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import re
str2='hello: acb cross'
reg = re.compile('hello: (a*) cross')
m = reg.search(str2)
print m
if m:
   nat= m.group(0)
   print(nat)

In the above snippet i was expecting output to be 'hello: acb cross' and if I do group(1) it should have been 'acb'. But I did not get any. print m returns None. Could anyone please let me know the reason it does not work.

However if I try something like this, it works:

import re
str1 = "carter notes: dependent on stems"
r = re.compile('carter notes:(.*)stems')
m = r.search(str1)
if m:
   lx = m.group(1)
   #print(m.group(0))
   print(lx)
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2 Answers 2

up vote 0 down vote accepted

Try this:

str2='hello: acb cross'
reg = re.compile('hello: (a.*?) cross')
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thanks ATOzTOA. It worked. I tried reg = re.compile('hello: (a.*) cross') and it works too.. no need of '?'. –  Saurabh Ghorpade Jan 21 '13 at 3:06
    
? makes the regex less 'greedy', the search matches least number of characters as opposed to maximum number of characters when '?' is not used. –  ATOzTOA Jan 21 '13 at 3:46

a* means "any number of as".

.* means "any number of (any single character)".

You meant "an a, followed by any number of (any single character)"; that is a.*.

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3  
More likely than not, the intention is .*? –  Jon Clements Jan 21 '13 at 2:56
    
a* means 0 or more 'a's in that case isn't acb to match that? It has 1 'a' –  Saurabh Ghorpade Jan 21 '13 at 3:00
    
Yes, but after matching 1 a, the next thing in the data is cb, which does not match ` cross`. –  Karl Knechtel Jan 21 '13 at 3:01
    
a* only matches a, not anything following it... –  ATOzTOA Jan 21 '13 at 3:01
1  
And, for what it's worth, "any number of" above includes zero. Using the "one or more of) (.+), or per Jon Clements, (.+?) is often closer to what people have in mind. –  Matt Krause Jan 21 '13 at 3:04

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