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In the following code, 'buf' is malloced, but then why accessing its member gives seg fault?

edit: thanks to cnicutar and David, I understand the problem now.

class tool{
   ...
   void do(char* buf){
        buf = malloc(100);
        ... //init buf[0], buf[1], etc
   }
};

class user{
   ...
   tool  *tl;
   char  *buf;

   user(){

       tl = new tool;
       tl -> do(buf);

       cout<<buf[1]<<endl;  //---> gives seg fault!  Why?
   }
};
share|improve this question

You didn't write to the copy of buf in user. All you did was allocate the memory, store it to a local variable in do() and then forget about it when do() returned.

You need do() to receive a char**. Only if you do it this way can do() return the newly allocated memory to the caller.

void _do(char** buf){
    *buf = (char*)malloc(100);
    ... //init buf[0], buf[1], etc
}
...
tl -> _do(&buf);

Of course, since this is C++ I wonder why you don't use references and std::string, but perhaps this is illustrative code.

share|improve this answer
    
Thanks! I am using a char array to read the pixels of a bmp image and send the array to some legacy c code. – lukmac Oct 11 '11 at 15:52
1  
I might be cleaner to write as buf = t1->do() to be honest, although this answer is still correct. – Useless Oct 11 '11 at 16:00
2  
@lukmac: you might consider using std::vector<char>, to save having to manage the memory yourself (which is easy to get wrong). You can easily get a C-compatible pointer to its contents: &vector[0] (or vector.data() in C++11). – Mike Seymour Oct 11 '11 at 16:00
3  
Alternatively, pass the pointer by reference: void do( char *& buf ) { buf = (char*)malloc(100); } – David Rodríguez - dribeas Oct 11 '11 at 16:35

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