Backpropagation Neural Network For Colour Recognition

Colour Image Processing (CIP) is useful for inspection system and Automatic Packing Lines Systems. CIP usually needs expensive and special hardware as well as software to extract colour from image. Most of CIP software use statistical methods to extract colours and some system use Neural Network...

पूर्ण विवरण

ग्रंथसूची विवरण
मुख्य लेखक: AL-Naqeeb, Abdul Aziz Hussien
स्वरूप: थीसिस
भाषा:अंग्रेज़ी
अंग्रेज़ी
प्रकाशित: 2002
विषय:
ऑनलाइन पहुंच:http://psasir.upm.edu.my/id/eprint/12083/1/FK_2002_49.pdf
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author AL-Naqeeb, Abdul Aziz Hussien
author_facet AL-Naqeeb, Abdul Aziz Hussien
author_sort AL-Naqeeb, Abdul Aziz Hussien
description Colour Image Processing (CIP) is useful for inspection system and Automatic Packing Lines Systems. CIP usually needs expensive and special hardware as well as software to extract colour from image. Most of CIP software use statistical methods to extract colours and some system use Neural Network such as Counter-Propagation and Back-Propagation . Some researchers had used Neural Network methods to recognize colour of Commission Internationale de L'Ec1airage (CIE) Models either L *u *v or L *a *b. CIE colour components need special and expensive devices to extract their values from an image. However, this project will use RED, GREEN, BLUE (RGB) colour components, which can be read from an image. In this research, RGB values are used to represent the colour. RGB values are used in two forms. The first form is the actual values that are used in PPM File Format within (0,255) and the second form is normalized RGB values within (0, I ). Back-Propagation Neural Network is used to recognize colour in RGB values. It is found that RGB is useful when used with Neural Network and the Normalized RGB value is faster in the learning of neural network.
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spelling oai:psasir.upm.edu.my:120832024-06-28T01:47:14Z http://psasir.upm.edu.my/id/eprint/12083/ Backpropagation Neural Network For Colour Recognition AL-Naqeeb, Abdul Aziz Hussien Colour Image Processing (CIP) is useful for inspection system and Automatic Packing Lines Systems. CIP usually needs expensive and special hardware as well as software to extract colour from image. Most of CIP software use statistical methods to extract colours and some system use Neural Network such as Counter-Propagation and Back-Propagation . Some researchers had used Neural Network methods to recognize colour of Commission Internationale de L'Ec1airage (CIE) Models either L *u *v or L *a *b. CIE colour components need special and expensive devices to extract their values from an image. However, this project will use RED, GREEN, BLUE (RGB) colour components, which can be read from an image. In this research, RGB values are used to represent the colour. RGB values are used in two forms. The first form is the actual values that are used in PPM File Format within (0,255) and the second form is normalized RGB values within (0, I ). Back-Propagation Neural Network is used to recognize colour in RGB values. It is found that RGB is useful when used with Neural Network and the Normalized RGB value is faster in the learning of neural network. 2002-03 Thesis NonPeerReviewed text en http://psasir.upm.edu.my/id/eprint/12083/1/FK_2002_49.pdf AL-Naqeeb, Abdul Aziz Hussien (2002) Backpropagation Neural Network For Colour Recognition. Masters thesis, Universiti Putra Malaysia. Image processing English
spellingShingle Image processing
AL-Naqeeb, Abdul Aziz Hussien
Backpropagation Neural Network For Colour Recognition
title Backpropagation Neural Network For Colour Recognition
title_full Backpropagation Neural Network For Colour Recognition
title_fullStr Backpropagation Neural Network For Colour Recognition
title_full_unstemmed Backpropagation Neural Network For Colour Recognition
title_short Backpropagation Neural Network For Colour Recognition
title_sort backpropagation neural network for colour recognition
topic Image processing
url http://psasir.upm.edu.my/id/eprint/12083/1/FK_2002_49.pdf
url-record http://psasir.upm.edu.my/id/eprint/12083/
work_keys_str_mv AT alnaqeebabdulazizhussien backpropagationneuralnetworkforcolourrecognition