348

How do I find a string between two substrings ('123STRINGabc' -> 'STRING')?

My current method is like this:

>>> start = 'asdf=5;'
>>> end = '123jasd'
>>> s = 'asdf=5;iwantthis123jasd'
>>> print((s.split(start))[1].split(end)[0])
iwantthis

However, this seems very inefficient and un-pythonic. What is a better way to do something like this?

Forgot to mention: The string might not start and end with start and end. They may have more characters before and after.

4
  • 2
    Your additional information makes it almost necessary to use regexes for maximum correctness. Jul 30, 2010 at 6:39
  • 27
    What's wrong with your own solution? I actually prefer it to the one you accepted.
    – reubano
    Nov 10, 2014 at 12:06
  • I was trying to do this as well but for multiple instances it looks like using *? to do a non greedy search and then just cutting off the string with s[s.find(end)] worked for tracking multiple instances
    – lathomas64
    Jan 9, 2019 at 23:07
  • @reubano: one feature/bug of this code is that it does not raise an exception when the end text does not occur in the original text. The accepted answer fixes this. Jan 19 at 14:50

20 Answers 20

451
import re

s = 'asdf=5;iwantthis123jasd'
result = re.search('asdf=5;(.*)123jasd', s)
print(result.group(1))
10
  • 1
    @Jesse Dhillon -- what about @Tim McNamara's suggestion of something like ''.join(start,test,end) in a_string?
    – jdd
    Jul 30, 2010 at 13:13
  • This method is shorter and is similar to the javascript method.
    – leonneo
    Dec 7, 2013 at 10:42
  • 7
    What if I need to find between 2 substrings and the second one is repeated after first one? Something like this: s= 'asdf=5;I_WANT_ONLY_THIS123jasdNOT_THIS123jasd
    – Denis Soto
    Sep 19, 2019 at 15:13
  • 6
    Add ? to make it non greedy result = re.search('asdf=5;(.*?)123jasd', s)
    – do-ic
    Nov 21, 2020 at 15:13
  • 1
    How can this be amended to select data between start/end if the start/end is duplicated? e.g. say i wanted to select both strings separately between <> i would like to send <message> to <name> and return result1='message' and result2 = 'name' Mar 5, 2021 at 11:56
175
s = "123123STRINGabcabc"

def find_between( s, first, last ):
    try:
        start = s.index( first ) + len( first )
        end = s.index( last, start )
        return s[start:end]
    except ValueError:
        return ""

def find_between_r( s, first, last ):
    try:
        start = s.rindex( first ) + len( first )
        end = s.rindex( last, start )
        return s[start:end]
    except ValueError:
        return ""


print find_between( s, "123", "abc" )
print find_between_r( s, "123", "abc" )

gives:

123STRING
STRINGabc

I thought it should be noted - depending on what behavior you need, you can mix index and rindex calls or go with one of the above versions (it's equivalent of regex (.*) and (.*?) groups).

7
  • 43
    He said that he wanted a way that was more Pythonic, and this is decidedly less so. I'm not sure why this answer was picked, even OP's own solution is better. Jul 30, 2010 at 6:37
  • 2
    Agreed. I'd use the solution by @Tim McNamara , or the suggestion by the same of something like start+test+end in substring
    – jdd
    Jul 30, 2010 at 12:31
  • Right, so it's less pythonic, ok. Is it less efficient than regexps too? And there's also @Prabhu answer you need to downvote, as it suggest the same solution.
    – cji
    Jul 30, 2010 at 19:42
  • 1
    +1 too, for a more generic and reusable (by import) solution.
    – Ida
    Jun 24, 2013 at 10:30
  • 3
    +1 since it works better than the other solutions in the case where end is found more than once. But I do agree that the OP's solution is more simpler.
    – reubano
    Nov 10, 2014 at 12:08
124
start = 'asdf=5;'
end = '123jasd'
s = 'asdf=5;iwantthis123jasd'
print s[s.find(start)+len(start):s.rfind(end)]

gives

iwantthis
2
  • 5
    I upvoted this because it works regardless of input string size. Some of the other methods assumed you'd know the length ahead of time. Jan 11, 2017 at 3:16
  • 2
    yes it works by without input size however it does assume the string exists
    – Kevin Crum
    Feb 3, 2021 at 2:31
59
s[len(start):-len(end)]
2
  • 13
    This is very nice, assuming start and end are always at the start and end of the string. Otherwise, I would probably use a regex.
    – jdd
    Jul 30, 2010 at 6:01
  • 3
    I went the most Pythonic answer to the original question I could think of. Testing using the in operator would probably be faster than regexp. Jul 30, 2010 at 6:13
38

