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How do I call std::min when min has already been defined as a macro?

1
  • 10
    mercilessly #undef min and go with standard facilities. Sep 16, 2011 at 20:28

5 Answers 5

96
(std::min)(x,y)

The parentheses around min prevent macro expansion. This works with all function macros.

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  • 6
    @André: Yes. Calling a function like this is given as an example in [n3290: 3.4.2], and it's clear that this would prevent macro expansion (6.10.3/10 in C99; I'm sure the wording is nearby in C90.) Sep 16, 2011 at 20:00
  • Just out of pure curiosity, is there a way to prevent the expansion of a simple #define foo 5 macro, or is this override behavior only for functions?
    – user541686
    Sep 16, 2011 at 20:02
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On Windows, you need to define NOMINMAX before including any windows headers, preferable at the beginning of precompiled header.

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  • Cool! Not portable, but I still like it; +1. :)
    – user541686
    Sep 16, 2011 at 19:51
  • 5
    @Mehrdad: including Windows headers is already non-portable as it stands. Sep 16, 2011 at 19:54
  • @Andre: I agree, that's precisely why I said I still like it.. :P
    – user541686
    Sep 16, 2011 at 19:55
  • 3
    Can also use /D NOMINMAX command-line option in the project file. This is a useful alternative if you don't have PCH's.
    – MSalters
    Sep 17, 2011 at 23:34
6

Use #undef min in your code, after #include <> directives.

#include <...> // bad header that defines `min` macro
#ifdef min
#undef min
#endif

// rest f code.

Addendum: If you need to keep the value of the min macro afterwards, you can disable its definition temporarily using a non-portable solution on some compilers. For instance, Microsoft's C++ compiler has a push_macro pragma that also seems to be supported by GCC.

4
  • Er, I can't really do that because that messes up everything afterward that could depend on the macro for some reason... it's a rather poor hack, not a real solution. :\
    – user541686
    Sep 16, 2011 at 19:48
  • 2
    @Mehrdad: min as a macro is a hack to begin with. Best to avoid it. If you really want a macro, use one named MIN or something else that does not collide.
    – hammar
    Sep 16, 2011 at 19:50
  • 1
    @Mehrdad: posted a solution for temporary disabling instead. However, there's no portable solution as the language clearly states that if a macro is defined, then the textual replacement is done by the pre-processor and appears replaced to the compiler. There's no C++ language construct that can be used to distinguish min the function and min the macro. Sep 16, 2011 at 19:52
  • @hammar: The trouble is that you're assuming that this is in a C++ file. If this is a header file, it'll screw up whoever includes it, because they don't expect this to happen. (Edit: For the temporary disabling, I guess that works, but I was hoping for a better solution..)
    – user541686
    Sep 16, 2011 at 19:52
4

You might be able to avoid the macro definition by:

  • #undef
  • avoid the definition in the first place (either by configuration such as #define NOMINMAX or similar or avoiding including the offending header)

If those options can't be used or you don't want to use them, you can always avoid invoking a function-like macro with an appropriate use of parens:

#include <algorithm>
#include <stdio.h>

#define min(x,y) (((x) < (y)) ? (x) : (y))

int main() 
{
    printf( "min is %d\n", (std::min)( 3, 5));  // note: the macro version of `min` is avoided
}

This is portable and has worked since the dark, early days of C.

2

I found a couple of other ways to do it:

Method 1:

using std::min;
min(a, b);   // uses either the macro or the function (don't add side effects!)

Method 2:

#ifndef BOOST_PREVENT_MACRO_SUBSTITUTION
#define BOOST_PREVENT_MACRO_SUBSTITUTION
#endif

...
std::min BOOST_PREVENT_MACRO_SUBSTITUTION(a, b)

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