I’d like to compare 2 strings and keep the matched, splitting off where the comparison fails.
So if I have 2 strings –
string1 = apples string2 = appleses answer = apples
Another example, as the string could have more than one word.
string1 = apple pie available string2 = apple pies answer = apple pie
I’m sure there is a simple Python way of doing this but I can’t work it out, any help and explanation appreciated.
Answers:
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Method 1
For completeness, difflib in the standard-library provides loads of sequence-comparison utilities. For instance find_longest_match which finds the longest common substring when used on strings. Example use:
from difflib import SequenceMatcher string1 = "apple pie available" string2 = "come have some apple pies" match = SequenceMatcher(None, string1, string2).find_longest_match() print(match) # -> Match(a=0, b=15, size=9) print(string1[match.a:match.a + match.size]) # -> apple pie print(string2[match.b:match.b + match.size]) # -> apple pie
If you’re using a version older than 3.9, you’need to call find_longest_match() with the following arguments:
SequenceMatcher(None, string1, string2).find_longest_match(0, len(string1), 0, len(string2))
Method 2
One might also consider os.path.commonprefix that works on characters and thus can be used for any strings.
import os common = os.path.commonprefix(['apple pie available', 'apple pies']) assert common == 'apple pie'
As the function name indicates, this only considers the common prefix of two strings.
Method 3
def common_start(sa, sb):
""" returns the longest common substring from the beginning of sa and sb """
def _iter():
for a, b in zip(sa, sb):
if a == b:
yield a
else:
return
return ''.join(_iter())
>>> common_start("apple pie available", "apple pies")
'apple pie'
Or a slightly stranger way:
def stop_iter():
"""An easy way to break out of a generator"""
raise StopIteration
def common_start(sa, sb):
return ''.join(a if a == b else stop_iter() for a, b in zip(sa, sb))
Which might be more readable as
def terminating(cond):
"""An easy way to break out of a generator"""
if cond:
return True
raise StopIteration
def common_start(sa, sb):
return ''.join(a for a, b in zip(sa, sb) if terminating(a == b))
Method 4
Its called Longest Common Substring problem. Here I present a simple, easy to understand but inefficient solution. It will take a long time to produce correct output for large strings, as the complexity of this algorithm is O(N^2).
def longestSubstringFinder(string1, string2):
answer = ""
len1, len2 = len(string1), len(string2)
for i in range(len1):
match = ""
for j in range(len2):
if (i + j < len1 and string1[i + j] == string2[j]):
match += string2[j]
else:
if (len(match) > len(answer)): answer = match
match = ""
return answer
print(longestSubstringFinder("apple pie available", "apple pies"))
print(longestSubstringFinder("apples", "appleses"))
print(longestSubstringFinder("bapples", "cappleses"))
Output
apple pie apples apples
Method 5
Fix bugs with the first’s answer:
def longestSubstringFinder(string1, string2):
answer = ""
len1, len2 = len(string1), len(string2)
for i in range(len1):
for j in range(len2):
lcs_temp = 0
match = ''
while ((i+lcs_temp < len1) and (j+lcs_temp<len2) and string1[i+lcs_temp] == string2[j+lcs_temp]):
match += string2[j+lcs_temp]
lcs_temp += 1
if len(match) > len(answer):
answer = match
return answer
print(longestSubstringFinder("dd apple pie available", "apple pies"))
print(longestSubstringFinder("cov_basic_as_cov_x_gt_y_rna_genes_w1000000", "cov_rna15pcs_as_cov_x_gt_y_rna_genes_w1000000")
print(longestSubstringFinder("bapples", "cappleses"))
print(longestSubstringFinder("apples", "apples"))
Method 6
The same as Evo’s, but with arbitrary number of strings to compare:
def common_start(*strings):
""" Returns the longest common substring
from the beginning of the `strings`
"""
def _iter():
for z in zip(*strings):
if z.count(z[0]) == len(z): # check all elements in `z` are the same
yield z[0]
else:
return
return ''.join(_iter())
Method 7
This script requests you the minimum common substring length and gives all common substrings in two strings. Also, it eliminates shorter substrings that longer substrings include already.
def common_substrings(str1,str2):
len1,len2=len(str1),len(str2)
if len1 > len2:
str1,str2=str2,str1
len1,len2=len2,len1
#short string=str1 and long string=str2
min_com = int(input('Please enter the minumum common substring length:'))
cs_array=[]
for i in range(len1,min_com-1,-1):
for k in range(len1-i+1):
if (str1[k:i+k] in str2):
flag=1
for m in range(len(cs_array)):
if str1[k:i+k] in cs_array[m]:
#print(str1[k:i+k])
flag=0
break
if flag==1:
cs_array.append(str1[k:i+k])
if len(cs_array):
print(cs_array)
else:
print('There is no any common substring according to the parametres given')
common_substrings('ciguliuana','ciguana')
common_substrings('apples','appleses')
common_substrings('apple pie available','apple pies')
Method 8
Try:
import itertools as it ''.join(el[0] for el in it.takewhile(lambda t: t[0] == t[1], zip(string1, string2)))
It does the comparison from the beginning of both strings.
