19

I created ptr as pointer to an array of 5 chars.

char (*ptr)[5];

assigned it the address of a char array.

char arr[5] = {'a','b','c','d','e'};
ptr = &arr;

using pointer ptr can I access the char values in this array?

printf("\nvalue:%c", *(ptr+0));

It does not print the value.

In my understanding ptr will contain the base address of array but it actually point to the memory required for the complete array (i.e 5 chars). Thus when ptr is incremented it moves ahead by sizeof(char)*5 bytes. So is it not possible to access values of the array using this pointer to array?

  • 1
    Please remember to accept the correct answer to your question which helped you the most. You accept questions with the tick mark next to it. – Kos Sep 2 '11 at 8:00
  • Everyone, pretty please read this c-faq.com/aryptr/ptrtoarray.html before posting an answer. – Lundin Sep 2 '11 at 8:23
19

When you want to access an element, you have to first dereference your pointer, and then index the element you want (which is also dereferncing). i.e. you need to do:

printf("\nvalue:%c", (*ptr)[0]); , which is the same as *((*ptr)+0)

Note that working with pointer to arrays are not very common in C. instead, one just use a pointer to the first element in an array, and either deal with the length as a separate element, or place a senitel value at the end of the array, so one can learn when the array ends, e.g.

char arr[5] = {'a','b','c','d','e',0}; 
char *ptr = arr; //same as char *ptr = &arr[0]

printf("\nvalue:%c", ptr[0]);
  • yes (*ptr)[0] worked for me. Thanks. – Pravi Sep 2 '11 at 7:59
  • 2
    Array pointers have their (limited) uses, for example they are useful when declaring multi-dimensional arrays dynamically and you want the memory declared adjacently. So I wouldn't dismiss them entirely. But as we can see from this thread, most C programmers are clueless about them, so that alone is a reason to stay away from then. – Lundin Sep 2 '11 at 8:20
6

Most people responding don't even seem to know what an array pointer is...

The problem is that you do pointer arithmetics with an array pointer: ptr + 1 will mean "jump 5 bytes ahead since ptr points at a 5 byte array".

Do like this instead:

#include <stdio.h>

int main()
{
  char (*ptr)[5];
  char arr[5] = {'a','b','c','d','e'};
  int i;

  ptr = &arr;
  for(i=0; i<5; i++)
  {
    printf("\nvalue: %c", (*ptr)[i]);
  }
}

Take the contents of what the array pointer points at and you get an array. So they work just like any pointer in C.

0

Your should create ptr as follows:

char *ptr;

You have created ptr as an array of pointers to chars. The above creates a single pointer to a char.

Edit: complete code should be:

char *ptr;
char arr[5] = {'a','b','c','d','e'};
ptr = arr;
printf("\nvalue:%c", *(ptr+0));
  • 1
    char (*ptr)[5] is a pointer to array, and char *ptr[5] is array of pointers. – Kos Sep 2 '11 at 7:53
  • 1
    The OP asked about array pointers specifically. So I suspect that they know how to use plain pointers and arrays already. – Lundin Sep 2 '11 at 8:04
0

Use of pointer before character array

Normally, Character array is used to store single elements in it i.e 1 byte each

eg:

char a[]={'a','b','c'};

we can't store multiple value in it.

by using pointer before the character array we can store the multi dimensional array elements in the array

i.e.

char *a[]={"one","two","three"};
printf("%s\n%s\n%s",a[0],a[1],a[2]);

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