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I'm beginner with C and I am learning on my own. I am creating the following function:

char *foo(int x){
     if(x < 0){
        char a[1000];
        char b = "blah";
        x = x - 1;
        char *c = foo(x);
        strcpy(a, b);
        strcat(a, c);
        return a;
      }
    blah ...
}

I am basically trying to return an appended string, but I get the following error:

"error: function returns address of local variable", any suggestions, how to fix this?

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possible duplicate of C Warning: Function returns address of local variable –  netcoder Sep 12 '12 at 3:57
    
When you write your question, it suggests a few duplicates based on it. You probably should have checked those. –  netcoder Sep 12 '12 at 3:58
    
i think that it can be helpful stackoverflow.com/a/6897993 –  Luiz Cajueiro Jan 27 at 12:36

4 Answers 4

The local variables have a lifetime which extends only inside the block in which it is defined. The moment he control goes outside the block in which the local variable is defined, the storage for the variable is no more allocated (not guaranteed). Therefore using the memory address of the variable outside the lifetime area of the variable will be undefined behaviour. am, ther

On the other hand you can do the following.

 char *str_to_ret = malloc (sizeof (char) * required_size);
  .
  .
  .
 return str_to_ret;

And use the str_to_ret instead. And when returning str_to_ret, the address allocated by malloc will be returned. The memory allocated by malloc is allocated from the heap, which has a lifetime which spans the entire execution of the program. Therefore you can access the memory location from any block and any time while the program is running.

Also note that, it is a good practice that after you have done with the allocated memory block, free it to save from memory leaks. Once you free the memory, you can't access that block again.

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a is defined locally in the function, and can't be used outside the function. If you want to return a char array from the function, you'll need to allocate it dynamically:

char *a = malloc(1000);

And at some point call free on the returned pointer.

You should also see a warning at this line: char b = "blah";: you're trying to assign a string literal to a char.

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a is an array local to the function.Once the function returns it does not exist anymore and hence you should not return the address of a local variable.
In other words the lifetime of a is within the scope({,}) of the function and if you return a pointer to it what you have is a pointer pointing to some memory which is not valid. Such variables are also called automatic variabels because their lifetime is automatically managed you do not need to manage it explicitly.

Since you need to extend the variable to persist beyond the scope of the function you You need to allocate a array on heap and return a pointer to it.

char *a = malloc(1000); 

This way the array a resides in memory untill you call a free() on the same address.
Do not forget to do so or you end up with a memory leak.

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This line:

char b = "blah";

Is no good - your lvalue needs to be a pointer.

Your code is also in danger of a stack overflow, since your recursion check isn't bounding the decreasing value of x.

Anyway, the actual error message you are getting is because char a is an automatic variable; the moment you return it will cease to exist. You need something other than an automatic variable.

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