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I faced an error on "bad group name".

Here is the code:

for qitem in q['display']:
    if qitem['type'] == 1:
        for keyword in keywordTags.split('|'):
            p = re.compile('^' + keyword + '$')
            newstring=''
            for word in qitem['value'].split():
                if word[-1:] == ',':
                    word = word[0:len(word)-1]
                    newstring += (p.sub('<b>'+word+'</b>', word) + ', ')
                else:
                    newstring += (p.sub('<b>'+word+'</b>', word) + ' ')
            qitem['value']=newstring

And here's the error:

error at /result/1/ bad group name Request Method: GET Django Version: 1.4.1 Exception Type: error Exception Value: bad group name Exception Location: C:\Python27\lib\re.py in _compile_repl, line 257 Python Executable: C:\Python27\python.exe Python Version: 2.7.3 Python Path: ['D:\ExamPapers', 'C:\Windows\SYSTEM32\python27.zip', 'C:\Python27\DLLs', 'C:\Python27\lib', 'C:\Python27\lib\plat-win', 'C:\Python27\lib\lib-tk', 'C:\Python27', 'C:\Python27\lib\site-packages'] Server time: Sun,3 Mar 2013 15:31:05 +0800

Traceback Switch to copy-and-paste view

C:\Python27\lib\site-packages\django\core\handlers\base.py in get_response response = callback(request, *callback_args, **callback_kwargs) ... ▶ Local vars ? D:\ExamPapers\views.py in result newstring += (p.sub(''+word+'', word) + ' ') ... ▶ Local vars

In summary, the error is at:

newstring += (p.sub('<b>'+word+'</b>', word) + ' ')
share|improve this question
    
Hi Aidan, what are you trying to do with this code? It looks like there are a few things wrong with it beyond the error. –  Thomas Parslow Mar 3 '13 at 7:45
    
The error you are getting right now is caused by the fact that re.sub does substitutions of regular expression groups and something in the words your passing in is getting mistaken for references to those groups (which don't exist). This answer problem isn't much help to you though, I can probably give you a much more useful answer once I know what you intended the code to do :) –  Thomas Parslow Mar 3 '13 at 7:47
    
Hi, actually it is asked by me. This code is basically extracting a part of q['display'] (that is type=1), and a few keywords (done in regex) were being searched on that qitem['value'] (which is a string), and highlight the word as BOLD if it is found using the regex. –  jdtoh Mar 3 '13 at 7:48
    
You need to use re.escape on word. Someone probably inject some regex fragment as input. –  nhahtdh Mar 3 '13 at 7:54
    
sorry, re.escape doesn't work –  jdtoh Mar 3 '13 at 7:56

1 Answer 1

up vote 1 down vote accepted

So you're trying to highlight in bold an occurrence of a set of keywords. Right now this code is broken in quite a lot of ways. You're using the re module right now to match the keywords but you're also breaking the keywords and the strings down into individual words, you don't need to do both and the interaction between these two different approaches to the solving the problem are what is causing you issues.

You can use regular expressions to match multiple possible strings at the same time, that's what they're good for! So instead of "^keyword$" to match just "keyword" you could use "^keyword|hello$" to match either "keyword" or "hello". You also use the ^ and $ characters which only match the beginning or end of the entire string, but what you probably wanted originally was to match the beginning or end of words, for this you can use \b like this r"\b(keyword|hello)\b". Note that in the last example I added a r character before the string, this stands for "raw" and turns off pythons usual handling of back slash characters which conflicts with regular expressions, it's good practice to always use the r before the string when the string contains a regular expression. I also used brackets to group together the words.

The regular expression sub method allows you to substitute things matched by a regular expression with another string. It also allow you to make "back references" in the replacing string that include parts of original string that matched. The parts that it includes are called "groups" and are indicated with brackets in the original regular expression, in the example above there is only one set of brackets and these are the first so they're indicated by the back reference \1. The cause of the actual error message you asked about is that your replacement string contained what looked like a backref but there weren't any groups in your regular expression.

Using that you do something like this:

keywordMatcher = re.compile(r"\b(keyword|hello)\b")
value = keywordMatcher.sub(r"<b>\1</b>", value)

Another thing that isn't directly related to what you're asking but is incredibly important is that you are taking source plain text strings (I assume) and making them into HTML, this gives a lot of chance for script injection vulnerabilities which if you don't take the time to understand and avoid will allow bad guys to hack the applications you build (they can do this in an automated way, so even if you think your app will be too small for anyone to notice it can still get hacked and used for all sorts of bad things, don't let this happen!). The basic rule is that it's ok to convert text to HTML but you need to "escape" it first, this is very simple:

from django.utils import html
html_safe = html.escape(my_text)

All this does is convert characters like < to &lt; which the browser will show as < but won't interpret as the beginning of a tag. So if a bad guy types <script> into one of your forms and it gets processed by your code it will display it as <script> and not execute it as a script.

Likewise, if you use an text in a regular expression that you don't intend to have special regular expression characters then you must escape that too! You can do this using re.escape:

import re
my_regexp = re.compile(r"\b%s\b" % (re.escape(my_word),))

Ok, so now we've got that out of the way here is a method you could use to do what you wanted:

value = "this is my super duper testing thingy"
keywords = "super|my|test"

from django.utils import html
import re
# first we must split up the keywords
keywords = keywords.split("|")
# Next we must make each keyword safe for use in a regular expression,
# this is similar to the HTML escaping we discussed above but not to
# be confused with it.
keywords = [re.escape(k) for k in keywords]
# Now we reform the keywordTags string, but this time we know each keyword is regexp-safe
keywords = "|".join(keywords)
# Finally we create a regular expression that matches *any* of the keywords
keywordMatcher = re.compile(r'\b(%s)\b' % (keywords,))
# We are going to make the value into HTML (by adding <b> tags) so must first escape it
value = html.escape(value)
# We can then apply the regular expression to the value. We use a "back reference" `\0` to say
# that each keyword found should be replace with itself wrapped in a <b> tag
value = keywordMatcher.sub(r"<b>\1</b>", value)

print value

I urge you to take the time to understand what this does, otherwise you're just going to get yourself into a mess! It's always easier to just cut and paste and move on but this leads to crappy broken code and worse of all means you yourself don't improve and don't learn. All great coders started of as beginner coders who took the time to understand things :)

share|improve this answer
    
nice! it works! however may I ask if you have a two-word tag, how do we bold it as well? example: keywords = "super|my|test thingy" –  jdtoh Mar 3 '13 at 8:43
    
That should actually work fine with the code as-is. The regex requires that the keyword start and end on a word boundary but says nothing about there not being word boundaries within the keyword. Try it! –  Thomas Parslow Mar 3 '13 at 10:44
    
ok sorry, i think just now i tried and it did not work was because of "test thingy". I should use "testing thingy" –  jdtoh Mar 3 '13 at 11:38

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