How do I calculate the radius of this culvert from the image hyberbola?

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Koosha 2022 年 3 月 1 日

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https://jp.mathworks.com/matlabcentral/answers/1661155-how-do-i-calculate-the-radius-of-this-culvert-from-the-image-hyberbola

コメント済み: William Rose 2022 年 3 月 4 日

採用された回答: William Rose

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Hi everyone,

I took a GPR (Ground-Penetrating Radar) B-scan of a roadway section with a round-shaped steel culvert in it.

I am trying to use MATLAB to detect the curve and/or calculate the approximate radius from the image, the actual diameter is 15 inches.

I tried using " imfindcircles" to do it, tried different ways such as increasing the intensity, turning to grayscale, binarizing it (in order to use objectpolarity option), as well as changing the [rmin , rmax] values, but that doesnt seem to work. The figure file, and the raw image texi file are also attached.

I_scan11 = imread("Scan11_color.png");
%imshow(I_scan11);
I_scan11_gray = im2gray(I_scan11);
imshow(I_scan11_gray)
I_scan11_gray1 = imadjust(I_scan11_gray);
imshow(I_scan11_gray1);
%imhist(I_scan11_gray)
 %I_scan11_BW = I_scan11_gray > 210;
 I_scan11_BW = imbinarize(I_scan11_gray);
 imshow(I_scan11_BW);
% 
% SE = strel("disk",14);  % 20
% I_scan11_BW1 = imdilate(I_scan11_BW,SE);
% %I_scan11_BW1 = imclose(I_scan11_BW,SE);
% %I_scan11_BW1 = bwareaopen(I_scan11_BW1,5);
% imshow(I_scan11_BW1);
[center, radius] = imfindcircles(I_scan11_BW,[400,1120],"Sensitivity",0.99,"ObjectPolarity","dark")
viscircles(center,radius);
% hold on;
% plot(center(:,1),center(:,2),'yx','LineWidth',2);
% hold off;

The following code generates the image as seen above: (exclusive for GPR)

load MECHANICAL_LAB_EXP_05_11_21_022_P_1A.txt;  % Image text file derived from the device
Bscan = MECHANICAL_LAB_EXP_05_11_21_022_P_1A; % This is scan 11-1. 
clear MECHANICAL_LAB_EXP_05_11_21_022_P_1A;
% Apparent/input dielectric constant = 6.0, subsurface material is
% non-magnetic ( magnetic permeability = 1)
[a, b] = size(Bscan);   % a = cross-range (rx), b = range(r)   (rx,r) = (a,b)
dr = (9 * 12) / (b-1);    % Range resolution, in inches % Penetration depth is 9 ft
d = 4.11 * 12;            % GPR cart rolling distance, in inches  % the rolling distance is 4.11 ft
drx = d / (a - 1); % Cross-range resolution, in inches
r = (0:b-1) * dr;     % Range, in inches
rx = (0:a-1) * drx; % Cross-range, in inches
figure; 
imagesc(rx, r, Bscan'); colormap jet; colorbar; caxis([-2.5e6,3e6]);
xlabel('Cross-range, {\it r_x} (in)'); ylabel('Range, {\it r} (in)');
title(scan_title);
xlim([d-33 d]); ylim([0,22]);
set(gcf, "Position", [744 757 560 420]);
set(gca, 'fontsize', 12); 

Please help me! Thanks!

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DGM 2022 年 3 月 1 日

編集済み: DGM 2022 年 3 月 1 日

I'm not sure I understand what I'm looking at. If the projection of a circular object is a hyperbola, then trying to work off of the curvature might not be as easy as trying to find the asymptotes and minimum range. I don't know if that's appropriate for the available data though. I can't really tell if the image shows a part of a circle or part of a hyperbola.

Koosha 2022 年 3 月 1 日

編集済み: Koosha 2022 年 3 月 1 日

Since the GPR sends EM waves and a steel culvert is a conductor, we have 100% reflection and nothing penetrates below, and metallic objects (culvert, rebar..etc) are depicted as hyperbolas. The range axis depicts the B scan slice depth and the cross-range is the range I rolled the device on the ground, perpendicular to the culvert.

To summarize, the Image is showing a hyperbola, probably thats why the imfindcircles did not work.

Now I am trying to empirically estimate the culvert radius based on the projected hyperbola curve.

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William Rose 2022 年 3 月 1 日

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この回答への直接リンク

https://jp.mathworks.com/matlabcentral/answers/1661155-how-do-i-calculate-the-radius-of-this-culvert-from-the-image-hyberbola#answer_907245

@DGM, this is an inteesting and non-trivial problem. Here are suggesitons, based on my experience using the image processing tools in Labview to determine vl=blood vessel radius from ultrasound images. I have not used the Matlab image processing tools, so my suggesitons are not detailed.

Use the values from the b&w image. Let the user set a depth below which to analyze. Set all array values at shallower depths to zero to avoid getting confused later by the high reflactance values near the surface. In the image you provided, a dpeth of 15" or 16" might be a reasonable depth setting, since the top of the pipe seems to be just below 16". THen you find the depth coordinate for each "column" of the array which is maximum for that column. This is the vertical coordinate of the hyperbola, for that x coordinate. One you have done all that, you have one depth for every x-coordinate. The yu use least squares to find the coefficients of hte hyperbola that give the best fit to the x,y set of points. Then you convert the hyperbola coefficients to a radius.

Good luck.

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William Rose 2022 年 3 月 1 日

編集済み: William Rose 2022 年 3 月 1 日

[edit- corrected typos]

The color figure which you uploaded is a colorized version of an array of intensities. I recommend that you work with the intensity array itself, instead of converting the colorized version back to black and white, which can introduce inconsistencies. If you upload the intensity array, I will show you what I mean in my earlier answer.

Are you sure the GPR does not do a correction for angle, as part of its internal processing of a B-scan? I assume that the image is generated by a phased emission of a signal from a flat transducer placed on the surface. The software adjusts the phasing of an array of individual transmitters to steer the beam back and forth across a range of angles. If the direction of "down" is known (and it is - its perpendicular to the transmitter plate, usually), then it is possible to do an inverse cosine correction for the instantaneous beam angle, so that the image presented is already depth-corrected. Are you confident that this has not already been done in the internal software? Ask the GPR manufcturer, if you don't know.

Koosha 2022 年 3 月 2 日

Thank you @William Rose ! it was a very pristine and well-explained code. I am actually busy for a few deadlines but I will come back to you if I had any problems understanding the indexing part.

Either way, you have solved my problem and thank you so much!

William Rose 2022 年 3 月 4 日

You're welome @SERG!

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その他の回答 (1 件)

Image Analyst 2022 年 3 月 1 日

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この回答への直接リンク

https://jp.mathworks.com/matlabcentral/answers/1661155-how-do-i-calculate-the-radius-of-this-culvert-from-the-image-hyberbola#answer_907375

circlefit.m

Do you just want to find the peak/ridge line of the curved thing at the bottom of the grayscale image? I could probably find that and then to get the radius of curvature at any point, you just have to fit the data of the ridgeline (x,y) coordinates into a circle fitting function. Of course the radius of curvature changes as you move along the ridgeline so that's why you have to specify both the center location and the window width to get the radius of curvature just within that window.

Like @William Rose asked, please attach your actual data (not a pseudocolored image) in a .mat file with the paperclip icon.