String formatting adds some flexibility to what Nikolaus Gradwohl suggested. start and end can now be amended as desired.

import re

s = 'asdf=5;iwantthis123jasd'
start = 'asdf=5;'
end = '123jasd'

result = re.search('%s(.*)%s' % (start, end), s).group(1)
print(result)
4
  • 2
    I'm getting this: 'NoneType' object has no attribute 'group'
    – Dentrax
    Jan 5, 2019 at 10:36
  • 1
    That means a match wasn't found. Check your regular expression. Jan 10, 2019 at 21:54
  • @Dentrax is right: should return nothing not an error
    – cwhisperer
    Aug 26, 2020 at 15:47
  • I think Tim means that the search should return None as there were no matches. Since the search returned 'None', applying of .group(1) at the end causes the error.
    – MTay
    Sep 30, 2020 at 21:28
31

If you don't want to import anything, try the string method .index():

text = 'I want to find a string between two substrings'
left = 'find a '
right = 'between two'

# Output: 'string'
print(text[text.index(left)+len(left):text.index(right)])
5
  • 4
    I am loving it. simple, single-line, clear enough, no additional imports and works out of the box. I have no idea what is the deal with the over-engineered answers above.
    – PaulB
    Sep 12, 2019 at 9:04
  • 1
    This is not checking whether the "right" text is actually at the right side of the text. If there are any occurrences of "right" before the text it won't work.
    – AndreFeijo
    Jun 20, 2020 at 8:17
  • 1
    @AndreFeijo I agree with you, this was my first solution when trying to extract texts and I wanted to avoid regex weird syntax. However, in situations as you mentioned, I would use regex instead. Jul 10, 2020 at 15:05
  • in that case (not all of cases) you could find left and then right, although it's a two line code text = text[text.index(left)+len(left):len(role)] text = text[0:text.index(right)]
    – ericksho
    Jul 27 at 19:45
  • Hi Fernando, for this text "ADRIANOPICCININIC216186162022-07-27 09:36:33Z" i am looking to extract only "C21618616", how can i do that?
    – Arun Mohan
    Aug 11 at 8:34
31

Just converting the OP's own solution into an answer:

def find_between(s, start, end):
    return (s.split(start))[1].split(end)[0]
1
  • 10
    If you are making someone else's solution as your own, you probably should make it a Community Wiki. Jan 3, 2017 at 12:35
16
source='your token _here0@df and maybe _here1@df or maybe _here2@df'
start_sep='_'
end_sep='@df'
result=[]
tmp=source.split(start_sep)
for par in tmp:
  if end_sep in par:
    result.append(par.split(end_sep)[0])

print result

must show: here0, here1, here2

the regex is better but it will require additional lib an you may want to go for python only

2
  • This worked for me. Thank you for extending the solution for multiple occurrences.
    – Sterex
    Jan 24, 2016 at 10:48
  • 1
    I was exactly looking for this, It helps for multiple occurrences, This post needs more upvotes :p.
    – ohsoifelse
    Jun 18, 2019 at 16:08
14

Here is one way to do it

_,_,rest = s.partition(start)
result,_,_ = rest.partition(end)
print result

Another way using regexp

import re
print re.findall(re.escape(start)+"(.*)"+re.escape(end),s)[0]

or

print re.search(re.escape(start)+"(.*)"+re.escape(end),s).group(1)
6

Here is a function I did to return a list with a string(s) inbetween string1 and string2 searched.

