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What's the best was to strip out the alphabetical letters that are sometimes at the start of Wikipedia references?

e.g. From

a b c d Star Wars Episode III: Revenge of the Sith (DVD). 20th Century Fox. 2005.

to

Star Wars Episode III: Revenge of the Sith (DVD). 20th Century Fox. 2005.

I've hacked together a solution that works, but seems clunky. My version uses a regular expression in the form '^(?:a (?:b (?:c )?)?)?'. What's a proper, fast way to do it?

a = list('abcdefghijklmnopqrstuvwxyz')
reg = "^%s%s" % ( "".join(["(?:%s " %b for b in a]), ")?"*len(a) )
re.sub(reg, "", "a b c d Wikipedia Reference")
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1  
what about a boy and his dog? – Joran Beasley Dec 6 '12 at 5:08
    
Good point. Getting around this would mean parsing the HTML rather than plain text, I suppose. Although, indefinite articles can always be sacrificed ;) – Peter O Dec 6 '12 at 5:29
up vote 1 down vote accepted

I would probably just do something like this:

title = re.sub(r'^([a-z]\s)*', '', 'a b c d Wikipedia Reference')

which does the same as what you've got there. Like @joran-beasley points out, however, you might need something cleverer for the complicated cases.

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Nice. Though we don't keep the order, (e.g. it would match "a c d "), I can't imagine a case where that would be a problem, while the readability is much better. I benchmarked this option after posting the question (though with a + rather than *) and found it 2.3x as fast. – Peter O Dec 6 '12 at 5:26

How about using a character class in your regular expression, i.e.:

re.sub('^([a-z] )*', '', ...)

That should remove any number of leading occurrences of a single alphabetic character followed by a single space.

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If you are copying and pasting webpage text rather than processing html, some problems as mentioned in the question are inevitable. But processing html (the relevant line as shown below) using htmllib, you can remove items like <sup><i><b>c</b></i></sup> (which contributes the c) as units. [Edit: I now see htmllib is deprecated; I don't know the proper replacement but believe it is HTMLParser.]

The displayed line is somewhat like

^ a b c d e Star Wars: Episode III Revenge of the Sith DVD commentary featuring George Lucas, Rick McCallum, Rob Coleman, John Knoll and Roger Guyett, [2005]

and the html source of the line is

<li id="cite_note-DVDcom-13"><span class="mw-cite-backlink">^ <a href="#cite_ref-DVDcom_13-0"><sup><i><b>a</b></i></sup></a> <a href="#cite_ref-DVDcom_13-1"><sup><i><b>b</b></i></sup></a> <a href="#cite_ref-DVDcom_13-2"><sup><i><b>c</b></i></sup></a> <a href="#cite_ref-DVDcom_13-3"><sup><i><b>d</b></i></sup></a> <a href="#cite_ref-DVDcom_13-4"><sup><i><b>e</b></i></sup></a></span> <span class="reference-text"><i>Star Wars: Episode III Revenge of the Sith</i> DVD commentary featuring George Lucas, Rick McCallum, Rob Coleman, John Knoll and Roger Guyett, [2005]</span></li>

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this is actually the right way to do it imho – Joran Beasley Dec 6 '12 at 5:33
    
parsing the source is a better idea, certainly, and I'd use BeautifulSoup and/or lxml to do this. there are also specific mediawiki parsers available which might be the best choice. – simon Dec 6 '12 at 8:58

Do they always follow that pattern where there are four extra letters with spaces between in front of the title? If so, you could do this:

s = "a b c d Star Wars Episode III: Revenge of the Sith (DVD). 20th Century Fox. 2005."
if all([len(x) == 1 and x.isalpha() for x in s.split()[0:4]]):
    print s[8:]
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