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I am getting "lvalue required as increment operand" while doing *++a. Where I am going wrong? I thought it will be equivalent to *(a+1). This behaviour is weird as *++argv is working fine. Please help.

#include <stdio.h>

int main(int argc, char *argv[])
{    
  printf("Arg is:  = %s\n", *++argv);

  int a1[] = {1,2,3,4,5,6};    
  int a2[] = {7,8,9,10,11,12};
  int *a[2];

  a[0] = a1;
  a[1] = a2;

  printf("ptr  = %d\n", *++a);

  return 0;
}
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1  
void main is not legal. Use int main. –  chris Jul 9 '13 at 4:39
    
I am not able to understand how *argv[] is acting like a pointer while *a[] do not. –  Bhaskar Jul 9 '13 at 4:43

3 Answers 3

up vote 5 down vote accepted

a is a constant(array name) you can't change its value by doing ++a, that is equal to a = a + 1.
You might wanted to do *a = *a + 1 (increment 0 indexed value), for this try *a++ instead. notice I have changed ++ from prefix to postfix.

Note: char* argv[] is defined as function parameter and argv is pointer variable of char** type ( char*[]).
Whereas in your code int* a[] is not a function parameter. Here a is an array of int type (int*)(array names are constant). Remember declaration in function parameter and normal declarations are different.

Further, by using ++ with argv and a you just found one difference, one more interesting difference you can observe if you use sizeof operator to print there size. for example check this working code Codepade

int main(int argc, char* argv[]){
    int* a[2];
    printf(" a: %u, argv: %u", sizeof(a), sizeof(argv));
    return 1;
}

Output is:

a: 8, argv: 4

Address size in system is four bytes. output 8 is size of array a consists of two elements of type int addresses (because a is array), whereas 4 is size of argv (because argv is pointer).

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1  
I am not able to understand how *argv[] is acting like a pointer while *a[] do not. Why *++argv is working? –  Bhaskar Jul 9 '13 at 4:44
1  
@Bhaskar argv is function parameter and *a[] is not –  Grijesh Chauhan Jul 9 '13 at 4:45
1  
+1 guru for mentioning sizeof operator difference. –  Abhineet Jul 9 '13 at 4:56
1  
@Bhaskar if you can understand double pointers/2D arrays then you check one more example show difference between declarations in function pointers and formal declaration –  Grijesh Chauhan Jul 9 '13 at 5:18
1  
+1 for Declaration in function parameter and normal declarations are different. and sizeof example . :) –  PHI Jul 9 '13 at 5:34

++a and a + 1 are not equivalent. ++a is the same as a = a + 1, i.e it attempts to modify a and requires a to be a modifiable lvalue. Arrays are not modifiable lvalues, which is why you cannot do ++a with an array.

argv declaration in main parameter list is not an array, which is why you can do ++argv. When you use a[] declaration in function parameter list, this is just syntactic sugar for pointer declaration. I.e.

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

is equivalent to

int main(int argc, char **argv)

But when you declare an array as a local variable (as in your question), it is indeed a true array, not a pointer. It cannot be "incremented".

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+1 clear explanation :) –  PHI Jul 9 '13 at 5:30

Arrays are not pointers. a is an array; you cannot increment an array.

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But *argv[] is also an array then how it is working? –  Bhaskar Jul 9 '13 at 4:41
    
@Bhaskar: argv isn't an array, it's a pointer; see c-faq.com/aryptr/aryptrparam.html. –  Oli Charlesworth Jul 9 '13 at 4:43
1  
@Bhaskar: No, argv is actually a pointer. When you declare a function parameter as an array its type is adjusted to the corresponding pointer type. argv's type is actually char**. –  Charles Bailey Jul 9 '13 at 4:43
    
Aaah...now I got it. Thanks. :) –  Bhaskar Jul 9 '13 at 4:44
1  
+1 Precise and effective :) –  PHI Jul 9 '13 at 5:35

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