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#include <stdio.h>

int main(void) {

int TEST_HB[10]; 
memset(TEST_HB,'9', sizeof( TEST_HB));

printf("%c\n",TEST_HB[9]);

printf ("TEST_HB[10]=%d\n",sizeof( TEST_HB[40]));   // shows 4
printf ("Arraysize=%d\n",(sizeof(int)*10));     // gets the expectected results
return 0;

} 

I believe that sizeof (myArray) should return the total size of the array in bytes. But why does sizeof( TEST_HB[40]) returns 4 when it is not defined ?

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4 Answers 4

up vote 7 down vote accepted

TEST_HB[40] is an expression with type int (and undefined behavior if evaluated, since 40 is too big for the array). So sizeof(TEST_HB[40]) is the size of an int on your implementation: 4 is typical.

Importantly, sizeof does not evaluate its operand unless it's a VLA -- it just uses the type. Therefore your code has defined behavior even though there's no such object as TEST_HB[40].

Actually, I say it has defined behavior, but sizeof evaluates to type size_t, which isn't printed with %d. Use %zu where available or consult your compiler documentation. You've got away with it here because you've got lucky with the varargs calling convention, plus either size_t is the same size as int in your implementation, or your implementation is little-endian, or both.

A fairly common use of the fact that sizeof does not evaluate the operand is to write something like this:

struct Foo *foo = malloc(sizeof(*foo) * number_of_foos_required);

sizeof(*foo) is the same as sizeof(struct Foo), but to some people it's more "obviously" the right size to use. foo is uninitialized before the memory is allocated, so it's just as well that sizeof doesn't actually use the value of foo.

A less common use, that demonstrates the behavior of sizeof:

int i = 0;
printf("%d\n", i);
printf("%d\n", (int)(sizeof(i++))); // i++ is not executed
printf("%d\n", i);
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+1 [future] well explained [ but I cant upvote until 1 have 15 reps ] :) –  user1471 Aug 31 '12 at 13:43
    
Beware ,Upvote power unleashed +1 =) –  user1471 Aug 31 '12 at 13:45
sizeof( TEST_HB)

is the size of the array (the size of int[10])

sizeof(TEST_HB[40])

is the size of an element of the array (the size of int).

Note that the element TEST_HB[40] does not exist in your array (you array has only 10 elements), but as sizeof does not evaluate its operand, it is still valid.

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The sizeof operator yields the size of its operand. If you want to get the size of your array, you should use sizeof TEST_HB instead (no parentheses are needed). TEST_HB[40] is indeed of type int, whereas TEST_HB is of type int[10]. Notice that, except with variable length arrays, the operand of the sizeof operator is not evaluated, so it does not lead to an undefined behavior.

C11 § 6.5.3.4 The sizeof and _Alignof operators

The sizeof operator yields the size (in bytes) of its operand, which may be an expression or the parenthesized name of a type.

Besides, use non-constant uppercase identifiers is considered as bad C programming style.

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+1 for the citation –  user1471 Aug 31 '12 at 13:46

The sizeof( TEST_HB[40]) return the size of the int in the position 40 of your int array, hence the 4 bytes as size.

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