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I'm looking at a piece of perl regex code that makes a substitution like the following:

$testrange =~ s/\./\\\./g;

If $testrange is initially equal to say 123.456.789. then what should the result of the above substitution be?

What should the result be if say $testrange was initially equal to 123.456.789.123?

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Why don't you try it out? –  w.k Feb 20 '13 at 16:30
    
123\.456\.789\.123 is there any problem?? –  Krishnachandra Sharma Feb 20 '13 at 16:36
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5 Answers

up vote 1 down vote accepted

A substitution consists of two parts: A pattern, and a substitution string. The pattern follows the quoting rules for regexes; the substitution string works like a double quoted string.

In a regex, the . is a metacharacter. It is escaped to match a literal dot.

In a string, the backslash is a escape character and has to be escaped to produce a literal backslash. If a character is preceded by a backslash, but isn't a valid escape sequence, then the literal character will be matched. So the string "\\\." is equivalent to "\\." and produces the string '\.'.

The effect of the substitution is to precede every period in the given string with a backslash.

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Thanks. The 3 backslashes was what confused me. I see that \\. would have worked just as well. –  J C Feb 20 '13 at 16:45
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Quick test:

$ perl -plwe 's/\./\\\./g'
123.456.789.123
123\.456\.789\.123

It matches a literal period ., which is escaped to avoid it being interpreted as a wild card character. Then replaces that period with a backslash, also escaped for the same reason, followed by a period, also needlessly escaped (because periods are not meta characters in the RHS of a substitution regex).

Basically, it is an attempt to escape periods by placing a backslash in front of them. Perl has a built-in to handle meta characters, though: quotemeta:

$testrange = quotemeta($testrange);
# testrange is now 123\.456\.789\.123

Note that quotemeta escapes all meta characters, not just periods.

If the intent is to use this string in a regex, e.g.

if (/$testrange/) 

...then it is possibly a better idea to escape it directly in the regex:

if (/\Q$testrange\E/)

The \Q ... \E escape works in a similar way to quotemeta, in that meta characters inside it are interpreted literally (though variables are interpolated as usual).

Also note that this regex can be written differently and less destructively:

s/(?=\.)/\\/g

Using a lookahead assertion we can simply insert backslash without removing and replacing period. In the more recent perl versions (I forget the exact number, v5.14?) you can use \K (keep) escape for the rather convenient:

s/\.\K/\\/g
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\. in the regex part matches the dot itself.

\\ in the replacement part means \ and \. is the same as ., i.e. a dot. So, the expression is better written as

s/\./\\./g

/g makes the matching global, i.e. it matches (and replaces) as many times as it can.

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s - substitute
\. - match literal . (. by itself is a special regex character meaning "any character")
\\\. - a literal \ followed by a literal .. Note that this could also be written \\. since . is not special in replace patterns.
g - replace global (replace all instances; the default is to replace the first instance).

Net effect: it replaces all . in the input with \..

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It is not a direct answer to your question, but you can exchange the delimiters in the regex with other chars and sometimes the regex is easier to read.

In this case i would use the pipe symbol | as a delmiter. The regex would look like this now:

s|\.|\\\.|g;
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