0
  char *str=NULL;
  strsave(s,str,n+1);
  printf("%s",str-n);

when I gdb debug this code I find that the str value is 0x0 which is null and also that my code is not catching this failed memory allocation , it doesnt execute str==NULL perror code ...Any idea

 void strsave(char *s,char *str,int n)
 {
    str=(char *)malloc(sizeof(char)* n);
            if(str==NULL)
                    perror("failed to allocate memory");
    while(*s)
    {
            *str++=*s++;
    }
            *str='\0';
 }
  • Why is str a parameter? – Pubby Nov 3 '12 at 11:01
  • you can't just do str=... in C, you need to do *str =... and make str a double pointer char **str. – user1551592 Nov 3 '12 at 11:55
4

The problem with your code is that you are assigning a pointer to the allocated memory to the copy of str. str inside the function is a local variable and it's located at a different memory address than the variable you are passing to strsave during the call.

In order to change the location that str is pointing at you need to pass a pointer to pointer to char in order to fix this.

void strsave(char *s,char **str,int n)

Another option would be to return a pointer to the newly allocated string.

However, the best solution would be to allocate memory before calling strsave and pass a valid pointer to strsave. It's easier to keep track of your memory allocations when the same module/layer or a function is responsible for both allocation and deallocation of a particular resource.

0

Ever heard about parameters passing by value in C? If not - you should.

Anyway, allocating a memory without assigning its pointer to a variable (or assigning and then "leaking", as in your case) - strictly speaking is not an error. Yes, it's not a good practice, it's a resource/memory leak. But in some cases this may be what is really intended by the programmer.

From the compiler's point of view calling a function without assigning its return value to a variable is ok.

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