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I'm new to CUDA , and I want to implement a sum of multiplication as this equation

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I wrote this code in CUDA , but it doesn't give the correct answer

mulFV1[idx] = f[idx][idy]*compV2[idy];
mulFV2[idy] = f[idx][idy]*compV1[idx];

and then , I send the the arrays mulFV1 and mulFV2 to a reduction device function..

The question is how can I debug it?

Note :To be in the picture mulFV1 is concern in the rows and mulFV2 concern in the columns

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The result is placed in a variable R[I]? Like: R[I] = f[K][I]*V1[K]? –  Tudor Dec 9 '11 at 17:21
    
that problem are you solve? what type of f? Do you want to get two arrays as output? –  Yappie Dec 9 '11 at 17:28
    
@Tudor I want the output to be one variable , but because I use CUDA I have to put the result of each thread in an array and add them in another function. –  asma Dec 9 '11 at 20:14
    
@Yappie f is a matrix contains 0 or 1 only, V1 and V2 are also either 0 or 1. I need the output to be one value only for each row in the first eq. and one value for each column in the 2nd eq. –  asma Dec 9 '11 at 20:22
    
Notice, that you write in one mulFV1[idx] memory for each concurrently executed thread with this idx(in case of 2-dimentional kernel execution idx is not unique), so it is better to use atomicAdd to prevert race conditions. –  Yappie Dec 9 '11 at 23:20

2 Answers 2

up vote 1 down vote accepted

I think, that you kernel may be look like this following

__global__ void kernel_code(const int* f,const int* v1,const int* v2, int* outv1, int* outv2)
{
    int idx = blockIdx.x * blockDim.x + threadIdx.x;
    int idy = blockIdx.y * blockDim.y + threadIdx.y;
    if (idx<MAX_X && idy <MAX_Y)
    {
        if(idx==0)
        {
            outv2[idy]=0;
        }
        if(idy==0)
        {
            outv1[idx]=0;
        }
        __syncthreads();

        atomicAdd(&(outv1[idx]),f[idy*MAX_Y+ idx]*v2[idy]);
        atomicAdd(&(outv2[idy]),f[idy*MAX_Y+idx]*v1[idx]);
   }
}
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Dear Yappie, can you told me please about the if statements ( if(idx==0) and if(idy==0) .. For what ? –  asma Dec 11 '11 at 15:02
    
Thank you Yappie, veeeery much , it works fine , I'm really glad to you.. –  asma Dec 11 '11 at 15:14
    
This statement is used because only one thread must provide initial initialization. outv1 would be initialized only idx == 0 for all 16th threads,idy is same. –  Yappie Dec 11 '11 at 15:24
    
Execuse me Yappie, I face a new race condition problem, I thought after I reset the values , coz I used while loop.. how to fix it this time .. help plz –  asma Jan 6 '12 at 14:33
    
Could you show me your code? I'm not clearly understand your while loop problem. –  Yappie Jan 6 '12 at 16:10

Your variable names indicate that the first line is the multiplication using vector v1 and the second with v2. But instead you are doing it cross-over. Maybe you want to have

mulFV1[idx] = f[idx][idy]*compV1[idy];
mulFV2[idy] = f[idx][idy]*compV2[idx];

with indices 1 and 2 exchanged?

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If you check the mathematical equations in my question , you will know that the first eq. is concerned in rows so the i doesn't change. And for 2nd eq. is concerned in columns so the i doesn't change.. –  asma Dec 9 '11 at 20:25

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