A Real time specific weed discrimination system using multi-Level wavelet decomposition

The developed algorithm was used for the real time specific weed discrimination employing multi-level wavelet decomposition. This algorithm used four different types of wavelets i.e., Daubechies (bd4), Symlets (sym4), Biorthogonal (bior3.3) and Reverse Biorthogonal (rbio3.3) up to four levels of dec...

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Main Authors: Siddiqi, M.H., Sulaiman, S., Faye, Ibrahima, Ahmad, I.
Format: Citation Index Journal
Published: 2009
Subjects:
Online Access:http://eprints.utp.edu.my/2726/1/eprints.pdf
http://eprints.utp.edu.my/2726/
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spelling my.utp.eprints.27262017-01-19T08:25:57Z A Real time specific weed discrimination system using multi-Level wavelet decomposition Siddiqi, M.H. Sulaiman, S. Faye, Ibrahima Ahmad, I. QA75 Electronic computers. Computer science The developed algorithm was used for the real time specific weed discrimination employing multi-level wavelet decomposition. This algorithm used four different types of wavelets i.e., Daubechies (bd4), Symlets (sym4), Biorthogonal (bior3.3) and Reverse Biorthogonal (rbio3.3) up to four levels of decomposition to classify images into broad and narrow class for real-time selective herbicide application using the Euclidian distance method. The lab, which have shown that the system to be very effective in weed identification, segmentation and discrimination. The test and analysis show that 97.26% classification accuracy over 350 sample images (broad & narrow) with 175 samples from each category of weeds and the proposed algorithm takes 29 ms as average time for the classification of the specific weeds. 2009 Citation Index Journal PeerReviewed application/pdf http://eprints.utp.edu.my/2726/1/eprints.pdf Siddiqi, M.H. and Sulaiman, S. and Faye, Ibrahima and Ahmad, I. (2009) A Real time specific weed discrimination system using multi-Level wavelet decomposition. [Citation Index Journal] http://eprints.utp.edu.my/2726/
institution Universiti Teknologi Petronas
building UTP Resource Centre
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Petronas
content_source UTP Institutional Repository
url_provider http://eprints.utp.edu.my/
topic QA75 Electronic computers. Computer science
spellingShingle QA75 Electronic computers. Computer science
Siddiqi, M.H.
Sulaiman, S.
Faye, Ibrahima
Ahmad, I.
A Real time specific weed discrimination system using multi-Level wavelet decomposition
description The developed algorithm was used for the real time specific weed discrimination employing multi-level wavelet decomposition. This algorithm used four different types of wavelets i.e., Daubechies (bd4), Symlets (sym4), Biorthogonal (bior3.3) and Reverse Biorthogonal (rbio3.3) up to four levels of decomposition to classify images into broad and narrow class for real-time selective herbicide application using the Euclidian distance method. The lab, which have shown that the system to be very effective in weed identification, segmentation and discrimination. The test and analysis show that 97.26% classification accuracy over 350 sample images (broad & narrow) with 175 samples from each category of weeds and the proposed algorithm takes 29 ms as average time for the classification of the specific weeds.
format Citation Index Journal
author Siddiqi, M.H.
Sulaiman, S.
Faye, Ibrahima
Ahmad, I.
author_facet Siddiqi, M.H.
Sulaiman, S.
Faye, Ibrahima
Ahmad, I.
author_sort Siddiqi, M.H.
title A Real time specific weed discrimination system using multi-Level wavelet decomposition
title_short A Real time specific weed discrimination system using multi-Level wavelet decomposition
title_full A Real time specific weed discrimination system using multi-Level wavelet decomposition
title_fullStr A Real time specific weed discrimination system using multi-Level wavelet decomposition
title_full_unstemmed A Real time specific weed discrimination system using multi-Level wavelet decomposition
title_sort real time specific weed discrimination system using multi-level wavelet decomposition
publishDate 2009
url http://eprints.utp.edu.my/2726/1/eprints.pdf
http://eprints.utp.edu.my/2726/
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score 13.211869