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I have a text file that contains a bunch of sentences. The sentences contain white space (spaces, tabs, new lines) to separate out words consisting of letter and/or digits. I want to find the word "123" or "-123" and insert a dot (.) before the digits begin. So all occurrences of "123" and "-123" will be converted to ".123" and "-.123".

I was trying this with the following:

$line =~ s/(\s+-*123\s+)/getNewWord($1)/ge

Where $line contains a line read from the file and the function getNewWord word will put the dot(.) at appropriate place in the matched word.

But it's not working for cases where there are two consecutive "123" like " 123 123 ". As the first "123" is replaced by a " .123 " the space following the word has already been matched and the second "123" is not matched since the regex engine can't match the preceding space with that word.

Can anyone help me with this? Thanks!

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I don't see what is 'overlapping' in this question? –  szabgab Nov 9 '12 at 7:56
    
Probably this is a simpler solution s/(-?)\b(\d+)\b/$1.$2/g –  szabgab Nov 9 '12 at 9:18

5 Answers 5

up vote 5 down vote accepted

I agree with MRAB (and have +1'd his/her answer), but there's no real need for the getNewWord function. I'd change the entire statement to something like one of these:

$line =~ s/((?:^|\s)-?)(123)(?=\s|$)/$1.$2/g;

$line =~ s/(?:^|(?<=\s))(-?)(123)(?=\s|$)/$1.$2/g;

$line =~ s/(?:^|(?<=\s)|(?<=\s-))(?=123(?:\s|$))/./g;
share|improve this answer
    
ruakh, thanks for the nice answer. I actually made a small mistake in the question. I want "-.123" for the input "-123", not ".-123"! Your third answer seems to do the job except this little thing. Thanks! –  Golam Kawsar Jan 17 '12 at 21:24
1  
@ruakh Yes, it is equivalently symmetric from both our points of view. =) However, my point of view is the correct one. Since you require whitespace around your core match, ^123 (beginning) and 123$ (end) will not match, which may be a problem. –  TLP Jan 18 '12 at 14:54
1  
@GolamKawsar: To clarify: none of my versions matches "123" at the beginning of the line. This was intentional; your original regex had that property, and I thought I was supposed to preserve it. The question is not about what my answer does, but about what you want it do. –  ruakh Jan 18 '12 at 16:05
1  
@GolamKawsar: Thanks for clarifying; I've updated my answer accordingly. –  ruakh Jan 18 '12 at 16:19
1  
@TLP: It's not a question of "logic", it's a question of premises. There was a mismatch between the behavior described in the question-text and the behavior of the source-code in the question. Your premise was that the text was normative, the source-code informative; my premise was the the source-code was normative (aside from the specific bug identified by the OP) and that the text was informative. Given these contrary premises, we both logically arrived at opposite conclusions. There's no need to be a jerk about it. ;-) –  ruakh Jan 18 '12 at 16:59

It might be slightly faster (no explicit capture) and it allows a file without leading/trailing whitespace:

$ echo '123 -123 -123  123' | perl -pe's/(?:^|\s+)\K(?=-?123\b)/./g'
.123 .-123 .-123  .123

To put . after -:

$ echo '123 -123 -123  123' | perl -pe's/(?:^|\s+)-*\K(?=123\b)/./g'
.123 -.123 -.123  .123
share|improve this answer
    
Note: \K requires Perl 5.10 or newer. –  ikegami Jan 17 '12 at 20:45
    
Note that word boundary assertion \b will match more than transition to whitespace, e.g. 123?, 123-123 etc. –  TLP Jan 18 '12 at 12:47
    
+1 for being the only one besides me to consider beginning of line. –  TLP Jan 18 '12 at 13:36
    
@TLP: \b is by design to avoid matching 1234. To insert . only leading whitespace matters. –  J.F. Sebastian Jan 18 '12 at 21:13

Try using a positive lookahead like this: (\s+-*123)(?=\s).

share|improve this answer
    
Beginning of line error. Will not match 123 foo bar. –  TLP Jan 18 '12 at 13:10
    
Neither will the original regex! –  MRAB Jan 18 '12 at 18:01
1  
Which is why it would be a good idea to fix it. –  TLP Jan 18 '12 at 20:37

This reminded me of this question: Search html file for random string using regex, where I found (was shown) a good use for negative lookaround assertions, i.e. matching optional delimiters and avoiding partial matches.

Matching -?123 is simple, the problems are

  1. Not matching partial strings
  2. Avoiding start/end of line mismatches
  3. Avoid moving the \G anchor
  4. Doing a lookbehind assertion of optional dash -?

I did not manage to solve #4, as variable length lookbehind assertions are not supported, so the fix is using a capture group.

Do note that some of the other answers to this question do not address these problems.

Explanation:

Negative lookbehind assertion for non-whitespace matches both whitespace and beginning of string, and assures we do not match partial strings. Then follows an optional dash in a capture group. The end of the match is a nested lookahead, where we must match 123 followed by anything that is not non-whitespace.

Code:

use strict;
use warnings;

while(<DATA>) {
    s/(?<!\S)(-?)(?=123(?!\S))/$1./g;
    print;
}

__DATA__
r 123 z123 "123" -1233 d123 123-123
123 -123 -123 123 123

Output:

r .123 z123 "123" -1233 d123 123-123
.123 -.123 -.123 .123 .123
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TLP, thanks for taking time to answer the question in great detail! –  Golam Kawsar Jan 18 '12 at 14:32
1  
@GolamKawsar An interesting problem to solve is its own reward. –  TLP Jan 18 '12 at 14:55

Or simply this? This does not bother about the whitespaces, and works on perl 5.8.

echo '123 -123 -123  123' | perl -pe's/(-)?(123)/$1.$2/g'
share|improve this answer
    
It matches too much. It will also match 321123. –  TLP Jan 18 '12 at 13:08

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