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I'm trying to reconstruct 3D points from 2D image correspondences. My camera is calibrated. The test images are of a checkered cube and correspondences are hand picked. Radial distortion is removed. After triangulation the construction seems to be wrong however. The X and Y values seem to be correct, but the Z values are about the same and do not differentiate along the cube. The 3D points look like as if the points were flattened along the Z-axis.

What is going wrong in the Z values? Do the points need to be normalized or changed from image coordinates at any point, say before the fundamental matrix is computed? (If this is too vague I can explain my general process or elaborate on parts)

Update

Given: x1 = P1 * X and x2 = P2 * X

x1, x2 being the first and second image points and X being the 3d point.

However, I have found that x1 is not close to the actual hand picked value but x2 is in fact close.

How I compute projection matrices:

P1 = [eye(3), zeros(3,1)];
P2 = K * [R, t];

Update II

Calibration results after optimization (with uncertainties)

% Focal Length:          fc = [ 699.13458   701.11196 ] ± [ 1.05092   1.08272 ]
% Principal point:       cc = [ 393.51797   304.05914 ] ± [ 1.61832   1.27604 ]
% Skew:             alpha_c = [ 0.00180 ] ± [ 0.00042  ]   => angle of pixel axes = 89.89661 ± 0.02379 degrees
% Distortion:            kc = [ 0.05867   -0.28214   0.00131   0.00244  0.35651 ] ± [ 0.01228   0.09805   0.00060   0.00083  0.22340 ]
% Pixel error:          err = [ 0.19975   0.23023 ]
% 
% Note: The numerical errors are approximately three times the standard
% deviations (for reference).

-

K =

  699.1346    1.2584  393.5180
         0  701.1120  304.0591
         0         0    1.0000


E =

    0.3692   -0.8351   -4.0017
    0.3881   -1.6743   -6.5774
    4.5508    6.3663    0.2764


R =

   -0.9852    0.0712   -0.1561
   -0.0967   -0.9820    0.1624
    0.1417   -0.1751   -0.9743


t =

    0.7942
   -0.5761
    0.1935


P1 =

     1     0     0     0
     0     1     0     0
     0     0     1     0


P2 =

 -633.1409  -20.3941 -492.3047  630.6410
  -24.6964 -741.7198 -182.3506 -345.0670
    0.1417   -0.1751   -0.9743    0.1935


C1 =

     0
     0
     0
     1


C2 =

    0.6993
   -0.5883
    0.4060
    1.0000


% new points using cpselect

%x1
input_points =

  422.7500  260.2500
  384.2500  238.7500
  339.7500  211.7500
  298.7500  186.7500
  452.7500  236.2500
  412.2500  214.2500
  368.7500  191.2500
  329.7500  165.2500
  482.7500  210.2500
  443.2500  189.2500
  402.2500  166.2500
  362.7500  143.2500
  510.7500  186.7500
  466.7500  165.7500
  425.7500  144.2500
  392.2500  125.7500
  403.2500  369.7500
  367.7500  345.2500
  330.2500  319.7500
  296.2500  297.7500
  406.7500  341.2500
  365.7500  316.2500
  331.2500  293.2500
  295.2500  270.2500
  414.2500  306.7500
  370.2500  281.2500
  333.2500  257.7500
  296.7500  232.7500
  434.7500  341.2500
  441.7500  312.7500
  446.2500  282.2500
  462.7500  311.2500
  466.7500  286.2500
  475.2500  252.2500
  481.7500  292.7500
  490.2500  262.7500
  498.2500  232.7500

%x2
base_points =

  393.2500  311.7500
  358.7500  282.7500
  319.7500  249.2500
  284.2500  216.2500
  431.7500  285.2500
  395.7500  256.2500
  356.7500  223.7500
  320.2500  194.2500
  474.7500  254.7500
  437.7500  226.2500
  398.7500  197.2500
  362.7500  168.7500
  511.2500  227.7500
  471.2500  196.7500
  432.7500  169.7500
  400.2500  145.7500
  388.2500  404.2500
  357.2500  373.2500
  326.7500  343.2500
  297.2500  318.7500
  387.7500  381.7500
  356.2500  351.7500
  323.2500  321.7500
  291.7500  292.7500
  390.7500  352.7500
  357.2500  323.2500
  320.2500  291.2500
  287.2500  258.7500
  427.7500  376.7500
  429.7500  351.7500
  431.7500  324.2500
  462.7500  345.7500
  463.7500  325.2500
  470.7500  295.2500
  491.7500  325.2500
  497.7500  298.2500
  504.7500  270.2500

Update III

See answer for corrections. Answers computed above were using the wrong variables/values.

