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In reference to : C# wpf EMGU: How to detect and count a spiral's turns

I am mot able to get count even in the pixel based calculation also.

If I have attached image how to start with the counting the turns.

I tried the FindContours(); but doesn't quiet get the turns segregated which it can't. Also the matchshape() I have the similarity factor but for whole coil.

So I tried as follows for turn count :

 public static int GetSpringTurnCount()
        {
            if (null == m_imageROIed)
                return -1;
            int imageWidth = m_imageROIed.Width;
            int imageHeight = m_imageROIed.Height;

            if ((imageWidth <= 0) || (imageHeight <= 0))
                return 0;

            int turnCount = 0;

            Image<Gray, float> imgGrayF = new Image<Gray, float>(imageWidth, imageHeight);

            CvInvoke.cvConvert(m_imageROIed, imgGrayF);

            imgGrayF = imgGrayF.Laplace(1); // For saving integer overflow.

            Image<Gray, byte> imgGray = new Image<Gray, byte>(imageWidth, imageHeight);
            Image<Gray, byte> cannyEdges = new Image<Gray, byte>(imageWidth, imageHeight);

            CvInvoke.cvConvert(imgGrayF, imgGray);

            cannyEdges = imgGray.Copy();

            //cannyEdges = cannyEdges.ThresholdBinary(new Gray(1), new Gray(255));// = cannyEdges > 0 ? 1 : 0;
            cannyEdges = cannyEdges.Max(0);

            cannyEdges /= 255;

            Double[] sumRow = new Double[cannyEdges.Cols];
            //int sumRowIndex = 0;
            int Rows = cannyEdges.Rows;
            int Cols = cannyEdges.Cols;
            for (int X = 0; X < cannyEdges.Cols; X++)
            {
                Double sumB = 0;

                for (int Y = 0; Y < cannyEdges.Rows; Y ++)
                {
                    //LineSegment2D lines1 = new LineSegment2D(new System.Drawing.Point(X, 0), new System.Drawing.Point(X, Y));

                    Double pixels = cannyEdges[Y, X].Intensity;

                    sumB += pixels;


                }
                sumRow[X] = sumB;
            }

            Double avg = sumRow.Average();

List<int> turnCountList = new List<int>();

            int cnt = 0;
            foreach(int i in sumRow)
            {
                sumRow[cnt] /=  avg;
                if(sumRow[cnt]>3.0)
                turnCountList.Add((int)sumRow[cnt]);
                    cnt++;
            }
            turnCount = turnCountList.Count();

 cntSmooth = cntSmooth * 0.9f + (turnCount) * 0.1f;
            return (int)cntSmooth;
    }

enter image description here

Any help will be helpful. I am next trying surf.

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Edit: Adding samples. If u like it do it. enter image description here enter image description here enter image description here enter image description here enter image description here enter image description here

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Edit: Tried another algo:

  1. ROI then Rotate ( biggest thin light blue rectangle )
  2. GetMoments() shrink ROI height and position.Y using the moment.
  3. Set the shrinked ROI and ._And() it with a blank image. ( Gray region with green rectangle )
  4. cut the image into half-half.
  5. contour and fit ellipse.
  6. get maximum number of fitted ellipses.

Later will work on better algos and results.

enter image description here

share|improve this question
    
In general, your questions are difficult to understand. Consider getting someone adept at English to proofread your questions for clarity and legibility. –  Robert Harvey Jan 10 '13 at 6:23

1 Answer 1

Assuming the bigger cluster of white colour is the spring

--EDIT--

  1. Apply inverse threshold to the picture and fill corners with flood fill algorithm.
  2. Find the rotated bounding box of the biggest white cluster using findContours and minAreaRect
  3. Trace the box longer axis doing the following
  4. for each pixel along the axis trace axis line perpendicular going through current pixel
  5. This line will cross the spring in minimum two points.
  6. Find the point with the bigger distane from the axis
  7. This will create collection on points similar to sine function
  8. Count the peaks or clusters of this collection this will get twice the number of loops.

All this assuming you don't have high noise in the picture.

share|improve this answer
    
dear @Michael Kupchick: I think I already have covered up all the steps but 4. How wud I go about step 4? I think averaging division in my algorithm somehow does that. What do u say? –  Rick2047 Dec 13 '12 at 10:08
    
Yes in fact I didn't notice that you run Laplacian on the image. I will see at your code again and post what I found. –  Michael Kupchick Dec 13 '12 at 13:21
    
Wud be thankful to you :). I'll put some variety of images. Just choose on anyone. –  Rick2047 Dec 14 '12 at 4:33
    
I'll post my code today evening –  Michael Kupchick Dec 17 '12 at 7:11
    
wow. please check my update. –  Rick2047 Dec 17 '12 at 9:00

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