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Consider the following code:

#include <stdio.h>

constexpr int f()
{
    return printf("a side effect!\n");
}

int main()
{
    char a[f()];
    printf("%zd\n", sizeof a);
}

I would have expected the compiler to complain about the call to printf inside f, because f is supposed to be constexpr, but printf is not. Why does the program compile and print 15?

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1  
clang 3.5 gives me an error: note: non-constexpr function 'printf' cannot be used in a constant expression –  Shafik Yaghmour Mar 4 at 15:58
    
Which compiler? –  GabiMe Mar 4 at 15:59
1  
@juanchopanza I think this boils down to: When should an invalid constexpr be rejected: (a) always, like clang does, (b) when its compile-time evaluation is required? –  pmr Mar 4 at 16:06
1  
@pmr It looks like a bug in GCC. If I replace the call to printf with one to int foo() {return 42;} it fails to compile. It should do the same with printf because neither is constexpr. –  juanchopanza Mar 4 at 16:24
3  
@juanchopanza: Maybe this is happening because strlen in GCC on a character literal is constexpr and GCC substitutes printf with puts (or puts+strlen if you consume the return value) if the format string contains no format specifiers. So apart from the obvious side effect, one could believe that this is a mighty fine constexpr function. –  Damon Mar 4 at 16:28

1 Answer 1

up vote 8 down vote accepted

The program is ill-formed and requires no diagnostic according to the C++11 draft standard section 7.1.5 The constexpr specifier paragraph 5 which says:

For a constexpr function, if no function argument values exist such that the function invocation substitution would produce a constant expression (5.19), the program is ill-formed; no diagnostic required.

and provides the following example:

constexpr int f(bool b)
  { return b ? throw 0 : 0; } // OK
constexpr int f() { return f(true); } // ill-formed, no diagnostic required

and section 5.19 paragraph 2 says:

A conditional-expression is a core constant expression unless it involves one of the following as a potentially evaluated subexpression [...]

and includes:

— an invocation of a function other than a constexpr constructor for a literal class or a constexpr function [ Note: Overload resolution (13.3) is applied as usual —end note ];

We would probably prefer a diagnostic in this case, it could just be an oversight, I have a bug report for a similar situation where gcc does not produce an error but we would probably like it to: Is the compiler allowed leeway in what it considers undefined behavior in a constant expression?.

Update

Using the -fno-builtin flag will cause gcc to generate the following error:

 error: call to non-constexpr function 'int printf(const char*, ...)'
 return printf("a side effect!\n");
                                 ^

So gcc does consider this ill-formed it is just replacing printf with a built-in.

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