144
#define DEFINE_STAT(Stat) \
struct FThreadSafeStaticStat<FStat_##Stat> StatPtr_##Stat;

The above line is taken 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.

6
  • 8
    You can read about ## operator on cppreference, among other things
    – Cubbi
    Apr 9, 2014 at 22:23
  • 1
    ## is/could be called the concatenation operator.
    – dyp
    Apr 9, 2014 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 Apr 9, 2014 at 22:27
  • 1
    The struct introduces an elaborate type specifier as far as I can tell.
    – dyp
    Apr 9, 2014 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, 2017 at 9:04

2 Answers 2

230

## 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 is invoked 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().

2
  • 2
    Why decode(a,n,i,m,a,t,e) is replaced with m ## a ## i ## n? How is that??
    – Kaiyakha
    Jul 28, 2022 at 9:25
  • 4
    The TL;DR of why the Stumped->Animate-> brain teaser works is that the function "decode" is set up as having the input "a", "n", "i", "m". These inputs are mapped to the variables "s", "t", "u", "m". These variables are then rearranged into the right order with the preprocessor string concatenation directive m ## s ## u ## t which takes the input "a", "n", "i", "m" and rearranges the characters to make the word "main" by changing the order of the variables "s", "t", "u", "m". I found it helpful to draw the the values and the variables and the mappings between them. Sep 28, 2022 at 14:29
15

TLDR; ## is for concatenation and # is for stringification (from cppreference).

The ## concatenates successive identifiers and it is useful when you want to pass a function as a parameter. Here is an example where foo accepts a function argument as its 1st argument and the operators a and b as the 2nd and 3rd arguments:

#include <stdio.h>
enum {my_sum=1, my_minus=2};
#define foo(which, a, b) which##x(a, b)
#define my_sumx(a, b) (a+b)
#define my_minusx(a, b) (a-b)

int main(int argc, char **argv) {
    int a = 2;
    int b = 3;
    printf("%d+%d=%d\n", a, b,  foo(my_sum, a, b));  // 2+3=5
    printf("%d-%d=%d\n", a, b, foo(my_minus, a, b)); // 2-3=-1
    return 0;
}

The # concatenates the parameter and encloses the output in quotes. The example is:

#include <stdio.h> 
#define bar(...) puts(#__VA_ARGS__)
int main(int argc, char **argv) {
    bar(1, "x", int); // 1, "x", int
    return 0;
}

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