How to subtraction two matrix with different dimensions?

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Veronika
Veronika am 11 Apr. 2017
Beantwortet: Walter Roberson am 22 Apr. 2017
Dear all,
I have two matrix. thisBoundary1=1232x2double and thisBoundary2=1237x2double. And I would like to subtraction these two like :
dech = thisBoundary2 - thisBoundary1
But I have this error:
Error using -
Matrix dimensions must agree.
Error in dechova_krivka (line 74)
dech = thisBoundary2 - thisBoundary1
Can you please help me, how to modify these two matrix for subtraction?
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Veronika
Veronika am 16 Apr. 2017
I can´t accept the answer, I didn´t see this option.
the cyclist
the cyclist am 20 Apr. 2017
Oh, right. I forgot this all transpired through comments, and not an actual answer. Well, just advice for next time, then.

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Antworten (1)

Walter Roberson
Walter Roberson am 22 Apr. 2017
One approach that calculates the portion that is inside both regions:
load thisBoundary1
load thisBoundary2
maxdim = max([thisBoundary1(:); thisBoundary2(:)]);
reg1 = poly2mask( thisBoundary1(:,1), thisBoundary1(:,2), maxdim, maxdim );
reg2 = poly2mask( thisBoundary2(:,1), thisBoundary2(:,2), maxdim, maxdim );
both_reg = reg1 & reg2;
Now you can convert both_reg back into polygons. You could use https://www.mathworks.com/matlabcentral/fileexchange/32112-mask2poly or https://www.mathworks.com/matlabcentral/fileexchange/45980-mask2poly-mask- . Or you could bwboundaries or bwtraceboundary
A different approach is to use https://www.mathworks.com/matlabcentral/fileexchange/22441-curve-intersections to find the intersections of the regions and then do something with that intersection information. You would use this in the situation where you needed to calculate the intersections as exactly as feasible. Your coordinates appear to all be integers, so I doubt you need this.
A third approach that calculates the area that is inside either region is:
load thisBoundary1
load thisBoundary2
x = [thisBoundary1(:,1); thisBoundary2(:,1)];
y = [thisBoundary1(:,2); thisBoundary2(:,2)];
k = boundary(x, y);
plot(x(k), y(k))
A fourth approach would be to use image registration techniques to align the two for best match before doing one of the techniques described above.

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