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Johns Hopkins AI predicts surgery complications 85% of the time using ECGs and records, beating traditional methods.
Researchers at Johns Hopkins University have developed an AI model that predicts post-surgical complications with 85% accuracy by analyzing standard electrocardiogram (ECG) tests and patient medical records, outperforming traditional risk scores that are accurate in about 60% of cases.
The model uses deep learning to detect subtle patterns in ECG data previously overlooked by clinicians, potentially improving surgical decision-making and patient outcomes.
The study, based on data from 37,000 patients, suggests AI could transform how surgical risks are assessed, with further testing planned to validate and expand its use.
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La IA de Johns Hopkins predice complicaciones quirúrgicas el 85% del tiempo usando ECG y registros, superando a los métodos tradicionales.