12

Following the map, having both key-value pair as dynamic, Write a logic to filter all the null values from Map without us?

Is there any other approach than traversing through the whole map and filtering out the values (Traversing whole map and getting Entry Object and discarding those pairs) ?

I need to remove all values that are null and return map

Map<String, dynamic> toMap() {
 return {
  'firstName': this.firstName,
  'lastName': this.lastName
};

5 Answers 5

35

Use removeWhere on Map to remove entries you want to filter out:

void main() {
  final map = {'text': null, 'body': 5, null: 'crap', 'number': 'ten'};

  map.removeWhere((key, value) => key == null || value == null);

  print(map); // {body: 5, number: ten}
}

And if you want to do it as part of your toMap() method you can do something like this with the cascade operator:

void main() {
  print(A(null, 'Jensen').toMap()); // {lastName: Jensen}
}

class A {
  final String? firstName;
  final String? lastName;

  A(this.firstName, this.lastName);

  Map<dynamic, dynamic> toMap() {
    return <dynamic, dynamic>{
      'firstName': this.firstName,
      'lastName': this.lastName
    }..removeWhere(
            (dynamic key, dynamic value) => key == null || value == null);
  }
}
4
  • key is not nullable, hence no need for 'key==null'
    – Indy9000
    Feb 10 at 10:31
  • @Indy9000 Fun fact about answers made before null-safety... they are not made with null-safety in mind. But the question does state "Following the map, having both key-value pair as dynamic" so the key is also dynamic so I will change the example to that. :) Feb 10 at 11:27
  • not an attack on the answer, just a hint to the current and future coders who land here...
    – Indy9000
    Feb 10 at 20:07
  • @Indy9000 And I am thankful for spotting the error. Sorry if that did not come across in my message. Keep the good work at making sure answers is also relevant in 2022! :) Feb 10 at 20:39
6

You can now use a map literal with conditional entries:

Map<String, dynamic> toMap() => {
  if (firstName != null) 'firstName': firstName,
  if (lastName != null) 'lastName': lastName,
};

4

I did this to make it easy remove nulls from map and list using removeWhere: https://dartpad.dartlang.org/52902870f633da8959a39353e96fac25

Sample:


final data = 
  {
    "name": "Carolina Ratliff",
    "company": null,
    "phone": "+1 (919) 488-2302",
    "tags": [
      "commodo",
      null,
      "dolore",
    ],
    "friends": [
      {
        "id": 0,
        "name": null,
        "favorite_fruits": [
          'apple', null, null, 'pear'
        ]
      },
      {
        "id": 1,
        "name": "Pearl Calhoun"
      },
    ],
  };

void main() {
  // From map
  print('Remove nulls from map:\n' + data.removeNulls().toString());
  // From list
  print('\nRemove nulls from list:\n' + [data].removeNulls().toString());
}
2

I suggest you to use removeWhere function

    Map<String, dynamic> map = {
      '1': 'one',
      '2': null,
      '3': 'three'
    };

    map.removeWhere((key, value) => key == null || value == null);
    print(map);
2

The limitation of removeWhere is that it does not check for nested values. Use this recursive solution if you want to remove all keys in the hierarchy.

  dynamic removeNull(dynamic params) {
    if (params is Map) {
      var _map = {};
      params.forEach((key, value) {
        var _value = removeNull(value);
        if (_value != null) {
          _map[key] = _value;
        }
      });
      // comment this condition if you want empty dictionary
      if (_map.isNotEmpty)
        return _map;
    } else if (params is List) {
      var _list = [];
      for (var val in params) {
        var _value = removeNull(val);
        if (_value != null) {
          _list.add(_value);
        }
      }
      // comment this condition if you want empty list
      if (_list.isNotEmpty)
        return _list;
    } else if (params != null) {
      return params;
    }
    return null;
  }

Example:

  void main() {
    Map<String, dynamic> myMap = {
      "a": 1,
      "b": 2,
      "c": [
        3,
        4,
        null,
        {"d": 7, "e": null, "f": 5}
      ],
      "g": {"h": null, "i": null},
      "j": 6,
      "h": []
    };
    print(removeNull(myMap));
  }

Output:

{a: 1, b: 2, c: [3, 4, {d: 7, f: 5}], j: 6}

Note:

If you want an empty map and list when their child has null values, comment out an empty check for map and list in the code.

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.