字符串和列表的元组
[英]Tuple of string and list
问题描述
假设星期几在有序列表中:
days_week=['mon','tues','wed','thurs','fri','sat']
我正在执行的功能接收在days_week中随机出现的元素的days_week :
random_list=['mon','mon','mon','wed','sat','fri','fri','wed']
然后,它应按出现的最高日期输出一个元组,并按正确的顺序输出每一天的出现列表,如days_week例如所有mon的第一个,然后是所有tue的:
output:('mon',[3,0,2,0,2,1])
我的第一个想法是建立一个字典字典,这些字典是星期的名称,而值是那几天的出现:
days_dictionary={}
for i in random_list:
if i in days_dictionary:
days_dictionary[i]+=1
else:
days_dictionary[i]=1
那就是我被困的地方,因为我不确定如何使用字典来形成上面的输出。
编辑:我不能导入数学以外的任何东西
4 个解决方案
解决方案1
3 已采纳 2012-11-28 04:28:14
您应该可以在days_dictionary中使用这两个表达式
>>> max(days_dictionary, key=days_dictionary.get)
'mon'
>>> [days_dictionary.get(k, 0) for k in days_week]
[3, 0, 2, 0, 2, 1]
另一种方法是使用collections.Counter
>>> import random
>>> from collections import Counter
>>> days_week = ['mon', 'tues', 'wed', 'thurs', 'fri', 'sat']
>>> random_list = [random.choice(days_week) for x in range(10)]
>>> random_list
['wed', 'mon', 'mon', 'tues', 'tues', 'mon', 'wed', 'mon', 'wed', 'sat']
>>> c = Counter(random_list)
>>> c.most_common(1)[0][0]
'mon'
>>> [c.get(k, 0) for k in days_week]
[4, 2, 3, 0, 0, 1]
>>> c.most_common(1)[0][0], [c.get(k, 0) for k in days_week]
('mon', [4, 2, 3, 0, 0, 1])
解决方案2
2 2012-11-28 04:33:49
我建议看看itertools.groupby :
>>> days_week=['mon','tues','wed','thurs','fri','sat']
>>> import random
>>> random_list = [random.choice(days_week) for _ in range(10)]
>>> print random_list
['mon', 'fri', 'sat', 'wed', 'sat', 'thurs', 'wed', 'sat', 'tues', 'tues']
>>> import itertools
>>> g = itertools.groupby(sorted(enumerate(random_list), key=lambda x: x[1]), lambda x: x[1])
>>> for day, occur in g:
print day, list(occur)
fri [(1, 'fri')]
mon [(0, 'mon')]
sat [(2, 'sat'), (4, 'sat'), (7, 'sat')]
thurs [(5, 'thurs')]
tues [(8, 'tues'), (9, 'tues')]
wed [(3, 'wed'), (6, 'wed')]
解决方案3
1 2012-11-28 04:31:19
首先:您可以使用collections.Counter来构建字典:
from collections import Counter
random_list = ['mon','mon','mon','wed','sat','fri','fri','wed']
counts = Counter(random_list)
然后,您可以像这样建立频率列表:
days_week = ['mon','tues','wed','thurs','fri','sat']
freqs = [counts[d] for d in days_week if d in counts]
对于最终输出:
output = counts.most_common(1)[0][0], freqs ## ('mon', [3, 2, 2, 1])
解决方案4
0 2012-11-28 04:32:37
第一步是获得最普通的一天,就像这样:
import operator
most_common = max(days_dictionary.iteritems(), key=operator.itemgetter(1))[0]
然后列出其余事件的清单
occur = [days_dictionary[day] for day in days_week]
然后做元组
(most_common, occur)
Python 将元组列表的字符串转换为元组列表
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