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How is the image data saved with an uint8 array? Say that I have an obscure circular image, instead of a rectangular, so there is no pixel data beyond the circle. How do I go about the top most pixel location? The bottom most? Etc... And this image does not have to be a circle, it could be something obscure and non-geometric.

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You should define the border of your image more clearly. Does it follow some formula? –  Beginner Dec 5 '11 at 18:49
    
@Beginner no, unfortunately it's completely random. I'm using a saliency map which crops out the most salient object in a normal image. Thus, this cropped out image can have any shape imaginable. –  mugetsu Dec 5 '11 at 18:52
    
For a more generic answer, please refer to this question. –  Wok Jun 7 '13 at 13:57

2 Answers 2

up vote 7 down vote accepted

The image is loaded into an array of rows x columns x RGB. Assuming missing pixels are zeros, here are the top/bottom/left/right coordinates:

[top_col, top_row]= find(sum(I,3)', 1);
[bottom_col, bottom_row]= find(sum(I,3)', 1, 'last');
[left_row, left_col]= find(sum(I,3), 1);
[right_row, right_col]= find(sum(I,3), 1, 'last');
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i still dont get how this line of code works. –  IvanMatala Feb 4 at 13:34
    
find(x,1) returns the coordinates of the first non-zero after a raster-scan. –  cyborg Feb 5 at 16:22

I think you should use sparse matrices to store your image. It will store pixels only at the place you want.

The sparse matrices are stored like that:

  • a list of values. v
  • a list of beginning of columns c, such that all values v(c(i):(c(i+1)-1)) belongs to column i
  • a list of row indices r, such that the row of value v(j) is r(j)
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This may result in using more space than a full matrix because there is a high ratio of non-zero pixels. –  cyborg Dec 5 '11 at 20:17
    
That is the cost of having an "obscure" image. –  Oli Dec 5 '11 at 20:20
    
Did you change the question? –  Oli Dec 5 '11 at 22:02
    
@oli what do you mean? I never edited anything in the question –  mugetsu Dec 5 '11 at 22:21
    
ok sorry, I mis-read your question... –  Oli Dec 5 '11 at 22:38

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