67
#define DEFINE_STAT(Stat) \
struct FThreadSafeStaticStat<FStat_##Stat> StatPtr_##Stat;

The above line is take from Unreal 4, and I know I could ask it over on the unreal forums, but I think this is a general C++ question that warrants being asked here.

I understand the first line defines a macro, however I am not well versed in preprocessor shenanigans in C++ and so I'm lost over there. Logic tells me the backslash means the declaration continues onto the next line.

FThreadSafeStaticStat looks a bit like a template, but there's #'s going on in there and a syntax I've never seen before in C++

Could someone tell me what this means? I understand that you may not have access to Unreal 4, but it's just the syntax I don't understand.

  • 5
    You can read about ## operator on cppreference, among other things – Cubbi Apr 9 '14 at 22:23
  • 1
    ## is/could be called the concatenation operator. – dyp Apr 9 '14 at 22:23
  • 1
    Oh, that's pretty cool! It explains rather a lot, thanks. But why is the struct keyword used? The line looks more like a variable definition – DavidColson Apr 9 '14 at 22:27
  • 1
    The struct introduces an elaborate type specifier as far as I can tell. – dyp Apr 9 '14 at 22:34
  • 2
    The official name is "token pasting operator" because it combines two preprocessing tokens to produce another. Note that it is only valid if the result is a valid preprocessing token, e.g. you can't do + ## 3 to make +3. (But you can do + 3 of course, without the operator) – M.M Jan 31 '17 at 9:04
128

## is the preprocessor operator for concatenation.

So if you use

DEFINE_STAT(foo)

anywhere in the code, it gets replaced with

struct FThreadSafeStaticStat<FStat_foo> StatPtr_foo;

before your code is compiled.

Here is another example from a blog post of mine to explain this further.

#include <stdio.h>

#define decode(s,t,u,m,p,e,d) m ## s ## u ## t
#define begin decode(a,n,i,m,a,t,e)

int begin()
{
    printf("Stumped?\n");
}

This program would compile and execute successfully, and produce the following output:

Stumped?

When the preprocessor works on this code,

  • begin() is replaced with decode(a,n,i,m,a,t,e)()
  • decode(a,n,i,m,a,t,e)() is replaced with m ## a ## i ## n()
  • m ## a ## i ## n() is replaced with main()

Thus effectively, begin() is replaced with main().

  • 50
    Sneaky. Perhaps too sneaky to show in front of newbies... – vonbrand Apr 10 '14 at 0:09
  • 3
    I wasn't expecting to think so much to learn the behavior of ##, but I guess now I will never forget it? So thanks. – NicoBerrogorry Mar 25 '18 at 3:43

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