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So basically, I have something like this - Input file with 2 integers. Code, something like this -

#include <iostream>
#include <fstream>
using namespace std;
int main() {
  unsigned long long n, k;
  ifstream input_file("file.txt");
  input_file >> n >> k;
  if(n >= 10^9 || k >= 10^9) {
    cout << "0" << endl;
  }
  return 0;
}

So, is there any chance to check if any of theese two integers are bigger than 10^9? Basically, if I assign thoose integers to unsigned long long, and if they are bigger than 10^9, they automatically turn to some random value, that fits inside unsigned long long, am I right, and that means that there is no chance to check it, or am I'm missing something?

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1  
Just a little warning: 10^9 in C++ is the xor operation between 10 and 9. To obtain what you want you should either use a double literal like 1e9, or write 1000000000 explicitly, remembering the appropriate type suffix (e.g. ul) if on your platform int isn't big enough for it. –  Matteo Italia Mar 11 '12 at 17:49
1  
@MatteoItalia: Integer literals always have a type that's big enough, provided such a type exists. The suffix is just a minimum. –  Kerrek SB Mar 11 '12 at 17:55

4 Answers 4

up vote 1 down vote accepted

On most platforms, an unsigned long long will be able to store 109 with no problem. You just need to say:

if (n >= 1000000000ull)

If an unsigned long long is 64-bits, for example, which is common, you can store up to 264

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Cheers, that helped me ;)! Will accept as soon as possible. –  Vdas Dorls Mar 11 '12 at 17:52

I'm bad at counting zeroes. That's the machine's job. What about 1e9 instead of a bit operation 10^9.

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So basically, if I write if(k >= 1e9) { cout << "0"; } that will work? –  Vdas Dorls Mar 11 '12 at 17:44
    
Why don't you go and try it? –  Tom Wijsman Mar 11 '12 at 17:46
    
There is some room for numbers after 1e9 with long long numbers. This should work. For very large integers one has to implement a simple string comparison in style what @user1071136 suggests. –  progo Mar 11 '12 at 17:48

Read into a string:

std::string s;
input_file >> s;

and check if it's longer than 9 characters. If it's exactly 9, see that it's not exactly "1000000000" (1 and eight 0's).

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For 10^9 you need to write 1000000000LL. In C++ ^ is the bitwise XOR operator, not exponentiaion. You also need the LL to ensure that the literal constant is interpreted as long long rather than just int.

if (n >= 1000000000LL || k >= 1000000000LL)
{
    ...
}

Of course if the user enters a value which is too large to be represented by a long long (greater than 2^63-1, typically) then you have a bigger problem.

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Why the anonymous down-vote, I wonder ? –  Paul R Mar 12 '12 at 7:29

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