达州做网站
大橙子网站建设,新征程启航
为企业提供网站建设、域名注册、服务器等服务
Java8怎样通过Lambda处理List集合
小编给大家分享一下Java8怎样通过Lambda处理List集合,希望大家阅读完这篇文章之后都有所收获,下面让我们一起去探讨吧!
成都创新互联成都网站建设按需定制开发,是成都网站推广公司,为玻璃钢雕塑提供网站建设服务,有成熟的网站定制合作流程,提供网站定制设计服务:原型图制作、网站创意设计、前端HTML5制作、后台程序开发等。成都网站建设热线:13518219792
Java 8新增的Lambda表达式,我们可以用简洁高效的代码来处理List。
1、遍历
public static void main(String[] args) {
List userList = Lists.newArrayList();
User user1 = new User(1L, "张三", 24);
User user2 = new User(2L, "李四", 27);
User user3 = new User(3L, "王五", 21);
userList.add(user1);
userList.add(user2);
userList.add(user3);
userList.stream().forEach(user ->{
System.out.println(user.getName());
});
} 运行结果:
2、list转为Map
public static void main(String[] args) {
List userList = Lists.newArrayList();//存放user对象集合
User user1 = new User(1L, "张三", 24);
User user2 = new User(2L, "李四", 27);
User user3 = new User(3L, "王五", 21);
userList.add(user1);
userList.add(user2);
userList.add(user3);
//ID为key,转为Map
Map userMap = userList.stream().collect(Collectors.toMap(User::getId, a -> a,(k1, k2)->k1));
System.out.println(userMap);
} 运行结果:
3、将List分组:List里面的对象元素,以某个属性来分组
public static void main(String[] args) {
List userList = Lists.newArrayList();//存放user对象集合
User user1 = new User(1L, "张三", 24);
User user2 = new User(2L, "李四", 27);
User user3 = new User(3L, "王五", 21);
User user4 = new User(4L, "张三", 22);
User user5 = new User(5L, "李四", 20);
User user6 = new User(6L, "王五", 28);
userList.add(user1);
userList.add(user2);
userList.add(user3);
userList.add(user4);
userList.add(user5);
userList.add(user6);
//根据name来将userList分组
Map> groupBy = userList.stream().collect(Collectors.groupingBy(User::getName));
System.out.println(groupBy);
} 运行结果:
4、过滤:从集合中过滤出来符合条件的元素
public static void main(String[] args) {
List userList = Lists.newArrayList();//存放user对象集合
User user1 = new User(1L, "张三", 24);
User user2 = new User(2L, "李四", 27);
User user3 = new User(3L, "王五", 21);
User user4 = new User(4L, "张三", 22);
User user5 = new User(5L, "李四", 20);
User user6 = new User(6L, "王五", 28);
userList.add(user1);
userList.add(user2);
userList.add(user3);
userList.add(user4);
userList.add(user5);
userList.add(user6);
//取出名字为张三的用户
List filterList = userList.stream().filter(user -> user.getName().equals("张三")).collect(Collectors.toList());
filterList.stream().forEach(user ->{
System.out.println(user.getName());
});
} 运行结果:
5、求和:将集合中的数据按照某个属性求和
public static void main(String[] args) {
List userList = Lists.newArrayList();//存放user对象集合
User user1 = new User(1L, "张三", 24);
User user2 = new User(2L, "李四", 27);
User user3 = new User(3L, "王五", 21);
User user4 = new User(4L, "张三", 22);
User user5 = new User(5L, "李四", 20);
User user6 = new User(6L, "王五", 28);
userList.add(user1);
userList.add(user2);
userList.add(user3);
userList.add(user4);
userList.add(user5);
userList.add(user6);
//取出名字为张三的用户
int totalAge = userList.stream().mapToInt(User::getAge).sum();
System.out.println("和:" + totalAge);
} 运行结果:
6、从List转为Map,key与value 一 一对应
public static void main(String[] args) {
List userList = Lists.newArrayList();
User user1 = new User(1L, "张三", 24);
User user2 = new User(2L, "李四", 27);
User user3 = new User(3L, "王五", 21);
User user4 = new User(4L, "张三", 22);
User user5 = new User(5L, "李四", 20);
User user6 = new User(6L, "王五", 28);
userList.add(user1);
userList.add(user2);
userList.add(user3);
userList.add(user4);
userList.add(user5);
userList.add(user6);
Map userMap = userList.stream().collect(Collectors.toMap(User::getId, user -> user));
System.out.println("toMap:" + JSONArray.toJSONString(userMap));
} 运行结果:
看完了这篇文章,相信你对“Java8怎样通过Lambda处理List集合”有了一定的了解,如果想了解更多相关知识,欢迎关注创新互联行业资讯频道,感谢各位的阅读!
网站名称:Java8怎样通过Lambda处理List集合
链接地址:http://dzwzjz.com/article/joohpj.html