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I am trying to keep the return of a sed substitution in a variable.

D=domain.com
echo $D | sed 's/\./\\./g'

Correctly returns: domain\.com

D1=`echo $D | sed 's/\./\\./g'`
echo $D1

Returns: domain.com

What am I doing wrong?

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Seems to require double escaping. This works - D1=` echo $D | sed 's/\./\\\\./g'` Not sure why though –  arunkumar Aug 15 '11 at 0:36

2 Answers 2

up vote 6 down vote accepted
D2=`echo $D | sed 's/\./\\\\./g'`
echo $D2

Think of shells rescanning the line each time it is executed. Thus echo $D1, which has the escapes in it, have the escapes applied to the value as the line is parsed, before echo sees it. The solution is yet more escapes.

Getting the escapes correct on nested shell statements can make you live in interesting times.

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"Interesting times" indeed, bro. Thanks for the help. –  Roger Aug 15 '11 at 0:50

The backtick operator replaces the escaped backslash by a backslash. You need to escape twice:

D1=`echo $D | sed 's/\./\\\\./g'`

You may also escape the first backslash if you like.

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This is odd. But worked. Thank you, brother. –  Roger Aug 15 '11 at 0:40

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