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What is the regular expression to get the position of the last separator character before a certain pattern?

For example, I have a string as follows

some value;some other value;some special XYZ value;some more special XYZ value

Here, the separator character is semicolon (";") and the pattern I am looking for is any string that contains "XYZ".

The correct answer is this case is position 28, which is the last occurence of the separator character (";") before an element containing the match pattern ("XYZ").

What would the regular expression look like?

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3 Answers 3

up vote 1 down vote accepted
;(?=[^;]*XYZ)

matches a semicolon that's followed by XYZ within the same segment of the string.

Use it once to find the first occurrence. If you use it repeatedly, you'll find the following occurrences, too.

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Use this regular expression

^.*(;).*XYZ.*$

.*(;).*XYZ.* would match greedily i.e. it would match till the last occurance of ; having XYZ followed by it

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That expression doesn't get the first XYZ but the second one. –  Howard Nov 3 '12 at 8:09
    
@Howard thts what the op asked for i.e the last occurance of ; which follows XYZ –  Anirudha Nov 3 '12 at 8:09
1  
Not really. OP says the semicolon in position 28 should match. The question is worded unclearly, though. –  Tim Pietzcker Nov 3 '12 at 8:10
    
@TimPietzcker: Correct, I'm looking for the last occurence of the separator before (ie preceding) the match pattern (XYZ). Which is position 28 in the example given. –  ObiWanKenobi Nov 3 '12 at 8:12

You can do it in two steps:

  • extract the largest substring containing the first occurrence of XYZ preceded by a separator
  • in that substring find the position of the last separator

i.e.,

s = "some value;some other value;some special XYZ value;some more special XYZ value"
s1 = re.findall("^.*?;.*?XYZ",s)[0]
len(re.findall("(.*;)",s1)[0]) --> 28
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