how can I teach glcm features with SVM

How can I train with the GLM-specific svm algorithm for brain tumor

4 commentaires

Ahmet Gürbüz
Ahmet Gürbüz le 17 Nov 2017
Modifié(e) : Walter Roberson le 17 Nov 2017
Example
>> filename='C:\MATLAB\R2017a\bin\dataset\';
>> a=gorsel(filename,0);
0.0002 8.6622 0.0341
0.0001 8.9730 0.0279
0.0001 9.2377 0.0244
0.0001 9.4267 0.0239
0.0001 9.5962 0.0217
0.0001 9.6768 0.0207
0.0001 9.7512 0.0199
0.0001 9.7999 0.0193
0.0001 9.7608 0.0161
0.0001 9.7153 0.0146
0.0001 9.6964 0.0156
0.0001 9.7230 0.0177
0.0001 9.7560 0.0198
0.0001 9.8653 0.0178
0.0001 9.8902 0.0169
Ahmet Gürbüz
Ahmet Gürbüz le 17 Nov 2017
Modifié(e) : Walter Roberson le 17 Nov 2017
.m
function [output]=gorsel(i,indis)
for artis=indis:15
filename1 = ['C:\MATLAB\R2017a\bin\dataset\' num2str(artis,'%d') '.jpg'];
input=imread(filename1);
% figure,imshow(input);
j=imnoise(input,'salt & pepper',0.02);%image noise
k=medfilt2(j);%median filter
filename2 = ['C:\MATLAB\R2017a\bin\Median\median' num2str(artis,'%d') '.jpg'];
imwrite(k,filename2);
i=imread(filename2);
level=graythresh(i);
bw=imbinarize(i,level);
filename3= ['C:\MATLAB\R2017a\bin\Otsu\otsu' num2str(artis,'%d') '.jpg'];
imwrite(bw,filename3);%otsu algorithm
output=GLCMFeatures(bw); %glcm features for otsu algorithm image
output=struct2array(output);
disp(output);
end
end
Walter Roberson
Walter Roberson le 17 Nov 2017
It is recommended that you use fullfile() instead of those concatenations of strings.
Ahmet Gürbüz
Ahmet Gürbüz le 17 Nov 2017
how can ı do it

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