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I'm working on a program to compare features of two videos to see if a feature in the first video appears into frames of the second video. When I try to run my code this error appears:

Cell contents assignment to a non-cell array object.

Error in untitled (line 105)

H{t} = reshape(V(:,9),3,3) ;

This is the code:

obj = VideoReader('video2.avi');
lastFrame = read(obj, inf);
numFrames = obj.NumberOfFrames;


%extract frame e sift
for k = 1 : 10 %numFrames
  this_frame = read(obj, k);


  %------to show each frame
  thisfig = figure();
  thisax = axes('Parent', thisfig);
  image(this_frame, 'Parent', thisax);
  title(thisax, sprintf('Frame #%d', k));


  I = single(rgb2gray(this_frame)) ;

[f,d] = vl_sift(I) ;

perm = randperm(size(f,2)) ;
sel = perm(1:50) ;
h1 = vl_plotframe(f(:,sel)) ;
h2 = vl_plotframe(f(:,sel)) ;
set(h1,'color','k','linewidth',3) ;
set(h2,'color','y','linewidth',2) ;
h3 = vl_plotsiftdescriptor(d(:,sel),f(:,sel)) ;
set(h3,'color','g') ;
save  h3;

end

obj2 = VideoReader('video3.avi');
lastFrame = read(obj2, inf);
numFrames = obj2.NumberOfFrames;



%extract frame e sift video2
for k2 = 1 : 10 %numFrames
  this_frame2 = read(obj2, k2);


  %------to show each frame
  thisfig2 = figure();
  thisax2 = axes('Parent', thisfig2);
  image(this_frame2, 'Parent', thisax2);
  title(thisax2, sprintf('Frame #%d', k2));


  K = single(rgb2gray(this_frame2)) ;

[f2,d2] = vl_sift(K) ;

perm = randperm(size(f2,2)) ;
sel2 = perm(1:50) ;
h4 = vl_plotframe(f2(:,sel2)) ;
h5 = vl_plotframe(f2(:,sel2)) ;
set(h4,'color','k','linewidth',3) ;
set(h5,'color','y','linewidth',2) ;
h6 = vl_plotsiftdescriptor(d2(:,sel2),f2(:,sel2)) ;
set(h6,'color','g') ;
save  h6;



[matches, scores] = vl_ubcmatch(d, d2, 1.5) ;


    subplot(1,2,1);
    imshow(uint8(I));
    hold on;
    plot(f(1,matches(1,:)),f(2,matches(1,:)),'b*');


    subplot(1,2,2);
    imshow(uint8(K));
    hold on;
    plot(f2(1,matches(2,:)),f2(2,matches(2,:)),'r*');

     figure;


 % RANSAC

X1 = f(1:2,matches(1,:)) ; X1(3,:) = 1 ;
X2 = f2(1:2,matches(2,:)) ; X2(3,:) = 1 ;


numMatches = size(matches,2) ;

for t = 1:1000
  % estimate homograpyh
  subset = vl_colsubset(1:numMatches, 4) ;
  A = [] ;
  for i = subset
    A = cat(1, A, kron(X1(:,i)', vl_hat(X2(:,i)))) ;
  end
  [U,S,V] = svd(A) ;
  H{t} = reshape(V(:,9),3,3) ;

  % score homography
  X2_ = H{t} * X1 ;
  du = X2_(1,:)./X2_(3,:) - X2(1,:)./X2(3,:) ;
  dv = X2_(2,:)./X2_(3,:) - X2(2,:)./X2(3,:) ;
  ok{t} = (du.*du + dv.*dv) < 6*6 ;
  score(t) = sum(ok{t}) ;
end

[score, best] = max(score) ;
H = H{best};
ok = ok{best};


% sift feature matching 

   dh1 = max(size(K,1)-size(I,1),0) ;
   dh2 = max(size(I,1)-size(K,1),0) ;


subplot(2,1,1) ;
imagesc([padarray(I,dh1,'post') padarray(K,dh2,'post')]) ;
 colormap (gray);
o = size(I,2) ;
line([f(1,matches(1,:));f2(1,matches(2,:))+o], ...
     [f(2,matches(1,:));f2(2,matches(2,:))]) ;

axis image off ;

subplot(2,1,2) ;
imagesc([padarray(I,dh1,'post') padarray(K,dh2,'post')]) ;
 colormap (gray);
o = size(I,2) ;
line([f(1,matches(1,ok));f2(1,matches(2,ok))+o], ...
     [f(2,matches(1,ok));f2(2,matches(2,ok))]) ;
title(sprintf('%d (%.2f%%) inliner matches out of %d', ...
              sum(ok), ...
              100*sum(ok)/numMatches, ...
              numMatches)) ;
axis image off ;
drawnow ;


end

end

What can I do? Any ideas?

Thank you all for your help!

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