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when the size of pointer array is itself 4 and when i try to print 5th value it gives a random number.How? tell me how this random allocation happens. Thanks!

#include< stdio.h>   
#include< stdlib.h>

int main()
{
 int*    p_array;
 int i;
 // call calloc to allocate that appropriate number of bytes for the array
 p_array = (int *)calloc(4,sizeof(int));      // allocate 4 ints
 for(i=0; i < 4; i++) 
 {
  p_array[i] = 1;
 }
 for(i=0; i < 4; i++) 
 {
  printf("%d\n",p_array[i]);
 }
 printf("%d\n",p_array[5]); // when the size of pointer array is itself 4 and when i try to print 5th value it gives a random number.How?
 free(p_array);
 return 0;
}
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3 Answers 3

up vote 0 down vote accepted

Arrays start at zero, so p_array[5] wasn't initialized in your code. It is printing out a piece of memory that is somewhere on your system.

Read this for a great description on why arrays are zero-based.

e.g.:

p_array[0] = 1;
p_array[1] = 1;
p_array[2] = 1;
p_array[3] = 1;
p_array[4] = 1;
p_array[5] = ?????;
share|improve this answer
    
what is that random number? –  bks4line Dec 4 '13 at 14:56
    
i would like to give you another code. please clarify my doubt.#include<stdio.h> #include<stdlib.h> int main () { int a,n; int * ptr_data; printf ("Enter amount: "); scanf ("%d",&a); int arr[a]; ptr_data = (int*) malloc ( sizeof(int) ); for ( n=0; n<a; n++ ) { printf ("Enter number #%d: ",n); scanf ("%d",&ptr_data[n]); } for ( n=0; n<a; n++ ) arr[n] = ptr_data[n]; //values in heap are copied to an array. printf("%d\n",sizeof(ptr_data)); free (ptr_data); printf ("Output: "); for ( n=0; n<a; n++ ) printf("%d\n",arr[n]); return 0; } –  bks4line Dec 4 '13 at 15:24
    
@bks4line I just ran your code and here's my explanation: ptr_data is a pointer to a specific address on your machine, and therefore will always be of size 8. When you use: &ptr_data[n], you are actually getting the base address of ptr_data, and then adding to that address by n * type_size. e.g., &ptr_data[2] will be the value at the address of ptr_data + 2 * size_of_int. –  Matt Dec 4 '13 at 15:56

The following has undefined behaviour since you're reading past the end of the array:

p_array[5]
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printf("%d\n",p_array[5]);

is an attempt to print an uninitialized section of memory, because your array p_array has the strenght to store only 5 items p_array = (int *)calloc(4,sizeof(int)); starting from p_array[0] through p_array[4] and hence p_array[5] gives you a garbage value.

share|improve this answer
    
is that a value in the heap? –  bks4line Dec 4 '13 at 15:02
    
@bks4line it need not to be specifically from heap, if that memory location happens to be in heap it could be the value from that heap loaction, what i want to say is, it is just a value on of that particular address –  manish Dec 5 '13 at 5:29

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