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Forgive me if this is a simple error, but I am just learning C at the moment and I just made a trivial program to get a grasp of pointers.

I have a simple piece of code that yields an output I expect

int x = 4;
int *p;
p = &x;
printf("%d\n\n",*p);

//output is 4 as expected

But when I try to do the same with a char array even though I follow the same logic...

char x[] = "Hello, Stack Overflow!";
char *p[];
p = &x;
printf("%s\n\n",*p);

//this gives me an error when compiling as follows
//
// run.c:15: error: incompatible types when assigning to type ‘char *[1]’ from type ‘char (*)[23]’
share|improve this question
    
Actually, this question is was better than usual beginner-C-pointer questions. +1. –  user529758 Oct 6 '12 at 22:28
1  
When you type "under" without stand then you're trying to do it too fast. Pointers take time. –  Hans Passant Oct 6 '12 at 22:28
    
@HansPassant: Actually, once you grasp the concept of RAM, you pretty much get the understanding of pointers for free. The C declaration syntax; Now that's a different story. –  bitmask Oct 6 '12 at 22:57

7 Answers 7

up vote 2 down vote accepted

Multiple errors. First, char *p[] doesn't declare a pointer-to-an-array (as you think it does) - it rather declares an array of char pointers.

Second, since x is an array, &x will evaluate to the same numerical value as x (since arrays cannot be passed by value, only by pointer, they decay into pointers when passed to a function). What you need to do is rather

const char *x = "Hello SO!";
const char **p = &x;
printf("%s\n", *p);

This is the easy solution (making the string literal, that is, an array of chars, decay into a pointer). There's another solution that requires a bit more thinking. From the compiler error message, you can see that the type of &x is char (*)[]. So what you have to declare here is a pointer-to-array:

char x[] = "Hello SO!"; // x is a char array
char (*p)[] = &x; // p is a pointer to a char array
printf("%s\n", *p); // printf accesses *p, so it prints the underlying char array - correct!
share|improve this answer
    
I don't think the second paragraph is right. The value of x is the array "Hello, Stack Overflow!", it isn't a pointer. Arrays and pointers aren't the same. See c-faq.com/aryptr/index.html. Of course, inside of printf they're the same, for the reasons you mention. But not in the scope we're looking at. –  nes1983 Oct 6 '12 at 22:37
    
@nes1983 I was just explaining to another answer provider, dreamzor, that arrays ain't pointers. Neither do state this in my answer. I don't see your point - what's the problem? –  user529758 Oct 6 '12 at 22:40
    
This works perfectly, but to make sure I get the idea: - First line creates a pointer that points to an automatically allocated memory location which now contains "Hello SO!", right? - Second line creates a pointer to a pointer, hence the double asterisk? - Third line, I of course get :D –  Geesh_SO Oct 6 '12 at 22:41
    
@Geesh_SO exactly. –  user529758 Oct 6 '12 at 22:42
1  
This throws away array length information. Unnecessarily. Additionally, somebody might try to free that thing, so I really see no reason to declare x as pointer. Especially when the OP asks for an an array and a pointer to an array. It's bad advice to beginners to say "just use a pointer instead of an array and the compiler will shut up. There closely related anyway." –  bitmask Oct 6 '12 at 22:49

To create a pointer to an array you must explicitly say so, as the subscript operator takes precedence over the dereferencing operator.

char x[] = "Hello, there";
char (*p)[sizeof(x)/sizeof(*x)] = &x;

What you are saying here is that dereferencing first and then applying the subscript (*p)[i] must yield a char. As others have stated your code declares an array to pointers to char.

share|improve this answer
    
Hope you're satisfied now... –  user529758 Oct 6 '12 at 23:06
1  
@H2CO3: If you preferred me not pointing out problems with posts, you could say so instead of answering with such patronising remarks. –  bitmask Oct 6 '12 at 23:19
    
I don't prefer not pointing out problems, I just can't tolerate the agressive way you approached it. –  user529758 Oct 6 '12 at 23:20
    
@H2CO3: I'm honestly sorry if you took it the wrong way. I didn't intend to upset you. –  bitmask Oct 7 '12 at 13:15
    
OK, I see, I calmed down, sorry, mee too. –  user529758 Oct 7 '12 at 13:28

char *p[] means p is an array of character pointers, not a pointer to an array. You should keep p char *p, then it'll work.

share|improve this answer
    
Sorry for the editing. That doesn't work for me, it gives me this error: run.c: In function ‘main’: run.c:15: warning: assignment from incompatible pointer type and also... Segmentation fault –  Geesh_SO Oct 6 '12 at 22:28

Change char *p[] to char p[] or char *p. char *p[] equals to char **p.

share|improve this answer
    
char *p[] equals to char **p is simply not true. Arrays are not pointers. –  user529758 Oct 6 '12 at 22:29
    
Actually it does equal, if you don't care about the scope. Arrays are pointers, the arr[0] is equal to *arr and the arr[i] == *(arr + i). So you are simply not right :) –  dreamzor Oct 6 '12 at 22:32
    
you're pwning yourself by your 'arrays are pointers' statement. You better just relax and read the C FAQ. –  user529758 Oct 6 '12 at 22:34
1  
Of course they are not same, but really, for the OP they are the same in this situation. Please, be more polite. We all are searching for the truth here :) –  dreamzor Oct 6 '12 at 22:42
    
the point(er) is exactly the difference between arrays and pointers. OP's code didn't work because he assumed arrays and pointers are the same - in particular, he thought that the address of an array variable would be the same as the address of a pointer variable, which is not true, and it caused confusion. Don't confuse OP even more by telling him the exact opposite of the truth. –  user529758 Oct 6 '12 at 22:44
#include <stdio.h>
#include <stdlib.h>
#include <string.h>

int main() {

    char x[] = "Hello, Stack Overflow!";
    char *p;
    int len = strlen(x);

    p = malloc(len * sizeof(char) +1);
    strcpy(p,x);
    printf("%s\n\n",p);

    return 0;
}
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The C faq on pointers is pretty great. If you understand it, you'll understand your question.

share|improve this answer
    
Just a remark: On Stackoverflow, people are here to be helpful and answer questions / teach things. Giving a link doesn't answer the asked question ! You can read more on this on the net, but many people here consider that giving a link and asking people to "read and understand" isn't a good idea. (+ the fact that links eventually die, while full text won't). –  halflings Oct 7 '12 at 5:45
    
Yea, well, the question is too specific to merit a detailed answer on SO. –  nes1983 Oct 7 '12 at 8:50

x here is a pointer by itself (a pointer to the first element of the array). If you put just char *p and p = x, it should work.

share|improve this answer
    
x is not a pointer, it's an array. –  user529758 Oct 6 '12 at 22:30

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