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I am trying to simulate matrix multiplication in cuda C. Everything is correct except the output.

This is my program:

#include <stdio.h>
#include <cuda.h>
#include <time.h>
#include <conio.h>
#define     N       4
#define TILE_WIDTH 2

__global__ void MatMul(int*A, int* B, int* C) {  

    int sum; 
    int idx = threadIdx.x; 
    int idy = threadIdx.y; 
    int bx = blockIdx.x; 
    int by = blockIdx.y; 
    int k ,uidx , uidy , i; 
    uidx = bx*TILE_WIDTH + idx;
    uidy = by*TILE_WIDTH + idy; 
    sum = 0;


    // Allocating memory in shared memory

    __shared__ int temp1[TILE_WIDTH][TILE_WIDTH];
    __shared__ int temp2[TILE_WIDTH][TILE_WIDTH];

    //copying the data to shared memory 

    for( i =0;i<N/TILE_WIDTH; i++) 
    { 
        temp1[idy][idx] = A[uidy * N + ((i*TILE_WIDTH)+uidx)%N]; 
        temp2[idy][idx] = B[(i*TILE_WIDTH+uidy * N)%N + uidx]; 
        __syncthreads();

        // multiplying matrices in shared memory 

        for(k=0 ; k < TILE_WIDTH;k++) {
            sum = sum + temp1[idy][k]*temp2[k][idx];
        }
    }

    // synchronizing the threads 

    __syncthreads(); 
    C[uidy*N + uidx] = sum;
}

int main( void ) {

    int a[N][N], b[N][N], c[N][N];     //host copies of a,b,c

    int *dev_a, *dev_b, *dev_c;        //device copies of a,b,c

    // allocate the memory on the GPU
    cudaMalloc( (void**)&dev_a, N * N * sizeof(int) );
    cudaMalloc( (void**)&dev_b, N * N * sizeof(int) );
    cudaMalloc( (void**)&dev_c, N * N * sizeof(int) );

    // fill the matrices 'a' and 'b' on the CPU

    for (int i=0; i<N; i++) {
        for (int j=0; j < N; j++) {
            a[i][j] = j+3;
            b[i][j] = i+6;
        }
    }
    //copy above a,b values to device

    cudaMemcpy( dev_a, a, N * N * sizeof(int), cudaMemcpyHostToDevice );
    cudaMemcpy( dev_b, b, N * N * sizeof(int), cudaMemcpyHostToDevice );
    // Prepare timer
    cudaEvent_t start, stop;
    float time;

    cudaEventCreate(&start);
    cudaEventCreate(&stop);

    //start record
    cudaEventRecord(start, 0);

    // Kernel invocation with N threads 
    dim3 dimGrid(2,2,1); 
    dim3 dimBlock(TILE_WIDTH,TILE_WIDTH,1);
    MatMul<<<dimGrid , dimBlock>>> (dev_a, dev_b, dev_c);

    //stop record
    cudaEventRecord(stop, 0);
    cudaEventSynchronize(stop);

    //this is operation time
    cudaEventElapsedTime(&time, start, stop);

    //clean up      
    cudaEventDestroy(start);
    cudaEventDestroy(stop);

    //copy result to host
    cudaMemcpy(c, dev_c, N * N * sizeof(int), cudaMemcpyDeviceToHost );

    //output..
    for (int i=0; i < N; i++){
        for (int j=0; j < N; j++)
            printf( "%d ", a[i][j]);
        printf ("  ");
        for (int j=0; j < N; j++)
            printf( "%d ", b[i][j]);
        printf ("  =  ");
        for (int j=0; j < N; j++)
            printf( "%d ", c[i][j]);
        printf ("\n");
    }



    //free the allocated memory in device
    cudaFree( dev_a );
    cudaFree( dev_b );
    cudaFree( dev_c );
    printf("\n multiplication done!!!\n");
    printf("\n");
    printf(" time elapsed in ms=%f\n",time);
    getch();
    return 0;
}

And this is my output:

3 4 5 6     6 6 6 6         108 108 115 115
3 4 5 6     7 7 7 7         108 108 115 115
3 4 5 6     8 8 8 8         108 108 115 115
3 4 5 6     9 9 9 9         108 108 115 115

It is showing wrong values. Please tell me any error in my program. I'm very new to CUDA C.

share|improve this question

closed as not a real question by sidyll, talonmies, Jens Gustedt, Robert Harvey Oct 14 '11 at 2:15

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
where are the equal signs in the output? –  Foo Bah Oct 12 '11 at 18:32
    
Foo Bah is right. The output you claim does NOT match the code. Specifically, the lack of the " = ". Please show the actual output of your program. –  abelenky Oct 12 '11 at 19:06
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2 Answers 2

While I don't know what is wrong with your program, I think you should be able to diagnose it better using simpler matrices. Have you tried multiplying two Identity matrices? Or filled with all 1s. Repeated tests with various simple matrices should demonstrate how the cells are being combined.

Ultimately, I think you'll find a problem with the way you use TILE_WIDTH, but I cannot be sure.

share|improve this answer
    
thanks..actually i am from electrical background but in my M.Tech. project i am using CUDA C.so please tell me if i want to simulate a 200 by 200 matrix then what should be the values of TILE_WIDTH & dim3 dimGrid() –  user991852 Oct 16 '11 at 5:37
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This should fix it (in the i loop):

temp1[idy][idx]= A[TILE_WIDTH*(by*N+i) + idx+idy*N];
temp2[idy][idx]= B[TILE_WIDTH*(bx+N*i) + idx+idy*N];
share|improve this answer
    
thank you so much...it worked.. –  user991852 Oct 14 '11 at 16:57
    
actually i am from electrical background but in my M.Tech. project i am using CUDA C.so please tell me if i want to simulate a 200 by 200 then what should be the values of TILE_WIDTH & dim3 dimGrid() so that i can get minimum multiplication time –  user991852 Oct 14 '11 at 17:20
    
It's been a while since I've used CUDA, so I can't offer you a very specific answer. One thing you can always do is benchmark different tile sizes, which allows you to see which one fits your algorithm and input data size best. –  Vlad Oct 14 '11 at 18:03
    
ok..then suggest me a book for cuda c or any materials which is good & easy to understand –  user991852 Oct 16 '11 at 5:36
    
You can buy some from Amazon. The CUDA Programming Guide is always useful if you want to learn about what you can do in CUDA and how. Analysis-driven optimization should help with optimizing your code. –  Vlad Oct 16 '11 at 9:13
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