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Given an array of integers, what's the most efficient way to perform j operations on the array where the value of j could be => or <= array.length?

I tried something like this...

function performJ(arr, j) {
  arr.sort((a, b) => b - a);
  let i = 0;
  while (j !== 0) {
   if (i < arr.length) {
     arr[i] = Math.ceil(arr[i] / 2)
   } else {
     // when i reaches arr.length, reset it to continue operations j
     i = 0;
     arr[i] = Math.ceil(arr[i] / 2)
   }
   // increment i, step through arr
   ++i;
   // decrement j as we perform operations on arr
   --j;
 }
 return arr.reduce((a, b) => a + b);
}

That works for a lot of cases, but for some reason it seems like large inputs of arr and j cause arithmetic operations in the while loop to get way off.

Thanks!

EDIT: Edited question for clarity. I previously had a solution that worked, but it took way too long. This solution's arithmetic is off, but works much faster.

10
  • "the most efficient way" in terms of what? Also what is arr.someMethod();? Apr 11 '20 at 0:07
  • What do you mean by "to get way off"?
    – Dekel
    Apr 11 '20 at 0:08
  • @YuryTarabanko -- Efficient in terms of time.
    – joehdodd
    Apr 11 '20 at 0:10
  • @Dekel -- Small inputs of arr and j work for something like sorting the array and reducing the sum of its elements, very large inputs produce incorrect answers for those operations.
    – joehdodd
    Apr 11 '20 at 0:11
  • Can you give an example of such an input for which the result is incorrect? I tried a few but they seemed to work as desired Apr 11 '20 at 0:27
4

Use modulo to iterate on indicies [i % arr.length] from 0 to j:

function performJ(arr, j) {
  arr.someMethod(); // ?
  for (let i = 0; i < j; i++) {
    arr[i % arr.length] = /* operation */
  }
  return arr.someMethod(); // ?
}
2
  • 2
    When j exceeds array length, it simply loops back to the remainder value (aka modulus). Not sure why there's a downvote tho... :/ this is a great answer.
    – Terry
    Apr 11 '20 at 0:14
  • Oddly enough, this solution fails in just the same way as my original code. I updated my question for more clarity on what I'm trying to do. My first solution worked, but took too long, so it's not a true "solution", but the one I shared above fails on larger inputs.
    – joehdodd
    Apr 11 '20 at 0:25
0

Why not just a for loop like this?

for(let i = 0; i <= j; i++) {
  const index = i % array.length;
  array[index] = doSomething();
}

if array.length is 5 but j is 3 then doSomething() will only be called on the first three elements. if array.length is 3 but j is 5 then i will reach 3 and 3 % 3 === 0 so index will loop back to the beginning. That means doSomething() will be called on all three elements once and during the second run on only the first two elements.

Is this what you want?

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