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数据资源critical care time-series variables and outcomesICU time-series benchmark datasetPhysioNet Challenge 2012 dataset; version 1.0.0开放访问

PhysioNet/CinC 2012 ICU 时间序列数据集

The PhysioNet/CinC Challenge 2012 dataset contains ICU time-series records used for mortality prediction and patient-specific outcome modeling. It remains a useful benchmark for clinical time-series modeling, missingness-aware learning, and early warning model development.

数据资源cine cardiac MRI with segmentation labelscardiac MRI segmentation datasetACDC challenge dataset; see official database page申请访问

ACDC 自动心脏诊断挑战数据集

ACDC is a cardiac MRI dataset for automated cardiac diagnosis and segmentation. It supports left and right ventricular segmentation, myocardium segmentation, cardiac function quantification, and evaluation of robust cardiac image analysis methods.

数据资源cardiac ultrasound videos with functional annotationsechocardiography video datasetLarge echocardiography video dataset; see official site申请访问

EchoNet-Dynamic 心脏超声视频数据集

EchoNet-Dynamic is a cardiac ultrasound video dataset with expert annotations for left ventricular function. It is used for echocardiography video understanding, ejection fraction estimation, cardiac segmentation, and clinical video AI research.

数据资源structured critical care EHR tablesmulticenter ICU EHR datasetMulticenter ICU database; version 2.0申请访问

eICU 协作研究数据库

The eICU Collaborative Research Database is a multicenter critical care database containing deidentified ICU data from many hospitals. It is commonly used for external validation, ICU outcome prediction, temporal modeling, and cross-site generalization studies in clinical AI.

数据资源deidentified structured EHR tablescritical care EHR datasetLarge-scale hospital and ICU EHR dataset; version 3.1申请访问

MIMIC-IV v3.1 重症监护与住院 EHR 数据集

MIMIC-IV is a large deidentified electronic health record dataset from Beth Israel Deaconess Medical Center, covering hospital and ICU data for critical care research. It is a core benchmark source for clinical prediction, temporal EHR modeling, phenotyping, and healthcare AI method development.