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I have

k= (('answer ', ' Answer the call for a channel(answer )'), ('att_xfer ', ' Attended Transfer(att_xfer )'), ('bind_digit_action ', ' Bind a key sequence or regex to an action.(bind_digit_action )'))

I want to strip all extra spaces. How can I do that

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3  
Looks like the problem is further up... –  Ignacio Vazquez-Abrams Jan 11 '13 at 12:38
    
Do you also want to remove the whitespaces inside the brackets? –  Volatility Jan 11 '13 at 12:41
    
Yeah, want to remove the whitespaces inside the brackets too –  arjun Jan 11 '13 at 12:43
    
Please define what makes a "space" an "extra space" :) –  mgilson Jan 11 '13 at 13:10
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3 Answers

If you mean "extra spaces" the spaces in the beginning and end of each string:

k = tuple(tuple(b.strip() for b in a) for a in k)

If you want to remove some other "extra spaces" within the string (such as (answer ) => (answer)), you would have to define more rules.

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if you want to remove all whitespace:

tuple(tuple("".join(i.split()) for i in a) for a in k)

out:

(('answer', 'Answerthecallforachannel(answer)'),
 ('att_xfer', 'AttendedTransfer(att_xfer)'),
 ('bind_digit_action',
  'Bindakeysequenceorregextoanaction.(bind_digit_action)'))

or if you don't need tuples as a result:

from itertools import chain
["".join(i.split()) for i in chain.from_iterable(k)]

out:

['answer',
 'Answerthecallforachannel(answer)',
 'att_xfer',
 'AttendedTransfer(att_xfer)',
 'bind_digit_action',
 'Bindakeysequenceorregextoanaction.(bind_digit_action)']
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Thank You so much this is exactly what I wanted –  arjun Jan 11 '13 at 12:48
1  
+1, for being psychic –  Abhijit Jan 11 '13 at 12:53
    
I would guess that i.translate(None,string.whitespace) might be slightly faster than "".join(i.split) -- Though I haven't done any benchmarking to prove it :) –  mgilson Jan 11 '13 at 13:12
    
Also, chain.from_iterable(k) is probably a little nicer than chain(*k). Both will work (even if a generator expression is passed), but the former won't resolve the generator into a tuple first. –  mgilson Jan 11 '13 at 13:14
    
@mgilson -- Thank you for the comments. Replaced chain(*k) with chain.from_iterable(k). Also, it seems that "".join(i.split) is actually about 10-20% faster. :) –  root Jan 11 '13 at 13:25
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Another way would be this:

tuple(map(lambda x:tuple(map(lambda y:y.strip(),x)),k))
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