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I have two transform cases:

s = "foo bar" #-> "foo bar &"
s = "foo ! bar" # -> "foo & ! bar" -> notice not '&!'

I did it like this:

t = s.split("!", 1)
t[0] = t[0] + "  &"
" !".join(t)

What's a more pythonic way to do the same?

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If there are multiple exclamation marks, should it put an ampersand with all of them? –  Josiah May 19 '12 at 23:47
    
@Josiah Just first - split is limited to at most 1 split –  Anycorn May 19 '12 at 23:49
    
Could you explain what do you mean by "transform cases"? –  Levon May 19 '12 at 23:50
    
@Levon each line/string is transformed differently, depending if ! is present –  Anycorn May 19 '12 at 23:50
2  
@Anycorn: He is referring to the list. Yes, strings are not mutable. –  jdi May 19 '12 at 23:55

4 Answers 4

up vote 4 down vote accepted

str.partition is built for the purpose of operator parsing:

p = s.partition(' !')
print p[0]+' &'+p[1]+p[2]

It is adapted to prefix and infix operator when parsing from left to right. The fact it always returns a 3-tuple allows to use it even when your operator is not found and apply an action on your result as shown above.

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Not sure if this is any more pythonic, but the example above can be done as a one-liner.

>>> s = "foo ! bar"
>>> s = s.replace(' ! ', ' & ! ') if '!' in s else s + ' &'
>>> s
'foo & ! bar'
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1  
I think I like the original more than this. –  jamylak May 19 '12 at 23:59
    
more or less what I was thinking. –  Junuxx May 20 '12 at 0:00
1  
That seems more perlic (I think the correct version is "gibberish") than pythonic to me ;) –  Voo May 20 '12 at 1:06
1  
I think this could be made quite a bit more readable just by reversing the condition: s = s.replace(' ! ', ' & ! ', 1) if '!' in s else s + ' &'. –  lvc May 20 '12 at 1:36
    
Thanks for the comment @lvc, I agree with you and have made the changes. –  garnertb May 20 '12 at 1:42

Doing multiple sentences in one line:

>>> s = ["foo bar", "foo ! bar"]
>>> [x + ' &' if not '!' in x else x.replace('!','& !', 1) for x in s]
['foo bar &', 'foo & ! bar']
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>>> import re
>>> re.sub(r'( !|$)', r' &\1', 'foo bar', 1)
'foo bar &'
>>> re.sub(r'( !|$)', r' &\1', 'foo ! bar', 1)
'foo & ! bar'
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