Lung capacity estimation through acoustic signal of breath

Ahmad Abushakra, M. Faezipour
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引用次数: 18

Abstract

Breathing disorders are generally associated with the lung cancer disease. Through daily treatment, lung cancer patients often use a traditional spirometer to measure their lung capacity. However, the use of a spirometer device for accurate measurement requires some sort of training and adjustment, which may be inconvenient for certain groups of patients, especially the elderly. In addition, the spirometer readings can become unreliable if the measurements are not taken as instructed. On the other hand, a microphone, say the microphone on a hand-held device such as a smart-phone, can easily capture the acoustic signal of breath without certain instructions. This signal can then be processed to estimate the lung capacity. In this paper, we propose a methodology through the simply recorded acoustic signal of breath, splitting the breathing cycle to inhale, pause, exhale and pause phases to measure the depth of the breath along with the time duration and signal energy of the breathing phases. We show how these computed parameters are used to estimate the lung size with a high degree of accuracy. This work is part of a virtual reality platform embedded within a smart-phone to assist lung cancer patients regulate their breath. Furthermore, the lung capacity estimation methodology proposed in this paper can also be used to aid patients with other breathing disorders.
利用呼吸声信号估计肺活量
呼吸障碍通常与肺癌有关。通过日常治疗,肺癌患者通常使用传统的肺活量计来测量他们的肺活量。然而,使用肺活量计装置进行精确测量需要某种训练和调整,这可能对某些患者群体,特别是老年人不方便。此外,如果不按照指示进行测量,肺活量计的读数可能会变得不可靠。另一方面,麦克风,比如智能手机等手持设备上的麦克风,可以很容易地捕捉到呼吸的声音信号,而不需要特定的指令。然后可以对该信号进行处理以估计肺活量。在本文中,我们提出了一种方法,通过简单记录的呼吸声信号,将呼吸循环分为吸气,暂停,呼气和暂停阶段,以测量呼吸的深度以及呼吸阶段的时间持续时间和信号能量。我们展示了如何使用这些计算参数来估计肺大小的高度准确性。这项工作是嵌入智能手机的虚拟现实平台的一部分,该平台旨在帮助肺癌患者调节呼吸。此外,本文提出的肺活量估计方法也可用于帮助其他呼吸障碍患者。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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