An Efficient Image Denoising Method for Wireless Multimedia Sensor Networks Based on DT-CWT
Wireless multimedia sensor network (WMSN) is a developed technology of wireless sensor networks and includes a set of nodes equipped with cameras and other sensors to detect ambient environment and produce multimedia data content. In this context, many types of noises occur due to sensors problems,...
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2015-11-01
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Series: | International Journal of Distributed Sensor Networks |
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doaj-139afbd878bb4ede9441f9f404aacc542020-11-25T03:29:31ZengSAGE PublishingInternational Journal of Distributed Sensor Networks1550-14772015-11-011110.1155/2015/632568632568An Efficient Image Denoising Method for Wireless Multimedia Sensor Networks Based on DT-CWTRachid Sammouda0Abdul Malik S. Al-Salman1Abdu Gumaei2Nejmeddine Tagoug3 Department of Computer Science, King Saud University, Riyadh, Saudi Arabia Department of Computer Science, King Saud University, Riyadh, Saudi Arabia Department of Computer Science, King Saud University, Riyadh, Saudi Arabia Department of Information Systems, King Saud University, Riyadh, Saudi ArabiaWireless multimedia sensor network (WMSN) is a developed technology of wireless sensor networks and includes a set of nodes equipped with cameras and other sensors to detect ambient environment and produce multimedia data content. In this context, many types of noises occur due to sensors problems, change of illumination, fog, rain, and other weather conditions. These noises usually degrade the digital images acquired by camera sensors. Image denoising in spatial domain is more difficult and time-consuming for real-time processing of WMSNs applications. In this study, an efficient method based on Dual-Tree Complex Wavelet Transform (DT-CWT) is developed to enhance the image denosing in WMSNs. This method is designed to reduce the image noises by selecting an optimal threshold value estimated from the approximation of wavelet coefficients. In our experiment, the proposed method was tested and compared with standard Discrete Wavelet Transform (DWT) and Stationary Wavelet Transform (SWT) on a set of natural scene images. Better results were achieved by using the DT-CWT in terms of image quality metrics and processing time.https://doi.org/10.1155/2015/632568 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Rachid Sammouda Abdul Malik S. Al-Salman Abdu Gumaei Nejmeddine Tagoug |
spellingShingle |
Rachid Sammouda Abdul Malik S. Al-Salman Abdu Gumaei Nejmeddine Tagoug An Efficient Image Denoising Method for Wireless Multimedia Sensor Networks Based on DT-CWT International Journal of Distributed Sensor Networks |
author_facet |
Rachid Sammouda Abdul Malik S. Al-Salman Abdu Gumaei Nejmeddine Tagoug |
author_sort |
Rachid Sammouda |
title |
An Efficient Image Denoising Method for Wireless Multimedia Sensor Networks Based on DT-CWT |
title_short |
An Efficient Image Denoising Method for Wireless Multimedia Sensor Networks Based on DT-CWT |
title_full |
An Efficient Image Denoising Method for Wireless Multimedia Sensor Networks Based on DT-CWT |
title_fullStr |
An Efficient Image Denoising Method for Wireless Multimedia Sensor Networks Based on DT-CWT |
title_full_unstemmed |
An Efficient Image Denoising Method for Wireless Multimedia Sensor Networks Based on DT-CWT |
title_sort |
efficient image denoising method for wireless multimedia sensor networks based on dt-cwt |
publisher |
SAGE Publishing |
series |
International Journal of Distributed Sensor Networks |
issn |
1550-1477 |
publishDate |
2015-11-01 |
description |
Wireless multimedia sensor network (WMSN) is a developed technology of wireless sensor networks and includes a set of nodes equipped with cameras and other sensors to detect ambient environment and produce multimedia data content. In this context, many types of noises occur due to sensors problems, change of illumination, fog, rain, and other weather conditions. These noises usually degrade the digital images acquired by camera sensors. Image denoising in spatial domain is more difficult and time-consuming for real-time processing of WMSNs applications. In this study, an efficient method based on Dual-Tree Complex Wavelet Transform (DT-CWT) is developed to enhance the image denosing in WMSNs. This method is designed to reduce the image noises by selecting an optimal threshold value estimated from the approximation of wavelet coefficients. In our experiment, the proposed method was tested and compared with standard Discrete Wavelet Transform (DWT) and Stationary Wavelet Transform (SWT) on a set of natural scene images. Better results were achieved by using the DT-CWT in terms of image quality metrics and processing time. |
url |
https://doi.org/10.1155/2015/632568 |
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