我正在解码响应正文,但出现错误:
'List<dynamic>' is not a subtype of type 'List<Example>'
我正在解析json对象的json数组,其中一个字段也是对象列表,我怀疑我的问题是由该问题引起的。我也在使用json_serializable库。下面是我的代码,我省略了一些字段并更改了一些变量名,但是它代表了相同的代码:
import 'package:json_annotation/json_annotation.dart';
part 'example_model.g.dart';
@JsonSerializable()
class Example {
(some fields here)
final List<Random> some_urls;
final List<String> file_urls;
const Example({
(some fields here)
this.some_urls,
this.file_urls,
});
factory Example.fromJson(Map<String, dynamic> json) =>
_$ ExampleFromJson(json);
}
@JsonSerializable()
class Random {
final String field_1;
final int field_2;
final int field_3;
final int field_4;
final bool field_5;
constRandom(
{this.field_1, this.field_2, this.field_3, this.field_4, this.field_5});
factory Random.fromJson(Map<String, dynamic> json) => _$RandomFromJson(json);
}
通过json_serializable制作的.g dart文件(省略了编码部分):
Example _$ExampleFromJson(Map<String, dynamic> json) {
return Example(
some_urls: (json['some_urls'] as List)
?.map((e) =>
e == null ? null : Random.fromJson(e as Map<String, dynamic>))
?.toList(),
file_urls: (json['file_urls'] as List)?.map((e) => e as String)?.toList(),
}
Random _$RandomFromJson(Map<String, dynamic> json) {
return Random(
field_1: json['field_1'] as String,
field_2: json['field_2'] as int,
field_3: json['field_3'] as int,
field_4: json['field_4'] as int,
field_5: json['field_5'] as bool);
}
这是我未来的职能
Future<List<Example>> getData(int ID, String session) {
String userID = ID.toString();
var url = BASE_URL + ":8080/example?userid=${userID}";
return http.get(url, headers: {
"Cookie": "characters=${session}"
}).then((http.Response response) {
if (response.statusCode == 200) {
var parsed = json.decode(response.body);
List<Example> list = parsed.map((i) => Example.fromJson(i)).toList();
return list;
}
}).catchError((e)=>print(e));
}
答案 0 :(得分:7)
错误原因:
当源List的类型为dynamic或Object(假设)并且直接将其分配给特定类型而不进行转换时,会出现此错误。
List<dynamic> source = [1];
List<int> ints = source; // error
解决方案:
您需要将List<dynamic>强制转换为List<int>(所需的类型),可以通过多种方式进行。我在这里列出了一些:
List<int> ints = List<int>.from(source);
List<int> ints = List.castFrom<dynamic, int>(source);
List<int> ints = source.cast<int>();
List<int> ints = source.map((e) => e as int).toList();
答案 1 :(得分:4)
此代码创建一个List<dynamic>
parsed.map((i) => Example.fromJson(i)).toList();
改为使用
List<Example> list = List<Example>.from(parsed.map((i) => Example.fromJson(i)));
或者只是
var /* or final */ list = List<Example>.fromn(parsed.map((i) => Example.fromJson(i)));
另请参见
答案 2 :(得分:4)
尝试昆特的解决方案时,我收到了'MappedListIterable<dynamic, dynamic>' is not a subtype of type 'Iterable<Example>。
var parsed = json.decode(response.body);
var list = parsed.map((i) => Example.fromJson(i)).toList();
将解析后的数据投射到List<dynamic>中(而不是仅将其传递到dynamic中)为我解决了这个问题。
var parsed = json.decode(response.body) as List<dynamic>;
var list = parsed.map((i) => Example.fromJson(i)).toList();
答案 3 :(得分:0)
您的代码:
var parsed = json.decode(response.body);
List<Example> list = parsed.map((i) => Example.fromJson(i)).toList();
可以用这个代码代替:
import 'package:json_helpers/json_helpers.dart';
final examples = response.body.jsonList((e) => Example.fromJson(e));
一切都会如你所愿...