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I have the following code in my program:

char ch='abcd';
printf("%c",ch);

The output is d.

I fail to understand why is a char variable allowed to take in 4 characters in its declaration without giving a compile time error.

Note: More than 4 characters is giving an error.

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And here I see that even more chars can be appended and always the last one is being printed. –  0605002 Jan 2 at 7:31
    
I'm using visual studio and its allowing only 4 characters. Anyways I did read about the acceptability of multi-char constants and I think different IDEs have their own limit... –  user3152736 Jan 2 at 7:48
    
@tristan How does this help OP? The question and answers are about int and "bigger" types. Are you implying that char gets expanded into an int or something? It cannot pack a multi-char into char type otherwise with out memory overflow. I think it's just compiler behaviour, skipping everything but the last character from the multi-char.Can you elaborate how the linked question relates to this one, besides asking about the multi-char constants? –  luk32 Jan 2 at 7:49
    
@luk32 i thought that answer helps with the explanation of multi character constants. –  tristan Jan 2 at 9:07
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marked as duplicate by Eric Postpischil, Daij-Djan, Dennis Meng, Mihai Stancu, smathy Jan 2 at 23:11

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4 Answers

'abcd' is called a multicharacter constant, and will has an implementation-defined value, here your compiler gives you 'd'.

If you use gcc and compile your code with -Wmultichar or -Wall, gcc will warn you about this.

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Correct. A single character is normally expected for '-enclosed text. Anything beyond that (e.g., a 32 bit register/word that happens to hold 4 8-bit characters) is nonstandard and nonportable. If you really want to handle 4 characters (single or multibyte) at a time, you should be using a string ("-enclosed). –  Phil Perry Jan 2 at 16:53
    
@Phil Perry 'abcd', as an integer character constant, is standard per C11 6.4.4.4 10. Portability problems ensue because its value is implementation-defined. –  chux Jan 3 at 0:19
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Assuming you know that you are using multi-char constant, and what it is.

I don't use VS these days, but my take on it is, that 4-char multi-char is packed into an int, then down-casted to a char. That is why it is allowed. Since the packing order of multi-char constant into an integer type is compiler-defined it can behave like you observe it.

Because multi-character constants are meant to be used to fill integer typed, you could try 8-byte long multi-char. I am not sure whether VS compiler supports it, but there is a good chance it is, because that would fit into a 64-bit long type.

It probably should give a warning about trying to fit a literal value too big for the type. It's kind of like unsigned char leet = 1337;. I am not sure, however, how does this work in VS (whether it fires a warning or an error).

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I fail to understand why is a char variable allowed to take in 4 characters in its declaration without giving a compile time error.

It's not packing 4 characters into one char. The multi-character const 'abcd' is of type int and then the compiler does constant conversion to convert it to char (which overflows in this case).

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4 characters are not being put into a char variable, but into an int character constant which is then assigned to a char.

3 parts of the C standard (C11dr §6.4.4.4) may help:

  1. "An integer character constant is a sequence of one or more multibyte characters enclosed in single-quotes, as in 'x'."

  2. "An integer character constant has type int."

  3. "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."

OP's code of char ch='abcd'; is the the assignment of an int to a char as 'abcd' is an int. Just like char ch='Z';, ch is assigned the int value of 'Z'. In this case, there is no surprise, as the value of 'Z' fits nicely in a char. In the 'abcd', case, the value does not fit in a char and so some information is lost. Various outcomes are possible. Typically on one endian platform, ch will have a value of 'a' and on another, the value of 'd'.


The 'abcd' is an int value, much like 12345 in int x = 12345;.

When the size(int) == 4, an int may be assigned a character constant such as 'abcd'.

When size(int) != 4, the limit changes. So with an 8-char int, int x = 'abcdefgh'; is possible. etc.

Given that an int is only guaranteed to have a minimum range -32767 to 32767, anything beyond 2 is non-portable.

The int endian-ness of even int = 'ab'; presents concerns.


Character constant like 'abcd' are typically used incorrectly and thus many compilers have a warning that is good to enable to flag this uncommon C construct.

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