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I would like to replace a string in form 'nnn0n' with the string in form 'nnn1n' where n is any digit. What the easiest way to do that? So, far I tried the following:

int(re.sub(r'^(\d+?)(0)(\d)$', r'\1???\3', '7001')) 

But what ever I insert in place of '???' either just 1 or \1 returns incorrect result.

Any ideas?

EDIT:

I have come up with an ugly version:

re.sub(r'a1a', '1', re.sub(r'^(\d+?)(0)(\d)$', r'\1a1a\3', '7001'))

Anything nicer?

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Is it always 3 digits, 1 digit to be replaced, 1 digit? –  Cat Plus Plus Jun 10 '11 at 11:24
    
No it can be a differnt number of digits in the begining –  Andrey Adamovich Jun 10 '11 at 11:27
    
And I want to replace second 0 from the end with 1 –  Andrey Adamovich Jun 10 '11 at 11:27
2  
Any reason to avoid numerical methods? Like adding 10? –  MattH Jun 10 '11 at 11:33
    
The only reason is that if 10 was aleady added, but you are right, it should be much simpler with numerical methods :). –  Andrey Adamovich Jun 10 '11 at 11:36

6 Answers 6

up vote 3 down vote accepted

You can do something like:

re.sub(r'^(\d{3})0(\d)$', r'\g<1>1\2', '7001')

Or if it's not always three numbers before the 0 you want to replace:

re.sub(r'^(\d+)0(\d)$', r'\g<1>1\2', '1234509')

Edit If you know that the number will always be of the same format, you can just use:

re.sub(r'0(?=\d$)', '1', '7001')
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+1, simpler than mine. –  Tomalak Jun 10 '11 at 11:31

Here's a numeric solution:

def addTenNumeric(n):
  """Add 10 to n if, as decimal, the 2nd least significant digit of n is 0"""
  if (n % 100) < 10:
    return n + 10
  return n

This ought to be a lot quicker than using regular expressions on string representations.

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Another one 'not brilliant' solution without regex - but i have to try it for myself atleast:

data = ['7001', '700001', '701', '71', '12345']
res = (int(x)+10 if len(x) > 2 and x[-2] == '0' else int(x) for x in a )
print list(res)
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>>> r = re.compile(r'(\d{3})0(\d)')
>>> r.sub('\g<1>1\g<2>', '88808')
88818
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You don't really need regexes.

replace = lambda x: '{0}1{1}'.format(x[:-2], x[-1]) if x[-2] == '0' else x
# or: x[:-2] + '1' + x[-1]
print replace('12345678901')
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Yeah, but regex is more fun ;) –  Qtax Jun 10 '11 at 11:37

You could use a named group to get around this

int(re.sub(r'^(?P<prefix>\d+?)0(\d)$', r'\g<prefix>1\2', '7001'))

But the most natural approach would probably be

int(re.sub(r'0(\d)$', r'1\1', '7001'))
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