Multivariate classification of systemic vascular resistance using photoplethysmography

被引:15
作者
Lee, Qim Y. [1 ]
Chan, Gregory S. H. [1 ]
Redmond, Stephen J. [2 ]
Middleton, Paul M. [1 ,3 ]
Steel, Elizabeth [4 ]
Malouf, Philip [4 ]
Critoph, Christopher [4 ]
Flynn, Gordon [4 ]
O'Lone, Emma [4 ]
Lovell, Nigel H. [1 ,2 ]
机构
[1] Univ New S Wales, Sch Elect Engn & Telecommun, Biomed Syst Lab, Sydney, NSW 2052, Australia
[2] Univ New S Wales, Grad Sch Biomed Engn, Sydney, NSW 2052, Australia
[3] Ambulance Serv New S Wales, Ambulance Res Inst, Sydney, NSW 2039, Australia
[4] Prince Wales Hosp, Intens Care Unit, Sydney, NSW 2031, Australia
基金
澳大利亚研究理事会;
关键词
linear discriminant classifier; Parzen window classifier; noninvasive features; photoplethysmogram variability; photoplethysmogram notch; PULSE-WAVE; DISCRIMINANT FUNCTIONS; SPECTRAL-ANALYSIS; CONTOUR ANALYSIS; CARDIAC-OUTPUT; VOLUME PULSE; FINGER; ELECTROCARDIOGRAM; VARIABILITY; STIFFNESS;
D O I
10.1088/0967-3334/32/8/008
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Systemic vascular resistance (SVR) classification is useful for the diagnosis and prognosis of critical pathophysiological conditions, with the ability to identify patients with abnormally high or low SVR of immense clinical value. In this study, a supervised classifier, based on Bayes' rule, is employed to classify a heterogeneous group of intensive care unit patients (N = 48) as being below (SVR < 900 dyn s cm(-5)), within (900 <= SVR <= 1200 dyn s cm-5) or above (SVR > 1200 dyn s cm(-5)) the clinically accepted range for normal SVR. Features derived from the finger photoplethysmogram (PPG) waveform and other routine cardiovascular measurements (heart rate and mean arterial pressure) were used as inputs to the classifier. In the construction of the classifier model, two techniques were used to approximate the class conditional probability densities-a single Gaussian distribution model (also known as discriminant analysis) and a non-parametric model using the Parzen window kernel density estimation method. An exhaustive feature search was performed to select a feature subset that maximized the performance indicator, Cohen's kappa coefficient (kappa). The Gaussian model with multiple features achieved the best overall kappa coefficient (kappa = 0.57), although the results from the non-parametric model were comparable (kappa = 0.51). The optimum subset in the Gaussian model consisted of PPG waveform variability features, including the low-frequency to high-frequency ratio (LF/HF) and the normalized
引用
收藏
页码:1117 / 1132
页数:16
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