2

Consider the two commands below for building a simple executable

$ gcc -g -Wall -Wl,--enable-new-dtags -Wl,-rpath,'$ORIGIN'/sharedLibDir -o prog main.c ./sharedLibDir/libdemo.so

$ gcc -g -Wall -Wl,--enable-new-dtags -Wl,-rpath,./sharedLibDir -o prog main.c ./sharedLibDir/libdemo.so

Clearly, one uses a local directory as the RPATH, the other uses $ORIGIN. I cannot see what the difference is between these two (apart from the value of RPATH and RUNPATH in the binary); both allow the executable to be moved around and, provided it has a parallel directory named sharedLibDir, it runs.

What is the point of $ORIGIN? Does it have some additional functionality that I have missed? Thanks in advance.

5

If your use $ORIGIN, the lookup is relative to the directory that contains the executable. If you specifiy a relative directory, it's relative to the current working directory, which is hardly ever what you want.

  • Thanks; I wasn't aware that there was an "install" location as such - I'll look that up shortly. – Wad Jul 4 '14 at 12:53
  • The install location is just the directory that contains the executable. Sorry for having confused you, I'll reword my answer. – pdw Jul 4 '14 at 13:01
  • So when will the current working directory ever not be the directory containing the executable?? – Wad Jul 4 '14 at 13:20
  • 2
    Well, if you open a terminal and run ls, the current working directory will be /home/Wad, but the directory containing the ls executable is /bin. – pdw Jul 4 '14 at 13:34

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