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Artificial intelligence and machine learning for hemorrhagic trauma care 被引量:3
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作者 Henry T.Peng MMusaab Siddiqui +3 位作者 Shawn G.Rhind Jing Zhang Luis Teodoro da Luz andrew beckett 《Military Medical Research》 SCIE CAS CSCD 2023年第5期680-698,共19页
Artificial intelligence(AI),a branch of machine learning(ML)has been increasingly employed in the research of trauma in various aspects.Hemorrhage is the most common cause of trauma-related death.To better elucidate t... Artificial intelligence(AI),a branch of machine learning(ML)has been increasingly employed in the research of trauma in various aspects.Hemorrhage is the most common cause of trauma-related death.To better elucidate the current role of AI and contribute to future development of ML in trauma care,we conducted a review focused on the use of ML in the diagnosis or treatment strategy of traumatic hemorrhage.A literature search was carried out on PubMed and Google scholar.Titles and abstracts were screened and,if deemed appropriate,the full articles were reviewed.We included 89 studies in the review.These studies could be grouped into five areas:(1)prediction of outcomes;(2)risk assessment and injury severity for triage;(3)prediction of transfusions;(4)detection of hemorrhage;and(5)prediction of coagulopathy.Performance analysis of ML in comparison with current standards for trauma care showed that most studies demonstrated the benefits of ML models.However,most studies were retrospective,focused on prediction of mortality,and development of patient outcome scoring systems.Few studies performed model assessment via test datasets obtained from different sources.Prediction models for transfusions and coagulopathy have been developed,but none is in widespread use.AI-enabled ML-driven technology is becoming integral part of the whole course of trauma care.Comparison and application of ML algorithms using different datasets from initial training,testing and validation in prospective and randomized controlled trials are warranted for provision of decision support for individualized patient care as far forward as possible. 展开更多
关键词 Artificial intelligence HEMORRHAGE Machine learning TRAUMA INJURY
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Introducing a Trauma Registry in Mozambique: An Ethics Case Study
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作者 Fadi Hamadani Otilia Neves +6 位作者 Ana Olga Mocumbi Tarek Razek Kosar Khwaja Paola Fata andrew beckett Eunice Jetha Dan L. Deckelbaum 《International Journal of Clinical Medicine》 2014年第16期949-955,共7页
This paper presents a case study of implementing a trauma registry in Mozambique, a low-income country with limited current trauma surveillance. An outline of the importance of trauma registries is presented followed ... This paper presents a case study of implementing a trauma registry in Mozambique, a low-income country with limited current trauma surveillance. An outline of the importance of trauma registries is presented followed by an evidence-based approach to building a sustainable and ethical partnership with local stakeholders. 展开更多
关键词 GLOBAL Burden of Injury GLOBAL HEALTH ETHICS TRAUMA REGISTRY in LOW-INCOME Countries TRAUMA System in Low-Resource Settings GLOBAL HEALTH Partnership
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