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How would you get the length (Give or take the null-terminator) of a string literal without using the cstdlib of something like this:

char* foo = "foobar";
cout << sizeof(foo) << endl; //Always outputs 4
cout << sizeof(*foo) << endl; //Always outputs 1

I have to overload the + operator on a string that may/may not include string literals in the concatenation. I have no way of allocating memory for the string without knowing the length of the char*(Or char[] I guess) being passed.

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1  
have you tried strlen? –  billz Feb 26 '13 at 23:21
    
For the last time, sizeof returns the size, in bytes, of a type of variable. So sizeof(foo) is how many bytes a char* is, and sizeof(*foo) is how many bytes are in a char. –  Approaching Darkness Fish Feb 26 '13 at 23:24

5 Answers 5

#include <cstring>
std::size_t length = std::strlen(foo);

Edit if you can't use any libraries, for whatever reason, then roll out your own strlen. For example

// simple recursion
size_t mystrlen1(const char* str)
{
  return (*str) ? 1 + mystrlen1(++str) : 0;
}

or

// iteration
size_t mystrlen_iteration(const char* str)
{
  size_t counter = 0;
  for (;*str!=0; ++str) ++counter;
  return counter; 
}
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The problem is I can't use any of the existing libraries to implement the solution –  Taylor Bishop Feb 26 '13 at 23:24
2  
@TaylorBishop: how come? –  Oliver Charlesworth Feb 26 '13 at 23:26
    
@TaylorBishop an interesting requirement. Can you use a computer? Anyway, I added a simple function to do that. –  juanchopanza Feb 26 '13 at 23:26
1  
Recursion seems like a computationally intensive way to get to the answer. Isn't a simple while loop better? It would take less time, and in my opinion it is is easier to understand. Why did you choose a recursive algorithm instead? –  Floris Feb 26 '13 at 23:38
    
@Floris it is just an example to show it can be done easily. I added an iteration example. –  juanchopanza Feb 26 '13 at 23:39

foo is a pointer to a string. Yes, it's a constant string, but it's still a char* at the end of the day.

In particular, the size of a char pointer (foo) is 4 bytes (on a 32 bit system [well, a system with 4 byte pointers]), and the size of a char (*foo) is 1 byte.

There's no (standard) way of knowing the length of the string when you use a pointer to a string literal.

You can however know the size when you use an array:

char foo[] = "some string";
size_t len = sizeof(foo) - 1;
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sizeof(char *) is size of the pointer to the string. you can try

char foo[] = "foobar";

sizeof(foo) = 7 (becuase it is "foobar\0" - null-terminated string)

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The reason you are seeing the values you are getting is obvious:

foo is a pointer, and pointers are most often 4 bytes long. *foo is a char, and one byte long. If you can't use a built in library, you can roll your own:

function myStrlen(char* foo) {
    int ii=0;
    while(foo[ii]!='\0') ii++;
    return ii;
}

I have this funny notion that most compilers record the size of a block of allocated memory by storing the value in (pointer - 1) - this is how free() knows how much memory to release. I don't know if this is universally true, and whether it's true for string constants, but I've used this successfully in the past. Yes, I'm a hacker... In your case, I would take a careful peek at

*(((unsigned long int*)foo) - 1)

I would not be surprised if you found the string length there.

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Why not to use for loop? At least your mistake will be obvious. –  Slava Feb 26 '13 at 23:34
    
Slava - made edit. Answer started as a for; I changed my mind but didn't go back to initialize ii. Is it OK now? –  Floris Feb 26 '13 at 23:44

Use std::string:

#include <string>

int main()
{
    std::string str("Hello World");

    std::cout << str.length(); // 11
}
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