今天看到一个贴子非常好,利用java 8 的stream实现组织树结构的构建
实体类
/**
* Menu
* @author lcry
*/
@Data
@Builder
public class Menu {
/**
* id
*/
public Integer id;
/**
* 名称
*/
public String name;
/**
* 父id ,根节点为0
*/
public Integer parentId;
/**
* 子节点信息
*/
public List<Menu> childList;
public Menu(Integer id, String name, Integer parentId) {
this.id = id;
this.name = name;
this.parentId = parentId;
}
public Menu(Integer id, String name, Integer parentId, List<Menu> childList) {
this.id = id;
this.name = name;
this.parentId = parentId;
this.childList = childList;
}
}
测试类
@Test
public void testtree(){
//模拟从数据库查询出来
List<Menu> menus = Arrays.asList(
new Menu(1,"根节点",0),
new Menu(2,"子节点1",1),
new Menu(3,"子节点1.1",2),
new Menu(4,"子节点1.2",2),
new Menu(5,"根节点1.3",2),
new Menu(6,"根节点2",1),
new Menu(7,"根节点2.1",6),
new Menu(8,"根节点2.2",6),
new Menu(9,"根节点2.2.1",7),
new Menu(10,"根节点2.2.2",7),
new Menu(11,"根节点3",1),
new Menu(12,"根节点3.1",11)
);
//获取父节点
List<Menu> collect = menus.stream().filter(m -> m.getParentId() == 0).map(
(m) -> {
m.setChildList(getChildrens(m, menus));
return m;
}
).collect(Collectors.toList());
System.out.println("-------转json输出结果-------");
System.out.println(JSON.toJSON(collect));
}
/**
* 递归查询子节点
* @param root 根节点
* @param all 所有节点
* @return 根节点信息
*/
private List<Menu> getChildrens(Menu root, List<Menu> all) {
List<Menu> children = all.stream().filter(m -> {
return Objects.equals(m.getParentId(), root.getId());
}).map(
(m) -> {
m.setChildList(getChildrens(m, all));
return m;
}
).collect(Collectors.toList());
return children;
}