-1

This question already has an answer here:

I have a function that is supposed to recursively scan an array and determine if it contains a given value.

function includesNumber(arr, num) {
  if (arr.length === 1 && arr[0] !== num) {
    return false; 
  } else if (arr[0] === num) {
    return true;
  } else {
   arr = arr.slice(1);
   includesNumber(arr, num);
 }
} 

I have examined it in a debugger, and I know that if I give it input that should result in a falsy value, say includesNumber([4,8,15,16,23,42], 5), it goes through all the proper steps and hits the first if condition. If I then type "arr.length === 1" it returns true, and if I type "arr[0] !== num" it also returns true, so it should meet all the criteria to return false. But instead, it returns undefined. I always seem to run into this problem with recursion, where it meets the proper conditions but returns undefined, and I would like to understand why this happens.

marked as duplicate by user2864740, Li357 javascript Feb 21 '18 at 20:46

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • The result of the recursive call is not returned: the result is actually undefined for most arrays (and in all cases when it does call itself recursively). Also, using arr.slice(..) yields bad O complexity for this task. – user2864740 Feb 21 '18 at 20:43
  • return includesNumber(arr, num); – takendarkk Feb 21 '18 at 20:44
  • Because you do not return from the recursion.... – epascarello Feb 21 '18 at 20:45
0

You need to put a return on the function - see this fiddle https://jsfiddle.net/2svta4ge/:

  function includesNumber(arr, num) {
  if (arr.length === 1 && arr[0] !== num) {
    return false; 
  } else if (arr[0] === num) {
    return true;
  } else {
   arr = arr.slice(1);
   return includesNumber(arr, num);
 }
}

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