2

There is something I can't understand in c. The following code:

#include <stdio.h>

int main(char* args){
    char abc[100];
    printf("%d %d", sizeof(abc), sizeof(abc+1));
}

outputs

100 4

I tought it should generate 100 100-1, which is:

100 99

Same for int abc[100]. It outputs

400 4

instead of

400 396

edit: Ok, so I saw your commands. abc+1 in an expression. therfore, the result is int, sizeof(int) == 4. So my other question is WHY in the first time I send a pointer for array and the result is the length of the array? The following:

int main(char* args){
    char abc[100];
    char *test;
    test = (char*)abc+1;
    printf("%d %d", sizeof(abc), sizeof(test));
}

Outputs 100 4

  • The syntax says: sizeof expr. Here (abc-1) is an expression. Remove the parentheses : sizeof abc -1 and you'll get 396 or 99 . (this is because sizeof has a stronger precedence than '-' ) – wildplasser Dec 7 '13 at 18:25
9

The expression

abc+1 

is a pointer. Your pointers would therefore appear to be 4 bytes wide.

On the other hand, the expression

abc

is an array of char of length 100 and so its size is 100.

And as for the version using int instead of char, I'm sure you can now apply the above reasoning to explain the output.


I think your edit to the question essentially asks:

Why is abc+1 a pointer, and abc an array.

The standard says:

Other operands - Lvalues, arrays, and function designators (ISO/IEC 9899:201x 6.3.2.1/3)

Except when it is the operand of the sizeof operator, the _Alignof operator, or the unary & operator, or is a string literal used to initialize an array, an expression that has type "array of type" is converted to an expression with type ‘‘pointer to type’’ that points to the initial element of the array object and is not an lvalue. If the array object has register storage class, the behavior is undefined.

So, when you write sizeof(abc) then abc does not meet the criteria required to convert the expression abc into a pointer. So abc is treated as an array. But in the expression sizeof(abc+1), abc+1 does not meet any of the listed exceptions and so is converted into a pointer.

Colloquially this is known as an array decaying to a pointer.

  • EAXTLY what I was looking for! – Weiner Nir Dec 7 '13 at 18:50
6

abc+1 is a pointer; thus its size is the size of a pointer or address, and that is 4 on your system.

Notice that the size of a pointer is platform dependent. As one comment warns: "On Windows 64, a pointer is bigger than the size of a long."

You also ask why it gives you 100 first, if it gives you 4 after.

An array is like pointer but is not a pointer. When you first wrote sizeof(abc), it is not the size of a pointer that is compiled, but the size of your array. That's why it gives you 100 in the first try.

  • You are right it is plateform dependent. Though it is generally the case. – Stephane Rolland Dec 7 '13 at 18:28
  • 1
    Isn't size of integer taken as 16 bits in C from wiki? – hrv Dec 7 '13 at 18:28
  • 1
    The size of a pointer is not the same as the size of an int except on a 32-bit platform. On 16-bit and 64-bit platforms, that is not true. On Windows 64, a pointer is bigger than the size of a long. The i.e. should be at most an e.g.. If you need an integer type that is big enough to hold a pointer, you need uintptr_t (or intptr_t) defined in <stdint.h>. – Jonathan Leffler Dec 7 '13 at 18:32
  • 1
    This is pretty sloppy. Pointer size varies with platform. No general relationships apply here. On Windows, sizeof(void*) != sizeof(long) for 64 bit systems. – David Heffernan Dec 7 '13 at 18:33
  • 2
    @StephaneRolland, to avoid this pointer size fight, your answer can be something like abc+1 is a pointer, thus its size is the size of an pointer adress (which apperars to be 4 bytes on your system). – Atle Dec 7 '13 at 18:35
1

This is perfectly fine.

Since array's name is read only pointer which refer to first element's address in array. Whenever a feasible arithmetic operator (++,--,+,-) or the return is applied on array, It is treated as pointer.

sizeof is a operator which returns the block size (in bytes) holds by a type or a variable or a literal

when you used sizeof(array)
It returned 100.
since block size of array is 100.
you had not applied any arithmetic so array was treated as an array.

when you used sizeof(array+1)
It returned 4 (size of pointer in your machine).
It's treated as pointer as arithmetic operation was applied and pointer's block size is equivalent to long size (may vary).

  • One more question, How does char abc[10] looks in the memory? like the following: \0 \0 \0 \0 \0 \0 \0 \0 \0 \0? – Weiner Nir Dec 7 '13 at 18:45
  • 1
    if char abc[10] is global variable(defined outsize of any function) then it is block whose cells contain nul(/0) or can say collections of 10 /0 (nul) characters. if inside any function then it is block whose cells contents are unknown (garbage/non-meaningful). [][][][][][][][][][] – theBeacon Dec 7 '13 at 18:52
0

The answer to my second question is that sizeof is a compiler time operator. therefore, he knows the size of defined array, like char abc[100]; But he doesn't really know the size of a pointer that points to array. like char *test = abc; I mean that the length of an array isn't saved in memory.

  • In most contexts, sizeof() is a compile-time operator. Under C99 with VLAs (variable length arrays), it is a run-time operator. – Jonathan Leffler Dec 7 '13 at 18:44
  • @Jonathan Leffler Is it true that the size of isn't saved in memory? – Weiner Nir Dec 7 '13 at 18:50
  • @Nirock That is true. The compiler knows the size of an array, but the information is gone once you start running the program. – David Heffernan Dec 7 '13 at 18:52
  • @JonathanLeffler Last question please! Why if I define array char arr[100], I get random value for arr[30] for example? NOT RELEVANT ANYMORE, THANKS ANYWAY! – Weiner Nir Dec 7 '13 at 18:56

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