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If I have this:

int main(int argc, char *argv[])

In the body, you can sometimes find programs using argv[1].

When do we use argv[1] over argv[0]? Is it only when we just want to read the second argument in the command line?

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7 Answers 7

By convention, argv[0] is the current program's name (or path), and argv[1] through argv[argc - 1] are the command-line arguments that the user provides.

However, this doesn't have to be true -- programs can OS-specific functions to bypass this requirement, and this happens often enough that you should be aware of it. (I'm not sure if there's much you can do even if you're aware of it, though...)

Example:

gcc -O3 -o temp.o "My file.c"

would (should) produce the following arguments:

argc: 5
argv: ["gcc", "-O3", "-o", "temp.o", "My file.c"]

So saying argv[0] would refer to gcc, not to -O3.

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Well, argv[0] doesn't have to be the real path to the executable, but argv[1]..argv[argc - 1] have to be the command line arguments :-). –  Tony D Mar 7 '11 at 8:29
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5.1.2.2.1 section 2 point 4: "If the value of argc is greater than zero, the string pointed to by argv[0] represents the program name; argv[0][0] shall be the null character if the program name is not available from the host environment. If the value of argc is greater than one, the strings pointed to by argv[1] through argv[argc-1] represent the program parameters." –  Chris Lutz Mar 7 '11 at 8:39
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+1, For completion also by convention (that is, because the standard says so) argv[ argc ] is '0' (§3.6.1/2 [...]The value of argv[argc] shall be 0.) –  David Rodríguez - dribeas Mar 7 '11 at 8:42
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@Chris: UNIX/Linux too of course: all the exec famility of functions allow the executing process to specify an argv value for its child - by convention that's the child's executable name, but there's a well known decades-old hack to hide that you were running e.g. irc and appear to be running say vim: simply have a tiny program exec the former with the latter forced into argv[0]. That way a simple ps etc. will make it look like you're working. –  Tony D Mar 7 '11 at 8:50
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@Tony - If someone does an exec to trick a program into thinking its name is something else, then we should expect that program to think that its name is whatever we told it to be, shouldn't we? Therefore, a program should trust that argv[0] is its name, and if we've lied to our child program we should feel appropriately ashamed of ourselves. ;) –  Chris Lutz Mar 7 '11 at 9:03
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argv is an array of pointers, and each pointer in this array stores one argument from command line. So argv[0] is the first argument (that is the executable/program itself), argv[1] is the second argument, and so on!

The total number of arguments is determined by argc.

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Why the -1: This is exactly correct. argv[1] is the second argument on the command line as interpreted by the shell. And is the first argument that should be interpreted by the application. –  Loki Astari Mar 7 '11 at 8:32
    
@Downvoter: please explain the reason of downvote? –  Nawaz Mar 7 '11 at 8:33
    
@Nawaz - Someone probably leapt before they looked. Have an upvote and be at peace knowing this answer gave you a net gain of 28 reputation. :) –  Chris Lutz Mar 7 '11 at 9:12
    
@Nawaz, @Martin: "each pointer in this array stores the argument from the command line". I believe this is misleading, and that the first value - the program name - should not be considered a command line argument; it is simply the program name. (It's the exact same issue that led to 4 people questioning the now-deleted answer from Alnitak.) I couldn't find anything in the Standard supporting either perspective... any authoritative reference and I'll reconsider, but I currently believe this is wrong. –  Tony D Mar 7 '11 at 9:22
    
@Nawaz, @Martin: for lack of a better reference, I'll accept the Linux man page's usage which speaks of "an array of pointers...represent the argument list available to the new program. The first argument, by convention, ...". I stand corrected, but can't reverse my down-vote unless the answer is edited. Nawaz: sorry about that! –  Tony D Mar 7 '11 at 9:30
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argv[0] is the execution path of the program, argv[1] is the first parameter to the program

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Let's suppose your C++ executable file is:

/home/user/program (or C:\program.exe in Windows)

if you execute:

./home/user/program 1 2 (or C:\program.exe 1 2 in Windows)

argv[0] = /home/user/program (C:\program.exe)
argv[1] = 1
argv[2] = 2

That is because:

  • argv[0] is the path of the executable file
  • argv[1] is the 1st argument

Edit:

Now I see that argv[0] isn't necessarily the path of the executable file.
Read the following SO question: Is args[0] guaranteed to be the path of execution?

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Note that if argc == 1 then argv[1] doesn't exist. argc is not the number of arguments, it is the size of argv (1 more than the number of arguments). –  Chris Lutz Mar 7 '11 at 8:29
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@Cris Lutz: Rather, if argc == 1 then argv[1] == 0. §3.6.1/2 explicitly states that argv[argc] == 0 –  David Rodríguez - dribeas Mar 7 '11 at 8:44
    
@David - I didn't actually know that until I looked it up for Mehrdad's answer. Glad to know I wasn't going to get away with that. –  Chris Lutz Mar 7 '11 at 8:47
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Short answer is yes, the array contains all the options passed into the program.

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as argv[0] is filepath of the program itself. Extra command line parameters are in further indexes, argv[1],argv[2].. You can read more here : http://www.site.uottawa.ca/~lucia/courses/2131-05/labs/Lab3/CommandLineArguments.html

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Yes, that's mostly it, argv[1] is the second command line parameter. The first command line parameter is the name of the program itself.

Alternatively, to avoid the semantic mess that this answer originally had, and the comments from others, it might make sense to call argv[0] the zeroth parameter, so that argv[1] would now be the "first" of the user supplied values.

In any event, this comes from the exec() family of functions, e.g. execl which has usage:

 int execl(const char *path, const char *arg0, ... /*, (char *)0 */);

In the (Unix) shell when you type in a command, if necessary the shell first resolves the command name (using $PATH) to find the real absolute path. The (absolute or relative) path is supplied for path, and the command as originally typed-in is supplied as arg0, eventually becoming argv[0] in your program.

The remaining command line parameters then end up as argv[1], etc.

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Huh? I'm not sure what your definition of "argument" is here, but AFAIK it's the first argument, not the second... –  Mehrdad Mar 7 '11 at 8:26
    
umm, yeah, clarified. –  Alnitak Mar 7 '11 at 8:28
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