How do I get the index for a for each loop... I want to print numbers for every second iteration

For example

for(value in collection) {
     if(iteration_no % 2) {
         //do something
     }
}

In java we have the traditional for loop

for(int i=0; i< collection.length; i++)

How to get the i?

up vote 75 down vote accepted

In addition to the solutions provided by @Audi, there's also forEachIndexed:

collection.forEachIndexed { index, element ->
    // ...
}
  • Wow i think this one is better... Thanks – Audi Feb 21 at 6:57
  • Although this one will only work on collections... – Audi Feb 21 at 9:12
  • It works on Arrays and Iterables, what else do you need it to work on? – zsmb13 Feb 21 at 9:40
  • Sorry confused with primitive java arrays. – Audi Feb 21 at 9:59

Use indices

for (i in array.indices) {
    print(array[i])
}

If you want value as well as index Use withIndex()

for ((index, value) in array.withIndex()) {
    println("the element at $index is $value")
}

Reference: Control-flow in kotlin

  • 2
    thanks dude this really helpful +1 – Harin Kaklotar Jul 19 at 12:36
  • I think this answers is better because don't needs to learn something else, just the simple for loop +1 – underfilho Nov 15 at 19:19

It seems that what you are really looking for is filterIndexed

For example:

listOf("a", "b", "c", "d")
    .filterIndexed { index, _ ->  index % 2 != 0 }
    .forEach { println(it) }

Result:

b
d
  • kotlin keeps getting better for me.. :) – Audi Feb 21 at 7:16
  • 1
    mapping to println results in a list of Units, wouldn't you rather use forEach to indicate the termination? – s1m0nw1 Feb 21 at 8:24
  • @s1m0nw1, you are right map {println(it)} is awkward, I changed my code to reflect your suggestion. Thank You. – Akavall Feb 21 at 15:59
  • also consider using a function reference .forEach(::println) – Kirill Rakhman Feb 26 at 9:00
  • @KirillRakhman, is using function references preferred style in situations like that? I am new to Kotlin, so I am still figuring this stuff out. – Akavall Feb 26 at 17:53

try this; for loop

for ((i, item) in arrayList.withIndex()) { }
  • 3
    While this code may answer the question, providing additional context regarding how and/or why it solves the problem would improve the answer's long-term value. – A Boschman Oct 15 at 18:04

Ranges also lead to readable code in such situations:

(0 until collection.size step 2)
    .map(collection::get)
    .forEach(::println)
  • alternatively (0..collection.lastIndex step 2) – Kirill Rakhman Feb 26 at 21:14

You can use :

for(i in 0..collection.length) {
     if(collection[i] % 2 == 0) {
         //do something
     }
}
  • 0..collection.length is equal to collection.indices – ice1000 Feb 21 at 6:00
  • 2
    I'm not sure where you're getting .length from. AFAIK, that's only for strings. Apart from that, this indexes out of bounds on the final iteration. – chris Feb 21 at 7:25

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