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Base code:

        char *args[3] = {NULL};
        args[0] = "ls";
        args[1] = "-l";
        args[2] = NULL;

Why would :

        int execution = execlp("ls", args[0], args[1], NULL);

Cause no warning, and :

        int execution = execlp("ls", args[0], args[1], args[2]);

Cause a warning: missing sentinel in function call?

Note: I understand that both are the same but im just curious as to why one cause a warning and not the other one.

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up vote 3 down vote accepted

Because The list of arguments must be terminated by a NULL pointer. Even though args[2] happens to be NULL in your case, the compiler doesn't have that insight (nor should it, if you ask me).

What if someone comes along and changes args[2] to something else, not knowing it's used as a sentinel?

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"What if someone comes along and changes args[2] to something else, not knowing it's used as a sentinel?" - that's what static analysis is for, if you ask me. – user529758 Jan 1 '13 at 23:10
    
@H2CO3 maybe, but I've seen many cases where warnings get ignored alltogether. I'd rather play it safe, but that's just me. It's subjective whether the diagnosis is useful or not, I for one think it is. – Luchian Grigore Jan 1 '13 at 23:11
    
Yes, here the compiler is right but this is a false positive. Strange enough. – user529758 Jan 1 '13 at 23:12
    
Thank you for your answer. – Erwald Jan 1 '13 at 23:15

Because the compiler ain't intelligent.

It expects the sentinel to be a literal 0 or NULL (which is really just 0 or (void *)0), and anything else generates the warning. If the compiler was smarter and it performed some more static analysis on the code, it could have concluded that args[2] is indeed a constant 0, so no warning is needed, but apparently it couldn't.

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