def GetListOfSubstrings(stringSubject,string1,string2):
    MyList = []
    intstart=0
    strlength=len(stringSubject)
    continueloop = 1

    while(intstart < strlength and continueloop == 1):
        intindex1=stringSubject.find(string1,intstart)
        if(intindex1 != -1): #The substring was found, lets proceed
            intindex1 = intindex1+len(string1)
            intindex2 = stringSubject.find(string2,intindex1)
            if(intindex2 != -1):
                subsequence=stringSubject[intindex1:intindex2]
                MyList.append(subsequence)
                intstart=intindex2+len(string2)
            else:
                continueloop=0
        else:
            continueloop=0
    return MyList


#Usage Example
mystring="s123y123o123pp123y6"
List = GetListOfSubstrings(mystring,"1","y68")
for x in range(0, len(List)):
               print(List[x])
output:


mystring="s123y123o123pp123y6"
List = GetListOfSubstrings(mystring,"1","3")
for x in range(0, len(List)):
              print(List[x])
output:
    2
    2
    2
    2

mystring="s123y123o123pp123y6"
List = GetListOfSubstrings(mystring,"1","y")
for x in range(0, len(List)):
               print(List[x])
output:
23
23o123pp123
2
  • Really good and helpful answer. Thank you!
    – ibarant
    Jul 23, 2019 at 15:16
  • Extraordinary answer. I'd hire a guy like you Jan 18, 2021 at 18:38
5

To extract STRING, try:

myString = '123STRINGabc'
startString = '123'
endString = 'abc'

mySubString=myString[myString.find(startString)+len(startString):myString.find(endString)]
4

You can simply use this code or copy the function below. All neatly in one line.

def substring(whole, sub1, sub2):
    return whole[whole.index(sub1) : whole.index(sub2)]

If you run the function as follows.

print(substring("5+(5*2)+2", "(", "("))

You will pobably be left with the output:

(5*2

rather than

5*2

If you want to have the sub-strings on the end of the output the code must look like below.

return whole[whole.index(sub1) : whole.index(sub2) + 1]

But if you don't want the substrings on the end the +1 must be on the first value.

return whole[whole.index(sub1) + 1 : whole.index(sub2)]
3

These solutions assume the start string and final string are different. Here is a solution I use for an entire file when the initial and final indicators are the same, assuming the entire file is read using readlines():

def extractstring(line,flag='$'):
    if flag in line: # $ is the flag
        dex1=line.index(flag)
        subline=line[dex1+1:-1] #leave out flag (+1) to end of line
        dex2=subline.index(flag)
        string=subline[0:dex2].strip() #does not include last flag, strip whitespace
    return(string)

Example:

lines=['asdf 1qr3 qtqay 45q at $A NEWT?$ asdfa afeasd',
    'afafoaltat $I GOT BETTER!$ derpity derp derp']
for line in lines:
    string=extractstring(line,flag='$')
    print(string)

Gives:

A NEWT?
I GOT BETTER!
2

This is essentially cji's answer - Jul 30 '10 at 5:58. I changed the try except structure for a little more clarity on what was causing the exception.

def find_between( inputStr, firstSubstr, lastSubstr ):
'''
find between firstSubstr and lastSubstr in inputStr  STARTING FROM THE LEFT
    http://stackoverflow.com/questions/3368969/find-string-between-two-substrings
        above also has a func that does this FROM THE RIGHT   
'''
start, end = (-1,-1)
try:
    start = inputStr.index( firstSubstr ) + len( firstSubstr )
except ValueError:
    print '    ValueError: ',
    print "firstSubstr=%s  -  "%( firstSubstr ), 
    print sys.exc_info()[1]

try:
    end = inputStr.index( lastSubstr, start )       
except ValueError:
    print '    ValueError: ',
    print "lastSubstr=%s  -  "%( lastSubstr ), 
    print sys.exc_info()[1]

return inputStr[start:end]    
2
from timeit import timeit
from re import search, DOTALL


def partition_find(string, start, end):
    return string.partition(start)[2].rpartition(end)[0]


def re_find(string, start, end):
    # applying re.escape to start and end would be safer
    return search(start + '(.*)' + end, string, DOTALL).group(1)


def index_find(string, start, end):
    return string[string.find(start) + len(start):string.rfind(end)]


