DocumentCode :
3603358
Title :
Bufferless Compression of Asynchronously Sampled ECG Signals in Cubic Hermitian Vector Space
Author :
Marisa, T. ; Niederhauser, T. ; Haeberlin, A. ; Wildhaber, R.A. ; Vogel, R. ; Jacomet, M. ; Goette, J.
Author_Institution :
Dept. of Eng. & Inf. Technol., Inst. for Human Centered Eng.-microLab, Biel, Switzerland
Volume :
62
Issue :
12
fYear :
2015
Firstpage :
2878
Lastpage :
2887
Abstract :
Asynchronous level crossing sampling analog-to-digital converters (ADCs) are known to be more energy efficient and produce fewer samples than their equidistantly sampling counterparts. However, as the required threshold voltage is lowered, the number of samples and, in turn, the data rate and the energy consumed by the overall system increases. In this paper, we present a cubic Hermitian vector-based technique for online compression of asynchronously sampled electrocardiogram signals. The proposed method is computationally efficient data compression. The algorithm has complexity O(n), thus well suited for asynchronous ADCs. Our algorithm requires no data buffering, maintaining the energy advantage of asynchronous ADCs. The proposed method of compression has a compression ratio of up to 90% with achievable percentage root-mean-square difference ratios as a low as 0.97. The algorithm preserves the superior feature-to-feature timing accuracy of asynchronously sampled signals. These advantages are achieved in a computationally efficient manner since algorithm boundary parameters for the signals are extracted a priori.
Keywords :
analogue-digital conversion; bioelectric potentials; data compression; electrocardiography; feature extraction; medical signal processing; sampling methods; asynchronous level crossing sampling analog-to-digital converters; asynchronously sampled ECG signals; bufferless compression; cubic Hermitian vector space; data compression; root-mean-square difference ratios; superior feature-to-feature timing accuracy; Compressed sensing; Computer architecture; Electrocardiography; Geometry; Interpolation; Threshold voltage; Transforms; Asynchronous sampling; Buffer-less compression; Cubic Hermitian basis; buffer-less compression; cubic Hermitian basis;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2015.2449901
Filename :
7134717
Link To Document :
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