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System and method for machine-learning-based atrial fibrillation detection

机译:基于机器学习的心房颤动检测系统和方法

摘要

A system and method for machine-learning based atrial fibrillation detection are provided. A database is maintained that is operable to maintain a plurality of ECG features and annotated patterns of the features. At least one server is configured to: train a classifier based on the annotated patterns in the database; receive a representation of an ECG signal recorded by an ambulatory monitor recorder during a plurality of temporal windows; detect a plurality of the ECG features in at least some of the portions of the representation falling within each of the temporal windows; use the trained classifier to identify patterns of the ECG features within one or more of the portions of the ECG signal; for each of the portions, calculate a score indicative of whether the portion of the representation within that ECG signal is associated the patient experiencing atrial fibrillation; and take an action based on the score.
机译:提供了一种用于基于机器学习的心房颤动检测的系统和方法。维护数据库,该数据库可操作以维护多个ECG特征和特征的注释模式。至少一个服务器被配置为:基于数据库中的注释模式训练分类器;在多个时间窗口期间接收由动态监测记录器记录的ECG信号的表示;在落入每个时间窗内的表示的至少一些部分中检测多个ECG特征;使用训练有素的分类器来识别一个或多个ECG信号部分中的ECG特征模式;对于每个部分,计算一个分数,该分数指示该ECG信号内的部分表示是否与经历房颤的患者相关;并根据分数采取行动。

著录项

  • 公开/公告号US10463269B2

    专利类型

  • 公开/公告日2019-11-05

    原文格式PDF

  • 申请/专利权人 BARDY DIAGNOSTICS INC.;

    申请/专利号US201816200089

  • 申请日2018-11-26

  • 分类号A61B5/046;A61B5;G06N20;A61B5/0408;A61B5/0404;A61B5/04;A61B5/0402;A61B5/0432;A61B5/044;A61B5/0452;G06N3/04;G06N3/08;

  • 国家 US

  • 入库时间 2022-08-21 12:14:36

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