Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I make a program that can perform a DCT in c#.

this is my code :

public void TransformToDCT(int xpos, int ypos)
        {
            double[,] cof = new double[8, 8];
            int[,] rows = new int[8, 8];
            int c1=1004 /* cos(pi/16) << 10 */,
                s1=200 /* sin(pi/16) */,
                c3=851 /* cos(3pi/16) << 10 */,
                s3=569 /* sin(3pi/16) << 10 */,
                r2c6=554 /* sqrt(2)*cos(6pi/16) << 10 */,
                r2s6=1337 /* sqrt(2)*sin(6pi/16) << 10 */,
                r2=181; /* sqrt(2) << 7*/

            int x0,x1,x2,x3,x4,x5,x6,x7,x8;
            /* transform rows */
            for (int i = 0; i < 8; i++)
            {
                x0 = src.GetRoundPixel(xpos + 0, ypos + i);
                x1 = src.GetRoundPixel(xpos + 1, ypos + i);
                x2 = src.GetRoundPixel(xpos + 2, ypos + i);
                x3 = src.GetRoundPixel(xpos + 3, ypos + i);
                x4 = src.GetRoundPixel(xpos + 4, ypos + i);
                x5 = src.GetRoundPixel(xpos + 5, ypos + i);
                x6 = src.GetRoundPixel(xpos + 6, ypos + i);
                x7 = src.GetRoundPixel(xpos + 7, ypos + i);

                /* Stage 1 */
                x8 = x7 + x0;
                x0 -= x7;
                x7 = x1 + x6;
                x1 -= x6;
                x6 = x2 + x5;
                x2 -= x5;
                x5 = x3 + x4;
                x3 -= x4;

                /* Stage 2 */
                x4 = x8 + x5;
                x8 -= x5;
                x5 = x7 + x6;
                x7 -= x6;
                x6 = c1 * (x1 + x2);
                x2 = (-s1 - c1) * x2 + x6;
                x1 = (s1 - c1) * x1 + x6;
                x6 = c3 * (x0 + x3);
                x3 = (-s3 - c3) * x3 + x6;
                x0 = (s3 - c3) * x0 + x6;

                /* Stage 3 */
                x6 = x4 + x5;
                x4 -= x5;
                x5 = r2c6 * (x7 + x8);
                x7 = (-r2s6 - r2c6) * x7 + x5;
                x8 = (r2s6 - r2c6) * x8 + x5;
                x5 = x0 + x2;
                x0 -= x2;
                x2 = x3 + x1;
                x3 -= x1;

                /* Stage 4 and output */
                rows[i,0] = x6;
                rows[i,4] = x4;
                rows[i,2] = x8 >> 10;
                rows[i,6] = x7 >> 10;
                rows[i,7] = (x2 - x5) >> 10;
                rows[i,1] = (x2 + x5) >> 10;
                rows[i,3] = (x3 * r2) >> 17;
                rows[i,5] = (x0 * r2) >> 17;
            }

            /* transform columns */
            for (int i = 0; i < 8; i++)
            {
                x0 = rows[0,i];
                x1 = rows[1,i];
                x2 = rows[2,i];
                x3 = rows[3,i];
                x4 = rows[4,i];
                x5 = rows[5,i];
                x6 = rows[6,i];
                x7 = rows[7,i];

                /* Stage 1 */
                x8 = x7 + x0;
                x0 -= x7;
                x7 = x1 + x6;
                x1 -= x6;
                x6 = x2 + x5;
                x2 -= x5;
                x5 = x3 + x4;
                x3 -= x4;

                /* Stage 2 */
                x4 = x8 + x5;
                x8 -= x5;
                x5 = x7 + x6;
                x7 -= x6;
                x6 = c1 * (x1 + x2);
                x2 = (-s1 - c1) * x2 + x6;
                x1 = (s1 - c1) * x1 + x6;
                x6 = c3 * (x0 + x3);
                x3 = (-s3 - c3) * x3 + x6;
                x0 = (s3 - c3) * x0 + x6;

                /* Stage 3 */
                x6 = x4 + x5;
                x4 -= x5;
                x5 = r2c6 * (x7 + x8);
                x7 = (-r2s6 - r2c6) * x7 + x5;
                x8 = (r2s6 - r2c6) * x8 + x5;
                x5 = x0 + x2;
                x0 -= x2;
                x2 = x3 + x1;
                x3 -= x1;

                /* Stage 4 and output */
                cof[0, i] = (double)((x6 + 16) >> 3);
                cof[4, i] = (double)((x4 + 16) >> 3);
                cof[2, i] = (double)((x8 + 16384) >> 13);
                cof[6, i] = (double)((x7 + 16384) >> 13);
                cof[7, i] = (double)((x2 - x5 + 16384) >> 13);
                cof[1, i] = (double)((x2 + x5 + 16384) >> 13);
                cof[3, i] = (double)(((x3 >> 8) * r2 + 8192) >> 12);
                cof[5, i] = (double)(((x0 >> 8) * r2 + 8192) >> 12);


            }
            SetCoeff(cof, xpos, ypos);

            meanDC[blok] = cof[0, 0];
            if (cof[0, 0] > maxDC) maxDC = cof[0, 0];
            varian[blok] = Varian(cof);
            blok++;

        }

this one is to get c[0,0] DCT.

public double GetMeanDC(int Blok)
        {
            return meanDC[Blok];
        }

and this one to get the mean Image DC DCT coeff :

public double GetMeanImage()
        {
            double r = 0;
            for (int i = 0; i < totalBlok; i++)
            {
                r = r + meanDC[i];
            }
            r = r / (double)totalBlok;
            return r;
        }

the problem is in the main program. I want to calculate the exponential like in this equation : x = exp(- ((miuN - miu)^2)), but in my program it always return an 0.

this is my code in main program :

miu = oriDCT.GetMeanImage();
miuN = oriDCT.GetMeanDC(blok) / oriDCT.GetMaxDC();
double deltamiu = (miuN - miu) * (miuN - miu);
double expon = (double)Math.Exp(-(deltamiu));

could anyone help me, how to solved this problem? thx

share|improve this question
    
What values are you getting for miu and miuN when you're seeing expon be 0? –  Gjeltema Jun 21 '13 at 0:44
    
miu is mean of DC coefficient of all blocks in DCT domain (average of C[0,0] ), miuN is coefficient ( C[0,0] ) at blok i. –  christ2702 Jun 21 '13 at 3:16
1  
I meant what are their values just before you call the expon line, not what the variables represent. –  Gjeltema Jun 21 '13 at 12:46

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Browse other questions tagged or ask your own question.