Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to find unused functions in my codebase by using GCC's -Wunused-function flag.

As I would expect, compiling the below code with gcc -Wall -Wunused-function main.cpp prints an unused variable warning:

warning: unused variable ‘x’ [-Wunused-variable]

However, the compiler doesn't give an unused-function warning. What do I have to do to make GCC notice the unused function foo()?

// main.cpp

void foo(){ } //should (but doesn't) trigger 'unused function' warning

int main (int argc, char **argv){
    int x; //correctly triggers 'unused variable' warning
    return 0;
}

Remember, I do want unused function warnings. This is not a "how do I get rid of warnings" question.

share|improve this question
add comment

3 Answers

up vote 2 down vote accepted

from the gcc documentation:

-Wunused-function: Warn whenever a static function is declared but not defined or a non-inline static function is unused. This warning is enabled by -Wall.

As you can see, you've defined and declared a non-static function. Also your function isn't being inlined(for which you need to use -O3 optimization).

I am not sure what you're asking for exists in gcc, as of yet. :-) But its open source.. maybe you can implement it?

share|improve this answer
    
Ah, that's what I was afraid of. I think there are tools out there, but as you said, I could also roll my own. A quick and dirty script could just (1) make a list of functions in the .cpp files, and (2) check how many times each function is referenced. If a function name only appears once in the codebase, it's probably unused (barring 'library' types of situations). –  solvingPuzzles Nov 5 '12 at 0:14
    
@solvingPuzzles precisely. Once or maybe twice. Check for if the function name(and parameters) follows '{'. If it does, that function is defined. Then check how many times it appears. If it appears once only, then its only defined, not used. –  Aniket Nov 5 '12 at 0:25
    
@solvingPuzzles that way you can avoid the library function problems –  Aniket Nov 5 '12 at 0:26
2  
This is not right. The reason that no warning is given is because the function has external linkage, not internal linkage ("static"). The quoted text means that: functions with external linkage are never warned about; of static functions, you will get a warning if either it's not defined at all, or it's both unused and not declared inline. If you declare the function as static void foo() {} you should recieve the warning. –  caf Nov 5 '12 at 2:41
add comment

A non-static function is never considered "unused" because its symbol is exported and available to be used by other compilation units, which is something that gcc can't detect. -Wunused-functions is only documented to warn about static functions that are declared but not called.

share|improve this answer
    
As we've seen before, there are bunch of different ways to define "static function." What are some examples of situations where -Wunused-functions would notice an unused function? –  solvingPuzzles Nov 5 '12 at 0:19
    
@solvingPuzzles if you take the code example in your question and change void foo to static void foo, it will warn. –  hobbs Nov 5 '12 at 0:45
1  
"static function" in this case means "function with internal linkage". –  caf Nov 5 '12 at 2:43
add comment

You can find unused non-static functions using linker optimisation.

I compiled your main.cpp with

gcc -ffunction-sections -fdata-sections -Wl,--gc-sections -Wl,--print-gc-sections main.cpp

And the output

/usr/bin/ld: Removing unused section '.text._Z3foov' in file '/tmp/cc9IJvbH.o'

Shows that foo() is unused and the linker could remove it.

share|improve this answer
    
Another benefit of this is that it will not complain about "undefined reference to bar" if foo() calls bar(), but nobody calls foo(). Ever since finding out about this option I've been puzzled as to why it is not the default. If a function is never called, why should it make its way into the executable? –  Matt McNabb May 20 at 10:17
    
The main issue with making this the default is that -ffunction-sections can cause problems if it is always used for compilation. From the GCC manual: "Only use these options when there are significant benefits from doing so. When you specify these options, the assembler and linker will create larger object and executable files and will also be slower. You will not be able to use gprof on all systems if you specify this option and you may have problems with debugging if you specify both this option and -g." –  JohnTESlade May 20 at 10:39
    
In my experience, although object files are larger, executable files are smaller, in fact that's why I use the options. (This is with all debugging info stripped out). Perhaps it just worked out that way for my situation , and not general situations. Anyway though - I mean in a more general sense : linkers ought to have the capability to exclude dead code without having to be prompted, and without making any tradeoffs except for time taken to perform the link. –  Matt McNabb May 20 at 10:42
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.