54

Can I compare an int and a size_t variable like this:

int i = 1;
size_t y = 2;
if (i == y) {
    // Do something
}

Or do I have to type cast one of them?

4
  • 2
    Do you really need to compare an int to a size_t? Generally you shouldn't, and you may be wrongly converting an int to size_t or viceversa somewhere.
    – GameZelda
    Commented Sep 4, 2010 at 11:19
  • 5
    just for the sake of knowledge :)
    – user379888
    Commented Sep 4, 2010 at 13:25
  • 2
    The "obvious" case for comparing an int and a size_t is snprintf(). Commented Jul 6, 2018 at 13:52
  • You may want to bounds check an int, or unsigned int, vector index.
    – QuentinUK
    Commented Sep 28, 2019 at 11:10

4 Answers 4

78

It's safe provided the int is zero or positive. If it's negative, and size_t is of equal or higher rank than int, then the int will be converted to size_t and so its negative value will instead become a positive value. This new positive value is then compared to the size_t value, which may (in a staggeringly unlikely coincidence) give a false positive. To be truly safe (and perhaps overcautious) check that the int is nonnegative first:

/* given int i; size_t s; */
if (i>=0 && i == s)

and to suppress compiler warnings:

if (i>=0 && (size_t)i == s)
2

If you're going to compare an int type to size_t (or any other library type), you are doing a risky comparison because int is signed and size_t is unsigned, so one of them will be implicitly converted depending on your compiler/platform. The best thing to do, is to rewrite your int i as:

decltype(y.size()) i = 1;

This assigns your i as the safe type you're trying to compare, and I think it's good practice. This solution is useful in all types of iterators as well. You generally don't want to trust the compiler to cast for you, you can, but it's risky, and an unnecessary risk.

1

size_t is going to be some sort of integer type (although possibly unsigned, so it might generate a warning) so the appropriate casting should be done for you automatically.

As others have already said, you may want to revisit whatever calculation is producing the int and see if you can do it in size_t in the first place if you're computing a required size for something.

2
  • 13
    size_t must be unsigned. Commented Sep 4, 2010 at 11:32
  • 3
    Actually unsigned types create more problems than they solve (when used for sizes). A better advice would be to run away from unsigned as a quantity as soon as possible (casting to int). You can have problems around INT_MAX values, but with unsigned you can have problems around zero and that is a lot more common in programming.
    – 6502
    Commented Aug 29, 2017 at 6:34
0

It is okay to compare a size_t value with an int value, the int value will be implicitly converted to unsigned type.

Some compilers will issue a warning when you mix signed and unsigned types in comparisons. In that case you can explicitly convert the signed value to an appropriate unsigned type to suppress the warning.

2
  • 7
    It's generally not a good idea to just cover up compiler warnings like this, IMO. There are better alternatives (e.g. using one of size_t or int instead of both in the first place).
    – strager
    Commented Sep 4, 2010 at 11:27
  • That comparison may cause an undefined_behaviour when compiler optimisation is enabled.
    – anilbey
    Commented Apr 4, 2019 at 9:49

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