Evaluation of Texture and Shape Features for Classification of Four Paddy Varieties

This research is aimed at evaluating the texture and shape features using the most commonly used neural network architectures for cereal grain classification. An evaluation of the classification accuracy of texture and shape features and neural network was done to classify four Paddy (rice) grains,...

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Main Authors: Archana Chaugule, Suresh N. Mali
Format: Article
Language:English
Published: Hindawi Limited 2014-01-01
Series:Journal of Engineering
Online Access:http://dx.doi.org/10.1155/2014/617263
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spelling doaj-ad9708771223468db436988ad57f7a062020-11-24T22:21:41ZengHindawi LimitedJournal of Engineering2314-49042314-49122014-01-01201410.1155/2014/617263617263Evaluation of Texture and Shape Features for Classification of Four Paddy VarietiesArchana Chaugule0Suresh N. Mali1DYPIET, Pimpri, Pune 411017, IndiaDYPIET, Pimpri, Pune 411017, IndiaThis research is aimed at evaluating the texture and shape features using the most commonly used neural network architectures for cereal grain classification. An evaluation of the classification accuracy of texture and shape features and neural network was done to classify four Paddy (rice) grains, namely, Karjat-6(K6), Ratnagiri-2(R2), Ratnagiri-4(R4), and Ratnagiri-24(R24). Algorithms were written to extract the features from the high-resolution images of kernels of four grain types and used as input features for classification. Different feature models were tested for their ability to classify these cereal grains. Effect of using different parameters on the accuracy of classification was studied. The most suitable feature from the features for accurate classification was identified. The shape feature set outperformed the texture feature set in almost all the instances of classification.http://dx.doi.org/10.1155/2014/617263
collection DOAJ
language English
format Article
sources DOAJ
author Archana Chaugule
Suresh N. Mali
spellingShingle Archana Chaugule
Suresh N. Mali
Evaluation of Texture and Shape Features for Classification of Four Paddy Varieties
Journal of Engineering
author_facet Archana Chaugule
Suresh N. Mali
author_sort Archana Chaugule
title Evaluation of Texture and Shape Features for Classification of Four Paddy Varieties
title_short Evaluation of Texture and Shape Features for Classification of Four Paddy Varieties
title_full Evaluation of Texture and Shape Features for Classification of Four Paddy Varieties
title_fullStr Evaluation of Texture and Shape Features for Classification of Four Paddy Varieties
title_full_unstemmed Evaluation of Texture and Shape Features for Classification of Four Paddy Varieties
title_sort evaluation of texture and shape features for classification of four paddy varieties
publisher Hindawi Limited
series Journal of Engineering
issn 2314-4904
2314-4912
publishDate 2014-01-01
description This research is aimed at evaluating the texture and shape features using the most commonly used neural network architectures for cereal grain classification. An evaluation of the classification accuracy of texture and shape features and neural network was done to classify four Paddy (rice) grains, namely, Karjat-6(K6), Ratnagiri-2(R2), Ratnagiri-4(R4), and Ratnagiri-24(R24). Algorithms were written to extract the features from the high-resolution images of kernels of four grain types and used as input features for classification. Different feature models were tested for their ability to classify these cereal grains. Effect of using different parameters on the accuracy of classification was studied. The most suitable feature from the features for accurate classification was identified. The shape feature set outperformed the texture feature set in almost all the instances of classification.
url http://dx.doi.org/10.1155/2014/617263
work_keys_str_mv AT archanachaugule evaluationoftextureandshapefeaturesforclassificationoffourpaddyvarieties
AT sureshnmali evaluationoftextureandshapefeaturesforclassificationoffourpaddyvarieties
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