Machine learning-based prediction of fainting during blood donations using donor properties and weather data as features

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SUMMARY

    The study aimed to predict fainting in voluntary blood donors and to identify potential factors accounting for the occurrence of a vasovagal reaction during blood donation using modern machine_learning algorithms. Other studies on machine_learning focus on eligibility of donors or use elaborate donor observation. Statistics For the prediction of fainting, the authors employed the model selection procedure for seven different, state-of-the-art machine_learning methods: random forests, artificial Data from all whole blood and apheresis (thrombocytes, plasma, no erythrocyte apheresis) donors from January 2017 to December 2020 of the Red Cross blood donation . . .

     

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