162

This question already has an answer here:

Let's say I have a list of People which I need to sort by Age first and then by Name.

Coming from a C#-background, I can easily achieve this in said language by using LINQ:

var list=new List<Person>();
list.Add(new Person(25, "Tom"));
list.Add(new Person(25, "Dave"));
list.Add(new Person(20, "Kate"));
list.Add(new Person(20, "Alice"));

//will produce: Alice, Kate, Dave, Tom
var sortedList=list.OrderBy(person => person.Age).ThenBy(person => person.Name).ToList(); 

How does one accomplish this using Kotlin?

This is what I tried (it's obviously wrong since the output of the first "sortedBy" clause gets overridden by the second one which results in a list sorted by Name only)

val sortedList = ArrayList(list.sortedBy { it.age }.sortedBy { it.name })) //wrong

marked as duplicate by Kirill Rakhman, Tunaki java May 17 '16 at 17:34

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.

285

sortedWith + compareBy (taking a vararg of lambdas) do the trick:

val sortedList = list.sortedWith(compareBy({ it.age }, { it.name }))

You can also use the somewhat more succinct callable reference syntax:

val sortedList = list.sortedWith(compareBy(Person::age, Person::name))
  • 1
    In Kotlin 1.2.42 both solutions give the compile error: Cannot choose among the following candidates without completing type inference: public fun <T> compareBy(vararg selectors: (???) → Comparable<*>?): kotlin.Comparator<???> defined in kotlin.comparisons public fun <T> compareBy(vararg selectors: (T) → Comparable<*>?): kotlin.Comparator<T> /* = java.util.Comparator<T> */ defined in kotlin.comparisons – arslancharyev31 May 12 '18 at 16:45
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    @arslancharyev31 This seems to be reported as a bug. It only shows up in the IDE; my gradle build succeeds. – Steven Jeuris May 23 '18 at 11:36
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    This is sorting in ascending order, how to sort in descending order? – Chandrika Jul 18 '18 at 7:58
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    @Chandrika compareByDescending – Alexander Udalov Jul 18 '18 at 12:32
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    compareByDescending would reverse all the functions. If you just wanna use one field for descending order, slap a - (minus) in front, like so {-it.age} – Abhijit Sarkar Jul 24 '18 at 3:13
85

Use sortedWith to sort a list with Comparator.

You can then construct a comparator using several ways:

  • compareBy, thenBy construct the comparator in a chain of calls:

    list.sortedWith(compareBy<Person> { it.age }.thenBy { it.name }.thenBy { it.address })
    
  • compareBy has an overload which takes multiple functions:

    list.sortedWith(compareBy({ it.age }, { it.name }, { it.address }))
    
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    Thanks, this is what I was looking for! I'm a bit new to kotlin, why do you need to have compareBy<Person> as opposed to just compareBy in your first bullet point? – Aneem Aug 4 '17 at 18:31
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    @Aneem, the Kotlin compiler is sometimes unable to infer the type argument, and that needs to be specified manually. One such case is when a generic type is expected, and you want to pass the result of generic functions calls chain, like compareBy<Person> { it.age }.thenBy { it.name }.thenBy { it.address }. In the second point, there's only one function call, no calls chaining: compareBy({ it.age }, { it.name }, { it.address }). – hotkey Aug 7 '17 at 15:54
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    How to add Case Insensitive to that? – K.Os Sep 11 '18 at 19:57
  • Have u got the solution? @Konrad – Koustuv Ganguly Oct 15 '18 at 11:37
  • @KoustuvGanguly maybe this will help you stackoverflow.com/questions/52284130/… – K.Os Oct 15 '18 at 20:08

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