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I am new to perl and writing my first few programs and using its pattern matching abilities. I am reading a file into array like this:

@list=<file>

Then indexing each line of array by $list[0..9] etc, and when I match it against a pattern, the $list[0] includes \n character, hence the match fails. So if ($string =~ $list[0]) fails though without \n character in pattern it would match.

How do I tell pattern matcher to not consider the \n character from pattern?

Thanks

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A typical regex would not consider the newline by default. For example, /foo/ or even /^foo$/. Show us your regular expression. Otherwise, the only advice we can give is (1) remove the newline from the string, or (2) add a newline to the regex. –  FMc Sep 21 '11 at 6:56

4 Answers 4

up vote 4 down vote accepted

You can shave the line ends from the array after reading:

@lines = …;
chomp @lines;

Now @lines contains the lines without line ends. See perldoc chomp for details.

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If you want to remove the \n from your lines you can:

chomp $list[0]

see perldoc -f chomp for the details.

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This is a good opportunity to get to know how Perl modules work.

You can for example use Perl6::Slurp which will both a) parse the file b) put the contents in an array c) remove the newline characters for you.

For example:

use Perl6::Slurp;
my @lines = slurp '<:utf8', 'filename', {chomp=>"\n"}
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This will match with the \n:

if ( $list[0] =~ "$string\n")

Or if you want the \n to be optional:

if ( $list[0] =~ /$string\n?/ )
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