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Memory Allocation char* and char[]

Can anyone explain me what is a difference between these lines of code

char *p = "String";
char p2[] = "String";
char p3[7] = "String";

In what case should I use each of the above ?

marked as duplicate by interjay, ChrisWue, Mat, littleadv, Nick Meyer Jan 4 '12 at 19:04

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  • 26
    Well that last one is a buffer overflow, so that's nice. – Dan Jan 4 '12 at 18:57
  • 3
    You third example should be p3[6]: you must account for the final 0 – fge Jan 4 '12 at 18:57
  • 18
    @fge: needs 7 in fact. – Mat Jan 4 '12 at 18:58
  • 1
    @Dan compilation error, rather – littleadv Jan 4 '12 at 18:58
  • 9
    Third example is edited – summerc Jan 4 '12 at 19:00
up vote 40 down vote accepted

This link should satisfy your curiosity.

Basically (forgetting your third example which is bad), the different between 1 and 2 is that 1 allocates space for a pointer to the array.

But in the code, you can manipulate them as pointers all the same -- only thing, you cannot reallocate the second.

Strings in C are represented as arrays of characters.

char *p = "String";

You are declaring a pointer that points to a string stored some where in your program (modifying this string is undefined behavior) according to the C programming language 2 ed.

char p2[] = "String";

You are declaring an array of char initialized with the string "String" leaving to the compiler the job to count the size of the array.

char p3[5] = "String";

You are declaring an array of size 5 and initializing it with "String". This is an error be cause "String" don't fit in 5 elements.

char p3[7] = "String"; is the correct declaration ('\0' is the terminating character in c strings).

http://c-faq.com/~scs/cclass/notes/sx8.html

You shouldn't use the third one because its wrong. "String" takes 7 bytes, not 5.

The first one is a pointer (can be reassigned to a different address), the other two are declared as arrays, and cannot be reassigned to different memory locations (but their content may change, use const to avoid that).

  • 5
    char p3[5] = "String"; while dangerous is not wrong and it is valid in C (but not in C++) – ouah Jan 4 '12 at 19:05
  • 5
    @ouah - it is wrong. It may pass compilation, but it is nevertheless wrong. – littleadv Jan 4 '12 at 19:06
  • 4
    this is a strictly conforming definition for an object. A strictly conforming program is not "wrong" in terms of C. – ouah Jan 4 '12 at 19:15
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    @ouah Blatant runtime errors are wrong. – Chris Eberle Jan 4 '12 at 19:47
  • 10
    @Pacerier please stop being intentionally pedantic. You know very well that my statement doesn't mean 'renders the program useless'. The surrounding code is irrelevant. If I write to memory that I shouldn't write to, that's bad behavior. That's a bug. Even if no one notices, that's still a bug. Even if my code never runs, there's still a bug present. The bug may not run, but that doesn't mean my code is bug-free. Stop with the games, you're not being clever. – Chris Eberle Dec 19 '14 at 4:10
char *p = "String";   means pointer to a string type variable.

char p3[5] = "String"; means you are pre-defining the size of the array to consist of no more than 5 elements. Note that,for strings the null "\0" is also considered as an element.So,this statement would give an error since the number of elements is 7 so it should be:

char p3[7]= "String";

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