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I'm reading a book about C programming "Advanced Programming In The Unix Environment" and in the "UNIX Standardization and Implementations" chapter it shows a program that prints values for symbols in sysconf and pathconf, the code in this program has several lines that looks like this:

#ifdef ARG_MAX
    printf ("ARG_MAX defined to be %ld\n", (long) ARG_MAX + 0);
#else
    printf ("no symbol for ARG_MAX\n");
#endif

Whenever a defined constant is used as an argument for printf it's always followed by + 0, it doesn't seem to be doing anything because I tried to remove it and nothing happened. What's the point of adding a zero?

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    I can think of two general uses of something like this, but they don't seem to be useful here: 1) to cause integral promotions, and 2) to create a value of an expression (that is not an lvalue).
    – Kerrek SB
    Jan 5, 2017 at 1:35
  • 6
    I can think of another one: If you have #define ARG_MAX, it expands to (long) + 0 (i.e. 0L). I don't know how that would be possible (or why you would want to cater to it), though.
    – melpomene
    Jan 5, 2017 at 1:39
  • What edition of that book are you reading? It was originally written in 1992 when many aspects of C, Unix, and POSIX were poorly defined or poorly followed. It's probably a guard against some weird implementation, but I can't imagine what.
    – Schwern
    Jan 5, 2017 at 1:40
  • @Schwern I'm reading the 3rd edition Jan 5, 2017 at 1:41
  • @Schwern: It's in my copy, with no explanation that I can find. I have the third edition, from 2013; I believe that's the latest. Jan 5, 2017 at 1:41

2 Answers 2

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The empty #define mentioned by melpomene in a comment is why the + 0 trick is used.

If some header has #define ARG_MAX (with no value) — an improbable but not impossible state of affairs — the code will still compile, though whether the output is useful is a separate discussion. The blank replacement for ARG_MAX leaves (long) + 0 which is still valid. If, as you'd expect, the definition is an appropriately protected expression (probably within parentheses), adding 0 doesn't change the value.

In the ordinary course of events, when the preprocessor evaluates a conditional expression, any identifiers left over after expanding macros are mapped to zero (ISO/IEC 9899:2011 §6.10.1 Conditional inclusion):

¶4 … After all replacements due to macro expansion and the defined unary operator have been performed, all remaining identifiers (including those lexically identical to keywords) are replaced with the pp-number 0, and then each preprocessing token is converted into a token. …

Although that's not immediately relevant to this question, it is why you sometimes see a conditional expression such as:

#if ARG_MAX + 0 > 131072
0

It's because that code is autogenerated from an awk program.

The awk(1) program shown in Figure 2.12 builds a C program that prints the value of each pathconf and sysconf symbol.

The important part of the program is this.

while (getline <"sysconf.sym" > 0) {
    printf("#ifdef %s\n", $1)
    printf("\tprintf(\"%s defined to be %%d\\n\", %s+0);\n", $1, $1)
    printf("#else\n")
    printf("\tprintf(\"no symbol for %s\\n\");\n", $1)
    printf("#endif\n")
    printf("#ifdef %s\n", $2)
    printf("\tpr_sysconf(\"%s =\", %s);\n", $1, $2)
    printf("#else\n")
    printf("\tprintf(\"no symbol for %s\\n\");\n", $2)
    printf("#endif\n")
}

Since it doesn't know what the symbol might contain, it's probably being defensive about it, though the book doesn't explain what its defending against.

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    I'm not sure that answers the question. The +0 is in the C code because it's in the awk code -- but why is it in the awk code? Jan 5, 2017 at 1:56
  • @KeithThompson Yeah, it's not an answer, but it's an important piece. The rest of the book doesn't appear to use the +0. I'm guessing it's there to prevent a segfault if the value is something weird, but I don't know what that value might be.
    – Schwern
    Jan 5, 2017 at 2:00
  • So perhaps it would be better as a comment. Jan 5, 2017 at 2:00
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    @KeithThompson: the code would be inscrutable if presented in a comment. Jan 5, 2017 at 2:02
  • @JonathanLeffler: Yes, but the code isn't particularly relevant to the fact that the C code is generated by an awk script -- and that fact doesn't seem relevant to the question. Assuming your answer is correct (and it's certainly plausible), the C code would have used the same trick if it were written manually. Jan 5, 2017 at 2:04

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