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The 30-days hospital readmission risk in diabetic patients: predictive modeling with machine learning classifiers.

Yujuan ShangKui JiangLei WangZheqing ZhangSiwei ZhouYun LiuJiancheng DongHuiqun Wu
Published in: BMC medical informatics and decision making (2021)
The factors influencing 30-days readmission predictions in diabetic patients, including number of inpatient admissions, age, diagnosis, number of emergencies, and sex, would help healthcare providers to identify patients who are at high risk of short-term readmission and reduce the probability of 30-days readmission. The RF algorithm with the highest AUC is more suitable for making 30-days readmission predictions and  deserves further validation in clinical trials.
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