DocumentCode
760860
Title
Accurate Automatic Detection of End-Diastole From Left Ventricular Pressure Using Peak Curvature
Author
Mynard, Jonathan P. ; Penny, Daniel J. ; Smolich, Joseph J.
Author_Institution
Heart Res. Group, R. Children´´s Hosp., Melbourne, VIC
Volume
55
Issue
11
fYear
2008
Firstpage
2651
Lastpage
2657
Abstract
Precise identification of end-diastole (ED), corresponding to the end of diastole and start of systole, is crucial for accurate assessment of cardiac function. The aims of this study were to develop a new algorithm based on peak curvature (kappap) for detecting ED as a ldquocornerrdquo in left ventricular pressure (LVP) signals, and to compare this approach with ldquogold-standardrdquo ED obtained by manual annotation (EDman) and ED calculated with previously described algorithms that use an LVP first-derivative threshold (dP/dt 0 or dP/dt 100), the peak LVP second-derivative (d 2 P/dt 2 p) or ECG R-wave peak ( ECGR). Using customized software, all algorithms were applied to data derived from 213 large animal studies spanning a wide range of animal ages (fetus to adult), heart rates, inotropic states, and loading conditions. Differences between EDman and each algorithm were then compared after defining an acceptance region for the ED detection based on EDman interobserver variability. ED detected with kappap was the most accurate (p < 0.001) and least variable (p < 0.001), with 97% of measurements within the acceptance region and difference from EDman of (1.5 plusmn 4.2) ms. By contrast, ED was often detected early with dP/dt 0 and dP/dt 100 , and late with d 2 P/dt 2 p and ECGR. These results indicate that the peak curvature algorithm using LVP provides accurate and reliable detection of ED.
Keywords
blood pressure measurement; electrocardiography; ECG R-wave peak; end-diastole identification; heart rates; inotropic states; interobserver variability; left ventricular pressure; manual annotation; Animals; Australia; Capacitive sensors; Computer vision; Electrocardiography; Fetus; Graphical user interfaces; Heart rate; Myocardium; Recruitment; Software algorithms; Timing; Curvature; end-diastole (ED); feature detection; Algorithms; Analysis of Variance; Animals; Animals, Newborn; Blood Pressure; Catheters, Indwelling; Diastole; Electrocardiography; Fetus; Heart Function Tests; Heart Rate; Myocardial Contraction; Observer Variation; Reproducibility of Results; Sheep; Stroke Volume; Swine; Ventricular Function, Left;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2008.2001295
Filename
4547472
Link To Document