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Suppose there are two strings:

$1 off delicious ham.
$1 off delicious $5 ham.

In Python, can I have a regex that matches when there is only one $ in the string? I.e., I want the RE to match on the first phrase, but not on the second. I tried something like:

re.search(r"\$[0-9]+.*!(\$)","$1 off delicious $5 ham.")

..saying "Match where you see a $ followed by anything EXCEPT for another $." There was no match on the $$ example, but there was also no match on the $ example.

Thanks in advance!

Simple test method for checking:

def test(r):
  s = ("$1 off $5 delicious ham","$1 off any delicious ham")    
  for x in s:
    print x
    print re.search(r,x,re.I)
    print ""
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2  
why not use the .count() method of the strings? –  gnibbler Jul 2 '10 at 14:37
    
I'm shoe-horning an RE into a tool that doesn't let me add any additional logic. So I can't do "if count(str,"$") > 1: pass". I need the re to just not match on such a string. –  Chris Jul 2 '10 at 14:52
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5 Answers

up vote 6 down vote accepted
>>> import re
>>> onedollar = re.compile(r'^[^\$]*\$[^\$]*$')
>>> onedollar.match('$1 off delicious ham.')
<_sre.SRE_Match object at 0x7fe253c9c4a8>
>>> onedollar.match('$1 off delicious $5 ham.')
>>>

Breakdown of regexp:
^ Anchor at start of string
[^\$]* Zero or more characters that are not $
\$ Match a dollar sign
[^\$]* Zero or more characters that are not $
$ Anchor at end of string

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Bonus points for the show-n-tell. Do you have a couple minutes to describe to me what's going on, here? –  Chris Jul 2 '10 at 14:43
    
0 or more non dollars sign followed by one dollar followed by 0 or more non dollar sign –  Xavier Combelle Jul 2 '10 at 14:52
    
Very helpful indeed; thanks. –  Chris Jul 2 '10 at 14:56
1  
You don't need to escape the $ inside a character class. r'^[^$]*\$[^$]*$' works just as well. –  Tim Pietzcker Jul 2 '10 at 18:35
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>>> '$1 off delicious $5 ham.'.count('$')
2
>>> '$1 off delicious ham.'.count('$')
1
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I agree, a regular expression would be overkill here. –  Duncan Jul 2 '10 at 14:55
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You want to use the complement of a character class [^] to match any character other than $:

re.match(r"\$[0-9]+[^\$]*$","$1 off delicious $5 ham.")

The changes from your original are as follows:

  1. .* replaced with [^\$]*. The new term [^\$] means any character other than $
  2. $ appended to string. Forces the match to extend to the end of the string.
  3. re.search replaced with re.match. Matches the whole string, rather than any subset of it.
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Didn't pass! >>> test(r"\$[0-9]+[^\$]*$") $1 off $5 delicious ham <_sre.SRE_Match object at 0x00ED65D0> $1 off any delicious ham <_sre.SRE_Match object at 0x00ED65D0> –  Chris Jul 2 '10 at 14:56
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re.search("^[^$]*\$[^$]*$",test_string)
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^.*?\$[^$]*$

this should make the trick

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nice use of a non-greedy match –  a'r Jul 2 '10 at 14:42
    
Hmm.. Didn't pass the test, though, unless there are some special flags I need: <pre> >>> test(r"^.*?\$[^$]*$") $1 off $5 delicious ham <_sre.SRE_Match object at 0x00ED6288> $1 off any delicious ham <_sre.SRE_Match object at 0x00ED6288> </pre> –  Chris Jul 2 '10 at 14:51
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