45

How can I easily flatten a List in Dart?

For example:

var a = [[1, 2, 3], ['a', 'b', 'c'], [true, false, true]];
var b = [1, 2, 3, 'a', 'b', 'c', true, false, true];

How do I turn a into b, i.e. into a single List containing all those values?

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77

The easiest way I know of is to use Iterable.expand() with an identity function. expand() takes each element of an Iterable, performs a function on it that returns an iterable (the "expand" part), and then concatenates the results. In other languages it may be known as flatMap.

So by using an identity function, expand will just concatenate the items. If you really want a List, then use toList().

var a = [[1, 2, 3], ['a', 'b', 'c'], [true, false, true]];
var flat = a.expand((i) => i).toList();
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  • 2
    Nice! I think someone should make a list of common great tricks in Dart. – Kai Sellgren Mar 14 '13 at 16:07
  • 2
    Awesome recipe for @shailentuli to add. – Seth Ladd Mar 14 '13 at 17:29
  • 1
    To handle more levels of nesting, I do this: Iterable flatten(Iterable iterable) => iterable.expand((e) => e is List ? flatten(e) : [e]); – Greg Lowe Feb 16 '14 at 22:08
  • FYI, Quiver.iterables includes a concat() connivence method which uses expand like this. – Justin Fagnani Feb 17 '14 at 21:54
7

I don't think there's a built-in method for that, but you can always reduce it to a single value:

var a = [[1, 2, 3], ['a', 'b', 'c'], [true, false, true]];

var flatten = a.reduce([], (p, e) {
  p.addAll(e);
  return p;
});

print(flatten);

I wish addAll() would return the original list. Currently it returns nothing. If that were true, you could write a single liner: a.reduce([], (p, e) => p.addAll(e)).

Alternatively, you can just loop through the list and add:

var flatten = [];
a.forEach((e) => flatten.addAll(e));
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  • 6
    You can write the single liner using cascades: a.reduce([], (p, e) => p..addAll(e)) – Florian Loitsch Mar 14 '13 at 21:31
  • @kai-sellgren , I have checked the Dart API page but the syntax and the example there(api.dart.dev/dev/2.8.0-dev.6.0/dart-core/Iterable/reduce.html) are not the same as the one you have used here(the initial empty list [] to be more specific). Isn't that a case of "fold" ? – aderchox Jan 31 at 20:34
3

the solution with expand method fits good to satisfy this case :

expect(ListTools.getFlatList([[1],["hello",2],["test"]]),orderedEquals([1,"hello",2,"test"]));

But not for theses ones 

expect(ListTools.getFlatList([[1],["hello",2,["foo",5]],["test"]]),orderedEquals([1,"hello",2,"foo",5,"test"]));
expect(ListTools.getFlatList([1,["hello",2],"test"]),orderedEquals([1,"hello",2,"test"]));

To satisfy theses test cases, you need something more recursive like the following function :

List getFlatList(List list) {
  List internalList = new List();
  list.forEach((e) {
    if (e is List) {
      internalList.addAll(getFlatList(e));
    } else {
      internalList.add(e);
    }
  });
  return internalList;
}

Best regards,

Sébastien

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1

You can do this efficiently with a generator:

Iterable<T> flatten<T>(Iterable<Iterable<T>> items) sync* {
  for (var i in items) {
    yield* i;
  }
}

Iterable<X> flatMap<T,X>(Iterable<Iterable<T>> items, X Function(T) f) =>
  flatten(items).map(f);
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