in a retrospective cohort of 8139 contrast-enhanced abdominopelvic CT examinations undergoing up to 5 years of follow-up, we developed multimodal opportunistic risk assessment models for IHD by automatically extracting BC features from abdominal CT images and integrating these with features from each patient's electronic medical record (EMR). Our predictive methods match and, in some cases, outperform clinical risk scores currently used in IHD risk assessment. We provide clinical interpretability of our model using a new method of determining tissue-level contributions from CT along with weightings of EMR features contributing to IHD risk. We conclude that such a multimodal approach, which automatically integrates BC biomarkers and EMR data, can enhance IHD risk assessment and aid primary prevention efforts for IHD. To further promote research, we release the Opportunistic L3 Ischemic heart disease (OL3I) dataset, the first public multimodal dataset for opportunistic CT prediction of IHD

German Social Sciences and History · Philosophy · Philosophy, Science, and History

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  • SciPy 1.0

    Open Access•Pauli Virtanen, Ralf Gommers et al.•Nature Methods•2020

  • The practical implementation of artificial intelligence technologies in medicine

    Open Access•Jianxing He, Sally L Baxter et al.•Nature Medicine•2019

  • Comparing the Areas under Two or More Correlated Receiver Operating Characteristic Curves

    Elizabeth R DeLong, David M Delong et al.•Biometrics•1988

  • The relationship between Precision-Recall and ROC curves

    Open Access•Jesse Davis, Mark Goadrich•Proceedings of the 23rd…•2006

  • U-Net

    Open Access•Olaf Ronneberger, Philipp Fischer et al.•Medical Image Computing and…•2015

  • The Precision-Recall Plot Is More Informative than the ROC Plot When Evaluating Binary Classifiers on Imbalanced Datasets

    Open Access•Takaya Saito, Marc Rehmsmeier et al.•PLoS ONE•2015

  • ImageNet Large Scale Visual Recognition Challenge

    Open Access•Olga Russakovsky, Jia Deng et al.•International Journal of Computer…•2015

  • Prediction of Coronary Heart Disease Using Risk Factor Categories

    Peter W F Wilson, Ralph B D’agostino et al.•Circulation•1998

  • Re-epithelialization and immune cell behaviour in an ex vivo human skin model

    Open Access•Ana Rakita, Nenad Nikolić et al.•Scientific Reports•2020

Obras citantes distintas2
Citações por ano0,22
Intervalo de citações2017 - 2021 (5)
Velocidade de citaçãohistorical
Altamente citadoNão
Tipos de citaçãoNeutras: 1
Ethnos_APP • Projeto Open Source • Licença MIT • Frontend v2.0.0 • Privacidade e Cookies • Documentação da API: api.ethnos.app/docs • Código da API: GitHub • DOI: 10.5281/zenodo.17049435 • Código do Frontend: GitHub • DOI: 10.5281/zenodo.17050053 • cruz.rio.br • Expectantes Misericordiae