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If I mark any function as inline, is there a way I can know if the function gets inlined or not?

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2  
Marking a function as inline probably has zero meaning to your compiler in terms of actually inlining it. The compile is much better at optimization than you or I, just write the cleanest code you can and it'll inline everything it feels should be inlined. inline is nowadays used more to change the behavior of the linking process. –  GManNickG Apr 6 '10 at 15:13
    
Why does it matter? Is the inline-ing causing a problem? –  JBRWilkinson Apr 6 '10 at 15:17
    
I do wonder about the usefulness too. Unless of course it's during a performance analysis... but I doubt it somehow. –  Matthieu M. Apr 6 '10 at 15:28
    
@GMan: What do you mean? ISO/IEC 14882:2003 page 107 says that The inline keyword has no effect on the linkage of a function. –  conio Apr 6 '10 at 15:31
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@conio: he said the linking process, not linkage. :) The inline keyword tells the linker to expect to encounter multiple definitions of a symbol, which would otherwise result in an error. –  jalf Apr 6 '10 at 16:08

3 Answers 3

With GCC you can use -Winline compiler option:

  -Winline  Warn if a function can not be inlined and it was declared as inline.

The man file for gcc goes on to say:

  Even with this option, the compiler will not warn about
  failures to inline functions declared in system headers.

  The compiler uses a variety of heuristics to determine whether or
  not to inline a function.  For example, the compiler takes into
  account the size of the function being inlined and the amount of
  inlining that has already been done in the current function.
  Therefore, seemingly insignificant changes in the source program
  can cause the warnings produced by -Winline to appear or disappear.
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@Dana: thanks for the addition. –  Nikolai N Fetissov Apr 6 '10 at 16:13

1, Look at the assembler output
2, why do you care?

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I want to verify the following. I have a public function(marked as inline) which calls a private function. And I have a non-class function(which is not a friend of the class either) calling this public function. I want to see if the public function gets inlined or not as inlining it would give this outside function, the private access to the class members. class A { private : void privatefunc() { cout<<"\n private function " ; } public : inline void publicfunc() { cout<<"\n public function " ; privatefunc();} }; A a; a.publicfunc(); –  Rakesh Agarwal Apr 6 '10 at 15:23
    
@Rakesh: no it won't. –  MSalters Apr 6 '10 at 15:24
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@Rakesh: The access specifiers are entirely checked at compile-time. At run-time there is no public or private any more, just bytes racing around the processor. - Besides, implementations within the class definition are "inline" anyway (because the keyword mostly means "let linker ignore multiple definitions of this (so that the function can be implemented in the header, presumably in order so it can be inlined)". –  UncleBens Apr 6 '10 at 15:42
    
As Msalter said inline doesn't change the language in any way. The only thing it can do is speed up (or slowdown!) the program execution - and the compiler will do a better job of guessing which than you will. –  Martin Beckett Apr 6 '10 at 15:46
    
@UncleBens: I don't think implementations within the class definition will be 'inlined anyways. Consider the above case where the public implementation is calling into a private implementations. Also what do you mean by saying " let linker ignore multiple definitions of this". Could you please elaborate this a bit ? –  Rakesh Agarwal Apr 6 '10 at 15:55

Look at the assembly language that your compiler emits. For example, compiling with g++:

g++ -S -c foo.c

will create a file called foo.s containing the assembly language output. Alternatively, and once again with the GCC toolset, use objdump:

g++ -c foo.c
objdump -d foo.o

Other toolsets have similar functionality.

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