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#include<stdio.h>
int main(void)
{

 char heart[]="I Love Tillie"; /* using array notation */

 int i;
 for (i=0;i<6;i++)
 {
   printf("%c",&heart[i]);  /* %c expects the address of the character we want to print     */
 }

 return 0;

}

If heart[i] and &heart[i] mean the same thing , which is the address of heart[i], why is my program giving me this-??????, as output? Could someone please help me out here?

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1  
Where did you read heart[i] is same as &heart[i] ? –  Suvarna Dec 18 '13 at 13:08
    
They don't mean the same thing. –  Oliver Charlesworth Dec 18 '13 at 13:08
    
The name of a character array, like any array name, yields the address of the first element of the array. Therefore, the following holds for the array m1: m1 == &m1[0] , *m1 == 'L', and *(m1+1) == m1[1] == 'i' from C Primer Plus- STephen Prata , confused me too. –  sidchelseafan Dec 18 '13 at 13:10
2  
What gave you the idea that a char is the same as the address of a char (char *)?! I've explained this in an answer to one of your other questions, didn't I? –  Elias Van Ootegem Dec 18 '13 at 13:13
3  
You have misread the equivalences. Apparently, the array is char m1[] = "Like"; or something similar. Saying that m1 == &m1[0] is accurate. Saying that *m1 == 'L' is equivalent to saying m1[0] == 'L' and given the initialization I showed is accurate. Similarly, *(m1+1) == 'i' and m1[1] == 'i' are individually accurate, but the composite statement *(m1+1) == m1[1] == 'i' does not evaluate to true in C, though it makes sense speaking loosely. –  Jonathan Leffler Dec 18 '13 at 13:16

2 Answers 2

First of all

should be

printf("%c",heart[i]); // if you want to print the charachter

or

printf("%p",&heart[i]); // if you want to print the charachter address in the memory

and not

printf("%c",&heart[i])

The heart is an array of charachters and the heart[i] is the charachter number i in the array

The &heart[i] is the memory address of the element number i in the heart array. and to print the memory address you have to use "%p"

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You are trying to print an address as a single character; this is bad news.

heart[i] is a single character; &heart[i] is the address of that character. They are not the same thing at all.

Try a loop like this:

for (i = 0; i < 6; i++)
{
     printf("%c", heart[i]);
     printf(": %s\n", &heart[i]);
}

See what a difference the different conversion specifications (and parameter types) make. If you wish, you can add a printf("%p ", (void *)&heart[i]); to the start of the loop to see how the address values change as you go through the loop.

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Wouldn't %p work in the second case? –  Maroun Maroun Dec 18 '13 at 13:08
    
Yes, %p would work; it would do a completely different job, of course. %p will print the address; %s will print the substring. Of the two, the substring is probably more interesting to the OP, but you could add a printf("%p\n", (void *)&heart[i]); to the list of informative printing operations. –  Jonathan Leffler Dec 18 '13 at 13:11
    
@MarounMaroun: %p would also require a (void *) cast –  Elias Van Ootegem Dec 18 '13 at 13:14

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