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This is what I am trying to do:

I have been working on code that I have create a structure (hard coded in main) Then I want to malloc space for two structs (tryin to use functions). Then copy all the data in the first struct to the second struct and print the new structure.

The errors the occur is: I don't understand what this error means.

pointer.c:7: error: expected ‘=’, ‘,’, ‘;’, ‘asm’ or ‘__attribute__’ before ‘*’ token
pointer.c:13: error: expected ‘=’, ‘,’, ‘;’, ‘asm’ or ‘__attribute__’ before ‘*’ token



#include <stdio.h>
#include <stdlib.h>
#include "pointer.h"
int rec = 0;

line 7

struct emp *create(int record){
emp *new_employees = malloc(sizeof(info) * (record+1));

return new_employees;   
}

line 13

struct emp *copy(emp *data, int record){
emp *new_employee = create(record+1);
int i;
for(i = 0; i<record;i++){
    new_employee.first = data.first;
    new_employee.last = data.last;
    new_employee.start_date = data.start_date;
    new_employess.sal = data.sal;
    data++;
}
return new_employee;
}


int main(void){
struct info employees;
employees.first = "FIRST";
employees.last = "LAST";
employees.start_date = "June-20th-2006";
employees.sal = 55555.55;
rec = rec+1;



}

header file:

#include <string.h>
struct info {
char *first;
char *last;
char *start_date;
float sal;
} emp;
share|improve this question

4 Answers 4

up vote 2 down vote accepted

info is not a type, and emp is just a variable of type struct info. Either add a typedef (if you want to emp as a type):

typedef struct info {
    char *first;
    char *last;
    char *start_date;
    float sal;
} emp;

...or add a struct keyword.

struct info *create(int record);
struct info *copy(emp *data, int record);
share|improve this answer
    
Yes, but info is the type, not emp –  lkuty Oct 20 '11 at 18:24
    
@LudovicKuty Yeah, confused it. I updated the answer but it won't show as edited… –  sidyll Oct 20 '11 at 18:26

emp is a variable, info is the type. So you should use info instead of emp in the prototype of your function and the body too.

Like others said, a typedef is missing or a struct info instead of emp. I missed that one :)

IMHO those are two distinct errors in your code.

share|improve this answer
emp *new_employees = malloc(sizeof(info) * (record+1));

The name of the type is struct info, not info.

But a better way to write that is:

emp *new_employees = malloc((record+1) * sizeof *emp);

share|improve this answer
    
The other post are say that if do what you have posted I should struct info *new_employees = malloc(sizeof(info) * (record+1)); –  jenglee Oct 20 '11 at 18:35
    
@jenglee: sizeof(info) will work only if you've declared info as a typedef. You can do that if you like, or you can just refer to the type by its original name, struct info. But sizeof *emp is more robust; it doesn't risk accidentally using the wrong type name, and doesn't need to be changed if you later change the type of emp. –  Keith Thompson Oct 20 '11 at 19:01

You must define the functions like this:

struct emp *create()
struct emp *copy()

Or define the structures as a data type using typedef.

share|improve this answer
    
Are you saying I should define this in the header file –  jenglee Oct 20 '11 at 18:32
    
When you define the functions. They must return a struct emp instead of emp –  vicentazo Oct 20 '11 at 18:37

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