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I suspect this is a regular expression problem - and a very basic one, so apologies.

In Python, if I have a string like

xdtwkeltjwlkejt7wthwk89lk

how can I get the index of the first digit in the string?

Thanks!

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1  
There are no integers in the string; there are only substrings that represent integers. –  Karl Knechtel Dec 22 '10 at 15:52
1  
More specifically: It contains numerals. (Although since he is looking for the first position, "digit" works as well). –  Lennart Regebro Dec 22 '10 at 18:30
    
Numerals, sorry :) –  AP257 Dec 30 '10 at 21:35
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10 Answers

up vote 21 down vote accepted

Use re.search():

>>> import re
>>> s1 = "thishasadigit4here"
>>> m = re.search("\d", s1)
>>> if m:
...     print "Digit found at position %d" % m.start()
... else:
...     print "No digit in that string"
... 
Digit found at position 13
>>> 
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1  
+1 for using this thishasadigit4here as an example string, not just something like akjasdlkfjdalm... :) –  khachik Dec 22 '10 at 18:15
2  
:) My next example will include 'khachik' in a blatant attempt to score more upvotes... –  bgporter Dec 22 '10 at 18:25
1  
In case anyone is interested in performance, I did some quit timeit work on a few different approaches - regular expressions are the fastest: gist.github.com/1683249 –  umbrae Jan 26 '12 at 15:21
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Seems like a good job for a parser:

>>> from simpleparse.parser import Parser
>>> s = 'xdtwkeltjwlkejt7wthwk89lk'
>>> grammar = """
... integer := [0-9]+
... <alpha> := -integer+
... all     := (integer/alpha)+
... """
>>> parser = Parser(grammar, 'all')
>>> parser.parse(s)
(1, [('integer', 15, 16, None), ('integer', 21, 23, None)], 25)
>>> [ int(s[x[1]:x[2]]) for x in parser.parse(s)[1] ]
[7, 89]
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6  
Surely overkill for this, but a nice recipe to be featured here! –  jsbueno Dec 22 '10 at 16:05
2  
@jsbueno: thanks, indeed an overkill (at least until you have to extend the pattern matching, sometimes I have a hard time understanding a regex I wrote two months before) :-) –  Paulo Scardine Dec 22 '10 at 16:18
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import re
mob = re.search('\d', 'xdtwkeltjwlkejt7wthwk89lk')
if mob:
    print mob.start()
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4  
OK, I give up. Why mob? –  Robert Rossney Dec 23 '10 at 19:40
    
Well, if the search fails, None is returned. So calling start() directly on the re.search() output is dangerous. –  Christian Dec 24 '10 at 11:55
    
i believe Robert was asking you why you named the variable mob? I'm curious aswell. –  st0le Dec 25 '10 at 17:50
    
Oh, I see! I chose the name because the returned object, if any, is a MatchObject and variable lengths >= 3 letters are good style. –  Christian Dec 27 '10 at 19:27
2  
Variable naming suggestion here: variables names that explain clearly what the variable represent usually are better than acronyms (which make sense when you're writing code, but it does not make sense to other or even to yourself months later). I'd prefer match_obj over mob –  Alan Evangelista Dec 12 '12 at 7:46
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Here is another regex-less way, more in a functional style. This one finds the position of the first occurrence of each digit that exists in the string, then chooses the lowest. A regex is probably going to be more efficient, especially for longer strings (this makes at least 10 full passes through the string and up to 20).

haystack = "xdtwkeltjwlkejt7wthwk89lk"
digits   = "012345689"
found    = [haystack.index(dig) for dig in digits if dig in haystack]
firstdig = min(found) if found else None
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As everybody has answered using regex, here is another way without regex and which may suffice in many cases

s='xdtwkeltjwlkejt7wthwk89lk'

for i, c in enumerate(s):
    if c.isdigit():
        print i
        break

output:

15

and to get all digits and their positions, a simple expression will do, Regex is overkill here

>>> [(i,c) for i,c in enumerate('xdtwkeltjwlkejt7wthwk89lk') if c.isdigit()]
[(15, '7'), (21, '8'), (22, '9')]

in Python 2.7+ you can create a dict of digit and its position

>>> {c:i for i,c in enumerate('xdtwkeltjwlkejt7wthwk89lk') if c.isdigit()}
{'9': 22, '8': 21, '7': 15}
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I'm sure there are multiple solutions, but using regular expressions you can do this:

>>> import re
>>> match = re.search("\d", "xdtwkeltjwlkejt7wthwk89lk")
>>> match.start(0)
15
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1  
Just be careful, if that fails to match it will throw a NoneType exception. –  marcog Dec 22 '10 at 15:45
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As the other solutions say, to find the index of the first digit in the string we can use regular expressions:

>>> s = 'xdtwkeltjwlkejt7wthwk89lk'
>>> match = re.search(r'\d', s)
>>> print match.start() if match else 'No digits found'
15
>>> s[15] # To show correctness
'7'

While simple, a regular expression match is going to be overkill for super-long strings. A more efficient way is to iterate through the string like this:

>>> for i, c in enumerate(s):
...     if c.isdigit():
...         print i
...         break
... 
15

In case we wanted to extend the question to finding the first integer (not digit) and what it was:

>>> s = 'xdtwkeltjwlkejt711wthwk89lk'
>>> for i, c in enumerate(s):
...     if c.isdigit():
...         start = i
...         while i < len(s) and s[i].isdigit():
...             i += 1
...         print 'Integer %d found at position %d' % (int(s[start:i]), start)
...         break
... 
Integer 711 found at position 15
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you can find the position in the match object. See my solution. –  Massimiliano Torromeo Dec 22 '10 at 15:37
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you can use regular expression

import re
y = "xdtwkeltjwlkejt7wthwk89lk"

s = re.search("\d",y).start()
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4  
Don't use string as variablename, it conflicts with module named the same. Althoug not used much, it's still bad practice. –  plundra Dec 22 '10 at 15:44
    
True. Thanks heaps :) –  cherhan Dec 23 '10 at 6:47
    
To whom that gave a downvote to my answer, what is the problem, care to explain? –  cherhan May 21 '11 at 14:07
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Thought I'd toss my method on the pile. I'll do just about anything to avoid regex.

sequence = 'xdtwkeltjwlkejt7wthwk89lk'
i = [x.isdigit() for x in sequence].index(True)
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One of my colleagues had a really awesome answer to this:

import re
result = "  Total files:...................     90"
match = re.match(r".*[^\d](\d+)$", result)
if match:
    print match.group(1)
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Please, consider adding a short explanation of the code in your answer. –  easwee Jan 21 at 16:14
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