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I have a file where every block is separated by !s. i.e

!
 vserver XXXX
 virtual XX.xx.XX.XX tcp 389
 owner LDAP
 serverfarm XXX
 idle 5
 persistent rebalance
 inservice
!

I want to get each section that is contains vserver info. I am trying to use regex in python, but I am having trouble dealing with the newline char

I tried something like this:

pattern = r"!\n vserver \S+\n "
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5 Answers 5

up vote 5 down vote accepted

You need to tell Python that you're using multi-line regular expressions and that dot characters can match new-lines:

>>> m = re.search('^!.*^!', text, re.MULTILINE | re.DOTALL)
>>> m.group(0)
'!\n vserver XXXX\n virtual XX.xx.XX.XX tcp 389\n owner LDAP\n serverfarm XXX\n idle 5\n persistent rebalance\n inservice\n!'

If you want to get the name of the vserver:

>>> m = re.search('^!.*vserver\s+(\w+).*^!', text, re.MULTILINE | re.DOTALL)
>>> m.group(0)
'!\n vserver XXXX\n virtual XX.xx.XX.XX tcp 389\n owner LDAP\n serverfarm XXX\n idle 5\n persistent rebalance\n inservice\n!'
>>> m.group(1)
'XXXX'
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1  
you don't need to enable multiline mode in order for this to work. –  MK. Jan 19 '12 at 4:32
1  
@MK.: You do if you only want to match the exclamation marks at the beginning of a line. –  Johnsyweb Jan 19 '12 at 4:41

This has the advantage of not reading in the whole file at once

from itertools import groupby

with open("data.txt") as infile:
    for block in (j for i,j in groupby(t,'!'.__ne__) if i):
        block = list(block)
        if not block[0].startswith("vserver "):
            continue
        ...
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Try

stri = " the output of open(myfilename,'r').read() "

import re
pattern = r"^!\n vserver \S+\n[^!]+^!"
re.findall(pattern,stri,flags=re.M)

The regex:

^!\n            -> match a solitary '!' on its own line followed by newline
 vserver \S+\n  -> starting with vserver \S+\n
[^!]+           -> match the rest of the block, up to..
^!              -> another solitary '!' on its own line.

Depending on what particular information you want to extract the regex can be refined.

For example to extract the text after vserver, I can add in capturing brackets:

pattern  = r"^!\n vserver (\S+)\n[^!]+^!"

Then:

re.findall(pattern,stri,flags=re.M) # returns ['XXXX']
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N.B: str is the name of a built-in class in Python and is therefore a bad choice of variable name. –  Johnsyweb Jan 19 '12 at 8:37
    
ahh, I always get stung by that -- I'll modify my answer. cheers! –  mathematical.coffee Jan 19 '12 at 23:53
    
You're not alone :) –  Johnsyweb Jan 20 '12 at 0:34

I'm not a big fan of regexs, how about a list comp?

vserver_blocks = [block for block in data.split("!") if "vserver" in block]
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teststr = """
sdafsad
!
 vserver XXXX
 virtual XX.xx.XX.XX tcp 389
 owner LDAP
 serverfarm XXX
 idle 5
 persistent rebalance
 inservice
!
dsfdasfas
"""

import re

m = re.search("!\n[^!]*vserver[^!]*!", teststr)
print m.group(0)
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1  
N.B: str is the name of a built-in class in Python and is therefore a bad choice of variable name! –  Johnsyweb Jan 20 '12 at 0:33

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