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I am accepting an input from user as a float value.

This value can go up to "10 raised to power 18".

The next step involves finding all the divisors of this number. for which i am doing the following:

      for(i=2; i<=n/2 ; i++)
      {
        if(n%i==0) 
           v.push_back(i);
      }

Here, n is the number entered by the user.

Problem is that n is float and using it in if loop index causes it's value to be limited to '10 raised to the power 9'

Hence, is there any way to use data type other than int for using values of range '10 raised to power 18'?

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Does your compiler support 64-bit integers, using perhaps long long? –  Greg Hewgill Apr 27 '12 at 7:11
    
How would I confirm that? –  Aman Kejriwal Apr 27 '12 at 7:13
1  
By definition floats don't have divisors, actually. However if you want an integer-like mod you could use fmod –  hroptatyr Apr 27 '12 at 7:20
    
@hroptatyr: Er, yes, floats can have divisors, because they can represent integers. (Otherwise you couldn't factor numbers in JavaScript, because all numbers are floats in JavaScript.) –  Dietrich Epp Apr 27 '12 at 7:29
1  
@AmanKejriwal: printf("%d\n", sizeof(long long)); would confirm it. If you get an error, then your compiler doesn't understand long long. If you get a result of 8, then your compiler's long long integers are 64 bits. –  Greg Hewgill Apr 27 '12 at 7:31

4 Answers 4

up vote 3 down vote accepted

You can use an unsigned long long which is 264 or roughly 1019

This assumes that your compiler supports 64-bit integers.

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1  
I added the "to the power" tag for you :) –  Pavan Manjunath Apr 27 '12 at 7:15
    
@PavanManjunath: Thanks buddy! –  Nick Apr 27 '12 at 7:15
    
Hi, using unsigned long long on n, the input value is fine. But, when I do i = n/2, the value of i is limited to the int range. I have also declared i as unsigned long long but it is not helping –  Aman Kejriwal Apr 27 '12 at 7:18
    
What's your compiler? –  Nick Apr 27 '12 at 7:28
1  
Also I think you'd need to speciy 2 as a ULL. i.e i = n / 2ULL –  Nick Apr 27 '12 at 7:28

The question has been answered (use long long int), but wanted to point out that floats are called "floating point" for a reason. They incorporate an exponent, basically the position of the decimal point, which determines the precision of the mantissa. This conveniently allows you to both represent small numbers with high precision and large numbers with low precision, but not both at the same time.

For more details: http://en.wikipedia.org/wiki/IEEE_754-2008

Try this:

int main(void)
{
    float i = 16777217.0f;
    printf("i = %f\n", i);
    i++;
    printf("i+1 = %f\n", i);
}

w/ 32-bit floats this returns:

i = 16777216.000000
i+1 = 16777216.000000

So question of the day: what do you think will happen if you have a loop like this?

for(float f; f < 20000000; ++f) 
{
    // do stuff
}
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Sure you can use other data types for loop , use any of the types mentioned here

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I think a long double should be substantial.

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