Method 9
def matchingString(x,y):
match=''
for i in range(0,len(x)):
for j in range(0,len(y)):
k=1
# now applying while condition untill we find a substring match and length of substring is less than length of x and y
while (i+k <= len(x) and j+k <= len(y) and x[i:i+k]==y[j:j+k]):
if len(match) <= len(x[i:i+k]):
match = x[i:i+k]
k=k+1
return match
print matchingString('apple','ale') #le
print matchingString('apple pie available','apple pies') #apple pie
Method 10
The fastest way I’ve found is to use suffix_trees package:
from suffix_trees import STree a = ["xxxabcxxx", "adsaabc"] st = STree.STree(a) print(st.lcs()) # "abc"
Method 11
A Trie data structure would work the best, better than DP.
Here is the code.
class TrieNode:
def __init__(self):
self.child = [None]*26
self.endWord = False
class Trie:
def __init__(self):
self.root = self.getNewNode()
def getNewNode(self):
return TrieNode()
def insert(self,value):
root = self.root
for i,character in enumerate(value):
index = ord(character) - ord('a')
if not root.child[index]:
root.child[index] = self.getNewNode()
root = root.child[index]
root.endWord = True
def search(self,value):
root = self.root
for i,character in enumerate(value):
index = ord(character) - ord('a')
if not root.child[index]:
return False
root = root.child[index]
return root.endWord
def main():
# Input keys (use only 'a' through 'z' and lower case)
keys = ["the","anaswe"]
output = ["Not present in trie",
"Present in trie"]
# Trie object
t = Trie()
# Construct trie
for key in keys:
t.insert(key)
# Search for different keys
print("{} ---- {}".format("the",output[t.search("the")]))
print("{} ---- {}".format("these",output[t.search("these")]))
print("{} ---- {}".format("their",output[t.search("their")]))
print("{} ---- {}".format("thaw",output[t.search("thaw")]))
if __name__ == '__main__':
main()
Let me know in case of doubts.
Method 12
In case we have a list of words that we need to find all common substrings I check some of the codes above and the best was https://stackoverflow.com/a/42882629/8520109 but it has some bugs for example ‘histhome’ and ‘homehist’. In this case, we should have ‘hist’ and ‘home’ as a result. Furthermore, it differs if the order of arguments is changed. So I change the code to find every block of substring and it results a set of common substrings:
main = input().split(" ") #a string of words separated by space
def longestSubstringFinder(string1, string2):
'''Find the longest matching word'''
answer = ""
len1, len2 = len(string1), len(string2)
for i in range(len1):
for j in range(len2):
lcs_temp=0
match=''
while ((i+lcs_temp < len1) and (j+lcs_temp<len2) and string1[i+lcs_temp] == string2[j+lcs_temp]):
match += string2[j+lcs_temp]
lcs_temp+=1
if (len(match) > len(answer)):
answer = match
return answer
def listCheck(main):
'''control the input for finding substring in a list of words'''
string1 = main[0]
result = []
for i in range(1, len(main)):
string2 = main[i]
res1 = longestSubstringFinder(string1, string2)
res2 = longestSubstringFinder(string2, string1)
result.append(res1)
result.append(res2)
result.sort()
return result
first_answer = listCheck(main)
final_answer = []
for item1 in first_answer: #to remove some incorrect match
string1 = item1
double_check = True
for item2 in main:
string2 = item2
if longestSubstringFinder(string1, string2) != string1:
double_check = False
if double_check:
final_answer.append(string1)
print(set(final_answer))
main = 'ABACDAQ BACDAQA ACDAQAW XYZCDAQ' #>>> {'CDAQ'}
main = 'homehist histhome' #>>> {'hist', 'home'}
Method 13
def LongestSubString(s1,s2):
if len(s1)<len(s2) :
s1,s2 = s2,s1
maxsub =''
for i in range(len(s2)):
for j in range(len(s2),i,-1):
if s2[i:j] in s1 and j-i>len(maxsub):
return s2[i:j]
Method 14
Returns the first longest common substring:
def compareTwoStrings(string1, string2):
list1 = list(string1)
list2 = list(string2)
match = []
output = ""
length = 0
for i in range(0, len(list1)):
if list1[i] in list2:
match.append(list1[i])
for j in range(i + 1, len(list1)):
if ''.join(list1[i:j]) in string2:
match.append(''.join(list1[i:j]))
else:
continue
else:
continue
for string in match:
if length < len(list(string)):
length = len(list(string))
output = string
else:
continue
return output
Method 15
