Literature DB >> 25375686

Risk scoring for prediction of acute cardiac complications from imbalanced clinical data.

Nan Liu, Zhi Xiong Koh, Eric Chern-Pin Chua, Licia Mei-Ling Tan, Zhiping Lin, Bilal Mirza, Marcus Eng Hock Ong.   

Abstract

Fast and accurate risk stratification is essential in the emergency department (ED) as it allows clinicians to identify chest pain patients who are at high risk of cardiac complications and require intensive monitoring and early intervention. In this paper, we present a novel intelligent scoring system using heart rate variability, 12-lead electrocardiogram (ECG), and vital signs where a hybrid sampling-based ensemble learning strategy is proposed to handle data imbalance. The experiments were conducted on a dataset consisting of 564 chest pain patients recruited at the ED of a tertiary hospital. The proposed ensemble-based scoring system was compared with established scoring methods such as the modified early warning score and the thrombolysis in myocardial infarction score, and showed its effectiveness in predicting acute cardiac complications within 72 h in terms of the receiver operation characteristic analysis.

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Year:  2014        PMID: 25375686     DOI: 10.1109/JBHI.2014.2303481

Source DB:  PubMed          Journal:  IEEE J Biomed Health Inform        ISSN: 2168-2194            Impact factor:   5.772


  10 in total

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2.  Cardioinformatics: the nexus of bioinformatics and precision cardiology.

Authors:  Bohdan B Khomtchouk; Diem-Trang Tran; Kasra A Vand; Matthew Might; Or Gozani; Themistocles L Assimes
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4.  Developing the BreakThrough Pain Risk Score: an interpretable machine-learning-based risk score to predict breakthrough pain with labour epidural analgesia.

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6.  Heart rate n-variability (HRnV) and its application to risk stratification of chest pain patients in the emergency department.

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Journal:  BMC Cardiovasc Disord       Date:  2020-04-10       Impact factor: 2.298

7.  Utilizing machine learning dimensionality reduction for risk stratification of chest pain patients in the emergency department.

Authors:  Nan Liu; Marcel Lucas Chee; Zhi Xiong Koh; Su Li Leow; Andrew Fu Wah Ho; Dagang Guo; Marcus Eng Hock Ong
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Review 9.  ECG Monitoring Systems: Review, Architecture, Processes, and Key Challenges.

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10.  Deployment of artificial intelligence for radiographic diagnosis of COVID-19 pneumonia in the emergency department.

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  10 in total

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