36

我有这样的字符串,

{id:1, name: lorem ipsum, address: dolor set amet}

我需要将该字符串转换为 json,我如何在 dart flutter 中做到这一点?非常感谢你的帮助。

4

6 回答 6

51

你必须使用json.decode. 它接受一个 json 对象并让您处理嵌套的键值对。我给你写个例子

import 'dart:convert';

// actual data sent is {success: true, data:{token:'token'}}
final response = await client.post(url, body: reqBody);

// Notice how you have to call body from the response if you are using http to retrieve json
final body = json.decode(response.body);

// This is how you get success value out of the actual json
if (body['success']) {
  //Token is nested inside data field so it goes one deeper.
  final String token = body['data']['token'];

  return {"success": true, "token": token};
}
于 2019-03-22T04:14:26.647 回答
10

假设我们有一个简单的 JSON 结构,如下所示:

{
  "name": "bezkoder",
  "age": 30
}

我们将创建一个User以字段命名的 Dart 类:name& age

class User {
  String name;
  int age;

  User(this.name, this.age);

  factory User.fromJson(dynamic json) {
    return User(json['name'] as String, json['age'] as int);
  }

  @override
  String toString() {
    return '{ ${this.name}, ${this.age} }';
  }
}

您可以在上面的代码中看到factory User.fromJson()方法。它将动态对象解析为User对象。那么如何dynamic从 JSON 字符串中获取对象呢?

我们使用dart:convert库的内置jsonDecode()函数。

import 'dart:convert';

main() {
  String objText = '{"name": "bezkoder", "age": 30}';

  User user = User.fromJson(jsonDecode(objText));

  print(user);

结果将如下所示。

{ bezkoder, 30 }

参考:Dart/Flutter 将 JSON 字符串解析为 Object

于 2020-09-15T13:15:41.407 回答
2

您还可以将 JSON 数组转换为对象列表,如下所示: 

String jsonStr = yourMethodThatReturnsJsonText();
Map<String,dynamic> d  = json.decode(jsonStr.trim());
List<MyModel> list = List<MyModel>.from(d['jsonArrayName'].map((x) => MyModel.fromJson(x)));

MyModel是这样的 :

class MyModel{

  String name;
  int age;

  MyModel({this.name,this.age});

  MyModel.fromJson(Map<String, dynamic> json) {
    name= json['name'];
    age= json['age'];
  }

  Map<String, dynamic> toJson() {
    final Map<String, dynamic> data = new Map<String, dynamic>();
    data['name'] = this.name;
    data['age'] = this.age;

    return data;
  }
}
于 2019-12-25T06:11:48.680 回答
2

您有时必须使用它

Map<String, dynamic> toJson() {
  return {
    jsonEncode("phone"): jsonEncode(numberPhone),
    jsonEncode("country"): jsonEncode(country),

 };
}

这段代码给你一个类似的字符串{"numberPhone":"+225657869", "country":"CI"}。所以很容易像那样解码它

     json.decode({"numberPhone":"+22565786589", "country":"CI"})
于 2020-06-26T15:22:07.387 回答
1 
 String name =  "{click_action: FLUTTER_NOTIFICATION_CLICK, sendByImage: https://ujjwalchef.staging-server.in/uploads/users/1636620532.png, status: done, sendByName: mohittttt, id: HM11}";
  List<String> str = name.replaceAll("{","").replaceAll("}","").split(",");
  Map<String,dynamic> result = {};
  for(int i=0;i<str.length;i++){
    List<String> s = str[i].split(":");
    result.putIfAbsent(s[0].trim(), () => s[1].trim());
  }
  print(result);
}
于 2021-12-06T09:44:26.827 回答
0

您必须导入 dart:encode 库。然后使用 jsonDecode 函数,这将产生一个类似于 Map 的动态

https://api.dartlang.org/stable/2.2.0/dart-convert/dart-convert-library.html

于 2019-03-22T03:55:26.200 回答