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I am looking for a way to remove 'stray' carriage returns occurring at the beginning or end of a file. ie:

\r\n <-- remove this guy
some stuff to say \r\n
some more stuff to say \r\n
\r\n <-- remove this guy

How would you match \r\n followed by 'nothing' or preceded by 'nothing'?

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4 Answers 4

up vote 2 down vote accepted

Try this regular expression:

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Depending on the language either the following regex in multiline mode:


Or this regex:


The first one works in e.g. perl (where ^ and $ match beginning/end of line in single-line mode and beginning/end of string in multiline mode). The latter works in e.g. ruby.

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Here's a sed version that should print out the stripped file:

 sed -i .bak -e '/./,$!d' -e :a -e '/^\n*$/{$d;N;ba' -e '}' foo.txt

The -i tells it to perform the edit in-place and the .bak tells it to back up the original with a .bak extension first. If memory is a concern, you can use '' instead of .bak and no backup will be made. I don't recommend unless absolutely necessary, though.

The first command ('/./,$!d' should get rid of all leading blank lines), and the rest is to handle all trailing blank lines.

See this list of handy sed 1-liners for other interesting things you can chain together.

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\s is whitespace (space, \r, \n, tab)
+ is saying 1 or more
$ is saying at the end of the input
^ is saying at the start of the input
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He wants to remove only the \r\n – Thiyagaraj Sep 16 '09 at 14:52
In most implementations $ and ^ refer to the beginning/end of the line, not the whole string, unless you specifically enable multiline mode. – sepp2k Sep 16 '09 at 14:52
@Thiyagaraj: he said \r\n followed by 'nothing' or preceded by 'nothing' so I guessed he meant spaces. @sepp2k: correct – amitkaz Sep 16 '09 at 15:25

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