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Logistic ordinal regression for the calibration of oscillometric blood pressure monitors

机译:Logistic序数回归用于示波血压计的校准

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摘要

Oscillometric blood pressure (BP) monitors are omnipresent and used on a daily basis for personalized healthcare. Nevertheless, physicians generally approach these devices cautiously since the mercury Korotkoff sphygmomanometer remains the golden standard. Various reasons explain the hesitating attitude of the medical world towards automated BP monitors: (ⅰ) its principle is based on the pressure pulsations arriving at the cuff by the cardiac cycle instead of an audio wave used by physicians triggered by the turbulences in the artery, (ⅱ) the actual computation of the systolic and diastolic BP from the measured oscillometry is manufacturer dependent and not based on general scientific principles, (ⅲ) the quality of the oscillometric monitors is labeled by a trial such that the devices correspond well to the Korotkoff method for the average healthy patient but deviates for patients suffering from hypo- or hypertension. In this paper, we develop a statistical learning technique to calibrate and correct an oscillometric monitor such that the device better corresponds to the Korotkoff method regardless of the health status of the patient. The technique is based on logistic regression which allows correcting and eliminating systematic errors caused by patients suffering from hyper -or hypotension. No user interaction is required since the technique is able to train and validate the calibration procedure in an unsupervised way. In our case study, the systematic error is reduced by nearly 50% corresponding to the performance specifications of the device.
机译:示波血压(BP)监视器无处不在,并且每天用于个性化医疗保健。但是,由于汞Korotkoff血压计仍然是黄金标准,因此医生通常会谨慎地使用这些设备。各种原因解释了医学界对自动BP监护仪的犹豫态度:(ⅰ)其原理是基于心动周期到达袖带的压力脉动,而不是由动脉湍流触发的医生使用的声波, (ⅱ)从测得的示波法实际计算收缩压和舒张压取决于制造商,而不是基于一般的科学原理,(ⅲ)示波示波计的质量通过试验进行标记,以使设备与Korotkoff良好对应该方法适用于一般健康患者,但对于低血压或高血压患者则有所不同。在本文中,我们开发了一种统计学习技术,用于校准和校正示波监测器,从而使该设备更好地与Korotkoff方法相对应,而与患者的健康状况无关。该技术基于逻辑回归,该逻辑回归可以纠正和消除由患有高血压或低血压的患者引起的系统性错误。由于该技术能够以无监督的方式训练和验证校准程序,因此不需要用户交互。在我们的案例研究中,与设备的性能规格相对应,系统误差减少了近50%。

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