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i have a question about execvp. This is my program.

int pid = fork();
if(pid == 0)
    {
        char *arglist[]= {"0", "33"};
        //printf("%d , %s ,\n",*arglist[0], atoi(arglist) );
        execvp("/home/christoph/CodeBlocks/test/bin/Debug/test", arglist);

    }
    else

My question is about execvp and arglist. Can someone explain why 33 is given to the program as the only parameter? And not the zero or both of them.

Thanks in advance.

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marked as duplicate by Mat, Oliver Charlesworth, Code Lღver, Achrome, David Olsson May 26 '14 at 13:49

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2  
You didn't null-terminate your argument list. –  Oliver Charlesworth May 25 '14 at 20:43
1  
What about reading the docs for execvp? –  Mat May 25 '14 at 20:43
2  
The answer: "The first argument, by convention, should point to the filename associated with the file being executed." (so "33" is the first thing the test program will see as a "real" argument). The bug: "The array of pointers must be terminated by a NULL pointer." Both from the docs, for example here –  Paul Roub May 25 '14 at 20:46

2 Answers 2

up vote 1 down vote accepted

arglist[0] is passed as argv[0] to your program. argv[0] is the name of the program. argv[1] is the first command-line argument.

You also need a terminating NULL at the end of arglist.

Run it like this:

char *arglist[4];
arglist[0] = "/home/christoph/CodeBlocks/test/bin/Debug/test";
arglist[1] = "0";
arglist[2] = "33";
arglist[3] = NULL;
execvp(arglist[0], arglist);
abort();
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You should explicitly call out the need for arglist[3] = NULL; as it is missing from the original code. –  Jonathan Leffler May 25 '14 at 22:24

Normally, your program - test - wouldn't read argv[0].

argv[0] is normally the name of the program. See:

Handling arguments array of execvp?

The first argument is argv[1] - not argv[0]

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