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I want to use the following code to copy the user input into a struct on the heap. I know it is incomplete but that's unimportant for my question.

#include "7.1.h"
#include <stdio.h>
#include <stdlib.h>

int main ()

{
    struct Employee emp;
    struct Employees* emps[3];

    for ( int i = 1; i < 2; i ++)
    {
        printf("Please type in the emplooyes data./n Firstname:");
            scanf("%s", emp.first);

        printf("Please type in the emplooyes data./n Lastname:");
            scanf("%s", emp.last);

        printf("Please type in the emplooyes data./n Title:");
            scanf("%s", emp.title);

        printf("Please type in the emplooyes data./n Salary:");
            scanf("%d", emp.salary);

        emps[i] = createEmployee(char*, char*, char*, int);
    }

}

My question concerns the codepiece emps[i] = createEmployee(char*, char*, char*, int);. I don't know how to give the function createEmployee() the values of the struct Employee emp; as pointers. I know that's not necessary but i want to do it that way. I would be thankful for any advise.

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3 Answers

up vote 2 down vote accepted

This should do it:

emps[i] = createEmployee(emp.first, emp.last, emp.title, emp.salary);

...but if you changed your function a little, it would be a lot better to use:

emps[i] = createEmployee(emp);

Your Employee structure could be defined like so:

struct Employee {
  char first[256];
  //...
};

...in which case 'first' is an array. Or, it could be defined as

struct Employee {
  char *first;
  // ...
};

An array of chars and a pointer to a char are very similar beasts. But in the first case, you will automatically allocate 256 chars for the first name each time you create an Employee. In the second case, you have to allocate the memory manually, and duplicate it appropriately when copying, and remember to delete it as well.

Say your createEmployee method looks like:

Employee *createEmployee(char * first, char * last, char * title, int salary);

If you take the first form of the Employee struct above, you might do:

struct Employee *createEmployee(char * first, char * last, char * title, int salary) {
  struct Employee *retVal = (struct Employee *)malloc(sizeof(struct Employee));
  strcpy(retVal->first, first);
  strcpy(retVal->last, last);
  // etc
  return retVal;
}

In the second case, you might do:

struct Employee *createEmployee(char * first, char * last, char * title, int salary) {
  struct Employee *retVal = (struct Employee *)malloc(sizeof(struct Employee));
  retVal->first = strdup(first);
  retVal->last = strdup(last);
  // etc
  return retVal;
}

Note that the second case makes deleting (and copying) quite tricky.

void deleteEmployee(struct Employee *emp) {
  free(emp->first);
  free(emp->last);
  // etc
  free(emp);
}

...but for the first form, you just have to free(emp).

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So is "emp.first" a pointer when i give it to the function or is it a copy of the original value? –  Ordo Dec 23 '10 at 14:44
1  
@Ordo This may sound confusing but it's both. The "first" member of the Employee structure is (hopefully) already a pointer or an array (which is very related to a pointer). By passing emp.first to the createEmployee function, you are creating a copy of the pointer, meaning that it points to the same location. This means that any changes you make to emp.first the next time around the loop will be reflected in emps[0].first since they point to the same memory location. –  user470379 Dec 23 '10 at 14:54
1  
Ordo: Well, depending on how you declared the data structure Employee, it's either a pointer or an array in main (and these are very similar anyway). Either way, when you pass it to your function, your function gets a copy of the pointer - so inside the function, the function parameter is another variable with the same value. I'll elaborate a little above. –  sje397 Dec 23 '10 at 14:57
    
So everything inside a struct is a pointer? And why is an array similiar to a pointer? I guess all arrays are in fact array of pointers. –  Ordo Dec 23 '10 at 14:57
1  
@Ordo: no, an array of pointers is quite different. An array is similar to a pointer because it holds an address - like a pointer, an array holds the address of an element. In C, arrays are arranged consecutively in memory - so you can work out the address of other elements of the array by knowing the address of the first element. But, because you declare it with a size, the compiler can allocate memory and do a few more safety checks for you. Not everything in a struct is a pointer - e.g. your salary member. –  sje397 Dec 23 '10 at 15:12
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This should work:

emps[i] = createEmployee(emp.first, emp.last, emp.title, emp.salary);

You must consider that the emp data structure is local to your function (for this case main). This might lead to very weird errors if you're using emp anywhere else, because the data allocated for emp will be gone once the function returns - so using any data from emp, such as emp.first and emp.last, might cause some issues.

One way to solve this would be to also allocate emp dynamically, and pass a reference of it anywhere you want - this is usually how it's done.

Another quick hacky way would be to dynamically allocate the stuff that will be lost, such as your pointers:

emps[i] = createEmployee(strdup(emp.first), strdup(emp.last), strdup(emp.title), emp.salary);

strdup() will duplicate the string you give it, and it will store it using malloc() (heap) so it won't be gone when the function returns.

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+1 for recognizing the need to duplicate the strings –  user470379 Dec 23 '10 at 14:49
    
I don't think you want strdup. If your struct members are char arrays, you want strcpy. If not, that main function shown has serious issues. –  sje397 Dec 23 '10 at 15:09
    
@sje397: Why would you need strcpy? strdup is for allocating the strings dynamically otherwise references are lost when the "main" function returns. Imagine this code being somewhere else other than "main" - can you see where the issue is? –  Luca Matteis Dec 23 '10 at 15:12
    
You're assuming the struct members are char * - and if that is the case, the scanf calls are writing to unallocated memory in the function shown. If the members are char [] however, then those scanf calls are ok, but you want to use strcpy. –  sje397 Dec 23 '10 at 15:20
    
@sje397, not really, I'm assuming they are char[]. That is static memory that will be gone when the function returns. –  Luca Matteis Dec 23 '10 at 15:25
show 9 more comments

First there is probably a typo in

  struct Employees // the s

You could simply pass the emp record as a pointer

  emps[i] = createEmployee( &emp );

And you have to allocate a new structure, that is returned to the caller

  struct Employee *createEmployee(struct Employee *p)
  {
     struct Employee *newe = malloc(sizeof(struct Employee));
     memcpy(newe, p, sizeof(struct Employee));
     return newe;
  }

Assuming the structure contains char [x] and not char *.

Not tested.

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