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How do I declare a pointer to a character array in C?

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I'm tempted to say something snarky like "Read the assigned chapter"... in any event, you need more information: language? overall objective? context? This doesn't seem to meet the bar of expectation of questions on this site. –  corsiKa Mar 19 '12 at 23:31
2  
Do you really want a pointer to an array? Or a pointer to the first element of an array? Do you know about cdecl? –  Carl Norum Mar 19 '12 at 23:32
    
To expand a bit on Carl's point: a pointer to an array is possible, but rarely (oh, so very rarely) needed or wanted. Most of the time, you want a pointer to (often const) char. –  Jerry Coffin Mar 19 '12 at 23:35
    
@BlueSky, I think even you will have to admit that your question does't show much research or attempt to discover the answer on your own. It fits pretty firmly into the What have you tried? category. That said, I did answer it, since it's on topic and may be of use to someone in the future. –  Carl Norum Mar 19 '12 at 23:41

2 Answers 2

up vote 7 down vote accepted

I guess I'll give this answer in parts:

  1. Here's a pointer to an array of chars (I assumed a 10-element array):

    char (*x)[10];
    

    Let's break it down from the basics:

    x
    

    is a pointer:

    *x
    

    to an array:

    (*x)[10]
    

    of chars:

    char (*x)[10]
    
  2. However, most of the time you don't really want a pointer to an array, you want a pointer to the first element of an array. In that case:

    char a[10];
    char *x = a;
    char *y = &a[0];
    

    Either x or y are what you're looking for, and are equivalent.

  3. Tip: Learn about cdecl to make these problems easier on yourself.

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@Carl I think you've missed some asterisks in item 2 –  sidyll Mar 19 '12 at 23:44
    
Yup - most definitely. Thanks, @sidyll! If you see me do that in the future, feel free to edit them in yourself - it seems you have plenty of rep to do so. –  Carl Norum Mar 19 '12 at 23:45
    
Well, I just didn't want to break the integrity of the answer from a user for whom I have great respect! –  sidyll Mar 19 '12 at 23:51

You can declare it as extern char (*p)[];, but it's an incomplete type. This is of course because C has no "array" type generically that is a complete type; only arrays of a specific size are complete types.

The following works:

extern char (*p)[];

char arr[20];

char (*p)[20] = &arr;  // complete type now: p points to an array of 20 chars
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