mad*_*nce 1 java list hashmap java-8 java-stream
firstlist
.stream()
.map( x -> {
return secondList
.stream()
.map( y -> { //return a string } )
.collect(Collectors.toList()) // "Output" I need
}
)
.//Get the "Output" here
我有两个清单。第一个列表中的项目必须与第二个列表进行比较,并且必须建立新的列表。
样本输入
List 1 : [ { "id" ; 3, "names" : ["test","test2"] }]
List 2 : [ {"name": :"test" , "age" :3}]
输出:
List 3 : [ {"id" : 3, "name" : "test", "age" :3} ]
PS:names应该对照第二个清单检查第一个清单中的清单
您需要这样的东西:
List<ObjectA> firstlist = new ArrayList<>();
firstlist.add(new ObjectA(3, Arrays.asList("test", "test2")));
List<ObjectB> secondList = new ArrayList<>();
secondList.add(new ObjectB("test", 3));
List<ObjectC> result = firstlist.stream()
.flatMap(a -> secondList.stream()
.filter(b -> a.getNames().contains(b.getName()))
.map(c -> new ObjectC(a.getId(), c.getName(), c.getAge()))
).collect(Collectors.toList());
如果我理解您的问题,您将有三个不同的对象,如下所示:
@Getter @Setter @AllArgsConstructor @NoArgsConstructor
public class ObjectA {
private int id;
private List<String> names;
}
@Getter @Setter @AllArgsConstructor @NoArgsConstructor
public class ObjectB {
private String name;
private int age;
}
//And the result Object you want to get
@Getter @Setter @AllArgsConstructor @NoArgsConstructor @ToString
public class ObjectC {
private int id;
private String name;
private int age;
}
此示例的输出是:
[ObjectC(id=3, name=test, age=3)]
对于注释,我正在使用Lombok
| 归档时间: |
|
| 查看次数: |
1068 次 |
| 最近记录: |