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I just want to reproduce the result as posted here.

I rewrite the source to EmguCV form.

    Image<Bgr, byte> image = new Image<Bgr, byte>(@"B:\perspective.png");

    CvInvoke.cvShowImage("Hello World!", image);

    float[,] scrp = { { 43, 18 }, { 280,40}, {19,223 }, { 304,200} };
    float[,] dstp = { { 0,0}, { 320,0}, { 0,240 }, { 320,240 } };
    float[,] homog = new float[3, 3];


    Matrix<float> c1 = new Matrix<float>(scrp);
    Matrix<float> c2 = new Matrix<float>(dstp);
    Matrix<float> homogm = new Matrix<float>(homog);


    CvInvoke.cvFindHomography(c1.Ptr, c2.Ptr, homogm.Ptr, Emgu.CV.CvEnum.HOMOGRAPHY_METHOD.DEFAULT, 0, IntPtr.Zero);
    CvInvoke.cvGetPerspectiveTransform(c1, c2, homogm);

    Image<Bgr, byte> newImage = image.WarpPerspective(homogm, Emgu.CV.CvEnum.INTER.CV_INTER_CUBIC, Emgu.CV.CvEnum.WARP.CV_WARP_DEFAULT, new Bgr(0, 0, 0));

    CvInvoke.cvShowImage("newImage", newImage);

This is the testing image. enter image description here

The newImage is always a blank image.

Can anyone help me make my source code work???

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1 Answer 1

up vote 4 down vote accepted

Hopefully, I found the answer by myself.

I rewrote the source to the wrong form. I should use Point[] and there is CameraCalibration.GetPerspectiveTransform function to use.

    PointF[] srcs = new PointF[4];
    srcs[0] = new PointF(253, 211);
    srcs[1] = new PointF(563, 211);
    srcs[2] = new PointF(563, 519);
    srcs[3] = new PointF(253, 519);


    PointF[] dsts = new PointF[4];
    dsts[0] = new PointF(234, 197);
    dsts[1] = new PointF(520, 169);
    dsts[2] = new PointF(715, 483);
    dsts[3] = new PointF(81, 472);

    HomographyMatrix mywarpmat = CameraCalibration.GetPerspectiveTransform(srcs, dsts);
    Image<Bgr, byte> newImage = image.WarpPerspective(mywarpmat, Emgu.CV.CvEnum.INTER.CV_INTER_NN, Emgu.CV.CvEnum.WARP.CV_WARP_FILL_OUTLIERS, new Bgr(0, 0, 0));
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cool,tnx! Do you have an idea how can I get the ratio of the edges if I have some image with rectangular object ? –  Michael May 6 '13 at 14:50
1  
What do you mean by "the ratio of the edges"? If you mean the values such as 253, 211, you have to measure the images manually in Paint program or other similar programs. –  LoveRight May 7 '13 at 8:15

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