问题
怎样找出一个序列中出现次数最多的元素呢?
解决方案
collections.Counter 类就是专门为这类问题而设计的, 它甚至有一个有用的 most_common() 方法直接给了你答案
collections.Counter 类
1. most_common(n)统计top_n
from collections import Counter
words = [
'look', 'into', 'my', 'eyes', 'look', 'into', 'my', 'eyes',
'the', 'eyes', 'the', 'eyes', 'the', 'eyes', 'not', 'around', 'the',
'eyes', "don't", 'look', 'around', 'the', 'eyes', 'look', 'into',
'my', 'eyes', "you're", 'under'
]
#创建Counter对象
word_counts=Counter(words) #most_common(n)函数可直接统计top-n
top_three=word_counts.most_common(3) print(type(top_three))
<class 'list'> print(top_three)
[('eyes', 8), ('the', 5), ('look', 4)]
2. 统计任意元素出现的次数
Counter 对象可以接受任意的由可哈希(hashable)元素构成的序列对象
在底层实现上,一个 Counter 对象就是一个字典,将元素映射到它出现的次数上
print(word_counts['look'])
4
print(word_counts["you're"])
1
3. 两个Counter对象之间可以互相使用数学运算符,从而叠加/叠减统计
word1 = [
'look', 'into', 'my', 'eyes', 'look', 'into', 'my', 'eyes',
'the', 'eyes', 'the', 'eyes', 'the', 'eyes', 'not', 'around', 'the',
'eyes', "don't", 'look', 'around', 'the', 'eyes', 'look', 'into',
'my', 'eyes', "you're", 'under'
]
word2 = ['why','are','you','not','looking','in','my','eyes'] a=Counter(word1)
b=Counter(word2)
print(a)
Counter({'eyes': 8, 'the': 5, 'look': 4, 'into': 3, 'my': 3, 'around': 2, 'not': 1, 'under': 1, "you're": 1, "don't": 1}) print(b)
Counter({'eyes': 1, 'not': 1, 'are': 1, 'you': 1, 'in': 1, 'why': 1, 'my': 1, 'looking': 1}) print(a+b)
Counter({'eyes': 9, 'the': 5, 'my': 4, 'look': 4, 'into': 3, 'around': 2, 'not': 2, 'under': 1, 'looking': 1, 'you': 1, 'why': 1, 'in': 1, 'are': 1, "you're": 1, "don't": 1}) print(a-b)
Counter({'eyes': 7, 'the': 5, 'look': 4, 'into': 3, 'around': 2, 'my': 2, 'under': 1, "you're": 1, "don't": 1})