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This is a test case for something larger, which is why it is written the way is. How could I make this bit of code so that a's value would keep incrementing? In my project I call a function that parses a line from a file. I need to set values of a struct to certain values that were set in the function call (the parameters of the function were initialized in the main function, like the code below).

int increment(int a)
    return 0;
int main()
    int a =0;
    int b =0;
    while( b<5){
        cout << "a is: " << a << ". And b is: " << b << "\n";


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In many situations, you would be better off returning the incremented value, as in int increment(int a) {return a+1;}. The you call it as a = increment(a). – dasblinkenlight Feb 10 '13 at 1:22

3 Answers 3

Pass its address to increment

void increment(int *a){
//Using the address of operator pass in the address of a as argument
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@Lewis Therin Isn't this just incrementing the pointer; not the value? – Richard Schneider Feb 10 '13 at 1:31
@RichardSchneider Operator precedence? You could be right I haven't done C in ages. I've put the bracket to be explicit. – Lews Therin Feb 10 '13 at 1:34

You could use a pointer: See Passing by reference in C for a similar question.

Also, you could just modify your increment function to return the incremented value of a, and call it in main like the following:

a = increment(a);

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You are passing a by value, so the value of a can never be changed.

One solution is:

int increment (int a) { return a + 1; }

Then in your loop:

a = increment(a);

Another solution is to pass a by reference (a pointer)

int void increment (int *a) { *a = *a + 1; }

and in the loop

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2nd version of increment was wrong and have now updated it. – Richard Schneider Feb 10 '13 at 1:29

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