The Role of Artificial Intelligence and Machine Learning in the Prediction of Right Heart Failure after Left Ventricular Assist Device Implantation: A Comprehensive Review

被引:3
作者
Balcioglu, Ozlem [1 ,2 ]
Ozgocmen, Cemre [3 ]
Ozsahin, Dilber Uzun [2 ,4 ]
Yagdi, Tahir [5 ]
机构
[1] Near East Univ, Fac Med, Dept Cardiovasc Surg, TRNC Mersin 10, TR-99138 Nicosia, Turkiye
[2] Near East Univ, Operat Res Ctr Healthcare, TRNC Mersin 10, TR-99138 Nicosia, Turkiye
[3] Near East Univ, Fac Engn, Dept Biomed Engn, TRNC Mersin 10, TR-99138 Nicosia, Turkiye
[4] Univ Sharjah, Coll Hlth Sci, Med Diagnost Imaging Dept, Sharjah 27272, U Arab Emirates
[5] Ege Univ, Fac Med, Dept Cardiovasc Surg, TR-35100 Izmir, Turkiye
关键词
left ventricular assist device; right heart failure; right ventricle failure; artificial intelligence; machine learning; MECHANICAL CIRCULATORY SUPPORT; SYSTOLIC PRESSURE; RISK SCORE; DYSFUNCTION; OUTCOMES; COMBINATION; VALIDATION; RECIPIENTS; INTERMACS; REGISTRY;
D O I
10.3390/diagnostics14040380
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
One of the most challenging and prevalent side effects of LVAD implantation is that of right heart failure (RHF) that may develop afterwards. The purpose of this study is to review and highlight recent advances in the uses of AI in evaluating RHF after LVAD implantation. The available literature was scanned using certain key words (artificial intelligence, machine learning, left ventricular assist device, prediction of right heart failure after LVAD) was scanned within Pubmed, Web of Science, and Google Scholar databases. Conventional risk scoring systems were also summarized, with their pros and cons being included in the results section of this study in order to provide a useful contrast with AI-based models. There are certain interesting and innovative ML approaches towards RHF prediction among the studies reviewed as well as more straightforward approaches that identified certain important predictive clinical parameters. Despite their accomplishments, the resulting AUC scores were far from ideal for these methods to be considered fully sufficient. The reasons for this include the low number of studies, standardized data availability, and lack of prospective studies. Another topic briefly discussed in this study is that relating to the ethical and legal considerations of using AI-based systems in healthcare. In the end, we believe that it would be beneficial for clinicians to not ignore these developments despite the current research indicating more time is needed for AI-based prediction models to achieve a better performance.
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页数:19
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