Please use this identifier to cite or link to this item: https://repository.sustech.edu/handle/123456789/3971
Title: Characterization of Liver Tissues in CT Scan Images using Texture Analysis
Authors: Mahgoub, Lina Osman
Supervised -Mohamed Elfadil
Keywords: Characterization
Analysis
Issue Date: 1-Mar-2013
Publisher: sudan university of science and technology
Citation: Mahgoub,Lina Osman.Characterization of Liver Tissues in CT Scan Images using Texture Analysis/Lina OsmanMahgoub;Mohamed Elfadil.- Khartoum : Sudan University of Science and Technology , Medical Radiologic,2013 .- 37p. : ill . ;28cm.-M.Sc.
Abstract: This study is an attempt to study the liver CT Scan images using Texture Analysis Techniques and hence the main objective of this study was to characterize the liver tissues in an CT Scan images into three classes which includes; fatty, cirrhosis and normal tissue types by using texture analysis. The texture were extracted from spatial gray level dependence matrix using a window of 20×20 pixels of angle zero and distance equal one pixel. The images were collected from 60 patients represents the classes of the study in the period from6/2011 to 10/2012. Then the textural features were extracted from selected sub-images that showed only the class of interest. The classification technique were adopted as a method of pattern identification the images into three classes. A linear discriminant analysis using stepwise were used to classify the sample into the predefined classes. The stepwise selected 9 features out of fifteen features as the most discriminant features; they included: Entropy, energy, inertia, inverse difference moment, difference entropy, sum variance, difference variance and variance of (SGLD)matrix. The result of this study showed that the total classification accuracy was 93.3%, with an accuracy of 85.1% 98.4% and 94.9% for fatty, cirrhosis and normal respectively
Description: Thesis
URI: http://repository.sustech.edu/handle/123456789/3971
Appears in Collections:Masters Dissertations : Medical Radiologic Science

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