arXiv:2502.15762cs.DCcs.AI2025-02被引 15

SmartEdge通过边缘与云协同提升糖尿病预测速度与精度

SmartEdge: Smart Healthcare End-to-End Integrated Edge and Cloud Computing System for Diabetes Prediction Enabled by Ensemble Machine Learning

  • 采用边缘-云协同架构,实时处理医疗设备数据
  • 集成投票式集成学习,预测准确率提升5%
  • 适合对响应时间敏感的远程健康监测场景

物联网(IoT)正重塑智慧城市中的医疗、交通、工业与教育等领域。互联网医疗设备(IoMT)在智慧医院和远程患者监测(RPM)中日益重要。IoMT设备产生的海量数据需实时分析以实现健康监控、疾病预后与预测。当前依赖云计算的方法难以满足低延迟应用需求。边缘计算通过将云服务靠近设备而成为解决方案。本文提出SmartEdge——一种基于集成机器学习的糖尿病预测端到端边缘与云协同计算系统。该系统解决延迟问题,并验证了边缘资源在医疗应用中的有效性。系统利用多种糖尿病风险因素进行预测,设计了支持边缘节点与主云服务器部署的框架。性能通过延迟、准确率和响应时间评估。采用集成学习投票算法,相比单模型预测,准确率提升5%。

原文摘要 · Abstract (English)

The Internet of Things (IoT) revolutionizes smart city domains such as healthcare, transportation, industry, and education. The Internet of Medical Things (IoMT) is gaining prominence, particularly in smart hospitals and Remote Patient Monitoring (RPM). The vast volume of data generated by IoMT devices should be analyzed in real-time for health surveillance, prognosis, and prediction of diseases. Current approaches relying on Cloud computing to provide the necessary computing and storage capabilities do not scale for these latency-sensitive applications. Edge computing emerges as a solution by bringing cloud services closer to IoMT devices. This paper introduces SmartEdge, an AI-powered smart healthcare end-to-end integrated edge and cloud computing system for diabetes prediction. This work addresses latency concerns and demonstrates the efficacy of edge resources in healthcare applications within an end-to-end system. The system leverages various risk factors for diabetes prediction. We propose an Edge and Cloud-enabled framework to deploy the proposed diabetes prediction models on various configurations using edge nodes and main cloud servers. Performance metrics are evaluated using, latency, accuracy, and response time. By using ensemble machine learning voting algorithms we can improve the prediction accuracy by 5% versus a single model prediction.

糖尿病预测边缘计算集成学习IoMT

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