一种新型电生理记录系统的超低电压信号降噪与识别

Josef Kautzner, Petr Peichl, Rune Paamand, Mark D Carlson
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摘要

目的:对传统电生理记录系统记录的心内电图的解释经常受到电力线(50/60 Hz)噪声和陷波滤波引起的失真的影响。本研究比较了传统电生理记录系统和两种3D测绘系统(控制系统)中的一种同时记录的单极电图与一种新型系统(ECGenius, CathVision ApS)的单极电图,该系统旨在减少噪音,而无需常规滤波。方法:对2020年连续9例因房颤(5例)、房室结再入性心动过速(3例)或室性心动过速(1例)接受导管消融的患者同时记录单极电图,疗程为1周。结果:新系统的噪声谱功率(49 ~ 51 Hz)比对照系统低6.1±6.2倍。起搏后的饱和伪影(持续时间97±85 ms)出现在8个对照记录中,没有新的系统记录(p<0.001)。在未滤波的新系统单极记录中出现的高频、低幅度信号和分块电图在对照记录中不存在。控制系统陷波滤波模糊了他束电图的可观察性,而没有使用新系统进行这种滤波,并且诱导电图失真在新系统记录中不存在。7个控制系统记录中有5个出现信号饱和,但新系统记录中没有信号饱和。结论:在本研究中,与传统控制系统相比,新型系统记录显示出更少的噪声和更少的信号伪影,并且不需要陷波滤波来扭曲控制记录的电图。这种新型记录系统提供了传统系统所不具备的优越的电图数据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Decreased Noise and Identification of Very Low Voltage Signals Using a Novel Electrophysiology Recording System
Aims: The interpretation of intracardiac electrograms recorded from conventional electrophysiology recording systems is frequently impacted by powerline (50/60 Hz) noise and distortion due to notch filtering. This study compares unipolar electrograms recorded simultaneously from a conventional electrophysiology recording system and one of two 3D mapping systems (control system) with those from a novel system (ECGenius, CathVision ApS) designed to reduce noise without the need for conventional filtering. Methods: Unipolar electrograms were recorded simultaneously from nine consecutive patients undergoing catheter ablation for AF (five patients), atrioventricular nodal re-entrant tachycardia (three patients), or ventricular tachycardia (one patient) over the course of 1 week in 2020. Results: The noise spectral power of the novel system (49–51 Hz) was 6.1 ± 6.2 times lower than that of the control system. Saturation artefact following pacing (duration 97 ± 85 ms) occurred in eight control recordings and no novel system recordings (p<0.001). High frequency, low amplitude signals and fractionated electrograms apparent on unfiltered novel system unipolar recordings were not present on control recordings. Control system notch filtering obscured His bundle electrograms observable without such filtering using the novel system and induced electrogram distortion that was not present on novel system recordings. Signal saturation occurred in five of seven control system recordings but none of the novel system recordings. Conclusion: In this study, novel system recordings exhibited less noise and fewer signal artefacts than the conventional control system and did not require notch filtering that distorted electrograms on control recordings. The novel recording system provided superior electrogram data not apparent with conventional systems.
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