Before we discuss function call by reference, lets understand the terminologies that we will use while explaining this:
Actual parameters: The parameters that appear in function calls.
Formal parameters: The parameters that appear in function declarations.
For example: We have a function declaration like this:
int sum(int a, int b);
The a and b parameters are formal parameters.
We are calling the function like this:
int s = sum(10, 20); //Here 10 and 20 are actual parameters or int s = sum(n1, n2); //Here n1 and n2 are actual parameters
In this guide, we will discuss function call by reference method. If you want to read call by value method then refer this guide: function call by value.
Lets get back to the point.
What is Function Call By Reference?
When we call a function by passing the addresses of actual parameters then this way of calling the function is known as call by reference. In call by reference, the operation performed on formal parameters, affects the value of actual parameters because all the operations performed on the value stored in the address of actual parameters. It may sound confusing first but the following example would clear your doubts.
Example of Function call by Reference
Lets take a simple example. Read the comments in the following program.
#include <stdio.h> void increment(int *var) { /* Although we are performing the increment on variable * var, however the var is a pointer that holds the address * of variable num, which means the increment is actually done * on the address where value of num is stored. */ *var = *var+1; } int main() { int num=20; /* This way of calling the function is known as call by * reference. Instead of passing the variable num, we are * passing the address of variable num */ increment(&num); printf("Value of num is: %d", num); return 0; }
Output:
Value of num is: 21
Example 2: Function Call by Reference – Swapping numbers
Here we are swapping the numbers using call by reference. As you can see the values of the variables have been changed after calling the swapnum() function because the swap happened on the addresses of the variables num1 and num2.
#include void swapnum ( int *var1, int *var2 ) { int tempnum ; tempnum = *var1 ; *var1 = *var2 ; *var2 = tempnum ; } int main( ) { int num1 = 35, num2 = 45 ; printf("Before swapping:"); printf("\nnum1 value is %d", num1); printf("\nnum2 value is %d", num2); /*calling swap function*/ swapnum( &num1, &num2 ); printf("\nAfter swapping:"); printf("\nnum1 value is %d", num1); printf("\nnum2 value is %d", num2); return 0; }
Output:
Before swapping: num1 value is 35 num2 value is 45 After swapping: num1 value is 45 num2 value is 35
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