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人工智能在心电图自动分析中的应用及进展

于荣博 郭煊 李发学 吴强

新医学2026,Vol.57Issue(4):350-360,11.
新医学2026,Vol.57Issue(4):350-360,11.DOI:10.12464/j.issn.0253-9802.2025-0344

人工智能在心电图自动分析中的应用及进展

Application and progress of artificial intelligence in automated electrocardiogram analysis

于荣博 1郭煊 1李发学 1吴强2

作者信息

  • 1. 兰州大学第二临床医学院,甘肃 兰州 730030
  • 2. 兰州大学第二临床医学院,甘肃 兰州 730030||兰州大学第二医院心内科,甘肃 兰州 730030
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摘要

Abstract

As a core non-invasive tool for diagnosing cardiovascular diseases,traditional manual electrocardiogram(ECG)analysis suffers from limitations such as low diagnostic consistency,difficulty in adapting ECG morphology for specific populations,high rates of missed diagnoses of dynamic arrhythmias,and delayed responses to acute events,etc.Artificial intelligence–enabled ECG(AI-ECG)analysis is driving profound transformation in the diagnosis and treatment of cardiovascular diseases.In this article,the technological evolution of AI-ECG from traditional machine learning and deep learning to generative AI/large language models and scenario-specific models,as well as its applications in arrhythmias,structural heart disease,acute coronary syndrome,cardiac rehabilitation,and wearable monitoring,etc.AI-ECG has achieved breakthroughs from"static diagnosis"to"dynamic early warning"and from"single-disease screening"to"full-cycle management".However,AI-ECG still faces challenges including insufficient interpretability,lack of data and evaluation standardization,model bias,and obstacles in clinical translation.Subsequently,multimodal integration,customized models for special populations,standardization of dynamic ECGs,and interdisciplinary collaboration are needed to advance AI-ECG toward the evolution of intelligent agents with autonomous decision-making capabilities,achieving the transitionfrom"technical feasibility"to"patient benefit",offering a new idea for precise diagnosis and treatment of cardiovascular diseases.

关键词

人工智能/心电图/深度学习/心血管疾病/智能诊断

Key words

Artificial intelligence/Electrocardiogram/Deep learning/Cardiovascular diseases/Intelligent diagnosis

引用本文复制引用

于荣博,郭煊,李发学,吴强..人工智能在心电图自动分析中的应用及进展[J].新医学,2026,57(4):350-360,11.

基金项目

国家自然科学基金(82460093) (82460093)

新医学

0253-9802

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