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Here's the code which determines whether a matrix has orthogonal columns or not . The code is running properly when I have n which is divisible by 4, but when n is not divisible by 4, the program unexpectedly stops (mentioned position in the code)

for(i=0;i<n-1;i++)
{
        for(j=i+1;j<n;j++)
        {
            sum = 0;  

            for(k=0;k<n-4;k+=4)
            {
                  X=_mm_load_ps(&D[n*i+k]);
                  Y=_mm_load_ps(&D[n*j+k]);
                   printf("fff");  //not printing , program stops here
                  acc = _mm_add_ps(acc,_mm_mul_ps(X,Y));

            }

            _mm_store_ps(&temp[0],acc);
            sum = temp[0]+temp[1]+temp[2]+temp[3];

            for(;k<n;k++){
                sum = sum + D[i*n+k]*D[j*n+k];
            }

            if(sum ==0)
                return 1;
         }

     }

    return 0;
}

What could be the possible reason for that? How do you handle arrays with size not divisible by 4?

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3  
Just add in dummy values at the end of the matrix and ignore the results. ie round n up to a multiple of 4. and populate the dummy diagonals as if it was the identity matrix (so the extra dimensions are orthogonal) –  paddy Jan 17 '13 at 0:55
2  
Alternatively stop the loop a few iterations early and revert to a non-vectorized loop to finish it up. –  Mysticial Jan 17 '13 at 1:02
1  
paddy , yes that's one way . and mystical , i've tried but with no success , as you can see in the code . Could you please explain a bit more , what would be the correct way . –  user1304 Jan 17 '13 at 1:10
    
ive tried doing k<(n/4)*4 , but that doesn't work –  user1304 Jan 17 '13 at 1:21

1 Answer 1

up vote 3 down vote accepted

Your code that determines when to stop early is not correct in the for(k...) loop. Try something like this:

int n4 = n - (n % 4);   // smallest multiple of 4 <= n
for (k=0; k < n4, k+=4) //replaces: for(k=0;k<n-4;k+=4) 
{ // loop body
}
for (k=n4; k < n; k++)
{ // non-vectorized loop for the last few columns
}
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