Optimum choice of wavelet function and thresholding rule for ECG signal denoising
This paper presents the optimal selection of thresholding rule and wavelet function for denoising an ECG signal. In the proposed work, a comparative study has been carried out using different wavelet functions and thresholding techniques. Thirteen wavelet functions (`db2', `db3', `db4'...
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Published in | 2015 International Conference on Smart Sensors and Systems (IC-SSS) pp. 1 - 5 |
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Main Authors | , |
Format | Conference Proceeding |
Language | English |
Published |
IEEE
01.12.2015
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Subjects | |
Online Access | Get full text |
DOI | 10.1109/SMARTSENS.2015.7873587 |
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Abstract | This paper presents the optimal selection of thresholding rule and wavelet function for denoising an ECG signal. In the proposed work, a comparative study has been carried out using different wavelet functions and thresholding techniques. Thirteen wavelet functions (`db2', `db3', `db4', `db5', `db6', `db8', `sym4', `sym6', `sym8', `coif2', `coif3', `coif4' and `haar') and four thresholding rules (`Rigrsure', `Heursure', `Sqtwolog' and `Minimaxi') are used. The efficacy of the denoising technique is demonstrated with the help of ECG datasets chosen from physiobank database. Three performance measures such as Signal to Noise ratio (SNR), Mean square error (MSE) and Peak signal to noise ratio (PSNR) are used for optimal selection of thresholding rules and wavelet functions in denoising ECG signal. The results of this study exhibits that the best performance of denoising ECG signal is obtained with the `rigrsure' thresholding rule and `coif2' wavelet function based on performance measures SNR, MSE and PSNR. |
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AbstractList | This paper presents the optimal selection of thresholding rule and wavelet function for denoising an ECG signal. In the proposed work, a comparative study has been carried out using different wavelet functions and thresholding techniques. Thirteen wavelet functions (`db2', `db3', `db4', `db5', `db6', `db8', `sym4', `sym6', `sym8', `coif2', `coif3', `coif4' and `haar') and four thresholding rules (`Rigrsure', `Heursure', `Sqtwolog' and `Minimaxi') are used. The efficacy of the denoising technique is demonstrated with the help of ECG datasets chosen from physiobank database. Three performance measures such as Signal to Noise ratio (SNR), Mean square error (MSE) and Peak signal to noise ratio (PSNR) are used for optimal selection of thresholding rules and wavelet functions in denoising ECG signal. The results of this study exhibits that the best performance of denoising ECG signal is obtained with the `rigrsure' thresholding rule and `coif2' wavelet function based on performance measures SNR, MSE and PSNR. |
Author | Meenakshi, M. Niranjana Murthy, H. S. |
Author_xml | – sequence: 1 givenname: H. S. surname: Niranjana Murthy fullname: Niranjana Murthy, H. S. email: hasnimurthy@rediffmail.com organization: Dept. of Electron. & Instrum. Eng., M.S. Ramaiah Inst. of Technol., Bangalore, India – sequence: 2 givenname: M. surname: Meenakshi fullname: Meenakshi, M. email: meenakshi_mbhat@yahoo.com organization: Dept. of Electron. & Instrum. Eng., Dr. Ambedkar Inst. of Technol., Bangalore, India |
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Snippet | This paper presents the optimal selection of thresholding rule and wavelet function for denoising an ECG signal. In the proposed work, a comparative study has... |
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SubjectTerms | DWT Electrocardiography MSE Noise reduction PSNR Signal denoising Signal to noise ratio SNR threshold Wavelet analysis Wavelet transforms |
Title | Optimum choice of wavelet function and thresholding rule for ECG signal denoising |
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