Convert XY coordinates to binary matrix

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yoni verhaegen
yoni verhaegen on 23 Mar 2017
Commented: Walter Roberson on 29 Nov 2017
Hello all,
I have a 1332x2 matrix where X and Y coordinates are given of a glacier surface. When I plot the data with scatter, I just get dots at the given coordinates and it shows the glacier surface by plotting all the dots next to each other. However, I want to create a binary matrix, where 0 = no glacier and 1 = coordinate where the galcier exists. Besides, I want a line to be drawn around the glacier.
How can this be done?
Thanks already!
  2 Comments
Roger Stafford
Roger Stafford on 23 Mar 2017
You have not given any indication of what determines the points which occur in your matrix. What is it that makes them close to one another on the glacier? Is it somehow related to the topography? It’s too bad you don’t have the third coordinate Z. One could judge by the gradient values.
Walter Roberson
Walter Roberson on 23 Mar 2017
All of the x y points are on the surface of the glacier.

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Answers (3)

Walter Roberson
Walter Roberson on 23 Mar 2017
Are the coordinates all positive integers? If they are then one way would be to use full() on sparse() passing in the coordinate vectors. Be careful about whether you want x to correspond to rows or columns.
If they are not positive integers, then hist2 or equivalent might be appropriate.
  1 Comment
Walter Roberson
Walter Roberson on 24 Mar 2017
To get the line around the points consider using boundary()

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Image Analyst
Image Analyst on 24 Mar 2017
Perhaps try scatteredInterpolant() to turn your scattered, randomly located points into a regular 2-D image with a value at every pixel.
  1 Comment
Walter Roberson
Walter Roberson on 24 Mar 2017
This will not work. The value associated with every specified point is the constant 1. Treat those as scattered points and interpolate anywhere inside or outside the group and you will get the result 1.0 to within numeric accuracy.

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Anibal Carcamo
Anibal Carcamo on 29 Nov 2017
I did this for a robot to convert a Distance vs Degree to a matrix of 200x400cm, it may be usefull
Code:
B=zeros(200,400);
for m=1:1:180
for l=1:1:200
for h=1:1:400
if h==tab(m,5,n)&l==tab(m,4,n)
B(l,h)=1;
end
end
end
end
  1 Comment
Walter Roberson
Walter Roberson on 29 Nov 2017
idx = sub2ind(size(B), squeeze(tab(:,5,:)), squeeze(tab(:,4,:));
B(idx) = 1;

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