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I tried

printf("%d, %d\n", sizeof(char), sizeof('a'));

and got 1, 4 as output. If size of a character is one, why does 'c' give me 4? I guess it's because it's an integer. So when I do char ch = 'c'; is there an implicit conversion happening, under the hood, from that 4 byte value to a 1 byte value when it's assigned to the char variable?

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I beleive it's to do with automatic integer promotion, someone with more facts than belief will post a factual answer –  Binary Worrier Feb 12 '10 at 13:32
    
Duplicate: stackoverflow.com/questions/2172943/size-of-character-a-in-c-c –  Roger Pate Feb 12 '10 at 13:59
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@Roger: He is asking about the difference between C and C++ sizeof('a'), while I asked if there is a conversion happening? See the question body. I've already deduced that 'a' is an integer in C. –  legends2k Feb 12 '10 at 14:01
    
I have to thank "David Rodríguez - dribeas" for pointing out the link in my answer is incorrect. I'm deleting my answer. legends2k, the correct answer should go to Peter or Neil, in my humble opinion. –  Binary Worrier Feb 12 '10 at 15:30
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You got your answer, but a comment: you can't print size_t objects with "%d". Since sizeof yields size_t a size_t object, you should print it with "%zu" (C99) or cast it to unsigned long and print with "%lu" (C89). –  Alok Singhal Feb 13 '10 at 2:51

5 Answers 5

up vote 19 down vote accepted

In C 'a' is an integer constant (!?!), so 4 is correct for your architecture. It is implicitly converted to char for the assignment. sizeof(char) is always 1 by definition. The standard doesn't say what units 1 is, but it is often bytes.

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+ 1 for "but it is often bytes", I'm still chuckling :) –  Binary Worrier Feb 12 '10 at 13:33
    
used to be an integer was 2 bytes .. the standard doesn't define that either. –  lexu Feb 12 '10 at 13:35
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The standard defines the sizeof operator as returning the size in bytes, so it is not often, but rather always. In the second paragraph of 'The sizeof operator': 'The sizeof operator yields the size (in bytes) of its operand.' –  David Rodríguez - dribeas Feb 12 '10 at 14:28
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sizeof(char) is one byte because it is the definition of byte in the C standard. That byte may be 8 bits or more (can't be less in C), and may or may not be the smallest unit adressable by the computer (definition of byte common in computer architecture). A third common definition of byte is "the unit used for a character encoding" -- i.e 8bits for UTF-8 or ISO-8859-X, 16 bits for UTF-16. Quite often, all definitions agree and put the size of the byte to 8 bits. So often that a fourth definition of byte is "8 bits". When they don't agree, you have better to be clear which definition you use –  AProgrammer Feb 12 '10 at 14:40
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I always shudder when reading "implicitly cast" in SO posts. There is no implicit cast: A cast is always an explicit conversion. The C Standard says in 6.3: "Several operators convert operand values from one type to another automatically. This subclause specifies the result required from such an implicit conversion, as well as those that result from a cast operation (an explicit conversion).". You want to say "implicitly converted". –  Johannes Schaub - litb Feb 12 '10 at 15:49

Th C standard says that a character literal like 'a' is of type int, not type char. It therefore has (on your platform) sizeof == 4. See this question for a fuller discussion.

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I asked about the promotion/casting that happens between the two data types, while the discussion/answer doesn't answer this. –  legends2k Feb 12 '10 at 13:46
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@legends2K You asked "If size of a character is one, why does 'c' give me 4?" As this answer and the question I linked explain that 'a' has sizeof == 4, there is obviously no casting or promotion taking place. –  anon Feb 12 '10 at 13:49
    
Well. there is a detailed form of the question, below it, which reads "is there an implicit typecasting happening, under the hood, from that 4 byte value to a 1 byte value when it's assigned to the char variable". This too is part of it, I believe. –  legends2k Feb 12 '10 at 13:53
    
There is no promotion. In C, 'a' has type int. In most C implementations, 'a' is exactly the same as 97. In C++, 'a' has type char. –  gnasher729 Apr 11 at 14:02

It is the normal behavior of the sizeof operator (See Wikipedia):

  • For a datatype, sizeof returns the size of the datatype. For char, you get 1.
  • For an expression, sizeof returns the size of the type of the variable or expression. As a character literal is typed as int, you get 4.
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According to the ANSI C standards, a char gets promoted to an int in the context where integers are used, you used a integer format specifier in the printf hence the different values. A char is usually 1 byte but that is implementation defined based on the runtime and compiler.

Hope this helps, Best regards, Tom.

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The integer format referred to sizeof('a') not 'a' so I don't see how this argument holds. –  Shane MacLaughlin Feb 12 '10 at 13:33
    
The C standard says a char literal is of type int - it has sizeof int and no promotion is involved. –  anon Feb 12 '10 at 13:35
    
Your answer seems to suggest that the C compiler inspects a format string used by a library function when compiling a program, are you sure that that is the case? –  Peter van der Heijden Feb 12 '10 at 13:36
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What if it was scanf("%s\n",format) ; printf(format, sizeof(char), sizeof('a')); and you'd type "%d, %d\n" when prompted? In this case the compiler has no way of knowing the variable types a'priori and has to use the ellipsis operator blindly as like it is meant to? –  SF. Feb 12 '10 at 13:36
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@Peter van der Heijden : you are correct, a format string and its specifiers have nothing to do with the types of the variables passed after them. gcc, will issue warnings if they don't line up, but it compiles with mismatched types just fine, under the assumption you know more than the compiler does. That said, the 'a' is in a sizeof and is not in an "integer context". The sizeof calls are returning size_t, which I believe is generally typedef'ed to an unsigned integer. –  Michael Speer Feb 12 '10 at 14:02

This is covered in ISO C11 6.4.4.4 Character constants though it's largely unchanged from earlier standards. That states, in paragraph /10:

An integer character constant has type int. The value of an integer character constant containing a single character that maps to a single-byte execution character is the numerical value of the representation of the mapped character interpreted as an integer.

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+1 thanks for quoting the standard; I wonder why integer character constant was chosen over character constant. –  legends2k Apr 11 at 14:13

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