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I read that argv[0] holds the program name i.e. the name by which we save the project.... but when I execute the following statement in my objective C command line program

const char *proName=argv[0];

i see the following in the console:

/Users/apple/Library/Developer/Xcode/DerivedData/testaehcfzilirskhjbifrwresgppvbp/Build/Products/Debug/test

here test is the name of my program.... so what does it give...full path or program name? Thanks

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some related info: stackoverflow.com/questions/273691/… –  Mat Apr 23 '11 at 10:19

2 Answers 2

up vote 2 down vote accepted

You can't depend on argv[0] containing something specific. Sometimes you'll get the full path, sometimes only the program name, sometimes something else entirely.

It depends on how the code was invoked.

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As you’ve noticed, argv[0] can (but doesn’t always) contain the full path of your executable. If you want the file name only, one solution is:

#include <libgen.h>

const char *proName = basename(argv[0]);

As noted by Mat, argv[0] is not always reliable — although it should usually be. It depends on what exactly you’re trying to accomplish.

That said, there’s an alternative way of obtaining the name of the executable on Mac OS X:

#include <mach-o/dyld.h>
#include <libgen.h>

uint32_t bufsize = 0;

// Ask _NSGetExecutablePath() to return the buffer size
// needed to hold the string containing the executable path
_NSGetExecutablePath(NULL, &bufsize);

// Allocate the string buffer and ask _NSGetExecutablePath()
// to fill it with the executable path
char exepath[bufsize];
_NSGetExecutablePath(exepath, &bufsize);

const char *proName = basename(exepath);
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execl("/your/executable", "this will appear in in argv[0]", "arg1", ...); will defeat that. Keep it in mind. –  Mat Apr 23 '11 at 10:17
    
@Mat That’s true. –  Bavarious Apr 23 '11 at 10:19

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