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.

By accident I found that the line char s[] = {"Hello World"}; is properly compiled and seems to be treated the same as char s[] = "Hello World";. Isn't the first ({"Hello World"}) an array containing one element that is an array of char, so the declaration for s should read char *s[]? In fact if I change it to char *s[] = {"Hello World"}; the compiler accepts it as well, as expected.

Searching for an answer, the only place I found which mentioned this is this one but there is no citing of the standard.

So my question is, why the line char s[] = {"Hello World"}; is compiled although the left side is of type array of char and the right side is of type array of array of char?

Following is a working program:

#include<stdio.h>
int main() {
    char s[] = {"Hello World"};
    printf("%s", s); // Same output if line above is char s[] = "Hello World";
    return 0;
}

Thanks for any clarifications.

P.S. My compiler is gcc-4.3.4.

share|improve this question
    
works with mingw32 –  L7ColWinters Apr 13 '12 at 19:46
    
I posted a similar question a few months ago: stackoverflow.com/questions/8061346/… –  Antoine Apr 18 '12 at 8:46
    
wow.. 40upvotes.. –  Jack Apr 18 '12 at 12:57

5 Answers 5

up vote 59 down vote accepted

It's allowed because the standard says so: C99 section 6.7.8, §14:

An array of character type may be initialized by a character string literal, optionally enclosed in braces. Successive characters of the character string literal (including the terminating null character if there is room or if the array is of unknown size) initialize the elements of the array.

What this means is that both

char s[] = { "Hello World" };

and

char s[] = "Hello World";

are nothing more than syntactic sugar for

char s[] = { 'H', 'e', 'l', 'l', 'o', ' ', 'W', 'o', 'r', 'l', 'd', 0 };

On a related note (same section, §11), C also allows braces around scalar initializers like

int foo = { 42 };

which, incidentally, fits nicely with the syntax for compound literals

(int){ 42 }
share|improve this answer
3  
Nearly identical text is in C++2003, clause 8.5.2. –  Robᵩ Apr 13 '12 at 20:36
1  
The ability to use the superfluous braces around initializers for scalar objects also supports the "universal zero initializer" idiom in C language, where the = { 0 } can be used to initialize an object of virtually any type with zeroes. –  AndreyT Apr 13 '12 at 21:24
    
In general, braces simply group all statements contained within them into a single, bigger, statement. This is why you don't need { } for one line if branches (or while, etc). The compiler simply looks for the next statement after the if and executes it conditionally. So, if you want two statments, just make them appear as one by surrounding them in curlies. –  dcow Apr 14 '12 at 4:02
3  
@DavidCowden: That is incorrect. a = (x = 1, y = 2, z = 3); will set a to 3, not 1. –  Nawaz Apr 14 '12 at 5:41
3  
@David Cowden: The usage of {} in the context of initialization has absolutely no relation to their usage in the compound statement syntax. –  AndreyT Apr 14 '12 at 17:24

The braces are optional, and the expression is equivalent to just an array of char.

You can also write this:

 int a = {100}; //ok

Demo : http://ideone.com/z0psd

In fact, C++11 generalizes this very syntax, to initialize non-arrays as well as arrays, uniformly. So in C++11, you can have these:

int a{}; //a is initialized to zero, and it is NOT an array

int b[]{1,2,3,4}; //b is an array of size 4 containing elements 1,2,3,4

int c[10]{}; //all 10 elements are initialized to zero

int *d{}; //pointer initialized to nullptr

std::vector<int> v{1,2,3,4,5}; //vector is initialized uniformly as well.
share|improve this answer

Any variable in (int, char, etc.) is just an array of length 1.

char s = {0};

works as well.

share|improve this answer

I might be wrong, but I think this is not an array of arrays of chars, but a block contains an array of chars. int a = {1}; may work as well.

share|improve this answer

[...] In fact if I change it to char *s[] = {"Hello World"}; the compiler accepts it as well, as expected

The compiler accepets it,because actually, you're making an array 2D of undefined size elements,where you stored one element only,the "Hello World" string. Something like this:

char* s[] = {"Hello world", "foo", "baa" ...};

You can't omit the bracets in this case.

share|improve this answer

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.