155

I have an int a that needs to be equal to "infinity". This means that if

int b = anyValue;

a>b is always true.

Is there any feature of C++ that could make this possible?

13
  • 1
    You could just use floats, which have a value that represents infinity.
    – Xeo
    Commented Dec 31, 2011 at 21:15
  • 1
    @jozefg - Okay, so it isn't a check the user is after, just the Max Value implementation of the language.
    – keyboardP
    Commented Dec 31, 2011 at 21:19
  • 4
    @jozefg Ha, I figured you were going to implement A*. I was so close! Commented Dec 31, 2011 at 21:21
  • 2
    @jozefg - That makes sense. I thought OP wanted to actually perform the a>b check :)
    – keyboardP
    Commented Dec 31, 2011 at 21:23
  • 1
    @Hikari: No, I'm saying that there is no way to represent infinity in an integer type. You could create a class with overloaded operators. Commented Apr 20, 2016 at 17:49

6 Answers 6

180

Integers are inherently finite. The closest you can get is by setting a to int's maximum value:

#include <limits>

// ...

int a = std::numeric_limits<int>::max();

Which would be 2^31 - 1 (or 2 147 483 647) if int is 32 bits wide on your implementation.

If you really need infinity, use a floating point number type, like float or double. You can then get infinity with:

double a = std::numeric_limits<double>::infinity();
8
  • 46
    And if you really need infinity as an int, write a wrapper class that overloads the comparison operators and has a boolean variable named "is_infinity".
    – user142019
    Commented Dec 31, 2011 at 21:22
  • 1
    @WTP Considering he needs that for an Dijkstra's algorithm implementation, I doubt that would be necessary. But it's the most sensible choice otherwise. Commented Dec 31, 2011 at 21:25
  • 6
    I added the comment for future visitors who don't implement Dijkstra's algorithm, but need it for something else. :)
    – user142019
    Commented Dec 31, 2011 at 21:28
  • 4
    Note that if you use the int solution, you must be very careful with arithmetic: adding a positive number to "infinity" will yield a very unexpected result. Commented Aug 1, 2014 at 5:56
  • Wrapper class would come in handy for comparing vectors.
    – dylan
    Commented Sep 17, 2017 at 4:24
92

Integers are finite, so sadly you can't have set it to a true infinity. However you can set it to the max value of an int, this would mean that it would be greater or equal to any other int, ie:

a>=b

is always true.

You would do this by

#include <limits>

//your code here

int a = std::numeric_limits<int>::max();

//go off and lead a happy and productive life

This will normally be equal to 2,147,483,647

If you really need a true "infinite" value, you would have to use a double or a float. Then you can simply do this

float a = std::numeric_limits<float>::infinity();

Additional explanations of numeric limits can be found here

Happy Coding!

Note: As WTP mentioned, if it is absolutely necessary to have an int that is "infinite" you would have to write a wrapper class for an int and overload the comparison operators, though this is probably not necessary for most projects.

1
  • 9
    ...and if you want to use max() or infinity() in a template where the numeric type is unknown you will need to use +/-infinity() iff std::numeric_limits<T>::has_infinity and otherwise min() and max() Commented Dec 31, 2011 at 22:06
14

This is a message for me in the future:

Just use: (unsigned)!((int)0)

It creates the largest possible number in any machine by assigning all bits to 1s (ones) and then casts it to unsigned

Even better

#define INF (unsigned)!((int)0)

And then just use INF in your code

3
  • 13
    I think you mean #define INF ((unsigned) ~0), see here.
    – catnip
    Commented Jun 21, 2018 at 23:10
  • This is very interesting but I needed something I could store in an array with other normal integers, I would up just changing everything to doubles and using the numeric limits infinity Commented Aug 19, 2021 at 12:34
  • Casting 0 to int is unnecessary since 0 is already an int. Also !0 == 1, which is hardly near infinity. Even the definition by Paul Sanders is an unsigned integer, and using it to compare with signed ones will likely cause trouble.
    – Ale
    Commented Aug 2, 2022 at 23:08
13

int is inherently finite; there's no value that satisfies your requirements.

If you're willing to change the type of b, though, you can do this with operator overrides:

class infinitytype {};

template<typename T>
bool operator>(const T &, const infinitytype &) {
  return false;
}

template<typename T>
bool operator<(const T &, const infinitytype &) {
  return true;
}

bool operator<(const infinitytype &, const infinitytype &) {
  return false;
}


bool operator>(const infinitytype &, const infinitytype &) {
  return false;
}

// add operator==, operator!=, operator>=, operator<=...

int main() {
  std::cout << ( INT_MAX < infinitytype() ); // true
}
2
  • 11
    Or... you could just use float and std::numeric_limits<float>::infinity().
    – Xeo
    Commented Dec 31, 2011 at 21:16
  • 1
    @Xeo, sure, that's an option too :)
    – bdonlan
    Commented Dec 31, 2011 at 21:20
10

You can also use INT_MAX:

http://www.cplusplus.com/reference/climits/

it's equivalent to using numeric_limits.

5

I think that a macro INFINITY is defined in header "<cmath>".

It is defined as follows,

#define INFINITY ((float)(1e+300 * 1e+300))

This is such a large number that no other number (at least in c++) can be greater than it. But obviously since we are converting to a type (int), which at max can hold a value 2147483647. So then it would implicitly convert to that value.

Not the answer you're looking for? Browse other questions tagged or ask your own question.