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The use of artificial intelligence in analyzing routine sleep study data revealed hidden biomarkers that help predict broader health risks beyond traditional diagnostic methods. The study showed that the model was able to classify patients into five different categories based on their probabilities of mortality and chronic diseases. The highest-risk group was exposed to complications such as heart failure at a rate of 65% and heart attacks at 84%, with the risk of cognitive decline and atrial fibrillation increasing by more than 200%. The model successfully predicted long-term health outcomes with high accuracy, demonstrating its effectiveness in improving the assessment of sleep disorder risks and their impact on overall health.
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