基于以下答案:
https://stackoverflow.com/a/30202075/8760211
如何通过stud_id对每个组进行排序,然后通过stud_location返回一个包含所有学生的List作为分组的结果,然后按stud_id排序?
将它作为现有Lambda表达式的扩展会很棒:
Map<String,List<Student>> studlistGrouped =
studlist.stream().collect(Collectors.groupingBy(w -> w.stud_location));
我需要基于原始列表中元素的顺序进行分组.
First group: "New York" Second group: "California" Third group: "Los Angeles" 1726,"John","New York" 4321,"Max","California" 2234,"Andrew","Los Angeles" 5223,"Michael","New York" 7765,"Sam","California" 3442,"Mark","New York"
结果将如下所示:
List<Student> groupedAndSorted = ....
1726,"New York"
3442,"New York"
5223,"New York"
4321,"California"
7765,"California"
2234,"Los Angeles"
我尝试过以下方法:
studlistGrouped.entrySet().stream().sorted(Comparator.comparing(Map.Entry::getValue))
但这不起作用.
解决方法
如果我找对你,你需要一个List< Student> (不是地图)学生按其位置分组,并按组内的ID排序,组中的组也按ID排序,而不是按位置名称排序.这是可能的,但需要一个分组和两个排序:
//first,use your function to group students Map<String,List<Student>> studlistGrouped = students.stream() .collect(Collectors.groupingBy(Student::getLocation,Collectors.toList())); //then sort groups by minimum id in each of them List<Student> sorted = studlistGrouped.entrySet().stream() .sorted(Comparator.comparing(e -> e.getValue().stream().map(Student::getId).min(Comparator.naturalOrder()).orElse(0))) //and also sort each group before collecting them in one list .flatMap(e -> e.getValue().stream().sorted(Comparator.comparing(Student::getId))).collect(Collectors.toList());
这将产生以下结果:
Student{id='1726',name='John',location='New York'}
Student{id='3442',name='Mark',location='New York'}
Student{id='5223',name='Michael',location='New York'}
Student{id='2234',name='Andrew',location='Los Angeles'}
Student{id='4321',name='Max',location='California'}
Student{id='7765',name='Sam',location='California'}
也许这可以更优雅地完成,欢迎提出建议
编辑:在写这个答案的时候,没有提到基于OPs问题中原始列表中元素顺序的分组.所以我的假设是按ID分类列表和组.对于基于原始列表中的顺序的解决方案,请参阅其他答案,例如,Holgers one
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