Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

There are plenty of similar inquires, but in my case I don't understand what isn't working:

int mysize = 0;
mysize = sizeof(samplestring) / sizeof(*samplestring);
std::cout << mysize << '\n' << samplestring;

This outputs:

4

Press 'q' to quit.

How is it possible? 4 definitely isn't the size of this string. I even tried the following, with the same result:

mysize = sizeof(samplestring) / sizeof(samplestring[0]);

EDIT: Ok, this is the declaration:

char *samplestring = "Start."; 

I'm on C++, but I need to use functions that only accept char *. Later in the code I assign new strings to that variable, like:

samplestring = "Press 'r' for red text.";

Yes, the compiler gives me warnings, but I have no idea how can I use different strings if I can't overwrite them...

share|improve this question
7  
how is samplestring declared? –  Coding Mash Sep 10 '12 at 14:39
    
where is the definition of samplestring ? –  phoxis Sep 10 '12 at 14:39
2  
You managed to leave out the most important piece of info! –  Arkadiy Sep 10 '12 at 14:40
    
string is a char array isnt it? *p gives the first element if it is an array. You need a wrapper class to get size more correctly. I think your array is qwe+NULL –  huseyin tugrul buyukisik Sep 10 '12 at 14:41
    
In C++, char * is not the same as std:string, nor is it same as Java's String or python strings. If you want to understand char *, please start with K&R C - literally read K&R book. Otherwise, stay with std::string - it may keep you safe for a while. –  Arkadiy Sep 10 '12 at 15:02

6 Answers 6

up vote 9 down vote accepted

4 isn't the size of the string, because samplestring isn't a string. It's a char*, whose size is (on your platform) 4, divided by 1 (size of char) is, correctly, 4.

In C++, you'd use std::string and the length() method.

In C, you'd use strlen which takes as parameter a NULL-terminated char pointer.

share|improve this answer

There are two ways of making a string constant, and your technique only works on the first one. The first one makes an array of characters which you can get the size of at compile time, and the other creates a pointer to an array of characters.

char samplestring[] = "hello";
char * samplestring = "hello";

Trying to take the size of the second case the way you're doing it just gives you the size of a pointer. On a 32-bit build the size of a pointer is 4 characters, i.e. a pointer takes the same amount of memory as 4 characters.

The following will always give the correct length for a properly null-terminated string, but it's slower.

mysize = strlen(samplestring);
share|improve this answer
1  
Note (for the op): the first would decay to a pointer if passed to a function, so the sizeof would give the result you expect only in the same context. –  Luchian Grigore Sep 10 '12 at 14:45
    
@LuchianGrigore, thanks for pointing that out. –  Mark Ransom Sep 10 '12 at 14:47

It looks as though you have a pointer, not an array. Arrays are converted to pointers when the program requires it, so you'd get:

size_t size(char * p) { // p is a pointer
    return sizeof(p) / sizeof(*p); // size of pointer
}

size_t size(char p[]) { // p is also a pointer        
    return sizeof(p) / sizeof(*p); // size of pointer
}

although, since sizeof (char) == 1, the division is redundant here; if the pointer were to a larger type, then you'd get a differently unexpected result.

In C++ (but obviously not C), you can deduce the size of an array as a template parameter:

template <typename T, size_t N>
size_t size(T (&)[N]) {
    return N;  // size of array
}

or you can use classes such as std::vector and std::string to keep track of the size.

In C, you can use strlen to find the length of a zero-terminated string, but in most cases you'll need to keep track of array sizes yourself.

share|improve this answer

First of all, sizeof(samplestring[0]) is the same as sizeof(*samplestring), they're both returning the size of the first element of the samplestring array. And, assuming samplestring is an array of chars, sizeof(char) is defined to be 1.

You haven't shown how samplestring is declared. It could be one of the following:

char const *samplestring = "Hello, World!";

or

char *samplestring = malloc( ... );

or

char samplestring[10];

In the first 2 cases the type of samplestring is char *, so sizeof(samplestring) returns sizeof(char *), which, on your platform is 4.

In the third case, the type of samplestring is char[10] (array of 10 chars), but if you call a function that takes a char * as its parameter, the char array will decay to a pointer pointing to the first element of the array. In this case, trying to print sizeof within the function will still result in the size of a pointer being printed.

If you want the size of the original array to be printed from within the function, then the function parameter needs to be a pointer to the original array type (and the type includes size of the original array).

#include <stdio.h>

void foo( char (*arr)[42] )
{
  printf( "%u", (unsigned)sizeof(*arr) );
}

int main()
{
  char arr[42];
  foo( &arr );

  return 0;
}  

Output:

42

This fixes the size of the array that can be passed to the function and is not desirable in a lot of cases. The only other solution is to keep track of the array yourself (or use strlen if you have a NULL terminated string).

share|improve this answer
    
+1 Because you nicely explain why using sizeof from a function doesn't return the size of the original array. –  Serrano Pereira Jan 11 at 14:12

you are asking the size of a pointer on a char. So I guess you're using a 32bit system.

If you're using C++, use std::string :

std::string samplestring("Hello world");
std::cout << samplestring.size() << std::endl;
share|improve this answer
    
But I'm forced to do some back and forth, so how can I put a char * into a proper c++ string, do my operations, then send it back to a char * ? –  Abalieno Sep 10 '12 at 15:02
    
std::string samplestring(your_c_string); samplestring.c_str(); –  Tristram Gräbener Sep 10 '12 at 15:10

The sizeof of an element returns the size of the memory allocated for that object. In your example the string is probably declared somewhere as

samplestring[4]

In which case the size of the memory is 4. The method you probably want in your application is

strlen(samplestring);

Which returns the size of the null terminated string (without the termination)

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.