3

I've defined the following struct:

typedef struct {
    double salary;
} Employee;

I want to change the value of salary. I attempt to pass it by reference, but the value remains unchanged. Below is the code:

void raiseSalary (Employee* e, double newSalary) {
    Employee myEmployee = *e;
    myEmployee.salary = newSalary;
}

When I call this function, the salary remains unchanged. What am I doing wrong?

  • 2
    You're copying the employee. C does not have pass-by-reference. – robert May 23 '12 at 12:26
7

You're passing a pointer to the original, but then you create a copy of it:

Employee myEmployee =*e;

creates a copy.

e->salary = newSalary;

will do it. Or, if you must have an auxiliary variable for whatever reasons:

Employee* myEmployee =e;
Myemployee->salary= newSalary;

This way, both variables will point to the same object.

  • the dot should be replaced with -> – giorashc May 23 '12 at 12:26
  • I'd add that C does not have pass by reference. – Prof. Falken supports Monica May 23 '12 at 13:43
  • @AmigableClarkKant I think (hope) he means it in the sense that you can change the original value. – Luchian Grigore May 23 '12 at 13:46
3
void raiseSalary(Employee* e, double newSalary){
    e->salary= newSalary;
    }

In your code you create a local copy of the struct and only this local copy is changed.

1

Assuming you have allocated memory at caller, it should be:

e->salary= newSalary;

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