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    #include "stdio.h"

void Square(int num, int *myPointer);

int main(int argc, const char *argv[]) {
    int originalNum = 5;
    Square(originalNum, &originalNum);
    printf("%i\n", originalNum);
    return 0;

void Square(int num, int *myPointer) {
    *myPointer = num*num;

I don't understand how we can pass in &originalNum for a pointer parameter when originalNum is an int. Thanks!

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4 Answers 4

up vote 1 down vote accepted

originalNum is an int. &originalNum is a pointer to originalNum and thus pointer to an int or int *.

In simpler words, &originalNum is the address where the originalNum variable is allocated in the memory. So, when you pass &originalNum you don't pass 5 (the value of originalNum). Instead, you pass the address where this 5 is stored.

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& means: "address of". originalNum is an int therefore &originalNum is an int* (a pointer).

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originalNum is an int, and &originalNum is its address. This is of type int*.

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originalNum is an int, &originalNum is a pointer over an int the operator & takes the address of originalNum, so it creates a pointer.

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