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Self-supervised Anomaly Detection Pretraining Enhances Long-tail ECG Diagnosis

Self-supervised Anomaly Detection Pretraining Enhances Long-tail ECG Diagnosis

Current computer-aided ECG diagnostic systems struggle with the underdetection of rare but critical cardiac anomalies due to the imbalanced nature of ECG datasets. This study introduces a novel approach using self-supervised anomaly detection pretraining to address this limitation. The anomaly detection model is specifically designed to detect and localize subtle …