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Using machine learning to identify clotted specimens in coagulation testing

机译:使用机器学习识别凝固测试中的凝结标本

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摘要

Objectives: A sample with a blood clot may produce an inaccurate outcome in coagulation testing, which may mislead clinicians into making improper clinical decisions. Currently, there is no efficient method to automatically detect clots. This study demonstrates the feasibility of utilizing machine learning (ML) to identify clotted specimens.
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