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#include <stdio.h>

int main(int argc, char* argv[]){
  printf("argc: %d\n",argc);
  for(int i=0;i<sizeof(argv);i++){
    printf("argv[%d] %s\n",i,argv[i]);
  }
  return(0);
}

compiles fine, when using it under a gnome terminal under a GNU/linux distribution

printTest one\ two three
argc: 3
argv[0] /data/local/tmp/printTest
argv[1] one two
argv[2] three
argv[3] (null)

I intentionally left a white space escaped and argv seems to behave really strangely.

Is this behaviour normal ? What is that null ? why argv creates a null pointer instead of just providing a shorter array ?

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4 Answers 4

up vote 7 down vote accepted

sizeof(argv) is meaningless -- it's the size of a pointer (4 on your platform), which just coincidentally happens to be one more than the number of values in argv in this case.

Use argc here instead.

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ops, my bad ... :| –  user1717079 Oct 13 '12 at 19:13

Is this behaviour normal ?

Yes, absolutely. With one\ two you specify that you want this to be one argument.

What is that null ? why argv creates a null pointer instead of just providing a shorter array ?

It shows end of the array, and required by the standard. It makes it possible to loop through all arguments not using argc, e.g.:

while (*++argv) {
    // do something
}

But you also have a mistake in your code, as duskwuff pointed out.

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You shouldn't be using sizeof(argv): you'll just get the size of a pointer on your system, not the number of arguments.

Also note that argv[argc] is NULL according to the specification: there would be a NULL at argv[argc] regardless of your escaped space, or the number of arguments.

From 5.1.2.2.1/2:

argv[argc] shall be a null pointer.

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This is to support the typical C-ish idiom:

for (char** arg = argv + 1; *arg; arg++)
{
    // process next arg

As you see, argv is 0-terminated array of strings.

The splitting of the input into the separate arguments is done by the shell, the language doesn't define it.

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