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I wanted to know how sizeof operator works in C.In belown code i am expecting to get output 1 but getting 4 .Since p is pointing to first location and at first location there is character and its size should be one.


char a[9]="amit";
int *p=&a;
 printf("%d",sizeof((char *)(*p)));
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4 Answers 4

up vote 4 down vote accepted

No, you're asking for the size of a character pointer which is 4 in your implementation.

That's because you're casting the dereferenced int pointer p to a char pointer then asking for the size of that.

Breaking it down:

sizeof((char *)(*p))
       |       \__/
       |         \_ Dereference p to get an int.
             \_____ Convert that to a char * (size = 4).

If you want to treat the first character of your int (which is, after all, a character array you've cast anyway), you should use:


That is the int pointer, cast back to a char pointer, and then dereferenced.

Breaking that down:

sizeof(*((char *)(p)))
       | \________/
       |         \_ Get a char * from p (an int *)
             \_____ Dereference that to get a char (size = 1).
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am confused here if simply write sizeof(*p) should not i get one because *p gives value at location which in our case is a –  Amit Singh Tomar Jun 14 '11 at 12:48
@AMIT: no, because you're doing it in the wrong order. If you dereference and then cast that value to a char*, you end up with a char* (size 4). If you cast it to a char* and then dereference, you end up with a char (size 1). –  paxdiablo Jun 14 '11 at 12:50

You are getting the size of the result of the cast (char *), which is a char * with size of 4. Of course you could just have said:

 printf( "%d", sizeof(a[0]) );

and one rather wonders why you didn't?

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For the above question answer is 4.
Here you are type casting an integer pointer to a char pointer.
That means now the integer pointer is holding chars.
For the sizeof operator default argument is int.
When you are passing like sizeof((char *)(*p)) then it treats as sizeof('a'). This char a is promoted to an int. That's why you are getting 4.

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Yes, on a 32 bit system the piece of code should show the size of p to be 4.On a 16 bit it would show 2(not being highly used in application world these days, but can be a used in embedded world based on the requirement of a system). You have done a cast to a char, this will affect the data representation but not the memory occupied by the pointer pointing to your data.

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