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Automatic identification of implantable cardioverter-defibrillator lead problems using intracardiac electrograms

机译:使用心脏内电描记图自动识别植入式心脏复律除颤器导线问题

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Implantable Cardioverter-Defibrillator (ICD) lead problems can cause inappropriate painful shocks or inappropriately withheld lifesaving shocks. ICDs contain storage for detected spontaneous episodes that can be analyzed to characterize lead performance. The goal of this project was to develop an automatic lead problem identification algorithm using stored episode data. The algorithm combines sensed RR interval patterns and electrogram (EGM) characteristics to identify non-cardiac (NC) oversensing (OS) problems (e.g. lead failures) and cardiac (C) OS problems (e.g. T-wave OS). Stored episodes from 59 patients with OS and 147 patients with no OS were used for evaluation. The sensitivities to identify the lead problems were 97.7% for NC-OS and 86.7% for C-OS with a specificity of 98.0% Analysis of stored episodes with EGM may be used to identify ICD lead problems with very high sensitivity and specificity.
机译:植入式心脏复律除颤器(ICD)导线问题可能会导致不适当的痛苦电击或不适当地扣留的救生电击。 ICD包含用于检测到的自发发作的存储,可以对其进行分析以表征销售线索的表现。该项目的目标是使用存储的情节数据开发一种自动的潜在顾客问题识别算法。该算法结合了感测到的RR间隔模式和电描记图(EGM)特征,以识别非心脏(NC)感测(OS)问题(例如,导线故障)和心脏(C)OS的问题(例如T波OS)。使用来自59例OS的患者和147例无OS的患者的发作进行评估。 NC-OS识别铅问题的敏感性为97.7%,C-OS识别铅的敏感性为88.0%,特异性为98.0%。EGM储存发作的分析可用于识别具有非常高的敏感性和特异性的ICD铅问题。

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