Tavakolian Kouhyar, Vaseghi Ali, Kaminska Bozena
Computational and Integrative Bio-Engineering Research Laboratory (CIBER), School of Engineering Science, Simon Fraser University, 8888 University Drive, Burnaby, BC V5A 1S6, Canada.
Physiol Meas. 2008 Jul;29(7):771-81. doi: 10.1088/0967-3334/29/7/006. Epub 2008 Jun 18.
In this paper a novel methodology for processing of a ballistocardiogram (BCG) is proposed in which the respiration signal is utilized to improve the averaging of the BCG signal and ultimately the annotation and interpretation of the signal. Previous research works filtered out the respiration signal while the novelty of the current research is that, rather than removing the respiration effect from the signal, we utilize the respiration information to improve the averaging and thus analysis and interpretation of the BCG signal in diagnosis of cardiac malfunctions. This methodology is based on our investigation that BCG cycles corresponding to the inspiration and expiration phases of the respiration cycle are different in morphology. BCG cycles corresponding to the expiration phase of respiration have been proved to be more closely related to each other when compared to cycles corresponding to inspiration, and therefore expiration cycles are better candidates to be selected for the calculation of the averaged BCG signal. The new BCG average calculated based on this methodology is then considered as the representative and a template of the BCG signal for further processing. This template can be considered as the output of a clinical BCG instrument with higher reliability and accuracy compared to the previous processing methods.
本文提出了一种处理心冲击图(BCG)的新方法,该方法利用呼吸信号来改善BCG信号的平均效果,并最终改善信号的标注和解读。以往的研究工作滤除了呼吸信号,而当前研究的新颖之处在于,我们并非从信号中去除呼吸效应,而是利用呼吸信息来改善平均效果,从而在心脏功能障碍诊断中对BCG信号进行分析和解读。该方法基于我们的研究,即与呼吸周期的吸气和呼气阶段相对应的BCG周期在形态上有所不同。与对应吸气的周期相比,已证明对应呼吸呼气阶段的BCG周期彼此之间的相关性更强,因此呼气周期更适合用于计算平均BCG信号。基于此方法计算出的新BCG平均值随后被视为BCG信号的代表和模板,用于进一步处理。与先前的处理方法相比,该模板可被视为具有更高可靠性和准确性的临床BCG仪器的输出。