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I tried to loop thru an array pointer to get the even numbers in that array.

void even_element(double* a, const int SIZE)
{
for (int count = 0; count < SIZE; count ++)
{
    if(a[count] % 2 == 0) //Error here
    {
        cout << *(a + count) << " ";
    }
}
}

I know if I do in the main method where the array is declared, I can do this without using pointer :

for (int count = 0; count < SIZE; count ++)
{
    if(num_array[count] % 2 == 0)
    {
        cout << num_array[count] << " ";
    }
}

However, when I try to do this with pointer, I do not know how to loop thru the elements in an array. Can somebody please guide me?

Thanks in advance.

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2  
What error are you getting? You have more information about the problem than we do. –  Peter Wood May 29 '13 at 8:42
    
Expression must have integral or enum type –  20 Cents May 29 '13 at 8:42
    
Are you sure the error isn't in this line cout << *(a + count) << " ";? –  Steve May 29 '13 at 8:42
    
Nope. it's at the if statement there –  20 Cents May 29 '13 at 8:44
1  
The expression doesn't have an integral or enum type. You can't take the modulus of a double. –  Peter Wood May 29 '13 at 8:50

2 Answers 2

up vote 4 down vote accepted

When working with floating point numbers, you should use fmod instead of the integer modulo operator %.

However, be careful when dealing with floating point values: you cannot directly compare values. You have to compare the absolute difference between the value and a very small, epsilon value.

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You can compare fmod(a[count], 2) == 0.0. However, depending on what you want to calculate, you man want to know which of you doubles are nearly even, because equality is hard to achieve with doubles. You can use then fmod(a[count], 2) < epsillon where epsillon is a very small double. –  Matthieu Rouget May 29 '13 at 9:06

you can't use '%' with double. following link is useful for you:

Can't use modulus on doubles?

share|improve this answer
    
You should explain what the error is (she may be quite new to floating point arithmetics) –  BlueTrin May 29 '13 at 8:43
    
The same error is still there –  20 Cents May 29 '13 at 8:44
    
*(a + count) is exactly the same as a[count]. –  Elazar May 29 '13 at 8:44
    
Ya but this error : Expression must have integral or enum type is still there –  20 Cents May 29 '13 at 8:46
    
@Carol, see what Matthieu Rouget answered you. I commented on this answer, not on your comment. –  Elazar May 29 '13 at 8:48

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