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I'd like to remove similar elements from a dart list, where similarity is given by some boolean function. For example in Mathematica I would achieve that as follows:

Union[{2, -2, 1, 3, 1}, SameTest -> (Abs[#1] == Abs[#2] &)]

This statement yields the following list - {-2, 1, 3}. Effectively I'd like to keep one element from each equivalence class.

I know there is a function list.retainWhere( (e) => bool test(e) ), unfortunately this test can only operate on one value at a time. Another option, of course, I could do something like this (just writing from my head)

i=0;
for(final E in list) {
  i++;      
  for(j=i; j<list.skip(i).length; j++) {
     if sameTest(e, E) then list.removeAt(i+j);
  }  
}

but i find this bit ugly.

Any advice?

UPDATE I will clarify my problem in more details and then show how to solve it using advice given below.

  class Pair<T> {
    final T left;
    final T right;
    Pair(this.left, this.right);    
  }

Now I want to have a structure holding such pair or points, and i don't want to hold point which are sufficiently close to each other. To do so I adopt solution of Alexandre Ardhuin and his comment too, which actually makes a difference for more complicated cases: Considering 2 elements e1 and e2 you have to define hashCode to ensure that e1.hashCode == e2.hashCode if e1 == e2

so here it goes:

int N=1000;

LinkedHashSet<Pair<double>> myset =
    new LinkedHashSet<Pair<double>>(
      equals: (Pair<double> e1, Pair<double> e2) =>            
        (e1.left - e2.left)*(e1.left - e2.left) + (e1.right - e2.right)*(e1.right - e2.right) < 1/N,
      hashCode: (Pair<double> e){
        int ex = (e.left*N).round();
        int ey = (e.right*N).round();
        return (ex+ey).hashCode;
      }
);

List<Pair<double>> list = [new Pair<double>(0.1,0.2), new Pair<double>(0.1,0.2001)];
myset.addAll( list );

the result will be {0.1,0.2}. If the second element of list is altered to {0.1, 0.201} I predictably get a set with two elements.

Hope this was useful.

share|improve this question
up vote 3 down vote accepted

You can use a LinkedHashSet and define the equals and hashcode to use.

import 'dart:collection';

main() {
  final result = new LinkedHashSet<int>(
      equals: (int e1, int e2) => e1.abs() == e2.abs(),
      hashCode: (int e) => e.abs().hashCode);
  result.addAll([2, -2, 1, 3, 1]);
  print(result); // {2, 1, 3}
}
share|improve this answer
    
looks good, but I still have difficulties with, I guess, hash codes. I have a class class Pair<T> { final T left; final T right;} then I try to declare a hashset new LinkedHashSet<Pair<double>>(equals: (Pair<double> e1, Pair<double> e2) => (e1.left-e2.left)^2 + (e1.right-e2.right)^2< 0.01, hashCode: (Pair<double> e) => e.hashCode ); I.e. only sufficiently distant pairs must stay. Let list = [new Pair<double>(0.1,0.2), new Pair<double>(0.1,0.200001)] the distance between the two is less that 0.01. But myset.addAll( list ) contains two elements instead of one. How do i solve it? – Victor N. Ermolaev Mar 6 '14 at 9:38
1  
Considering 2 elements e1 and e2 you have to define hashCode to ensure that e1.hashCode == e2.hashCode if e1 == e2. This is not the case for your code. If you don't really care about performances you can always use hashCode: (e) => 0 that satisfies the condition I mentioned above. – Alexandre Ardhuin Mar 6 '14 at 9:50
import 'package:queries/collections.dart';

var list1 = [2, -2, 1, 3, 1];

void main() {
  var col1 = new Collection(list1);
  var result = col1.distinct(new AbsEqualityComparer()).toList();
  print(result);
}

class AbsEqualityComparer implements IEqualityComparer<num> {
  bool equals(num a, num b) {
    return a.abs() == b.abs();
  }

  int getHashCode(num object) {
    return object.abs().hashCode;
  }
}

Output

[2, 1, 3]

I only cannot understand why you propose the result [-2, 1, 3].

The "-2" value must be removed because it duplicates the value "2".

That is, the first unique value must be remained (added to the result) but all other duplicates must be skipped.

P.S.

Do not wonder why implementation of hashCode requires. This is because internally this distinct operation uses the HashSet for the high efficiency on the larger data collections.

Also this operation does not modified original source but produced (lazy) IEnumerable result which ready for iterations in for statement.

share|improve this answer
    
Thanks for answer. About the result I propose: i copied it from Mathematica docs; nonetheless "2" or "-2" --- it does not matter, they are in the same equivalence class, thus I assume Mathematica does it non-iteratively. Although your solution applies, I prefer another one due to its simplicity. – Victor N. Ermolaev Mar 6 '14 at 8:32

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