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When trying to use the execve command, I receive an error about my last 2 arguments.

     #include <unistd.h>        
     const char * c = enviorment.c_str();
     execve(full.c_str() , cl.getArgVector(), c);

I've tried using the several different options in copying strings such as:

char *temp2 = new char[(path).size()+1];
strcpy ( temp2, cl.getCommand());
    execve(full.c_str() , cl.getArgVector(), temp);

but I'm unable to get it to work and recieve an error message:

error: cannot convert char* to char* const* for argument 3 to int execve(const char*, char* const*, char* const*)

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What does enviorment look like? Is it a single key/value pair in the form of "KEY=VALUE" or is it multiple delimited key-vars? –  Jorge Israel Peña Mar 27 '13 at 2:53
    
@JorgeIsraelPeña I believe that's environment-specific (ba-dun-tss) –  Richard J. Ross III Mar 27 '13 at 2:56
    
@RichardJ.RossIII Ah okay, indeed, from the man page it seems that's a convention, but not necessarily enforced/a requirement. I was mistakenly under the impression that it was required to be an array of strings in the form of "KEY=VALUE". Still though, I asked to know if we should split his environment string, depending on how his environment's execve expects the envp parameter. –  Jorge Israel Peña Mar 27 '13 at 2:59

1 Answer 1

up vote 0 down vote accepted

The environment variable array is an array of strings (char*), not one string. It needs a NULL value as the final element in the array.

Mimic the code you're using to implement c1.getArgVector() making sure the last char* in the array is NULL.

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I was missing the NULL at the end. Thanks so much! –  user1797035 Mar 28 '13 at 2:49

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