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Let's say I write char c[99] = {'Stack Overflow'}; in C or C++. It compiles fine but is this valid? By valid I meant not invoking any kind of undefined or unspecified behavior.

Again if I write char c[99] = 'Stack Overflow'; gcc complains about multicharacter constant which is obvious but in the above when I am enclosing within curly brackets compiler is happy! Why is it so?

I also notice that puts(c); after the first statement will output 'w' precisely the last character of a general string in-place of Stack Overflow. Why so?

Could somebody explain these behaviors separately?

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Compile it and find out. –  Falmarri Dec 31 '10 at 21:36
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He already said he did compile it... –  indiv Dec 31 '10 at 21:37
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@Falmarri: I think you win the RTFQ award. He said "it compiles fine" and also describes the output, obviously he did test it. But testing doesn't tell you whether it's portable or well-defined by the standard. –  Ben Voigt Dec 31 '10 at 21:38
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@Falmarri: compiling it will never tell you if it evokes UB. –  John Dibling Dec 31 '10 at 21:51
    
try to replace ' with " and reask this question ) –  osgx Dec 31 '10 at 22:05

2 Answers 2

up vote 14 down vote accepted

They both are only a single literal, so c[0] gets set to the literal and c[1] ... c[98] get filled with zero (NUL character).

I think what value actually gets stuffed into c[0] is implementation dependent, but it should at least compile on any compliant compiler.

EDIT: Verified against the standard, in C++0x at least:

A multicharacter literal has type int and implementation-defined value.

And in C99 (using the draft, cause it's free):

The value of an integer character constant containing more than one character (e.g., 'ab'), or containing a character or escape sequence that does not map to a single-byte execution character, is implementation-defined.

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+1 Welcome to the world of multi-chracter literal. –  Loki Astari Dec 31 '10 at 21:45
    
Hm but why the statement with curly brackets passes the syntactic checking of the compiler? –  Quixotic Dec 31 '10 at 21:49
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@Philando: Because it's a "compound initializer" being used to initialize an array? That's perfectly legal. There's no rule that compound initializers have to have more than one element, in fact things like int a[10] = { 0 }; are very common. –  Ben Voigt Dec 31 '10 at 21:53
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@Philando: Well, you did tag it [c++]. Looking for the relevant section in C99 now. –  Ben Voigt Dec 31 '10 at 21:57
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@Philando: Tag it with the language you're using. C and C++ are different languages. –  GManNickG Dec 31 '10 at 22:05

Agreed - in Windows Kernel code - you see a lot of tagging memory. And it's actually implemented per platform. However, they use ULONGs to tag memory, and it's always a 4-character literal in reverse order: ULONG tagMemory = 'kscf';

The interpretation is platform-specific, but a stream of characters.

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