Linear regression model and least square method for experimental identification of AMBU bag in simple ventilator

Cong Toai Truong, K. H. Huynh, V. T. Duong, Huy Hung Nguyen, L. Pham, T. Nguyen
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引用次数: 1

Abstract

PurposeIn the COVID-19 outbreak periods, people's life has been deranged, leading to disrupt the world. Firstly, the number of deaths is growing and has the potential to surpass the highest level at any time. Secondly, the pandemic broke many countries' fortified lines of epidemic prevention and gave people a more honest view of its seriousness. Finally, the pandemic has an impact on life, and the economy led to a shortage in medical, including a lack of clinicians, facilities and medical equipment. One of those, a simple ventilator is a necessary piece of medical equipment since it might be useful for a COVID-19 patient's treatment. In some cases, the COVID-19 patients require to be treated by modern ventilators to reduce lung damage. Therefore, the addition of simple ventilators is a necessity to relieve high work pressure on medical bureaucracies. Some low-income countries aim to build a simple ventilator for primary care and palliative care using locally accessible and low-cost components. One of the simple principles for producing airflow is to squeeze an artificial manual breathing unit (AMBU) iterative with grippers, which imitates the motion of human fingers. Unfortunately, the squeezing angle of grippers is not proportional to the exhaust air volume from the AMBU bag. This paper aims to model the AMBU bag by a mathematical equation that enables to implement on a simple controller to operate a bag-valve-mask (BVM) ventilator with high accuracy performance.Design/methodology/approachThis paper provides a curvature function to estimate the air volume exhausting from the AMBU bag. Since the determination of the curvature function is sophisticated, the coefficients of the curvature function are approximated by a quadratic function through the experimental identification method. To obtain the high accuracy performance, a linear regression model and a least square method are employed to investigate the characteristic of the BVM ventilator's grippers angle with respect to the airflow volume produced by the AMBU bag.FindingsThis paper investigates the correlation between the exhausting airflow of the AMBU bag and the grippers angle of the BVM ventilator.Originality/valueThe experimental results validated that the regression model of the characteristic of the exhausting airflow of the AMBU bag with respect to the grippers' angle has been fitted with a coefficient over 98% within the range of 350–750 ml.
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基于线性回归模型和最小二乘法的简易呼吸机AMBU袋实验识别
目的在新冠肺炎疫情期间,人们的生活被打乱了,导致了世界的混乱。首先,死亡人数正在增加,随时有可能超过最高水平。其次,疫情打破了许多国家的防疫防线,让人们更加真切地看到疫情的严重性。最后,疫情对生活产生了影响,经济导致医疗短缺,包括缺少临床医生、设施和医疗设备。其中,简单的呼吸机是一种必要的医疗设备,因为它可能对COVID-19患者的治疗有用。在某些情况下,COVID-19患者需要使用现代呼吸机治疗,以减少肺损伤。因此,增加简易呼吸机是必要的,以减轻医疗官僚机构的巨大工作压力。一些低收入国家的目标是使用当地可获得的低成本部件,为初级保健和姑息治疗建造简易呼吸机。产生气流的一个简单原理是挤压一个人工手动呼吸装置(AMBU),该装置模仿人类手指的运动。不幸的是,夹持器的挤压角度与从AMBU袋排出的风量不成比例。本文旨在用数学方程对AMBU气囊进行建模,使其能够在简单的控制器上实现对气囊-阀-面罩(BVM)呼吸机的高精度操作。设计/方法/方法本文提供了一个曲率函数来估计从AMBU袋排出的风量。由于曲率函数的确定比较复杂,通过实验辨识方法,曲率函数的系数近似为二次函数。为了获得高精度的性能,采用线性回归模型和最小二乘法研究了BVM呼吸机的夹持角与AMBU袋产生的风量的关系。结果研究了AMBU通气袋排气气流与BVM呼吸机夹持角的关系。独创性/价值实验结果验证了在350 ~ 750 ml范围内,AMBU袋排气气流特性与夹持器角度的回归模型的拟合系数大于98%。
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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CiteScore
3.50
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0.00%
发文量
21
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