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if(number > 999999999)
{
    int n_billions;
    n_billions = number/1000000000;
    cout << number;

    number -= n_billions*1000000000;
    cout << number;
}

If I make number = 9000000000 (nine billions), I don't understand why after I run the program the variable number instead of being 0 is 8589934592.

Can it be that number is a long long type and n_billions is a int?

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6  
The short answer: yes. The long answer: yeeees. –  Doorknob Dec 20 '12 at 22:30
    
Nice overflow.. –  Rapptz Dec 20 '12 at 22:30
    
number -= n_billions*1000000000LL; –  Daniel Fischer Dec 20 '12 at 22:31
    
But I asked before if I can substract a int to a long long and other people told me that the casting is automatic. –  Paolo Caponeri Dec 20 '12 at 22:32
1  
Rather than multiplying and subtracting, you can use the remainder operator: number = number % 1000000000, which can be written more compactly as number %= 1000000000;. –  Pete Becker Dec 20 '12 at 22:40

1 Answer 1

You need to make sure that you multiply the number of billions by a long long, like this:

number -= n_billions*1000000000LL;

Otherwise, you get an integer overflow for n_billions greater than 2.

long long number = 9000000123LL;
if(number > 999999999) {
    int n_billions;
    n_billions = number/1000000000;
    cout << number << endl;

    number -= n_billions*1000000000LL;
    cout << number << endl;
}

The above prints 123 as expected.

Of course this is equivalent to obtaining a remainder, like this:

number %= 1000000000;
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