Shi*_*dla 83 python for-loop list-comprehension list
我有两个列表如下
tags = [u'man', u'you', u'are', u'awesome']
entries = [[u'man', u'thats'],[ u'right',u'awesome']]
我想从entries它们进入时提取条目tags:
result = []
for tag in tags:
for entry in entries:
if tag in entry:
result.extend(entry)
如何将两个循环写为单行列表理解?
Roh*_*ain 130
记住这一点的最好方法是列表理解中for循环的顺序基于它们在传统循环方法中出现的顺序.首先是外部循环,然后是内部循环.
因此,等效列表理解将是:
[entry for tag in tags for entry in entries if tag in entry]
一般来说,if-else语句出现在第一个for循环之前,如果你只有一个if语句,它将在最后出现.例如,如果您想添加一个空列表,如果tag不在条目中,您可以这样做:
[entry if tag in entry else [] for tag in tags for entry in entries]
iCo*_*dez 111
这应该这样做:
[entry for tag in tags for entry in entries if tag in entry]
在理解中,嵌套列表迭代应遵循与等效的叠瓦式 for 循环相同的顺序。
为了理解,我们将举一个 NLP 的简单例子。您想要从句子列表中创建所有单词的列表,其中每个句子都是单词列表。
>>> list_of_sentences = [['The','cat','chases', 'the', 'mouse','.'],['The','dog','barks','.']]
>>> all_words = [word for sentence in list_of_sentences for word in sentence]
>>> all_words
['The', 'cat', 'chases', 'the', 'mouse', '.', 'The', 'dog', 'barks', '.']
要删除重复的单词,可以使用集合 {} 代替列表 []
>>> all_unique_words = list({word for sentence in list_of_sentences for word in sentence}]
>>> all_unique_words
['.', 'dog', 'the', 'chase', 'barks', 'mouse', 'The', 'cat']
或申请list(set(all_words))
>>> all_unique_words = list(set(all_words))
['.', 'dog', 'the', 'chases', 'barks', 'mouse', 'The', 'cat']
适当的LC将是
[entry for tag in tags for entry in entries if tag in entry]
LC中循环的顺序类似于嵌套循环中的顺序,if语句移至末尾,条件表达式移至开始,例如
[a if a else b for a in sequence]
观看演示-
>>> tags = [u'man', u'you', u'are', u'awesome']
>>> entries = [[u'man', u'thats'],[ u'right',u'awesome']]
>>> [entry for tag in tags for entry in entries if tag in entry]
[[u'man', u'thats'], [u'right', u'awesome']]
>>> result = []
for tag in tags:
for entry in entries:
if tag in entry:
result.append(entry)
>>> result
[[u'man', u'thats'], [u'right', u'awesome']]
编辑 -由于您需要将结果展平,因此可以使用类似的列表理解,然后展平结果。
>>> result = [entry for tag in tags for entry in entries if tag in entry]
>>> from itertools import chain
>>> list(chain.from_iterable(result))
[u'man', u'thats', u'right', u'awesome']
加起来,你可以做
>>> list(chain.from_iterable(entry for tag in tags for entry in entries if tag in entry))
[u'man', u'thats', u'right', u'awesome']
您在此处使用生成器表达式,而不是列表推导。(也完全符合79个字符的限制(无list呼叫))