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For the program given below, why does the first printf print different values for argv and &argv? The second printf prints the same value for a and &a. What is the mechanism by which argument variables passed to the program are stored?

#include<stdio.h>
    int main(int argc, char * argv[]){
    char * a[10];  
    printf("%d %d\n\n",argv,&argv);
    printf("%d %d",a,&a);  
    return 0;  
}

What is the mechanism of storing command line arguments to an array of strings

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1  
printf("%d %d",a,&a); here &a and a will point to the same address...so you dont need to print them both. and use %p instead of %d to print the address. –  sunny1304 Aug 21 '13 at 7:23
    
I think thats because argv pointer is initialized but your a pointer is not so it got the same adress –  Saxtheowl Aug 21 '13 at 7:23

2 Answers 2

up vote 5 down vote accepted

The problem is not about argv is special, but about function argument passing. Try this program:

#include<stdio.h>

void foo(int a[])
{
    int b[10];
    printf("foo :%p %p\n",a,&a);
    printf("foo :%p %p\n",b,&b);
}

int main(int argc, char* argv[])
{
    int a[10];
    printf("main:%p %p\n", a, &a);
    foo(a);
    return 0;
}

The output in my machine:

main:0x7fffb4ded680 0x7fffb4ded680
foo :0x7fffb4ded680 0x7fffb4ded628
foo :0x7fffb4ded630 0x7fffb4ded630

The first and third line is not surprising since for an array arr, arr and &arr have the same value. The second line needs to be explained.

As you can see, when a is passed in the function foo, the value of a is not changed, but the address &a is changed since C functions always pass arguments by value, there will be a local copy of the argument inside the function.

It's the same with argv since it's just an argument in the function main.


EDIT: For those who disagrees with me, my answer is not against the other answer. On the contrary, they complete each other. argv is a pointer exactly because it's an array that's passed as function argument, and it "decayed" into a pointer. Again, argv is not special, it acts no different than other arrays that are passed as function argument, that's the whole point of my example code.

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Nice example code! I just think the argv in main has some special place before I see your answer! –  Lidong Guo Aug 21 '13 at 7:56
    
This is not really the answer. For any variable a of array type, &a and a as pointers will always have the same address. This is a result of how array types in C work. The difference is that argv is not of array type. –  newacct Aug 22 '13 at 11:05
    
@newacct Then why is argv a pointer? Exactly because it's passed as function argument, and "decayed" into a pointer. –  Yu Hao Aug 22 '13 at 11:08

The difference between argv and a in your example follows from paragraph 6.7.6.3 ad 7 of the C-standard:

A declaration of a parameter as ‘‘array of type’’ shall be adjusted to ‘‘qualified pointer to type’’, where the type qualifiers (if any) are those specified within the [ and ] of the array type derivation. If the keyword static also appears within the [ and ] of the array type derivation, then for each call to the function, the value of the corresponding actual argument shall provide access to the first element of an array with at least as many elements as specified by the size expression.

As a consequence argv is a pointer which has its own address, whereas a is an array and a points to the address of the first element of the array, which is the same as the address of the array.

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+1 this is the real answer –  newacct Aug 22 '13 at 11:05

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