我有两个列表,我想使用python difflib / sequence匹配器找到匹配的元素,它看起来像这样:
from difflib import SequenceMatcher
def match_seq(list1,list2):
output=[]
s = SequenceMatcher(None,list1,list2)
blocks=s.get_matching_blocks()
for bl in blocks:
#print(bl,bl.a,bl.b,bl.size)
for bi in range(bl.size):
cur_a=bl.a+bi
cur_b=bl.b+bi
output.append((cur_a,cur_b))
return output
所以当我在两个这样的列表上运行它时
list1=["orange","apple","lemons","grapes"]
list2=["pears","orange","cherry","grapes"]
for a,b in match_seq(list1,list2):
print(a,b,list1[a],list2[b])
我得到以下输出:
(0,1,'orange','orange')
(1,2,'apple','apple')
(2,3,'lemons','lemons')
(3,5,'grapes','grapes')
但是假设我不想只匹配相同的项目,而是使用匹配函数(例如,可以将Orange与Orange匹配的函数,反之亦然,或者匹配另一种语言的等效单词的函数).
list3=["orange","grape"]
list4=["pears","oranges","lemon","grapes"]
list5=["peras","naranjas","manzana","limón","cereza","uvas"]
difflib / sequence匹配器或任何其他python内置库中是否可以提供此选项,所以我可以匹配list3和list 4,还可以匹配list3和list5,就像我对list 1和list2所做的一样?
总的来说,您能想到解决方案吗?我曾想用目标匹配列表中的每个单词替换目标列表中的每个单词,但这可能会有问题,因为每个单词可能需要多个单词,这可能会干扰序列.
您自己的实现
在情况1)中,您可以查看this question
并阅读了一些书籍,例如CLRS或Robert Sedgewick的书籍.
破解difflib模块
在情况2)中,请查看source code:get_matching_blocks
在line 479处调用find_longest_match
.在find_longest_match的核心中,您具有b2j
字典,该字典将列表a的元素映射到列表b中的索引.如果覆盖此词典,则可以实现所需的功能.这是标准版本:
>>> import difflib
>>> from difflib import SequenceMatcher
>>> list3 = ["orange","grape"]
>>> list4 = ["pears","grapes"]
>>> s = SequenceMatcher(None,list3,list4)
>>> s.get_matching_blocks()
[Match(a=1,b=2,size=1),Match(a=4,b=6,size=0)]
>>> [(b.a+i,b.b+i,list3[b.a+i],list4[b.b+i]) for b in s.get_matching_blocks() for i in range(b.size)]
[(1,'apple')]
这是被黑的版本:
>>> s = SequenceMatcher(None,list4)
>>> s.b2j
{'pears': [0],'oranges': [1],'apple': [2],'lemon': [3],'cherry': [4],'grapes': [5]}
>>> s.b2j = {**s.b2j,'orange':s.b2j['oranges'],'lemons':s.b2j['lemon'],'grape':s.b2j['grapes']}
>>> s.b2j
{'pears': [0],'grapes': [5],'orange': [1],'lemons': [3],'grape': [5]}
>>> s.get_matching_blocks()
[Match(a=0,b=1,size=3),Match(a=3,b=5,list4[b.b+i]) for b in s.get_matching_blocks() for i in range(b.size)]
[(0,'oranges'),(1,'apple'),(2,'lemon'),(3,'grape','grapes')]
这并不难实现自动化,但是我不建议您使用该解决方案,因为有一个非常简单的解决方法.
想法是按家庭对单词进行分组:
families = [{"pears","peras"},{"orange","naranjas"},{"apple","manzana"},{"lemons","limón"},{"cherry","cereza"},{"grape","grapes"}]
现在,很容易创建一个字典,将家庭中的每个单词映射到其中一个单词(我们称其为主要单词):
>>> d = {w:main for main,*alternatives in map(list,families) for w in alternatives}
>>> d
{'pears': 'peras','orange': 'naranjas','oranges': 'naranjas','manzana': 'apple','lemon': 'lemons','limón': 'lemons','cherry': 'cereza','grape': 'grapes'}
请注意,map(list,family)中的main *替代词使用star运算符将家庭分解成一个主词(列表的第一个)和备选列表:
>>> head,*tail = [1,4,5]
>>> head
1
>>> tail
[2,5]
然后,您可以将列表转换为仅使用主要词:
>>> list3=["orange","grape"]
>>> list4=["pears","grapes"]
>>> list5=["peras","uvas"]
>>> [d.get(w,w) for w in list3]
['naranjas','limón','grapes']
>>> [d.get(w,w) for w in list4]
['peras','naranjas','cereza',w) for w in list5]
['peras','uvas']
如果w是键,则表达式d.get(w,w)将返回d [w],否则返回w本身.因此,属于一个家庭的单词将转换为该家庭的主要单词,而其他单词则保持不变.
这些列表很容易与difflib进行比较.
重要提示:与diff算法相比,列表转换的时间复杂度可忽略不计,因此您不会看到任何区别.
完整代码
另外,完整代码如下:
def match_seq(list1,list2):
"""A generator that yields matches of list1 vs list2"""
s = SequenceMatcher(None,list2)
for block in s.get_matching_blocks():
for i in range(block.size):
yield block.a + i,block.b + i # you don't need to store the matches,just yields them
def create_convert(*families):
"""Return a converter function that converts a list
to the same list with only main words"""
d = {w:main for main,families) for w in alternatives}
return lambda L: [d.get(w,w) for w in L]
families = [{"pears","grapes","uvas"}]
convert = create_convert(*families)
list3=["orange","uvas"]
print ("list3 vs list4")
for a,b in match_seq(convert(list3),convert(list4)):
print(a,list3[a],list4[b])
# list3 vs list4
# 0 1 orange oranges
# 1 2 apple apple
# 2 3 lemons lemon
# 3 5 grape grapes
print ("list3 vs list5")
for a,convert(list5)):
print(a,list5[b])
# list3 vs list5
# 0 1 orange naranjas
# 1 2 apple manzana
# 2 3 lemons limón
# 3 5 grape uvas