# The wikitext of "Alan Turing law" article form English Wikipeida
# https://en.wikipedia.org/w/index.php?title=Alan_Turing_law&action=edit&oldid=763725886
string = """..."""
start = '==Proposals=='
end = '==Rival bills=='

assert index_find(string, start, end) \
       == partition_find(string, start, end) \
       == re_find(string, start, end)

print('index_find', timeit(
    'index_find(string, start, end)',
    globals=globals(),
    number=100_000,
))

print('partition_find', timeit(
    'partition_find(string, start, end)',
    globals=globals(),
    number=100_000,
))

print('re_find', timeit(
    're_find(string, start, end)',
    globals=globals(),
    number=100_000,
))

Result:

index_find 0.35047444528454114
partition_find 0.5327825636197754
re_find 7.552149639286381

re_find was almost 20 times slower than index_find in this example.

1

My method will be to do something like,

find index of start string in s => i
find index of end string in s => j

substring = substring(i+len(start) to j-1)
1

This I posted before as code snippet in Daniweb:

# picking up piece of string between separators
# function using partition, like partition, but drops the separators
def between(left,right,s):
    before,_,a = s.partition(left)
    a,_,after = a.partition(right)
    return before,a,after

s = "bla bla blaa <a>data</a> lsdjfasdjöf (important notice) 'Daniweb forum' tcha tcha tchaa"
print between('<a>','</a>',s)
print between('(',')',s)
print between("'","'",s)

""" Output:
('bla bla blaa ', 'data', " lsdjfasdj\xc3\xb6f (important notice) 'Daniweb forum' tcha tcha tchaa")
('bla bla blaa <a>data</a> lsdjfasdj\xc3\xb6f ', 'important notice', " 'Daniweb forum' tcha tcha tchaa")
('bla bla blaa <a>data</a> lsdjfasdj\xc3\xb6f (important notice) ', 'Daniweb forum', ' tcha tcha tchaa')
"""
1

Parsing text with delimiters from different email platforms posed a larger-sized version of this problem. They generally have a START and a STOP. Delimiter characters for wildcards kept choking regex. The problem with split is mentioned here & elsewhere - oops, delimiter character gone. It occurred to me to use replace() to give split() something else to consume. Chunk of code:

nuke = '~~~'
start = '|*'
stop = '*|'
julien = (textIn.replace(start,nuke + start).replace(stop,stop + nuke).split(nuke))
keep = [chunk for chunk in julien if start in chunk and stop in chunk]
logging.info('keep: %s',keep)
0

Further from Nikolaus Gradwohl answer, I needed to get version number (i.e., 0.0.2) between('ui:' and '-') from below file content (filename: docker-compose.yml):

    version: '3.1'
services:
  ui:
    image: repo-pkg.dev.io:21/website/ui:0.0.2-QA1
    #network_mode: host
    ports:
      - 443:9999
    ulimits:
      nofile:test

and this is how it worked for me (python script):

import re, sys

f = open('docker-compose.yml', 'r')
lines = f.read()
result = re.search('ui:(.*)-', lines)
print result.group(1)


Result:
0.0.2
3
  • Using Docker for simple task is bad practice. May 16, 2021 at 13:37
  • 1
    @DmitryBubnenkov what does the above post has to do anything with Docker usage/implementation? It's all about finding a string between two substrings in a file.
    – Akshay
    May 16, 2021 at 21:37
  • I thought this use case was great. My use case was a css file with encoded base64 text it just shows not every text file needs to be .txt Aug 7 at 5:19
-3

This seems much more straight forward to me:

import re

s = 'asdf=5;iwantthis123jasd'
x= re.search('iwantthis',s)
print(s[x.start():x.end()])
1
  • This requires you to know the string you're looking for, it doesn't find whatever string is between the two substrings, as the OP requested. The OP wants to be able to get the middle no matter what it is, and this answer would require you to know the middle before you start.
    – Korzak
    May 9, 2019 at 20:22

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