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As the title imply, can you tell me how to get the size of a string (null terminated) kept in a char array in c? It's good to use sizeof if I declared it (the string) in a function without malloc init or if I declared it as a pointer? What if I initialized it with malloc? I would like to have an exhaustive response to that question.

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It is not clear from your question whether you like to know the size of the "string" or the size of the character-array/memory-block holding the "string". –  alk Feb 21 '13 at 11:10
    
@alk Edited. Hope to be clearer. Thanks. –  artaxerxe Feb 21 '13 at 11:16
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3 Answers

up vote 7 down vote accepted

You can use strlen. Size is determined by the terminating null-character, so passed string should be valid.

If you want to get size of memory buffer, that contains your string, and you have pointer to it:

  • If it is dynamic array(created with malloc), it is impossible to get it size, since compiler doesn't know what pointer is pointing at. (check this)
  • If it is static array, you can use sizeof to get its size.

If you are confused about difference between dynamic and static arrays, check this.

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Actually size is strlen()+1 (1 for terminating character) –  Agnius Vasiliauskas Feb 21 '13 at 11:16
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@0x69 The size of a string is typically defined as excluding the null-terminator. –  Dukeling Feb 21 '13 at 11:18
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@artaxerxe , yes. C99 standart: section 6.5.3.4: When applied to an operand that has type char, unsigned char, or signed char, (or a qualified version thereof) the result is 1. –  nslqqq Feb 21 '13 at 11:27
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@modifiablelvalue The implication was - it's impossible to get the size directly from the dynamic array. Of course you can store the size, but that's not the point. –  Dukeling Feb 21 '13 at 11:37
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@artaxerxe: C defines that a char is 1 byte, but it doesn't define that a byte is 8 bits. So, while it's true that char is always a byte as far as C concerned, it isn't necessarily an octet, and much of the world outside the C standard thinks "byte" means "octet". C implementations on which char is larger than 8 bits are in the minority, but include a lot of DSPs. A lot of "portable" code won't run on DSPs anyway for various reasons, so it's for you to decide whether you want to assume that a byte is 8 bits. The value CHAR_BIT tells you for certain. –  Steve Jessop Feb 21 '13 at 11:47
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While sizeof works for this specific type of string:

char str[] = "content";
int charcount = sizeof str - 1; // -1 to exclude terminating '\0'

It does not work if str is pointer (sizeof returns size of pointer, usually 4 or 8) or array with specified length (sizeof will return the byte count matching specified length, which for char type are same).

Just use strlen().

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Use strlen to get the length of a null-terminated string.

sizeof returns the length of the array not the string. If it's a pointer (char *s), not an array (char s[]), it won't work, since it will return the size of the pointer (usually 4 bytes on 32-bit systems). I believe an array will be passed or returned as a pointer, so you'd lose the ability to use sizeof to check the size of the array.

So, only if the string spans the entire array (e.g. char s[] = "stuff"), would using sizeof for a statically defined array return what you want (and be faster as it wouldn't need to loop through to find the null-terminator) (if the last character is a null-terminator, you will need to subtract 1). If it doesn't span the entire array, it won't return what you want.

An alternative to all this is actually storing the size of the string.

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Note that sizeof doesn't actually give you the length of a string. For a string literal, sizeof includes the null terminator. For an array of char, sizeof gives you the number of elements in the array (which is an unpredictable amount larger than a string length of the array's content) –  simonc Feb 21 '13 at 11:08
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It might make sense to point out that strlen and sizeof return two fundamental different things. –  alk Feb 21 '13 at 11:09
    
@simonc Edited. –  Dukeling Feb 21 '13 at 11:11
    
The size of a pointer is not always 4 bytes on a 32-bit system. Consider if CHAR_BIT is 32-bits. In addition to that, consider if a 16-bit OS and compiler lives on that 32-bit system. CHAR_BIT may still be 32 bits on 16-bit OS and hardware. The size of the pointer is a decision made by the compiler, NOT the OS or hardware. If the compiler chooses to use the same size as the OS or hardware, then that is the compiler's choice. Additionally, different pointers may have different sizes. –  undefined behaviour Feb 21 '13 at 11:32
    
@modifiablelvalue Changed "always" to "usually". –  Dukeling Feb 21 '13 at 11:40
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