2025
AAAI
AAAI 2025
Enhancing Predictive Healthcare Using AI-Driven Early Warning Systems
Abstract
Abstract This research proposes an AI-driven early warning system to predict patient deterioration in real-time using electronic health records (EHRs) and wearable devices. Leveraging deep learning techniques, such as recurrent neural networks (RNNs) for sequential data and convolutional neural networks (CNNs) for pattern recognition, the system adapts dynamically through reinforcement learning. Evaluation strategies include retrospective and prospective studies in clinical settings, measuring prediction accuracy and impact on patient outcomes. If successful, this system has the potential to save lives, reduce ICU admissions, and transform healthcare into a proactive, data-driven field.
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Interdisciplinary Bridge
— Deep Learning and Healthcare & Medicine and Machine Learning
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Keyword Pioneer
— patient deterioration
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Cross-Pollinator
— Artificial Intelligence, Computer Science, Computer Vision, Data Science & Analytics, Deep Learning, Healthcare & Medicine, Interdisciplinary, Knowledge & Reasoning, Machine Learning, Mathematics & Optimization, Natural Language Processing, Reinforcement Learning, Robotics, Security & Privacy, Speech & Audio
Authors
Topics
Machine Learning > Core Methods > Classification
Machine Learning > Learning Types > Self-Supervised Learning
Deep Learning > Architectures > Neural Networks
Machine Learning > Learning Types > Reinforcement Learning
Healthcare & Medicine > Clinical > Medical AI
Deep Learning > Learning Types > Deep Learning
Deep Learning > Learning Types > Reinforcement Learning