20

I have two lists [1,2,3,4,5,6,7] and [3,5,6,7,9,10]. I want to get the difference of the first list and the second list.

The expected output would be [1,2,4] since those are the only elements in only list 1 and not list 2.

I'm using Flutter and Dart. I looked this up on the internet, I know it seems like a simple question but I couldn't find anything.

Should be irrelevant but I'm using publishing for iOS

I'd prefer an answer without just a foreach loop, im looking to see if there is a library for it.

6 Answers 6

24

Since you will be looking for unique elements you could use the difference method of the Set class (https://api.flutter.dev/flutter/dart-core/Set/difference.html) to do something like this:

List<int> first = [1,2,3,4,5,6,7];
List<int> second = [3,5,6,7,9,10];
List<int> difference = first.toSet().difference(second.toSet()).toList();
print(difference.toString());
// prints [1, 2, 4]
1
  • I like this answer but it want selected as correct. But it avoids the looping of the other
    – satchel
    Jun 11 at 17:53
22

you can do something like this:

List<double> first = [1,2,3,4,5,6,7];
List<double> second = [3,5,6,7,9,10];
List<double> output = [];

first.forEach((element) {
    if(!second.contains(element)){
    output.add(element);
}
});

//at this point, output list should have the answer

alternative answer:

List<double> first = [1,2,3,4,5,6,7];
List<double> second = [3,5,6,7,9,10];
List<double> output = first.where((element) => !second.contains(element));

note that for both cases, you need to loop over the larger list.

4
  • Are you sure there isn't any built in methods or libraries, or do I have to do it using a for each loop :( Aug 23, 2019 at 22:05
  • I am not aware of a straight forward function, but I have added an alternative answer. Aug 23, 2019 at 22:15
  • I had to add .toList at the end of the output to get it to work.
    – Giraldi
    Mar 4, 2021 at 7:53
  • 1
    Your alternative answer rocks! I created a DartPad to show the difference between diff'ing one list before the other.
    – Keith DC
    May 2, 2021 at 9:11
4

Simple & Recommended Way to do this is

var a = [1,2,3,4,5];
var b = [1,2];
a.removeWhere((element) => b.contains(element));
print(a); //[3, 4, 5]
3

if you need single line , just do like this one

print([1,2,3,4,5,6,7].where((e) => ![3,5,6,7,9,10].contains(e)).toList());

result is

[1, 2, 4]
2

This seems to do the trick:

void main() {
  final l1 = [1, 2, 3];
  final l2 = [3, 4, 5];
  print(listDiff(l1, l2)); // [1, 2, 4, 5]
}

List<T> listDiff<T>(List<T> l1, List<T> l2) => (l1.toSet()..addAll(l2))
    .where((i) => !l1.contains(i) || !l2.contains(i))
    .toList();
0
0

Use the !.contains for nullable variable.

var a = [1,2,3,4,5,6,7];
var b = [3,5,6,7,9,10];
a.removeWhere((element) => b!.contains(element));

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.