DocumentCode
1445740
Title
Vectorcardiographic loop alignment and morphologic beat-to-beat variability
Author
Sörnmo, Leif
Author_Institution
Dept. of Appl. Electron., Lund Univ., Sweden
Volume
45
Issue
12
fYear
1998
Firstpage
1401
Lastpage
1413
Abstract
The measurement of subtle morphologic beat-to-beat variations in the electrocardiogram is complicated by the presence of respiration-induced movements of the heart. A statistical signal model is developed which accounts for such movements by means of scaling, rotation, and time synchronization of vector-cardiographic loops. The maximum-likelihood estimator of the parameters describing these three transformations is presented and is extended to the case of multiple loop alignment. The performance of the method is assessed by measuring morphologic variability before and after loop alignment. It is shown that the effects of respiration on morphologic variability can be considerably reduced by the new method. Measurements on morphologic variability were typically reduced by a factor of 0.53 after loop alignment. The results show also that beat-to-beat measurements are strongly dependent on the selected sampling rate and that a rate of 1 kHz is too low.
Keywords
electrocardiography; maximum likelihood estimation; medical signal processing; physiological models; 1 kHz; ECG analysis; electrodiagnostics; maximum-likelihood estimator; morphologic QRS variability; respiration effects; respiration-induced heart movements; rotation; sampling rate; scaling; subtle morphologic beat-to-beat variations; time synchronization; vectorcardiographic loop alignment; Biomedical computing; Electrocardiography; Electrodes; Heart; Helium; Maximum likelihood estimation; Myocardium; Parameter estimation; Pathology; Sampling methods; Electrocardiography; Humans; Likelihood Functions; Mathematics; Myocardial Infarction; Respiratory Physiology; Signal Processing, Computer-Assisted;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/10.730434
Filename
730434
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