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I wrote a shared object, say libsd.so, and I put libsd.so and its header file sd.h in ~/lib.

Here is another program using libsd.so, say test.c, then compile it like this:

$ gcc -o test test.c -I~/lib -L~/lib -lsd

Then I run test like this:

$ ./test
./test_sd: error while loading shared libraries: libsd.so: cannot open shared object file: No such file or directory

So I set export LD_LIBRARY_PATH=., then it works. But if I unset LD_LIBRARY_PATH and put LD_LIBRARY_PATH=~/lib in my ~/.bashrc, then source ~/.bashrc, again it doesn't work for ./test, WHY?

export LD_LIBRARY_PATH=~/lib is difference from putting LD_LIBRARY_PATH=~/lib in ~/.bashrc?

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2 Answers 2

up vote 3 down vote accepted

Without the export your declared LD_LIBRARY_PATH is only valid in the script (.bashrc). With the export it should work, but it is usually not a good idea to set your LD_LIBRARY_PATH like this.

If you don't want to install your library in the system path (e.g. /usr/lib) you should probably use a script that sets LD_LIBARAY_PATH locally and starts your application.

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Well, why it's not a good idea? could you plz elaborate on that? –  Alcott Feb 23 '12 at 11:49
2  
You can see here, why it is not a good idea: linuxmafia.com/faq/Admin/ld-lib-path.html However, it seems, that you shouldn't even use it in a script, but rather use the -R option –  Tim Feb 23 '12 at 11:59
    
I'm using Fedora not Solaris, But is there a -R in gcc? –  Alcott Feb 23 '12 at 12:13
    
On Fedora there should be -rpath, that should do pretty much the same thing, even though I actually do not know for sure. –  Tim Feb 23 '12 at 18:22
    
Yes, indeed. :-) –  Alcott Feb 24 '12 at 0:33

Try $HOME/lib instead of ~/lib - it should be the same but I've seen cases where ~ wasn't expanded properly when used in an variable assignment.

To check, try echo $LD_LIBRARY_PATH which gives you the current value.

Re export: If you omit the export, then the variable is only known to the current shell process and will not be exported to child processes. So if you omit it, echo $LD_LIBRARY_PATH will get the value because the variable is expanded by the shell before the echo command/builtin has a chance to do anything. But ./test won't see it because it's not exported to the new subprocess.

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Replaced, I source ~/.bashrc, and echo $LD_LIBRARY_PATH gives the current value, do you mean if I want ./test to work, I should still export LD_LIBRARY_PATH? –  Alcott Feb 23 '12 at 11:48
    
Yes, you always have to export LD_LIBRARY_PATH or it will have no effect. –  Aaron Digulla Feb 23 '12 at 11:54

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