按组成部分对字符串列表进行排序
问题内容:
一长串包含一些要排序的元素。
实际上,每个元素都有4个内容:名称,输入/输出,区域和日期和时间,并以“〜”开头。(可以更改“〜”。)我想将列表重新组织为排序的顺序。
a_list = ["Chris~Check-in~Zoom A~11/13/2013 05:20",
"Chris~Check-in~Zoom G~11/15/2013 14:09",
"Frank E~Check-in~Zoom K~11/11/2013 08:48",
"Frank E~Check-in~Zoom K~11/15/2013 21:32",
"Kala Lu S~Check-in~Zoom N~11/13/2013 07:20",
"Milly Emily~Check-in~Zoom G~11/13/2013 01:08",
"Milly Emily~Check-in~Zoom E~11/16/2013 14:39",
"Milly Amy~Check-in~Zoom G~11/10/2013 20:14",
"Milly Amy~Check-in~Zoom A~11/16/2013 08:55",
"Milly Amy~Check-in~Zoom O~11/14/2013 21:57",
"Milly Amy~Check-in~Zoom A~11/15/2013 10:45",
"Nago Iko~Check-in~Zoom K~11/16/2013 20:42",
"Nago Iko~Check-in~Zoom K~11/14/2013 10:46",
"Liz D~Check-in~Zoom N~11/15/2013 01:46",
"Liz D~Check-in~Zoom A~11/12/2013 09:54",
"Liz D~Check-in~Zoom G~11/16/2013 13:15",
"Chris~Check-out~Zoom A~11/13/2013 13:42",
"Chris~Check-out~Zoom G~11/11/2013 14:21",
"Chris~Check-out~Zoom G~11/16/2013 09:41",
"Frank E~Check-out~Zoom K~11/14/2013 03:02",
"House P~Check-out~Zoom K~11/10/2013 11:17",
"Kala Lu S~Check-out~Zoom G~11/11/2013 23:27",
"Kala Lu S~Check-out~Zoom N~11/14/2013 11:17"]
可以将其导入MS Excel并进行排序,但是我想知道Python是否可以完成这项工作。
是否可以按列表中的顺序对它们进行排序:1.名称,2.日期和时间3.区域4.进/出?例如:
new_list = ["Chris~Check-out~Zoom G~11/08/2014 14:21",
"Chris~Check-in~Zoom A~11/10/2014 05:20",
"Chris~Check-out~Zoom A~11/10/2014 13:42",
"Chris~Check-in~Zoom G~11/12/2014 14:09",
"Chris~Check-out~Zoom G~11/13/2014 09:41",
"Frank E~Check-in~Zoom K~11/08/2014 08:48",
"Frank E~Check-out~Zoom K~11/11/2014 03:02",
"Frank E~Check-in~Zoom K~11/12/2014 21:32",
...
...]
谢谢。
问题答案:
您可以拆分列表,然后使用自定义key函数进行排序。但是,您需要先解析日期才能正确对它们进行排序。
import datetime
new_l = sorted((x.split('~') for x in l),
key=lambda x: (x[0],
datetime.datetime.strptime(x[3], '%m/%d/%Y %H:%M'),
x[2],
x[1]))
键函数返回一个元组。元组在字典上进行比较;比较第一项;如果它们相同,则比较第二个项目,依此类推。[1]
或者,您可以分阶段进行排序。这将允许您指定要分别按升序或降序排序的列。
from operator import itemgetter
nl = [x.split('~') for x in l]
nl.sort(key=itemgetter(1))
nl.sort(key=itemgetter(2))
nl.sort(key=lambda x: datetime.datetime.strptime(x[3], '%m/%d/%Y %H:%M'),
reverse=True) # Newest first
nl.sort(key=itemgetter(0))
请记住,这两种方式都会使新列表像这样拆分:
new_list = [["Chris", "Check-out", "Zoom G", "11/08/2014 14:21"], ...]
如果要将它们改回原始形式,可以执行以下操作join:
new_list_joined = ['~'.join(x) for x in new_list]
