23

I was wondering if there is an effective way of separating different strings with comma as the separator?

In Java8 there was StringUtils.join(java.lang.Iterable,char).

For Kotlin I only found joinToString, which converts from array/list to string. As I understand, joinToString converts whole list/array. What if I want to convert a few items from array to comma separated string not all of them? How would one do that? Is there something short and elegant from Kotlin (obviously, I can make my own function for this, but I was just wondering).

list.forEachIndexed { index, item ->
   if (item.isGreen) {
       ...        
   }
}
1

3 Answers 3

33
val greenString = list.filter(ItemClass::isGreen).joinToString()

Here, ItemClass is the type of your item which defines the isGreen function or property. ItemClass::isGreen is a reference to this method/property.

You could also use a lambda for the same effect (see other answer).


Edit: You can specify how the object should be represented as a String in the joinToString function with the transform argument.
Because this is the last parameter it can be given outside of the regular parentheses:

list.filter(ItemClass::isGreen).joinToString() { it.content.text }

You could even leave off the parentheses all together now but they may be used for other arguments.
You can not use the reference style (::) here because it is a complex expression and not a direct reference to a specific method or property.

4
  • And what if my item object would consist of two seperate objects? ItemClass::isGreen and itemClass::content and I would like to filter by ItemClass::isGreen just as you wrote, but only joinToString itemClass::content.name
    – JoshuaMad
    Dec 21, 2017 at 15:20
  • 1
    joinToString has a transform parameter that takes a lambda of type (T) -> String, so you can pass { it.content.name } to it.
    – zsmb13
    Dec 21, 2017 at 15:22
  • @zsmb13 Can you write down a practical example, please?
    – JoshuaMad
    Dec 21, 2017 at 15:27
  • 2
    You can call it as either list.joinToString(transform = { it.content.name }) with a named parameter, or as list.joinToString { it.content.name }, since the lambda is the last parameter of the function.
    – zsmb13
    Dec 21, 2017 at 15:29
17

For this example you can do this:

list
    .filter { it.isGreen }
    .joinToString()
4
  • 18
    If somebody looks for another separator, use joinToString(separator = "\n").
    – CoolMind
    Apr 22, 2019 at 16:40
  • 1
    does the job, but by default joinToString seems to add an additional space after comma, so had to be specific with the separator => joinToString(separator = ",")
    – MDT
    Jan 1, 2021 at 15:28
  • Great answer! In case you needed a slight variation of above as we did: list.filter {it.isVibgyor}.map{color -> "'$color'"}.joinToString(",") will produce: 'violet','indigo','green'
    – JavaTec
    Mar 4, 2021 at 23:14
  • @CoolMind Thanks, I did not need the space between commas, so I used list.joinToString(separator = ",", transform = { it.myReqiredObject.toString()})
    – Reejesh PK
    Feb 24 at 5:21
0

Best way to append strings separated with comma

  val tmp: List<String?> = mList.filter{ it -> it!!.isNotEmpty() }
  txt_addresss.text = tmp.joinToString()

In your case

val tmp: List<Item?> = list.filter{ it -> it!!.isGreen }
txt_addresss.text = tmp.joinToString()

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