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I have a logical circular mask of 0 and 1 in my matrix which looks the following way.

Mask

What is the fastest way to get just the outside boundary in another matrix ?

Essentially I have to scan for the first 1 from left and first 1 from right in each row if there are duplicate 1's in the row ( there will be just one 1 in the topmost , bottommost points ).... Can someone help me in finding a fast way to do this ?

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3 Answers 3

up vote 4 down vote accepted

The other answers are good for finding general circles in images, but since you know that you're looking for a circle in a binary mask, bwmorph is probably your best bet.

I=imread('0ateM.png');
BW=im2bw(I);
BW2=bwmorph(BW,'endpoints');

image after bwmorph Edit: As I mentioned in the comments, in order to enlarge the circle so that you're getting the 0 pixels just outside the original circle mask set to 1 and everything else set to 0, you can invert the original mask and then use bwmorph:

WB=-(BW-1);
WB2=bwmorph(WB,'endpoints');

This has the unfortunate side-effect that the border of the image is changed to 1's. Of course you can easily change this. For an mxn image:

WB2(1,:)=0; WB2(:,1)=0; WB2(:,n)=0; WB2(m,:)=0;

An alternative approach is to directly use a filter on the original image:

f=[1 1 1; 1 -9 1; 1 1 1];
G=filter2(f,BW);
BW2=im2bw(G);

This will achieve the same results as WB2 above without the white border problem. The im2bw call is needed because after the filter the values are no longer just 0 or 1, they range somewhere between -8 and 8 and we want the negative values to be 0 and the positive values to be 1.

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Hey , one question regarding the above picture... is there an easy way to expand the above circle by 1 pixel ? –  anon Nov 6 '12 at 0:58
    
Just as a guess, invert the image, and use bwmorph on the result. –  beaker Nov 6 '12 at 1:09
    
Yeah, inverting works, but it has the added effect that it puts a white border around the image 1 pixel wide. –  beaker Nov 6 '12 at 1:18
    
What do i need to give as parameter for the inside circle in bwmorph ? –  anon Nov 6 '12 at 1:29
    
I used WB = -(BW - 1); to invert, then WB2 = bwmorph(WB,'endpoints');. You should be able to accomplish the same thing with filter2() but I'd have to play with it a bit. Something like [1 1 1; 1 -9 1; 1 1 1]. I'll try it in a little while. –  beaker Nov 6 '12 at 1:33

You can use regionprops for that, here are a few examples that identify circles:

or if you're sure there's only one circle and no noise, I assume you can just find the bottom/top/left/right edge and work from that:

m = loadcirclefunction();
pix_left  = find(any(m,1),1,'first');
pix_right = find(any(m,1),1,'last');
pix_top   = find(any(m,2),1,'first');
pix_bottom= find(any(m,2),1,'last');
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Hey , when I am using the plot function to plot the above points I get them correctly but when I plot the circle using the viscircles determining the center and radii I get some irregularities. Since I need to get the values from the outside of the circle in a concentric manner can I assume that viscircles is slightly off ? –  anon Nov 6 '12 at 0:27
    
which 'above points'? what irregularities? I have no clue what you're talking about.. Better ask in a new question or edit your question specifically detailing what your problem is, what you've tried, what the results are,... –  Gunther Struyf Nov 7 '12 at 14:51

Brute force is linear with the size of image, and since you need to copy the image it's my opinion that you can't gain much by improving your method. Nonetheless, it should be pretty fast, and it works for any number of circles on the image.

function bound = find_bound(circle)

[sy sx] = size(circle);
bound = circle;

for i = 2:sy-1
    for j = 2:sx-1
        if (~circle(i,j))
            bound(i,j) = any((circle(i-1:i+1,j-1:j+1)-circle(i,j))(:));
        end
    end
end
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