Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I was going through a book where I found this question

Does mentioning the array name gives the base address in all the contexts?

Can some one explain the cases where array name does not give the base address.thanks

share|improve this question

4 Answers 4

up vote 3 down vote accepted

C 2011 online draft

6.2.3.1 Lvalues, arrays, and function designators

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, given a declaration like

int a[N];

the following expressions do not convert the expression a to a pointer type:

sizeof a
_Alignof a
&a

Given the following declarations

char str[] = "This is a test";
char *p    = "This is another test";

the string literal "This is a test" is being used to initialize an array of char, so it will not be converted to a pointer expression; instead, the contents of the array will be copied to str. In contrast, the string literal "This is another test" is not being used to initialize an array, so it is converted to a pointer expression, and the value of the pointer is written to p.

share|improve this answer

Array-to-pointer decay does not happen everywhere. One example is the argument of sizeof, another is the argument of &:

int arr[10];

sizeof(arr);          // gives 10 * sizeof(int), NOT sizeof(int*)

int (*p)[10] = &arr;  // gives the address of the array, NOT of an rvalue

The second example is fairly obvious, since the value of the array-to-pointer decay is not-an-lvalue, so it wouldn't make sense any other way.

share|improve this answer
    
I think a simple int *p = &arr; would get the job done too. –  Yasky Oct 11 '12 at 13:49
    
@Yasky: nonsense, that wouldn't even be correct. –  Kerrek SB Oct 11 '12 at 13:56

One such context is the sizeof operator, where sizeof(array) gives the (byte) size of the array.

share|improve this answer
    
-1. The question is about location, not size. –  Alexey Frunze Oct 11 '12 at 11:22
    
@AlexeyFrunze: I don't understand your objection. sizeof is indeed a context in which there is no array-to-pointer decay. –  Kerrek SB Oct 11 '12 at 11:24
    
@AlexeyFrunze: The question is "explain the cases where array name does not give the base address". Inside the sizeof operator, the array name doesn't give its base address, period. –  jpalecek Oct 11 '12 at 11:24
    
I was too fast, sorry, undoing the -1. –  Alexey Frunze Oct 11 '12 at 11:26

Array name give address of first element:

int a = {1,2,3};

Suppose address of a is 12

printf(" %u %u",a,&a);

result is

12 12

Where a is address of first element and &a is address of array. same value but different semantic

printf(" %u %u", a+1, &a+1);

result is

14 18

a increased by 2 because 'a' is address of integer and a+1 increase by 2 that is sizeof(int)

where as &a+1 increate by size of array that is 3 int = 3 * sizeof(int)

Assuming sizeof int is 2

share|improve this answer
1  
At the very least, use %p for pointers. –  Alexey Frunze Oct 11 '12 at 11:24
    
@AlexeyFrunze: Thanks will do next time onwards.... but this time I wants to show in unsigned number and less complex too! –  Grijesh Chauhan Oct 11 '12 at 11:28
2  
Then cast the pointer to unsigned int. I mean, if sizeof(int) != sizeof(void*), which is usually the case in 64-bit code, printf() may get very upset. –  Alexey Frunze Oct 11 '12 at 11:29

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.