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I've always assumed:

  1. that a char is represented by a byte,
  2. that a byte can always be counted upon to have 8 bits,
  3. that sizeof (char) is always 1,
  4. and that the maximum theoretical amount of memory I can allocate (counted in chars) is the number of bytes of RAM (+ swap space).

But now that I've read the Wikipedia entry on the byte I'm not so sure anymore.

Which one(s) of my assumptions is wrong? Which one(s) is dangerous?

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There's also Java and C#... –  Mr Lister Mar 15 '12 at 20:22
    
@MrLister: What do other languages have to do with it? –  Ed S. Mar 15 '12 at 20:50
    
Those have char types, and the question was so desparate about always-always-always, that I felt the need to remark about situations where sizeof char is not 1 (even if it's outside of C. Note that neither the question title nor the question text mentions C). –  Mr Lister Mar 15 '12 at 21:44
1  
@MrLister: That's why we have tags. –  user195488 Mar 16 '12 at 12:48

6 Answers 6

up vote 13 down vote accepted
  1. Yes, char and byte are pretty much the same. A byte is the smallest addressable amount of memory, and so is a char in C. char always has size 1.

    From the spec, section 3.6 byte:

    byte

    addressable unit of data storage large enough to hold any member of the basic character set of the execution environment

    And section 3.7.1 character:

    character

    single-byte character
    <C> bit representation that fits in a byte

  2. A char has CHAR_BIT bits. It could be any number (well, 8 or greater according to the spec), but is definitely most often 8. There are real machines with 16- and 32-bit char types, though. CHAR_BIT is defined in limits.h.

    From the spec, section 5.2.4.2.1 Sizes of integer types <limits.h>:

    The values given below shall be replaced by constant expressions suitable for use in #if preprocessing directives. Moreover, except for CHAR_BIT and MB_LEN_MAX, the following shall be replaced by expressions that have the same type as would an expression that is an object of the corresponding type converted according to the integer promotions. Their implementation-defined values shall be equal or greater in magnitude (absolute value) to those shown, with the same sign.

    — number of bits for smallest object that is not a bit-field (byte)
        CHAR_BIT                               8

  3. sizeof(char) == 1. Always.

    From the spec, section 6.5.3.4 The sizeof operator, paragraph 3:

    When applied to an operand that has type char, unsigned char, or signed char, (or a qualified version thereof) the result is 1.

  4. You can allocate as much memory as your system will let you allocate - there's nothing in the standard that defines how much that might be. You could imagine, for example, a computer with a cloud-storage backed memory allocation system - your allocatable memory might be practically infinite.

    Here's the complete spec section 7.20.3.3 The malloc function:

    Synopsis

    1 #include <stdlib.h>
       void *malloc(size_t size);

    Description

    2 The malloc function allocates space for an object whose size is specified by size and whose value is indeterminate.

    Returns

    3 The malloc function returns either a null pointer or a pointer to the allocated space.

    That's the entirety of the specification, so there's not really any limit you can rely on.

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Concretely, with memory overcommit on Linux, it's entirely possible to allocate 2TB of memory on a box with 8G mem+swap. –  Dave Mar 16 '12 at 21:55

sizeof(char) is defined to always be 1. From C99:

When applied to an operand that has type char, unsigned char, or signed char, (or a qualified version thereof) the result is 1.

It is not however guaranteed to be 8 bits. In practice, on the vast majority of platforms out there, it will be, but no, you cannot technically count on that to always be the case (nor should it matter as you should be using sizeof anyway).

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Traditionally, a byte is not necessarily 8 bits, but merely a smallish region of memory, usually suitable for storing one character. The C Standard follows this usage, so the bytes used by malloc and sizeof can be more than 8 bits. [footnote] (The Standard does not allow them to be less.)

But sizeof(char) is always 1.

Memorizing the C FAQ is a career-enhancing move.

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In C, a char is always one byte, so your first and third assumptions are correct.

A byte is not always 8 bits, though, so your second assumption doesn't always hold. That said, >= 99.99% of all systems in existence today have 8-bit characters, so lots of code implicitly assumes 8-bit characters and runs just fine on all the target platforms. Certainly Windows and Mac machines always use 8-bit characters, and AFAIK Linux does as well (Linux has been ported to so many platforms that I'm not 100% sure that somebody hasn't ported Linux to a platform where 9-bit characters make sense).

The maximum amount of memory that can be allocated is the size of virtual memory, minus space reserved for the operating system.

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Wrong. sizeof(char) is always 1, that does not mean that a char is always 8 bits. –  Ed S. Mar 15 '12 at 20:18
    
1st assumption: "a char is represented by a byte", 3rd assumption: " sizeof (char) is always 1." Both are true, and even before the edit I didn't claim otherwise. –  Adam Mihalcin Mar 15 '12 at 20:21
    
@nos: That is definitely not what he said. He has since edited the response to be correct, but it was not initially, which is why it had 3 downvotes. –  Ed S. Mar 15 '12 at 20:22
    
@EdS. Check the edit history. The first paragraph hasn't changed, so don't claim that "he has since edited the response" to fix some mistake. –  Adam Mihalcin Mar 15 '12 at 20:24
    
@AdamMihalcin: No, it's not. You essentially said "Yes, it will always be 8-bits" because you said "Yes" to the OP's question. This is why you got the downvotes. I am not a huge fan of posting incorrect answers quickly, only to later fill in the relevant info, but I have removed my downvote as it is now correct. –  Ed S. Mar 15 '12 at 20:24

sizeof(char) is always 1 byte. A byte is not always one octet, however.

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There are plenty of real machines with non-8-bit bytes. –  Carl Norum Mar 15 '12 at 20:34
    
answer to his question is simple,NO. That's exactly why CHAR_BIT constant exist in posix libraries. –  AoeAoe Mar 16 '12 at 4:40

Concretely, some architectures, especially in the DSP field have char:s larger than 8 bits. In practice, they sacrifice memory space for speed.

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Given that I work for a company providing such compilers, I find the downvote rather puzzling... Please explain! –  Lindydancer Mar 16 '12 at 6:51

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