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I want to check a string that contains the period, ".", at most once in python.

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Can you give some examples of what would be valid strings, and what would be invalid strings? The question is a little vague. For example, can there be characters between the periods? Are you only talking about consecutive characters, or all characters in the string? –  Drew Noakes Sep 27 '09 at 8:41
    
I want to check for integers and decimal. So valid strings in this case would be 2.34 or 2. Invalid strings would be 2.2.3. Actually, what i have at the moment is this: [if not re.search("[0-9\.]+$", item) or not re.search("^*\.?*$", item): return "invalid value"]. If you know a better way, please let me know. Thanks! –  teggy Sep 27 '09 at 8:54

6 Answers 6

up vote 7 down vote accepted
[^.]*\.?[^.]*$

And be sure to match, don't search

>>> dot = re.compile("[^.]*\.[^.]*$")
>>> dot.match("fooooooooooooo.bar")
<_sre.SRE_Match object at 0xb7651838>
>>> dot.match("fooooooooooooo.bar.sad") is None
True
>>>

Edit:

If you consider only integers and decimals, it's even easier:

def valid(s):
    return re.match('[0-9]+(\.[0-9]*)?$', s) is not None

assert valid("42")
assert valid("13.37")
assert valid("1.")
assert not valid("1.2.3.4")
assert not valid("abcd")
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1  
Should you have a ^ at the start of the expression, or is that implied because you're matching? –  Drew Noakes Sep 27 '09 at 9:05
    
it's implied, correct ;) –  NicDumZ Sep 27 '09 at 9:07
    
Explicit is better than implicit, so there should be a ^ at the start of the expression. –  Bengt Apr 1 '13 at 18:00

No regexp is needed, see str.count():

str.count(sub[, start[, end]])

Return the number of non-overlapping occurrences of substring sub in the range [start, end]. Optional arguments start and end are interpreted as in slice notation.

>>> "A.B.C.D".count(".")
3
>>> "A/B.C/D".count(".")
1
>>> "A/B.C/D".count(".") == 1
True
>>>
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You can use:

re.search('^[^.]*\.?[^.]*$', 'this.is') != None

>>> re.search('^[^.]*\.?[^.]*$', 'thisis') != None
True
>>> re.search('^[^.]*\.?[^.]*$', 'this.is') != None
True
>>> re.search('^[^.]*\.?[^.]*$', 'this..is') != None
False

(Matches period zero or one times.)

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While period is special char it must be escaped. So "\.+" should work.

EDIT:

Use '?' instead of '+' to match one or zero repetitions. Have a look at: re — Regular expression operations

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1  
That will match the period 1 or more times. I think the question wants 0 or 1 times. –  Drew Noakes Sep 27 '09 at 8:40
    
You are right. In regexp plus means one or more. I should use question mark instead of plus. –  Michał Niklas Sep 27 '09 at 8:45

If the period should exist only once in the entire string, then use the ? operator:

^[^.]*\.?[^.]*$

Breaking this down:

  1. ^ matches the beginning of the string
  2. [^.] matches zero or more characters that are not periods
  3. \.? matches the period character (must be escaped with \ as it's a reserved char) exactly 0 or 1 times
  4. [^.]* is the same pattern used in 2 above
  5. $ matches the end of the string

As an aside, personally I wouldn't use a regular expression for this (unless I was checking other aspects of the string for validity too). I would just use the count function.

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Unless you ensure you match the whole string, this will match ".." (regex matches first period, and then finishes successfully without considering the second period). –  Richard Sep 27 '09 at 8:54
    
True enough. Answer updated. –  Drew Noakes Sep 27 '09 at 8:57
    
This will not cover the case when a string contains two periods with other letters between them. –  davidi Sep 27 '09 at 8:57
    
@davidi - agreed, I've updated the answer and breakdown of the expression –  Drew Noakes Sep 27 '09 at 9:05
    
Why don't we have to escape the periods after the inversion: [^.]*, but we have to escape it otherwise: \.?? –  brimborium Feb 5 '14 at 11:41

Why do you need to check? If you have a number in a string, I now guess you will want to handle it as a number soon. Perhaps you can do this without Looking Before You Leap:

try:
  value = float(input_str)
except ValueError:
  ...
else:
  ...
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