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ECG beat detection using filter banks

IEEE Transactions on Biomedical Engineering · 1999 · Vol. 46(2) · pp. 192–202
V.X. AfonsoW.J. TompkinsTruong Q. NguyenShen Luo

Abstract

We have designed a multirate digital signal processing algorithm to detect heart beats in the electrocardiogram (ECG). The algorithm incorporates a filter bank (FB) which decomposes the ECG into subbands with uniform frequency bandwidths. The FB-based algorithm enables independent time and frequency analysis to be performed on a signal. Features computed from a set of the subbands and a heuristic detection strategy are used to fuse decisions from multiple one-channel beat detection algorithms. The overall beat detection algorithm has a sensitivity of 99.59% and a positive predictivity of 99.56% against the MIT/BIH database. Furthermore this is a real-time algorithm since its beat detection latency is minimal. The FB-based beat detection algorithm also inherently lends itself to a computationally efficient structure since the detection logic operates at the subband rate. The FB-based structure is potentially useful for performing multiple ECG processing tasks using one set of preprocessing filters.

ECG Monitoring and AnalysisAnalog and Mixed-Signal Circuit DesignBlind Source Separation TechniquesBeat (acoustics)Computer sciencePreprocessorFilter bankSignal processingArtificial intelligenceSpeech recognitionPattern recognition (psychology)Digital filterAlgorithm

MeSH terms

AlgorithmsElectrocardiographyEquipment DesignHeart RateHumansSensitivity and SpecificitySignal Processing, Computer-AssistedTime FactorsDatabases, Factual
Citations
734
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References
Quantitative Investigation of QRS Detection Rules Using the MIT/BIH Arrhythmia Database
IEEE Transactions on Biomedical Engineering · 1986 · 1,138 citations
A Real-Time QRS Detection Algorithm
IEEE Transactions on Biomedical Engineering · 1985 · 7,635 citations
Detection of ECG characteristic points using wavelet transforms
IEEE Transactions on Biomedical Engineering · 1995 · 1,595 citations
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