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In C, how can I create a function which returns a string array? Or a multidimensional char array?

For example, I want to return an array char paths[20][20] created in a function.

My latest try is

char **GetEnv()
{
  int fd;
  char buf[1];
  char *paths[30];
  fd = open("filename" , O_RDONLY);

  int n=0;
  int c=0;
  int f=0;
  char tmp[64];

  while((ret = read(fd,buf,1))>0)
  {
    if(f==1)
    {
      while(buf[0]!=':')
      {
        tmp[c]=buf[0];
        c++;
      }
      strcpy(paths[n],tmp);
      n++;
      c=0;
    }
    if(buf[0] == '=')
      f=1;
  }
  close(fd);

  return **paths; //warning: return makes pointer from integer without a cast
  //return (char**)paths; warning: function returns address of local variable

}

I tried various 'settings' but each gives some kind of error.

I don't know how C works

share|improve this question
    
Please show the code that creates array. Assuming that array is typed as char** you should return array, but you need to malloc it rather than declaring it on the stack. Remember that stack variables are only valid for the life of the stack frame in which they were declared. –  David Heffernan Oct 1 '11 at 18:39
    
I added the code –  LifeH2O Oct 1 '11 at 18:43
    
You are returning a pointer to stack allocated memory. You can't do that' The compiler tells you not to. Allocate it on the heap. –  David Heffernan Oct 1 '11 at 18:44
    
I know the difference, I made the code work. But now I got another strange problem. After returning the array and successfully traversing and using it a function call (which was working earlier) is causing a trap. –  LifeH2O Oct 2 '11 at 8:03
    
It seems you didn't make it work if you have a trap. Let's be clear, you changed you declaration of paths to char** and used malloc like the answers told you declaration of paths to char** and used malloc like the answers told you –  David Heffernan Oct 2 '11 at 8:08

2 Answers 2

up vote 3 down vote accepted

You can't safely return a stack-allocated array (using the array[20][20] syntax).

You should create a dynamic array using malloc:

char **array = malloc(20 * sizeof(char *));
int i;
for(i=0; i != 20; ++i) {
    array[i] = malloc(20 * sizeof(char));
}

Then returning array works

share|improve this answer
    
What will be the syntax to return in that case? Same as I did? –  LifeH2O Oct 1 '11 at 18:47
    
You need to return something of type char**. In your code paths has that type. –  David Heffernan Oct 1 '11 at 18:48
1  
Means i simple need to return paths? –  LifeH2O Oct 1 '11 at 18:51
    
@LifeH2O No you need to do it like how I outlined. your paths is still stack allocated. –  Foo Bah Oct 1 '11 at 18:54
    
@life do you know the difference between the stack and the heap. Until you do you need to stop.@life do you know the difference between the stack and the heap. Until you do you need to stop. –  David Heffernan Oct 1 '11 at 19:09

You should just return array (return array;). the ** after declaration are used for dereferencing.

Also, make sure the the memory for this array is allocated on the heap (using malloc or simillar function)

share|improve this answer
    
return (char**)array does not cause dereferencing ... –  Foo Bah Oct 1 '11 at 18:41
    
@Foo Bah Original question said return **array. –  David Heffernan Oct 1 '11 at 18:42
1  
his line was return **array; which does cause dereferencing. –  MByD Oct 1 '11 at 18:42
    
The code is generating trap now –  LifeH2O Oct 2 '11 at 8:29

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