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Previous value: `https://github.com/tyewu/IRIS-Database-and-Machine-Learning-Based-Approaches-for-Prediction-of-Spontaneous-Intracerebral-Hemo/tree/main`
Previous value: `IRIS-Database-and-Machine-Learning-Based-Approaches-for-Prediction-of-Spontaneous-Intracerebral-Hemo`
Previous value: `Download`
Previous value: `Technology Example`
Previous value: `InterSystems IRIS for Health`
Previous value: ``
Previous value: `Not checked`
Previous value: `IRIS-Database-and-Machine-Learning`
Previous value: `IRIS Database and Machine Learning Based Approaches for Prediction of Spontaneous Intracerebral Hemorrhage Spontaneous intracerebral hemorrhage (SICH) has been common in China with high morbidity and mortality rates. This study aims to develop a machine learning (ML)-based predictive model for the 90-day evaluation after SICH. Spontaneous intracerebral hemorrhage (SICH) is common in China with high morbidity and mortality. This study aimed to develop a machine learning (ML)-based predictive model for the 90-day post-SICH evaluation. This project uses IRIS and a trained machine learning model (AUC=0.85) to predict the probability of a patient suffering from the disease based on patient characteristics, and store the data and probability in the IRIS database to achieve interaction with the IRIS database.`
Previous value: `https://github.com/tyewu/IRIS-Database-and-Machine-Learning-Based-Approaches-for-Prediction-of-Spontaneous-Intracerebral-Hemo/blob/main/LICENSE`
Previous value: `https://cn.community.intersystems.com/post/%E6%AC%A2%E8%BF%8E%E5%A4%A7%E5%AE%B6%E4%B8%BA%E4%B8%AD%E5%9B%BD%E5%8F%82%E8%B5%9B%E8%80%85wu-fatian-%E8%B8%8A%E8%B7%83%E6%8A%95%E7%A5%A8%EF%BC%81`
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