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Identification of Brain Tumor Using Texture Segmentation


Affiliations
1 Department of CSE, Government College of Engineering, Tirunelveli, India
2 Department of CSE, Dr. Sivanthi Adithanar College of Engineering, Thiruchendur, India
     

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Texture segmentation plays a vital role in many medical imaging applications. Texture segmentation is the process of partitioning an image into regions based on their texture. Here we present an unsupervised segmentation, which means that the algorithm does not require any knowledge of texture type present nor, the number of textures in the image to be segmented. The basic idea of the proposed method is to use the newly improved multi-resolution Gabor filter for feature extraction along with k-means clustering algorithm to group the related textures (segmenting the regions). This method is applied to segment a brain tumor images to identify the infected area.


Keywords

Segmentation, K-Means Cluster, Improved Multi-Resolution Gabor Filter.
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  • Identification of Brain Tumor Using Texture Segmentation

Abstract Views: 265  |  PDF Views: 3

Authors

G. Tamil Pavai
Department of CSE, Government College of Engineering, Tirunelveli, India
G. Wiselin Jiji
Department of CSE, Dr. Sivanthi Adithanar College of Engineering, Thiruchendur, India

Abstract


Texture segmentation plays a vital role in many medical imaging applications. Texture segmentation is the process of partitioning an image into regions based on their texture. Here we present an unsupervised segmentation, which means that the algorithm does not require any knowledge of texture type present nor, the number of textures in the image to be segmented. The basic idea of the proposed method is to use the newly improved multi-resolution Gabor filter for feature extraction along with k-means clustering algorithm to group the related textures (segmenting the regions). This method is applied to segment a brain tumor images to identify the infected area.


Keywords


Segmentation, K-Means Cluster, Improved Multi-Resolution Gabor Filter.