首页> 外国专利> NON-INVASIVE METHOD AND SYSTEM FOR CHARACTERIZING CARDIOVASCULAR SYSTEMS FOR ALL-CAUSE MORTALITY AND SUDDEN CARDIAC DEATH RISK

NON-INVASIVE METHOD AND SYSTEM FOR CHARACTERIZING CARDIOVASCULAR SYSTEMS FOR ALL-CAUSE MORTALITY AND SUDDEN CARDIAC DEATH RISK

机译:刻画全因死亡率和猝死危险的心血管系统的非侵入性方法和系统

摘要

Methods and systems for evaluating the electrical activity of the heart to identify novel ECG patterns closely linked to the subsequent development of serious heart rhythm disturbances and fatal cardiac events. Two approaches are describe, for example a model-based analysis and space-time analysis, which are used to study the dynamical and geometrical properties of the ECG data. In the first a model is derived using a modified Matching Pursuit (MMP) algorithm. Various metrics and subspaces are extracted to characterize the risk for serious heart rhythm disturbances, sudden cardiac death, other modes of death, and all-cause mortality linked to different electrical abnormalities of the heart. In the second method, space-time domain is divided into a number of regions (e.g., 12 regions), the density of the ECG signal is computed in each region and input to a learning algorithm to associate them with these events.
机译:评估心脏电活动的方法和系统,以确定新颖的ECG模式,该模式与严重心律失常和致命性心脏事件的后续发展密切相关。描述了两种方法,例如基于模型的分析和时空分析,用于研究ECG数据的动力学和几何特性。首先,使用改进的匹配追踪(MMP)算法导出模型。提取各种度量和子空间来表征严重心律失常,突发性心脏死亡,其他死亡方式以及与心脏不同电异常相关的全因死亡率的风险。在第二种方法中,将时空域划分为多个区域(例如12个区域),在每个区域中计算ECG信号的密度,并将其输入到学习算法中以将它们与这些事件相关联。

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