40

I am trying to figure out a way to conditionally break out of an iteration when using JavaScript's reduce function.

Given the following code sums an array of integers and will return the number 10:

[0, 1, 2, 3, 4].reduce(function(previousValue, currentValue, currentIndex, array) {
  return previousValue + currentValue;
});

How can I do something like this:

[0, 1, 2, 3, 4].reduce(function(previousValue, currentValue, currentIndex, array) {
  if(currentValue === "WHATEVER") {
    // SKIP or NEXT -- don't include it in the sum
  }
  return previousValue + currentValue;
});
1
  • 6
    Consider also filtering out the WHATEVER values before calling reduce.
    – user663031
    Aug 27, 2016 at 7:58

3 Answers 3

79

You can just return previousValue

[0, 1, 2, 3, 4].reduce(function(previousValue, currentValue, currentIndex, array) {
  if(currentValue === "WHATEVER") {
    return previousValue;
  }
  return previousValue + currentValue;
});
2
  • 4
    Just a note that where this says previousValue while that's correct, some might find it easier to remember it's the accumulator, and that is what you should indeed return. Nov 12, 2020 at 10:00
  • yeah @SebastianThomas - I tend to agree, today - but in the context of this question it is more descriptive ... at least, that's what I thought FOUR years ago Nov 12, 2020 at 12:45
2

You can simply use a ternary operator to pass the previous value if the condition is true ..or perform a certain action if false

[0, 1, 2, 3, 4].reduce((previousValue, currentValue, currentIndex, array)=>  {
  return(condition)?  previousValue : previousValue + currentValue;
});
1

Another way is to place an if statement, do your reducing logic there ignore other conditions. For example:

Instead of doing this:

let a = sorted.reduce((item,total)=>{
    if(total+item > k) return total;
ans++;
return total + item;
})

This works perfectly:

    let a = sorted.reduce((item,total)=>{
    if(total+item <= k) {
            ans++;
            return total + item;
    }
})

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