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I am facing the following problem in a CUDA kernel. There is an array "cu_fx" in global memory. Each thread has a unique identifier jj and a local loop variable ii and a local float variable temp.

Following code is not working. It is not at all changing cu_fx[jj]. At the end of loop cu_fx[jj] remains 0.

ii = 0;
cu_fx[jj] = 0;
while(ii < l)
{
    if(cu_y[ii] > 0)
        cu_fx[jj] += (cu_mu[ii]*cu_Kernel[(jj-start_row)*Kernel_w + ii]);
    else
        cu_fx[jj] -= (cu_mu[ii]*cu_Kernel[(jj-start_row)*Kernel_w + ii]);

    ii++;
}

But when I rewrite it using a temporary variable temp, it works fine.

ii = 0;
temp = 0;
while(ii < l)
{
    if(cu_y[ii] > 0)
        temp += (cu_mu[ii]*cu_Kernel[(jj-start_row)*Kernel_w + ii]);
    else
        temp -= (cu_mu[ii]*cu_Kernel[(jj-start_row)*Kernel_w + ii]);

    ii++;
}
cu_fx[jj] = temp;

Can somebody please help with this problem. Thanking in advance.

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3  
Are there no more descriptive variable names you could use? –  nightcracker Sep 25 '12 at 21:36
1  
The approach with a temporary variable should definitely be faster, but the code is not complete enough to see anything wrong. Can you provide a complete, compileable example? See these suggestions on asking a successful CUDA question on SO. –  harrism Sep 25 '12 at 22:47
    
Also provide your compilation command line, CUDA version, and GPU you tested on. –  harrism Sep 26 '12 at 1:24
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closed as too localized by talonmies, Sergey K., Jeroen Moons, Clyde Lobo, Paolo Moretti Sep 26 '12 at 8:35

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1 Answer

  1. keep the temp to enhance performance
  2. the while loop will execute only once remove it to enhance performance too.
  3. finally replace += with = and do the same for -=
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1 - I know that but this is out of curiosity 2 - It is while (ii < "ell" not "one") 3 - I tried replacing += and -= with normal =, but that too doesn't work. –  Taher Khokhawala Sep 25 '12 at 21:43
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