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I have an array of 10 integers, and k is an integer that loops through the array. Whenever I do 'k = k+1' , one is added to 'k', (if 'k' is 7, then it becomes 8). But if 'k' reaches till 9, I dont want 'k+1' evaluate to 10, I want it to become 1;

I considered using a function like this:

void add_one(int &k){
   if(k == 9){
      k = 1;
      k = k+1;

and whenever i want to add one to 'k':


Then I found out about operator overloading, but it was very confusing and think there must be a better way. Can we tell c++ that whenever it sees k+1 where k = 9, it must return 1 and not 10?

share|improve this question
If it's an array, wouldn't you want it to go from 9 to 0? –  chris Oct 20 '12 at 6:44
For Bjarne's sake, why would you want to change the meaning of + for integers? What's next? You want to change the value of 3? –  R. Martinho Fernandes Oct 20 '12 at 6:46
What is the meaning of better ? You could possibly write the if statement using the ternary operator or use % as suggested in the answers. –  Rndm Oct 20 '12 at 6:47
@chris i want the index 0 to be skipped, whenever i loop through the array, because it stores a completely different value than all the other indexes –  2147483647 Oct 20 '12 at 6:48
What? It's, like, four lines, and you've already written it, and it's perfectly clear what it does and now you want overload '+' or something? What? Why are you wasting your time with this, or ours for that matter? Do you not have any real bugs to worry about? –  Martin James Oct 20 '12 at 7:19

3 Answers 3

up vote 3 down vote accepted

You could use an expression like:

k = k % 9 + 1;
share|improve this answer
Yes thats a good idea but is there a better way, so that whenever i am adding 1 to k, i just have to do k = k+1 and c++ will take care of the rest? –  2147483647 Oct 20 '12 at 6:47
Oh, sorry I didn't notice the 1 based index. Fixing. –  Greg Hewgill Oct 20 '12 at 6:47
@A.06: You could, through operator overloading, but the thing you end up with would no longer be an int. It's probably best to keep integers as integers. –  Greg Hewgill Oct 20 '12 at 6:48
@GregHewgill i had searched for operator overloading, but it is very confusing –  2147483647 Oct 20 '12 at 6:51
@A.06: Yes, I don't recommend using operator overloading for this purpose. –  Greg Hewgill Oct 20 '12 at 6:57

You cannot change the meaning of + for a builtin type. If you write your own class whose instances behave like numbers, then you can make + do what you want.

One way is to just make a thin class that wraps an existing type:

class mynumber {
  int n;
  mynumber(int n_init) : n(n_init) { }

Now you can write overloads for mynumber, as well as things like conversion operators and so on.

The key is that overloading works with classes (and enumerations).

share|improve this answer
Thank you for your replies –  2147483647 Oct 20 '12 at 7:01

Change if(k == 9) to if(k >= 9) in the function void add_one(int k). Remove the & in void add_one(int &k).

#include <iostream>
using namespace std;

void add_one(int k){
   if(k >= 9){
      k = 1;
      k = k+1;
   cout<<" k="<<k<<"  \n";

int main(void)
  int k ;
      cout<<"input "<<k<<" ";

  cout<<" \nPress any key to continue\n";

   return 0;


input 0  k=1
input 1  k=2
input 2  k=3
input 3  k=4
input 4  k=5
input 5  k=6
input 6  k=7
input 7  k=8
input 8  k=9
input 9  k=1
input 10  k=1
input 11  k=1
input 12  k=1
input 13  k=1
input 14  k=1
input 15  k=1
input 16  k=1
input 17  k=1
input 18  k=1
input 19  k=1

Press any key to continue
share|improve this answer
instead of using the + sign i am using my function add_one, so this function will never let 'k' be greater than 9, but thank you for that, it is better to be safe. –  2147483647 Oct 20 '12 at 7:04

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