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1  
I've only ever thought about doing something like this, never actually tried it. In the absence of an answer, maybe some questions will help you figure things out... :-) Do your 2D images all have the same Z-axis? (ie: are all of the camera directions for all of the images parallel?) If not, is the flattening with respect to a single 2D image's Z-axis? If so, can you try reordering the input images to see what happens? –  Laurence Gonsalves Mar 31 '10 at 5:19
2  
Have you normalized your resulting coordinate? What you get back from triangulation is usually [x*s, y*s, z*s, s] (homogenous coordinates) so you must make sure to divide by s. –  Hannes Ovrén Mar 31 '10 at 6:13
    
Can you post your code? –  John Mar 31 '10 at 8:09
    
@Laurence Gonsalves Could you elaborate a bit more? @kiguari yes, the points are homogeneous form (x,y,z,1) @John that's a lot of code, any specific part you want to see? –  YAZ Mar 31 '10 at 15:36
    
Each 2D image has a "Z axis", which is the vector that's perpendicular to both the X and Y axes of the 2D image. This is conceptually the "camera direction" assuming the 2D image was a photo. You have multiple 2D images, right? So do they all have the same Z axis vector? Perhaps I'm misunderstanding the kind of problem you're trying to solve. –  Laurence Gonsalves Mar 31 '10 at 16:52
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3 Answers

It may be that your points are in a degenerate configuration. Try to add a couple of points from the scene that don't belong to the cube and see how it goes.

share|improve this answer
    
Added about another 9 points not on the cube. Still the cube looks flat, although the newly added points vary in their Z values relative to the cube. However, the Z values themselves do not scale with the X and Y values (z values are about 10^3 smaller than X or Y values). –  YAZ Mar 31 '10 at 17:49
    
Have you tried using the new points (and these points only) to compute the fundamental matrix? If that works then you could replace non-cube points with cube points, recompute F, and see how this affects the reconstruction. I insist on this approach because I've been bitten in the past by the degeneracy of points on the cube while debugging calibration algorithms. Hope this helps. –  jmbr Mar 31 '10 at 19:07
    
Hey jmbr, what do you think about subpixel correspondence errors in triangulation? –  Jacob Mar 31 '10 at 19:10
    
Hi Jacob, see my comment in the thread corresponding to your answer. The high skewness bothers me too. –  jmbr Mar 31 '10 at 19:15
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More information required:

  • What is t? The baseline might be too small for parallax.
  • What is the disparity between x1 and x2?
  • Are you confident about the accuracy of the calibration (I'm assuming you used the Stereo part of the Bouguet Toolbox)?
  • When you say the correspondences are hand-picked, do you mean you selected the corresponding points on the image or did you use an interest point detector on the two images are then set the correspondences?

I'm sure we can resolve this problem :)

share|improve this answer
    
t = [-0.8754; 0.2249; -0.4279]. image points differ an average of: x 65px, y 89px. Fairly confident, updated the question with my calibration information, error is about 0.2 pixels. –  YAZ Mar 31 '10 at 18:22
    
What units is that? Could you post K? –  Jacob Mar 31 '10 at 18:23
    
In fact, could you post K,R,t and as many x1 and x2? –  Jacob Mar 31 '10 at 18:24
    
Ah thanks, didn't see the calib info while commenting! –  Jacob Mar 31 '10 at 18:26
    
Why is the skew 1.2584? It's normally (and is often assumed to be) 0. Are you using a normal camera? –  Jacob Mar 31 '10 at 18:30
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up vote 4 down vote accepted

** Note all reference are to Multiple View Geometry in Computer Vision by Hartley and Zisserman.

OK, so there were a couple bugs:

  1. When computing the essential matrix (p. 257-259) the author mentions the correct R,t pair from the set of four R,t (Result 9.19) is the one where the 3D points lay in front of both cameras (Fig. 9.12, a) but doesn't mention how one computes this. By chance I was re-reading chapter 6 and discovered that 6.2.3 (p.162) discusses depth of points and Result 6.1 is the equation needed to be applied to get the correct R and t.

  2. In my implementation of the optimal triangulation method (Algorithm 12.1 (p.318)) in step 2 I had T2^-1' * F * T1^-1 where I needed to have (T2^-1)' * F * T1^-1. The former translates the -1.I wanted, and in the latter, to translate the inverted the T2 matrix (foiled again by MATLAB!).

  3. Finally, I wasn't computing P1 correctly, it should have been P1 = K * [eye(3),zeros(3,1)];. I forgot to multiple by the calibration matrix K.

Hope this helps future passerby's !

share|improve this answer
    
Also thanks Jacob and jmbr :) –  YAZ Apr 16 '10 at 17:37
1  
Would you post your whole script for an example purpose. I've been going around in circles for a few weeks trying to get 3d reconstruction to work. Thanks –  hokiebird Feb 6 '13 at 22:01
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