Color a grid by using an intensity matrix

29 Mär. 2011
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Hi all! I need to color a grid according to the values of a specific matrix. In particular, I have a 5x5 matrix representing an intensity value (from 0 to 1) and each value A(i,j) of this matrix is related to a specific cell in the grid. The grid goes from 0 (meters) to 100 (meters)---> 0:20:100 for both axes. Thus, each 20m x 20m cell should have a color according to the matrix described above. I tried with pcolor(), imshow(), imagesc() and so on, but with bad results.
Can you help me? Thanks in advance!!! Giulio (Sapienza University of Rome)

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Matt Tearle
Matt Tearle am 29 Mär. 2011

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What do you mean "bad results"? Can you explain or show what you're doing?
Either way, I'm going to take a guess that the problem is related to the fact that you know the intensities are between 0 and 1, but imagesc always scales to the range of the data. But using image won't work either, because it uses actual values to index into the colormap. If that's the issue, then here are a couple of ways around it:
z = rand(5);
x = 10:20:90;
image(x,x,cat(3,z,z,z))
This makes a 3-D array out of z, then makes a true-color image. Or:
figure
colormap(gray(64))
image(x,x,0.5+z*64), colorbar
which sets the colormap to use 64 colors, then simply expands the possible data range to match that (1 to 64).

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julio@sapienza
julio@sapienza am 29 Mär. 2011

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Thanks for your reply! the first solution you proposed is what I was looking for... the problem now is that the y axis goes from 100 (bottom) to 0 (top) so I need to reverse it... how can I change the colormap? I tried colormap(autumn(3)) but anything changed... Thanks a lot!

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Matt Tearle
Matt Tearle am 29 Mär. 2011
The first problem is easily fixed with "axis xy"
The colormap is irrelevant if you are using a true-color image (which is what my first solution does). By making all three planes of the image equal to z, you make a grayscale image. If you want some other color scheme, you'll have to work out how to make the 3-D array. For example
image(x,x,cat(3,0*z,0.8*z,z))
But it might just be easier to use the second approach I showed.

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julio@sapienza
julio@sapienza am 29 Mär. 2011

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I used the second approach and all the "problems" are now fixed! Thanks! I really appreciated your help!
julio@sapienza
julio@sapienza am 30 Mär. 2011

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I have another simple question... what if is 10 x 10? (0:10:100 for both ax.) How do I modify this expression?
x = 10:20:90;

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julio@sapienza
julio@sapienza am 30 Mär. 2011
ok this is not a simple question but a stupid question :) the answer is 5:10:95...
Matt Tearle
Matt Tearle am 30 Mär. 2011
Not a stupid question, but glad you figured it out. For anyone else out there: the point is that image centers the pixels on the axis values, hence the x values have to be the *centers* of the squares, not the edges.

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julio@sapienza
julio@sapienza am 31 Mär. 2011

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2D visualization is definitely ok, but what if I want to plot this matrix in 3D? I now have a 10x10 matrix with values in [0,1] but when I try 'surf(my_matrix)' MATLAB only displays a 9x9 grid. Do I have to use meshgrid command before? Thank you in advance!

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Matt Tearle
Matt Tearle am 31 Mär. 2011
Can you explain the problem more? Do you get a surface, but it's only 9x9 instead of 10x10? If so, what are the values in my_matrix?
julio@sapienza
julio@sapienza am 31 Mär. 2011
I'll give you an example with a 5x5 matrix:
0.1 0.2 0.9 0.2 0.3
0.5 0.5 0.6 0.7 0.4
1 0.8 0.5 0.2 0.1
0.2 0.3 0.4 0.5 0.6
1 1 0.5 0.9 0.8
When I run surf(matrix_above) the result is a 3D plot where height (z axis) and color are given by the values of the matrix, but the x,y axes go from 1 to 5 (so only 4 elements of the matrix are represented). They do not start from 0 so the last row and last column of the matrix are not in the plot. Is the problem clear? thanks!
julio@sapienza
julio@sapienza am 5 Apr. 2011
Any suggestion?
Matt Tearle
Matt Tearle am 5 Apr. 2011
I think this is just a confusion about vertices versus faces of a surface plot. The values in the matrix are plotted as the vertices of the surface. Look along the leading edge of the plot and you'll see there are five corners. The patchwork in between, however, will have four patches that interpolate between the corners.
If you do imagesc(matrix) instead, you'll see a 5-by-5 grid of color patches, centered at the index values.
julio@sapienza
julio@sapienza am 18 Apr. 2011
Thanks for your answer but I really need to represent this matrix in 3D... imagesc(..) is two-dimensional only... As you said, the values in the matrix are plotted as the vertices of the surface... Is there a way to modify the matrix in order to view all the matrix ? thanks!
Walter Roberson
Walter Roberson am 18 Apr. 2011
surf() data data and set the FaceColor property to 'texturemap'. You might also want to set the EdgeColor to 'off'
julio@sapienza
julio@sapienza am 19 Apr. 2011
Thanks for the answer...Can you give a practical example please?
Matt Tearle
Matt Tearle am 19 Apr. 2011
mesh(A,'FaceColor','texturemap','EdgeColor','none')
But I'm not sure that's what you're referring to. Can you explain what you'd like to see? Something more like this, perhaps?
bar3(A)

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