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Error in matlab code

조회 수: 1 (최근 30일)
Maryam Almannaee
Maryam Almannaee 2021년 11월 28일
편집: Image Analyst 2021년 11월 28일
I have the following MATLAB code, but there is an issue. It's not running. Can someone help me with that?
clc;
clear all;
close all;
DatasetPath='C:\Users\4u\OneDrive\Desktop\Jaffedbase'
imds=imageDatastore(DatasetPath,'IncludeSubfolders',true,'LabelSource','foldernames')
tic;
train_data = dir('C:\Users\4u\OneDrive\Desktop\Jaffedbase*.tiff');
trainl=length(train_data);
trainf=[];
v1=[];
%Traing images loop
for trainloop = 1:trainl
file_train=strcat('C:\Users\4u\OneDrive\Desktop\Jaffedbase',train_data(trainloop).name);
im_train= (imread(file_train));
facecet = vision.CascadeObjectDetector(); % face detection in a given image
bbox=step(facedet,im_train);
face=imcrop(im_train,bbox);
Mouthdet= vision.CascadeObjectDetector('Mouth'); % mouth detection in a given face image
BB==step(Mouthdet,face);
for i= 1:size(BB,1)
a=BB(i,:);
z=a(2);
if z > 97
b=face(a(2):a(2)+a(4),a(1):a(1)+a(3));
figure(1);
subplot (5,4,trainloop);
imshow(file_train);
figure(2);
subplot (5,4,trainloop);
imshow(b);
[featureVector1,hogVisualization1] = extractHOGFeatures(b); %Extracting featues using HOG
figure(3);
subplot (5,4,trainloop);
plot(hogVisualization1);
Train_coeff1=featureVector1';
v1=[v1,Train_coeff1(1:120,1:1)];
trainfv1';
end
end
end
Happy = [trainf(1,:);trainf(3,:);trainf(5,:);trainf(6,:);trainf(15,:);trainf(16,:)];
Surprise = [trainf(2,:);trainf(4,:);trainf(7,:);trainf(8,:);trainf(17,:);trainf(18,:)];
Sad = [trainf(9,:);trainf(10,:);trainf(11,:);trainf(12,:);trainf(19,:)];
Anger = [trainf(13,:);trainf(14,:);trainf(20,:)];
aT1=mean(Happy);
aT2=mean(Surprise);
aT3=mean(Sad);
aT4=mean(Anger);
train_group=[1;2;1;2;1;1;2;2;3;3;3;3;4;4;1;1;2;2;3;4];
Model=fitcknn(trainf,train_group','Distance','euclidean'); % Training the KNN Classifier
test_data = dir('C:\Users\4u\OneDrive\Desktop\Jaffedbase\test1\*.tiff');
testl=length(test_data);
testf=[];
test_group=[1;2;3;2;3;1;4;4;1;2;3;2;4;4;4;1;3;3;2;1];
k=1;
for testloop = 1:testl
file_test = strcat('C:\Users\4u\OneDrive\Desktop\Jaffedbase\test1\',test_data(testloop).name);
im_test= imread(file_test);
facedet1= vision.CascadeObjectDetector(); % face detection in a given image
bbox=step(facedet1,im_test);
face1=imcrop(im_test,bbox1);
Mouthdet1= vision.CascadeObjectDetector('Mouth'); % mouth detection in a given face image
BB1=step(Mouthdet1,face1);
y1=size(BB1,1);
for j = 1:y1
a1=BB1(j,:);
z1=a1(2);
if z1 > 100
b1=face1(a1(2):a1(2)+a1(4),a1(1):a1(1)+a1(3));
figure(4);
subplot(5,4,testloop);
imshow(file_test);
figure(5);
subplot (5,4,testloop);
imshow(b1);
[ffeatureVector2,hogVisualization2] = extractHOGFeatures(b1); %Extracting featues using HOG
figure(6);
subplot(5,4,testloop);
plot(hogVisualization2);
Train_coeff2=featureVector2';
tc=Train_coeff2(1:120,1:1);
tc=tc';
[llabel,score,cost] = predict(Model,tc);
TestPredict(k)=round(label);
if test_group(testloop) == 1
ref_tc=aT1;
elseif test_group(testloop) == 2
ref_tc=aT2;
elseif test_group(testloop) == 3
ref_tc=aT3;
elseif test_group(testloop) == 4
ref_tc=aT4;
end
PSNR_cal(k)=psnr(tc,ref_tc);
mse_cal(k)=immse(tc,ref_tc);
entropy_cal(k)=entropy(b1);
k=k+1;
end
end
end
% Accuracy, mean time of executions, PSNR, MSE and Entropy Calculations
cMatf = confusionmat(test_group,TestPredict) %compare test data with new features
acc = 100*(sum(diag(cMatf))/length(TestPredict));
fprintf('Accuracy: ');
fprintf('%d\n', acc);
execution_time=toc
X=[1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20];
figure(7);
plot(X,PSNR_cal,'--bs');
xlabel ('Image Numbers');
ylabel ('Signal to Noise Ratio');
title('PSNR (Peak Signal to Noise Ratio)');
figure(8);
plot(X,mse_cal,'--ro');
xlabel ('Image Numbers');
ylabel ('Mean square error');
title('MSE (Mean Square Error)');
figure(9);
plot(X,entropy_cal,'--ms');
xlabel ('Image Numbers');
ylabel ('Entropy');
title('Entropy');
  댓글 수: 1
Jan
Jan 2021년 11월 28일
편집: Image Analyst 2021년 11월 28일
We cannot run your code due to th missing inputs. Then information "there is an issue" is too vague to bve answered. Please mention, what issue you have. It is much easier to solve a problem than to guess, what the problem is.

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