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I need to draw two types of histogram, namely monodimensional and tridimensional. I'm a newbie to EMGU and all of the samples I found on the net are in C++ or C. Are there any samples using C# and Emgucv?

Thanks for helping.

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3 Answers

The following code will segment the RED GREEN and BLUE Histogram data and put them in an array of floats for whatever use you want.

float[] BlueHist;
float[] GreenHist;
float[] RedHist;

Image<Bgr, Byte> img = new Image<Bgr, byte>("ImageFileName");

DenseHistogram Histo = new DenseHistogram(255, new RangeF(0, 255));

Image<Gray, Byte> img2Blue = img[0];
Image<Gray, Byte> img2Green = img[1];
Image<Gray, Byte> img2Red = img[2];


Histo.Calculate(new Image<Gray, Byte>[] { img2Blue }, true, null);
//The data is here
//Histo.MatND.ManagedArray
BlueHist = new float[256];
Histo.MatND.ManagedArray.CopyTo(BlueHist, 0);

Histo.Clear();

Histo.Calculate(new Image<Gray, Byte>[] { img2Green }, true, null);
GreenHist = new float[256];
Histo.MatND.ManagedArray.CopyTo(GreenHist, 0);

Histo.Clear();

Histo.Calculate(new Image<Gray, Byte>[] { img2Red }, true, null);
RedHist = new float[256];
Histo.MatND.ManagedArray.CopyTo(RedHist, 0);

and this will do the greyscale histogram:

float[] GrayHist;

Image<Gray, Byte> img_gray = new Image<Gray, byte>("ImageFileName");

Histo.Calculate(new Image<Gray, Byte>[] { img_gray }, true, null);
//The data is here
//Histo.MatND.ManagedArray
GrayHist = new float[256];
Histo.MatND.ManagedArray.CopyTo(GrayHist, 0);

Hope this helps,

Cheers,

Chris

[Edit]

To draw the histogram you will need to use either you own or a designed controls such as Zedgraph (This is supplied with with EMGU) here is a very good article on codeproject that shows it's use.

http://www.codeproject.com/KB/graphics/zedgraph.aspx

Cheers

Chris

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The first paremeter of Calculate is an array of Image. Does it mean I can give it { img2Blue, img2Red,img2Green } and it calculates all? Can you demonstrate this usage? Thank you very much. –  LoveRight Oct 18 '12 at 15:39
    
Just a quick correction on Chris's post DenseHistogram Histo = new DenseHistogram(255, new RangeF(0, 255)); should be DenseHistogram Histo = new DenseHistogram(256, new RangeF(0, 256)); Else you will be missing any values in your 255 bin as I just experienced when I created a laplacian of by image. –  foofunner Mar 11 '13 at 3:43
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Displaying Histograms in Emgu is super easy and fun. Just make a histogramBox control on your form, then call this in your loop and you are done.

        histogramBox1.ClearHistogram();
        histogramBox1.GenerateHistograms(frame, 256);
        histogramBox1.Refresh();
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Tridimensional histogram

Image<Bgr, Byte>[] inp = new Image<Bgr, byte>("fileName.jpg");
int nBins = 256;
DenseHistogram hist = new DenseHistogram(new int[] { nBins, nBins, nBins }, new RangeF[] { new RangeF(0, 255), new RangeF(0, 255), new RangeF(0, 255) });
hist.Calculate(inp.Split(), false, null);

// To get value of single bin
int b = 255; int g = 0; int r = 0;  //blue
int count = Convert.ToInt32(hist.MatND.ManagedArray.GetValue(b, g, r));  //count = no of pixels in color Bgr(b,g,r)

//To get all values in a single array
List<Tuple<Bgr, int>> histVal = new List<Tuple<Bgr, int>>(nBins * nBins * nBins);
for (int i = 0; i < nBins; i++)
    for (int j = 0; j < nBins; j++)
        for (int k = 0; k < nBins; k++)
            histVal.Add(new Tuple<Bgr, int>(new Bgr(i, j, k), Convert.ToInt32(hist.MatND.ManagedArray.GetValue(i, j, k))));

Monodimensional histogram

int nBins = 256;
float[] valHist = new float[nBins];
Image<Gray, Byte>[] inp = new Image<Gray, byte>("fileName.jpg");
DenseHistogram hist = new DenseHistogram(nBins, new RangeF(0, 255));
hist.Calculate(new Image<Gray, Byte>[] { inp }, true, null);
hist.MatND.ManagedArray.CopyTo(valHist,0);
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