33

In the following example, the program should print "foo called\n":

// foo.c
#include <stdio.h>

__attribute__((constructor)) void foo()
{
    printf("foo called\n");
}

// main.c
int main()
{
    return 0;
}

If the program is compiled like this, it works:

gcc -o test main.c foo.c

However, if foo.c is compiled into a static library, the program prints nothing.

gcc -c main.c
gcc -c foo.c
as rcs foo.a foo.o
gcc -o test foo.a main.o

Why does this happen?

3
  • Why the downvotes? Is something incorrect?
    – Jay Conrod
    Jul 29, 2009 at 19:41
  • Not sure (wasn't me!) but perhaps someone took exception to you answering your own question so quickly?
    – DaveR
    Jul 29, 2009 at 20:52
  • 4
    Hmm, I just wanted to add a useful reference to the site for a non-obvious problem. The FAQ indicates answering one's own question is a good thing (it's in the first section actually).
    – Jay Conrod
    Jul 29, 2009 at 22:32

2 Answers 2

18

The linker does not include the code in foo.a in the final program because nothing in main.o references it. If main.c is rewritten as follows, the program will work:

//main.c

void foo();

int main()
{
    void (*f)() = foo;
    return 0;
}

Also, when compiling with a static library, the order of the arguments to gcc (or the linker) is significant: the library must come after the objects that reference it.

gcc -o test main.o foo.a
8

As it was stated, unreferenced symbols from archive does not make it to the output binary, because linker discards them by default.

To override this behaviour when linking with static library, --whole-archive/--no-whole-archive options for the linker may be used, like this:

gcc -c main.c
gcc -c foo.c
ar rcs foo.a foo.o
gcc -o test -Wl,--whole-archive foo.a -Wl,--no-whole-archive main.o

This may lead to bloated binary, because all symbols from foo.a will be included by the linker to the output, but sometimes it is justified.

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