25

I'm looking every where on the web (dart website, stackoverflow, forums, etc), and I can't find my answer.

So there is my problem: I need to write a function, that print a random sort of a list, witch is provided as an argument. : In dart as well.

I try with maps, with Sets, with list ... I try the method with assert, with sort, I look at random method with Math on dart librabry ... nothing can do what I wana do.

Can some one help me with this?

Here some draft:

var element03 = query('#exercice03');
  var uneliste03 = {'01':'Jean', '02':'Maximilien', '03':'Brigitte', '04':'Sonia', '05':'Jean-Pierre', '06':'Sandra'};
  var alluneliste03 = new Map.from(uneliste03);
  assert(uneliste03 != alluneliste03);
  print(alluneliste03);

  var ingredients = new Set();
  ingredients.addAll(['Jean', 'Maximilien', 'Brigitte', 'Sonia', 'Jean-Pierre', 'Sandra']);
  var alluneliste03 = new Map.from(ingredients);
  assert(ingredients != alluneliste03);
  //assert(ingredients.length == 4);

  print(ingredients);

  var fruits = <String>['bananas', 'apples', 'oranges'];
  fruits.sort();
  print(fruits);
  • What do you mean "random sort"? Are you trying to put the elements in random order? – beatgammit Nov 25 '12 at 18:39
  • Exactly, I want to put those elements in random order. – Peter Nov 25 '12 at 18:41
  • In that case, take a look at shuffling algorithms. I don't have time to come up with a full solution, but hopefully this helps. Also check out this SO question – beatgammit Nov 25 '12 at 18:44
  • Thx I'll look at this, if any one can come with a solution I will appreciate as well ! – Peter Nov 25 '12 at 18:47
  • 1
    Here's the bug requesting this feature, please star it to vote for it: code.google.com/p/dart/issues/detail?id=6788 – Seth Ladd Nov 26 '12 at 6:38
15

Here is a basic shuffle function. Note that the resulting shuffle is not cryptographically strong. It uses Dart's Random class, which produces pseudorandom data not suitable for cryptographic use.

import 'dart:math';

List shuffle(List items) {
  var random = new Random();

  // Go through all elements.
  for (var i = items.length - 1; i > 0; i--) {

    // Pick a pseudorandom number according to the list length
    var n = random.nextInt(i + 1);

    var temp = items[i];
    items[i] = items[n];
    items[n] = temp;
  }

  return items;
}

main() {
  var items = ['foo', 'bar', 'baz', 'qux'];

  print(shuffle(items));
}
| improve this answer | |
  • Thanks, it work perfectly ! I post your comment as an Answer ! – Peter Nov 25 '12 at 22:34
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    There's a difference between your code and the modern algorithm of Knuth suffle. Is it wanted ? ( random.nextInt(items.length) vs. random.nextInt(j + 1) ) – Alexandre Ardhuin Nov 26 '12 at 7:19
  • No, it wasn't intentional :). Fixed. – Kai Sellgren Nov 27 '12 at 8:39
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    Actually shouldn't it be: random.nextInt(i+1) according to the modern algorithm? – Christophe Herreman Nov 27 '12 at 11:11
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    Indeed n = random.nextInt(items.length) is really flawed. See en.wikipedia.org/wiki/… for details. – Deleplace Sep 4 '14 at 11:34
74

There is a shuffle method in the List class. You can call it without an argument or provide a random number generator instance:

var list = ['a', 'b', 'c', 'd'];

list.shuffle();

print('$list');
| improve this answer | |
  • 2
    This should be the answer nowadays! – Lech Migdal Feb 1 '19 at 11:38
  • 1
    It's a shame it doesn't return the list for streams etc. – Oliver Dixon Jun 13 '19 at 9:22
  • @LechMigdal I updated my original answer so it's up to date now. – Kai Sellgren Jun 16 '19 at 11:29
  • items..shuffle(); worked for me. It returns a list of objects – Vinoth Vino Jul 30 at 17:26

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