Lookup Table of 1*2

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Bilal Mustafa
Bilal Mustafa 2018 年 2 月 25 日
コメント済み: Image Analyst 2018 年 2 月 25 日
If I have a 2D Lookup table having x and y inputs with dimension of 1*15 each and output z of 15*15, how can i reverse it in a way that I have z as input and x and y as outputs? What should be the dimensions now for i/p and o/p?

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Image Analyst
Image Analyst 2018 年 2 月 25 日
Try interp2().
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Bilal Mustafa
Bilal Mustafa 2018 年 2 月 25 日
Well with contour(), I haven't tried yet. I just thought to clarify my question if its not. I'll try with contour and come again, if any problem. Thanks a lot.
Image Analyst
Image Analyst 2018 年 2 月 25 日
See this code:
x= [0:1:15]
y= [0:1:15]
% Make a 1-D vector (for some reason).
z = randi(100, 1, length(y) * length(x))
% Now immediately turn it into a 2-D matrix
Z = reshape(z, length(y), length(x))
subplot(1, 2, 1);
contour(Z)
title('Random Data', 'FontSize', 20);
subplot(1, 2, 2);
p = peaks(400);
contour(p);
grid on;
title('Peaks Function', 'FontSize', 20);
Each contour line is a line of some constant Z value. Not sure what Z value you want, but the point is that, that Z may show up in lots of places.

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