Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

i need to find anything between

show_detail&

and

;session_id=1445045

in

https://www.site.gov.uk//search/cgi-bin/contract_search/contract_search.cgi?rm=show_detail&id=4035219;num=1;session_id=1445045;start=0;recs=20;subscription=1;value=0

using regex in python.

i know i need to use lookbehind/ahead but i can't seem to make it work!

please help!

thanks :)

share|improve this question

5 Answers 5

up vote 4 down vote accepted
>>> s= "https://www.site.gov.uk//search/cgi-bin/contract_search/contract_search.cgi?rm=show_detail&id=4035219;num=1;session_id=1445045;start=0;recs=20;subscription=1;value=0"
>>> s.split(";session_id=1445045")[0].split("show_detail&")[-1]
'id=4035219;num=1'
>>>
share|improve this answer

Why use a regex?

>>>> url = 'https://ww.site.gov.....'
>>> start = url.index('show_detail&') + len('show_detail&')
>>> end = url.index(';session_id=')
>>> url[start:end]
'id=4035219;num=1'
share|improve this answer

You can use a non greedy match (.*?) in between your markers.

>>> import re
>>> url = "https://www.site.gov.uk//search/cgi-bin/contract_search/contract_search.cgi?rm=show_detail&id=4035219;num=1;session_id=1445045;start=0;recs=20;subscription=1;value=0"
>>> m = re.search("show_detail&(.*?);session_id=1445045", url)
>>> m.group(1)
'id=4035219;num=1'
share|improve this answer
regex = re.compile(r"(?<=show_detail&amp;).*?(?=;session_id=1445045)"

should work. See here for more info on lookaround assertions.

share|improve this answer
import re


url = "https://www.site.gov.uk//search/cgi-bin/contract_search/contract_search.cgi?rm=show_detail&amp;id=4035219;num=1;session_id=1445045;start=0;recs=20;subscription=1;value=0"
pattern = "([^>].+)(show_detail&amp;)([^>].+)(session_id=1445045)([^>].+)"
reg = re.compile(r''''''+pattern+'''''',flags = re.S)
match =reg.search(url)

print match.group(3)

this would work i think

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.