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I have the following piece of code in C:

char a[55] = "hello";
size_t length = strlen(a);
char b[length];
strncpy(b,a,length);
size_t length2 = strlen(b);
printf("%d\n", length);          // output = 5
printf("%d\n", length2);         // output = 8

Why is this the case?

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1  
Use size_t for string lengths instead of int. –  Chris Lutz Oct 2 '11 at 18:16
    
I did but output is still the same. –  Ronnie Slack Oct 2 '11 at 18:20
    
It would be, but in general it's incorrect to use a plain (signed) int for string lengths and array/object sizes. size_t is unsigned (so no -1 length objects) and is guaranteed to be the correct size for your platform (on 64-bit systems size_t will be 8 bytes while int might only be 4, which is sure to cause problems eventually). Also, to print size_t types, use "%zu". –  Chris Lutz Oct 2 '11 at 18:27

6 Answers 6

up vote 9 down vote accepted

it has to be 'b [length +1]' strlen does not include the null character in the end of c strings.

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4  
need to add b[length] = '\0' as well. –  tia Oct 2 '11 at 18:21
4  
..or use strncpy(b,a,length+1) as long as it's known that there's a null character at (or before) a[length] –  Dmitri Oct 2 '11 at 18:24

You never initialized b to anything. Therefore it's contents are undefined. The call to strlen(b) could read beyond the size of b and cause undefined behavior (such as a crash).

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...and as it's contents are undefined, there may happen a 0 in the array. And it breaks the strlen. –  Griwes Oct 2 '11 at 18:08
    
Sry I missed a line of code, b has been initialized now but the problem still persists. –  Ronnie Slack Oct 2 '11 at 18:10
1  
@Ronnie Slack: Can you show the initialization? (comment it so that we know the answers that have been posted are still relevant) –  Mysticial Oct 2 '11 at 18:12
    
sry, still relatively new to stackoverflow. –  Ronnie Slack Oct 2 '11 at 18:14
    
So then can someone show me an example snippet that would make this example work? –  Ronnie Slack Oct 2 '11 at 18:14

b is not initialized: it contains whatever is in your RAM when the program is run.

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For the first string a, the length is 5 as it should be "hello" has 5 characters.

For the second string, b you declare it as a string of 5 characters, but you don't initialise it, so it counts the characters until it finds a byte containing the 0 terminator.

UPDATE: the following line was added after I wrote the original answer.

strncpy(b,a,length);

after this addition, the problem is that you declared b of size length, while it should be length + 1 to provision space for the string terminator.

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Thank you sir, I am such a C noob. haha –  Ronnie Slack Oct 2 '11 at 18:23
    
But when did b get initialized to point to a buffer? –  Hot Licks Oct 2 '11 at 18:31

Others have already pointed out that you need to allocate strlen(a)+1 characters for b to be able to hold the whole string.

They've given you a set of parameters to use for strncpy that will (attempt to) cover up the fact that it's not really suitable for the job at hand (or almost any other, truth be told). What you really want is to just use strcpy instead. Also note, however, that as you've allocated it, b is also a local (auto storage class) variable. It's rarely useful to copy a string into a local variable.

Most of the time, if you're copying a string, you need to copy it to dynamically allocated storage -- otherwise, you might as well use the original and skip doing a copy at all. Copying a string into dynamically allocated storage is sufficiently common that many libraries already include a function (typically named strdup) for the purpose. If you're library doesn't have that, it's fairly easy to write one of your own:

char *dupstr(char const *input) {
    char *ret = malloc(strlen(input)+1);
    if (ret)
        strcpy(ret, input);
    return ret;
}

[Edit: I've named this dupstr because strdup (along with anything else starting with str is reserved for the implementation.]

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Actually char array is not terminated by '\0' so strlen has no way to know where it sh'd stop calculating lenght of string as as its syntax is int strlen(char *s)-> it returns no. of chars in string till '\0'(NULL char) so to avoid this this we have to append NULL char (b[length]='\0')

otherwise strlen count char in string passed till NULL counter is encountered

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