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What is the difference between char s[] and char *s in C?

What is the difference between char a[]="string"; and char *p="string";?

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marked as duplicate by James McNellis, Matt Curtis, SoapBox, Alok Singhal, Thomas Matthews May 30 '10 at 17:15

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

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Could you make this question shorter? –  liori May 30 '10 at 13:59
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This is a duplicate –  Johannes Schaub - litb May 30 '10 at 14:02
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@liori: char a[]=“s”; != char *p=“s”; ? :) –  PeterM May 30 '10 at 14:03
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c-faq.com/decl/strlitinit.html –  nc3b May 30 '10 at 14:09
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Exact duplicate of What is the difference between char s[] and char *s in C? –  James McNellis May 30 '10 at 14:21

5 Answers 5

The first one is array the other is pointer.

The array declaration "char a[6];" requests that space for six characters be set aside, to be known by the name "a." That is, there is a location named "a" at which six characters can sit. The pointer declaration "char *p;" on the other hand, requests a place which holds a pointer. The pointer is to be known by the name "p," and can point to any char (or contiguous array of chars) anywhere.

The statements

char a[] = "hello";
char *p = "world";

would result in data structures which could be represented like this:

   +---+---+---+---+---+---+
a: | h | e | l | l | o |\0 |
   +---+---+---+---+---+---+
   +-----+     +---+---+---+---+---+---+
p: |  *======> | w | o | r | l | d |\0 |
   +-----+     +---+---+---+---+---+---+

It is important to realize that a reference like x[3] generates different code depending on whether x is an array or a pointer. Given the declarations above, when the compiler sees the expression a[3], it emits code to start at the location "a," move three past it, and fetch the character there. When it sees the expression p[3], it emits code to start at the location "p," fetch the pointer value there, add three to the pointer, and finally fetch the character pointed to. In the example above, both a[3] and p[3] happen to be the character 'l', but the compiler gets there differently.

You can use search there are tons of explanations on the subject in th internet.

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where is the memory allocated in the first case and where in the second case? stack? heap? when you decide to point p to somethng else does that mean that "wrold" will be deallocated? –  Ram Bhat May 30 '10 at 14:54
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+1 for ASCII artwork. –  Thomas Matthews May 30 '10 at 17:15
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@Ram Bhat: in the first case, it depends on where that definition is placed; if it's in a function, probably on the stack, if it is in a struct, it depends from where the whole struct is allocated; if it's outside any function, in the global vars segment. The same holds for the pointer p; the "world" string to which p points, instead, usually is in a particular section of the executable which is mapped in memory at loading, which is used as string table. –  Matteo Italia May 30 '10 at 18:59

char a[]="string"; //a is an array of characters.

char *p="string";// p is a string literal having static allocation. Any attempt to modify contents of p leads to Undefined Behavior since string literals are stored in read-only section of memory.

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First declaration declares an array, while second - a pointer.

If you're interested in difference in some particular aspect, please clarify your question.

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No difference. Unless you want to actually write to the array, in which case the whole world will explode if you try to use the second form. See here.

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One difference is that sizeof(a)-1 will be replaced with the length of the string at compile time. With p you need to use strlen(p) to get the length at runtime. Also some compilers don't like char *p="string", they want const char *p="string" in which case the memory for "string" is read-only but the memory for a is not. Even if the compiler does not require the const declaration it's bad practice to modify the string pointed to by p (ie *p='a'). The pointer p can be changed to point to something else. With the array a, a new value has to be copied into the array (if it fits).

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