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I am trying to return a C string from a function but its not working. Here is my code.

char myFunction()
{
    return "My String";
}

In main I am calling it like this:

int main()
{
  printf("%s",myFunction());
}

I have also tried some other ways for myFunction but they are not working. E.g:

char myFunction()
{
  char array[] = "my string";
  return array;
}

Note: I am not allowed to use pointers!

Little background on this problem: There is function which is finding out which month it is e.g; if its 1 then it return January etc etc.

So when its going to print, it's doing like this. printf("Month: %s",calculateMonth(month));. Now the problem is how to return that string from the calculateMonth function.

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3  
Unfortunately you need pointers in this case. –  Nick Bedford Sep 30 '09 at 6:01
1  
Why can't you use pointers? –  Nick Bedford Sep 30 '09 at 6:04
    
(you need to return an int in main by the way) –  Hayato Sep 30 '09 at 6:05
1  
@Hayato Well i believe we are are adults here and know it should return 0, it was just for sake of giving example lox.. –  itsaboutcode Sep 30 '09 at 6:08
2  
return 0 is implied by default only in C99 (and C++) but not in C90. –  hrnt Sep 30 '09 at 6:08

12 Answers 12

up vote 24 down vote accepted

your function signature needs to be:

const char * myFunction()
{

    return "My String";

}
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Actually, the function needs to return a char *, as string literals in C are of type char[]. They, however, must not be modified in any way, so returning const char* is preferred (see securecoding.cert.org/confluence/x/mwAV). Returning char * may be needed if the string will be used in a legacy or external library function which (unfortunately) expects a char* as argument, even tough it will only read from it. C++, on the other hand, has string literals of const char[] type (and, since C++11, you can also have std::string literals). –  TManhente Mar 30 at 12:33
    
A point of opinion: I've always detested 'My' in any form of code. It shows lack of thinking about who owns the code and doesn't add any information about what the code does. I've always grilled newbies straight from uni who have this deplorable habit. even 'Some' is oodles better than 'My' –  cmroanirgo Jun 18 at 9:46
1  
@cmroanirgo the my prefix declares to the reader that the function was created by the user. I find it perfectly reasonable to use in such a context. –  quant Jul 30 at 0:10

A C string is defined as a pointer to an array of characters.

If you cannot have pointers, by definition you cannot have strings.

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Your problem is with the return type of the function - it must be:

char *myFunction()

...and then your original formulation will work.

Note that you cannot have C strings without pointers being involved, somewhere along the line.

Also: Turn up your compiler warnings, it should have warned you about that return line converting a char * to char without an explicit cast.

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1  
I think the signature should const char* since the string is a literal but if I'm not mistaken the compiler will accept this. –  Luke Sep 30 '09 at 6:30

Based on your newly-added backstory with the question, why not just return an integer from 1 to 12 for the month, and let the main() function use a switch statement or if-else ladder to decide what to print? It's certainly not the best way to go - char* would be - but in the context of a class like this I imagine it's probably the most elegant.

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You are right, i am also thinking in these terms. –  itsaboutcode Sep 30 '09 at 6:28

Or how about this one:

void print_month(int month)
{
    switch (month)
    {
        case 0:
            printf("january");
            break;
        case 1:
            printf("february");
            break;
        ...etc...
    }
}

And call that with the month you compute somewhere else.

Regards,

Sebastiaan

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1  
+1 not what OP asked but this is probably what the assignment expect you to do, since he can't use pointers. –  Vitim.us Apr 13 '13 at 22:54

Note this new function:

const char* myFunction()
{
        static char array[] = "my string";
        return array;
}

I defined "array" as static, otherwise when the function end, the variable (and the pointer you are returning) gets out of scope. Since that memory is allocated on the stack, it will get corrupted. The downside of this implementation is that the code is not re-entrant and not thread-safe.

Another alternative would be to use malloc to allocate the string in the heap, and then free on the correct locations of your code. This code will be re-entract and thread safe.

EDIT:

As noted in the comment, this is a very bad practice, since an attacker can then inject code to your app (he needs to open the code using gdb, then make a breakpoint and modify the value of a returned variable to overflow and fun just gets started).

If is much more recommended to let the caller handle about memory allocations. See this new example:

char* myFunction( char* output_str, size_t max_len )
{
   const char *str = "my string";
   size_t l = strlen(str);
   if (l+1 > max_len) {
      return NULL;
   }
   strcpy(str, str, l);
   return input;
}

Note that the only content which can be modified is the one that the user. Another side effect - this code is now thread safe, at least from the library point of view. The programmer calling this method should verify that the memory section used is thread safe.

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1  
This is generally a bad way to go about things. The char* is able to be manipulated by the surrounding code. That is, you can do things like this: strcpy(myFunction(), "A really long string"); and your program will crash due to access violation. –  cmroanirgo Jun 18 at 9:44

Your function return type is a single char. You should return a pointer to the first element of the character array. If you can't use pointers, then you are screwed. :(

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I am not allowed to use pointers :@ that's the problem. –  itsaboutcode Sep 30 '09 at 6:02

A char is only a single one-byte character. It can't store the string of characters, nor is it a pointer (which you apparently cannot have). Therefore you cannot solve your problem without using pointers (which char[] is syntactic sugar for).

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If you really can't use pointers, do something like this:

char get_string_char(int index)
{
    static char array[] = "my string";
    return array[index];
}

int main()
{
    for (int i = 0; i < 9; ++i)
        printf("%c", get_string_char(i));
    printf("\n");
    return 0;
}

The magic number 9 is awful, this is not an example of good programming. But you get the point. Note that pointers and arrays are the same thing (kinda) so this is a bit cheating.

Hope this helps!

Regards,

Sebastiaan

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1  
It's using a pointer in sheep's clothing! :P –  Twisol Sep 30 '09 at 6:30
1  
I count exactly three pointer subexpressions in that code. –  caf Sep 30 '09 at 6:38
    
Usually if you need to implement such solutions to homework problems, then your preliminary assumptions are wrong. –  hrnt Sep 30 '09 at 11:11

Your function prototype states your function will return a char. Thus, you can't return a string in your function.

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Well in your code you are trying to return a String (In C which is nothing but null terminated array of chars) but return type of your function is char which is causing all the trouble for you. Instead you should write it this way:

const char* myFunction()
{

    return "My String";

}

And it's always good to qualify your type with const while assigning literals in C to pointers as literals in C aren't modifiable.

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You can create the array in the caller, which is the main function, and pass the array to the callee which is your myFunction(). Thus myFunction can fill the string into the array. However you need to declare myFunction() as

char* myFunction(char * buf, int buf_len){
  strncpy(buf, "my string", buf_len);
  return buf;
}

and in main function, myFunction should be called in this way

char array[51];
memset(array,0,51);/*all bytes are set to '\0'*/
printf("%s", myFunction(array,50));/*buf_len arguement is 50 not 51. This is to make sure the string in buf is always null-terminated(array[50] is always '\0')*/

However pointer is still used.

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Don't see any way to do this without using pointers. –  ouflak Apr 2 at 10:40

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