**Return the comman longest substring**
def longestSubString(str1, str2):
longestString = ""
maxLength = 0
for i in range(0, len(str1)):
if str1[i] in str2:
for j in range(i + 1, len(str1)):
if str1[i:j] in str2:
if(len(str1[i:j]) > maxLength):
maxLength = len(str1[i:j])
longestString = str1[i:j]
return longestString
Method 16
This is the classroom problem called ‘Longest sequence finder’. I have given some simple code that worked for me, also my inputs are lists of a sequence which can also be a string:
def longest_substring(list1,list2):
both=[]
if len(list1)>len(list2):
small=list2
big=list1
else:
small=list1
big=list2
removes=0
stop=0
for i in small:
for j in big:
if i!=j:
removes+=1
if stop==1:
break
elif i==j:
both.append(i)
for q in range(removes+1):
big.pop(0)
stop=1
break
removes=0
return both
Method 17
As if this question doesn’t have enough answers, here’s another option:
from collections import defaultdict
def LongestCommonSubstring(string1, string2):
match = ""
matches = defaultdict(list)
str1, str2 = sorted([string1, string2], key=lambda x: len(x))
for i in range(len(str1)):
for k in range(i, len(str1)):
cur = match + str1[k]
if cur in str2:
match = cur
else:
match = ""
if match:
matches[len(match)].append(match)
if not matches:
return ""
longest_match = max(matches.keys())
return matches[longest_match][0]
Some example cases:
LongestCommonSubstring("whose car?", "this is my car")
> ' car'
LongestCommonSubstring("apple pies", "apple? forget apple pie!")
> 'apple pie'
Method 18
This isn’t the most efficient way to do it but it’s what I could come up with and it works. If anyone can improve it, please do. What it does is it makes a matrix and puts 1 where the characters match. Then it scans the matrix to find the longest diagonal of 1s, keeping track of where it starts and ends. Then it returns the substring of the input string with the start and end positions as arguments.
Note: This only finds one longest common substring. If there’s more than one, you could make an array to store the results in and return that Also, it’s case sensitive so (Apple pie, apple pie) will return pple pie.
def longestSubstringFinder(str1, str2):
answer = ""
if len(str1) == len(str2):
if str1==str2:
return str1
else:
longer=str1
shorter=str2
elif (len(str1) == 0 or len(str2) == 0):
return ""
elif len(str1)>len(str2):
longer=str1
shorter=str2
else:
longer=str2
shorter=str1
matrix = numpy.zeros((len(shorter), len(longer)))
for i in range(len(shorter)):
for j in range(len(longer)):
if shorter[i]== longer[j]:
matrix[i][j]=1
longest=0
start=[-1,-1]
end=[-1,-1]
for i in range(len(shorter)-1, -1, -1):
for j in range(len(longer)):
count=0
begin = [i,j]
while matrix[i][j]==1:
finish=[i,j]
count=count+1
if j==len(longer)-1 or i==len(shorter)-1:
break
else:
j=j+1
i=i+1
i = i-count
if count>longest:
longest=count
start=begin
end=finish
break
answer=shorter[int(start[0]): int(end[0])+1]
return answer
Method 19
First a helper function adapted from the itertools pairwise recipe to produce substrings.
import itertools
def n_wise(iterable, n = 2):
'''n = 2 -> (s0,s1), (s1,s2), (s2, s3), ...
n = 3 -> (s0,s1, s2), (s1,s2, s3), (s2, s3, s4), ...'''
a = itertools.tee(iterable, n)
for x, thing in enumerate(a[1:]):
for _ in range(x+1):
next(thing, None)
return zip(*a)
Then a function the iterates over substrings, longest first, and tests for membership. (efficiency not considered)
def foo(s1, s2):
'''Finds the longest matching substring
'''
# the longest matching substring can only be as long as the shortest string
#which string is shortest?
shortest, longest = sorted([s1, s2], key = len)
#iterate over substrings, longest substrings first
for n in range(len(shortest)+1, 2, -1):
for sub in n_wise(shortest, n):
sub = ''.join(sub)
if sub in longest:
#return the first one found, it should be the longest
return sub
s = "fdomainster"
t = "exdomainid"
print(foo(s,t))
>>> domain >>>
Method 20
def LongestSubString(s1,s2):
left = 0
right =len(s2)
while(left<right):
if(s2[left] not in s1):
left = left+1
else:
if(s2[left:right] not in s1):
right = right - 1
else:
return(s2[left:right])
s1 = "pineapple"
s2 = "applc"
print(LongestSubString(s1,s2))
All methods was sourced from stackoverflow.com or stackexchange.com, is licensed under cc by-sa 2.5, cc by-sa 3.0 and cc by-sa 4.0