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Let's say I have string "The quick brown fox jumps over the lazy dog" can I change this to "The slow brown fox jumps over the energetic dog" with one regular expression? Currently, I use two sets of regular expressions for this situation. (In this case, I use s/quick/slow/ followed by s/lazy/energetic/.)

thanks.

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7 Answers 7

up vote 26 down vote accepted

The second part of a substitution is a double quoted string, so any normal interpolation can occur. This means you can use the value of the capture to index into a hash:

#!/usr/bin/perl

use strict;
use warnings;


my %replace = (
    quick => "slow",
    lazy  => "energetic",
);

my $regex = join "|", keys %replace;
$regex = qr/$regex/;

my $s = "The quick brown fox jumps over the lazy dog";

$s =~ s/($regex)/$replace{$1}/g;

print "$s\n";
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You forgot e modifier. –  Hynek -Pichi- Vychodil Apr 19 '09 at 19:27
    
What does that do? evaluate the replacement? Is there something like this in other programming languages? –  allyourcode Apr 19 '09 at 19:29
3  
It doesn't need /e becuase it is a simple interpolation, try the code before making claims. –  Chas. Owens Apr 19 '09 at 19:35
    
Yes, you are right. –  Hynek -Pichi- Vychodil Apr 19 '09 at 19:42
3  
this approach will have problems if you'll ever want to have 2 replace strings that one of them is prefix of another (for example: "dep"=>1, "depesz" => 2). to avoid the problem you should sort the keys of %replace by descreasing length of key. –  user80168 Apr 19 '09 at 20:26

You can do this in vim using a Dictionary:

:%s/quick\|lazy/\={'quick':'slow','lazy':'energetic'}[submatch(0)]/g

This will change the following text:

The quick brown fox ran quickly next to the lazy brook.

into:

The slow brown fox ran slowly next to the energetic brook.

To see how this works, see :help sub-replace-expression and :help Dictionary. In short,

  • \\= lets you substitute in the result of a vim expression.
  • {'quick':'slow', 'lazy':'energetic'} is a vim dictionary (like a hash in perl or ruby, or an object in javascript) that uses [] for lookups.
  • submatch(0) is the matched string

This can come in handy when refactoring code - say you want to exchange the variable names for foo, bar, and baz changing

  • foobar
  • barbaz
  • bazfoo

Using a sequence of %s/// commands would be tricky, unless you used temproary variable names - but you'd have to make sure those weren't hitting anything else. Instead, you can use a Dictionary to do it in one pass:

:%s/\<\%(foo\|bar\|baz\)\>/\={'foo':'bar','bar':'baz','baz':'foo'}[submatch(0)]/g

Which changes this code

int foo = 0;
float bar = pow(2.0, (float) foo);
char baz[256] = {};

sprintf(baz,"2^%d = %f\n", foo, bar);

into:

int bar = 0;
float baz = pow(2.0, (float) bar);
char foo[256] = {};

sprintf(foo,"2^%d = %f\n", bar, baz);

If you find yourself doing this a lot, you may want to add the following to your ~/.vimrc:

" Refactor the given lines using a dictionary
" replacing all occurences of each key in the dictionary with its value
function! Refactor(dict) range
  execute a:firstline . ',' . a:lastline .  's/\C\<\%(' . join(keys(a:dict),'\|'). '\)\>/\='.string(a:dict).'[submatch(0)]/ge'
endfunction

command! -range=% -nargs=1 Refactor :<line1>,<line2>call Refactor(<args>)

This lets you use the :Refactor {'frog':'duck', 'duck':'frog'} command, and is slightly less repetitive than creating the regex for the dict manually.

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You can concatenate vim substitutions:

The quick brown fox ran quickly next to the lazy brook.

:s/quick/slow/|s/lazy/energetic/

The slow brown fox ran quickly next to the energetic brook.

The advantage here is that you have to type your substitutions just once

Rgds

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Not a single regular expression as requested by the question, but +1 for best solution to the vim portion of the problem, IMHO. Thanks! –  arr_sea Jul 17 '13 at 21:18

You can do the following.

:%s/quick\(.*\)lazy/slow\1energetic

The trick is to use the parens to match the text between the two words. You can then reference this text in the substitution string by using \1. You can also use \2 for the second matched paren expression and so on. This allows you to replace multiple words without disturbing the text inbetween.

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1  
What if there are many occurrences of quick and lazy that are interleaved? –  allyourcode Apr 19 '09 at 19:25
1  
@allyourcode, then it will replace the outermost pair. This is only slighty different than Tg's example which would replace the first occurance. –  JaredPar Apr 19 '09 at 19:53

In perl:

s/quick(.*)lazy/slow${1}energetic/;

In vim:

s/quick\(.*\)lazy/slow\1energetic/;
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Chas's answer is good, the only other thing I'd mention is that if you're doing word swaps you probably want to be matching on

\b(foo|bar|baz|qux)\b

to avoid matching substrings. If you doing a lot of word swapping, you might start to find regexps a bit limiting and want to do something like:

join '', map { exists $subst{$_} ? $subst{$_} : $_ } split /\b/, $string
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There's a neat way to do it in Ruby using gsub with a block:

s = "The quick brown fox jumps over the lazy dog"
subs = {'quick' => 'slow', 'lazy' => 'industrious'}
s.gsub(/quick|lazy/) { |match| subs[match] }
# => "The slow brown fox jumps over the industrious dog"
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