2

I have an if statement like this

int val = 1;
if (val == 0 || val == 1 || val == 2 || ...);

Is there a way to do it in a more simplified? For example:

int val = 1;
if (val == (0 || 1 || 2 || ...));

I decided to solve this by creating a function like this:

public boolean ifor(int val, int o1, int o2, int o3) {
    return (val == o1 || val == o2 || val == o3);
}

But this is not enough, because if I wanted to add another parameter in ifor, for example o4, I could not do (should I create another function with the new parameter), or if I wanted to reduce the parameters in o1 and o2. I honestly do not know if I explained, if you ask and I'll try to explain.

  • Are you saying you need to number of conditions to dynamically change? – JShell Jun 25 '15 at 18:29
  • @JesseShellabarger Yes – mikelplhts Jun 25 '15 at 18:30
  • @rakeb.void the problem is that is not necessarily a range of values, I might have if (val == 1 || val == 5); – mikelplhts Jun 25 '15 at 18:31
  • Then the answer has what you need. He beat me to it :( – JShell Jun 25 '15 at 18:32
  • possible duplicate of Java method with unlimited arguments – Malik Brahimi Jun 25 '15 at 18:38
7

You can generalize the function by using varargs instead:

public boolean ifor(int val, int... comparisons){
    for(int o : comparisons){
        if(val == o) return true;
    }
    return false;
}

Then you could call it like any other function, with however many comparisons you want.

2
Arrays.asList(options).contains(value) // check if int value in int[] array called options
  • So for example: int[] options = {6, 0, 2, 3}; int value = 5; – Malik Brahimi Jun 25 '15 at 18:36
  • 1
    List.contains() will be O(n). A Set<Integer> would be preferable. – Andy Thomas Jun 25 '15 at 18:36
  • O(n) time (also known as linear time) is like finding a name in your phone book by starting at the beginning and reading down, one-by-one. You have to look at each name in turn. If you've got a long phone book, it will take a long time. Some sets (e.g., HashSet) gives you O(1) time (also known as constant time) for the contains() method. This is like going directly to the name in your phone book, without searching through all the others -- e.g., it's on your favorites page. By the way, you have almost 10K stackoverflow points. Here you are not just a high school student. – Andy Thomas Jun 25 '15 at 18:48
  • Hash table - en.wikipedia.org/wiki/Hash_table . – Andy Thomas Jun 25 '15 at 18:57
  • @AndyThomas I don't get it. – Malik Brahimi Jun 25 '15 at 18:59
0

You can have a enum or Arraylist with valid values and then use the appropriate functions to check for the value.

One such example using Array List

List list = Arrays.asList(1,2,3,4); ... if (list.contains(3)) { / ... }

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.