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I want to remove all \ except if it is \n

some \'Text\'\nA new line

should become

some 'Text'\nA new line
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Couldn't you just remove all and add a newline at the end of the line? Might be easier. –  0xCAFEBABE Jun 12 '13 at 12:40

4 Answers 4

up vote 1 down vote accepted

Remember the character following the backslash if it is not n, replace:

sed -e 's/\\\([^n]\)/\1/g'

You did not specify what to do with backslashes at the end of a line. If you want to remove them, too, you have to add

-e 's/\\$//'
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sed "s/\\'/'/g"

some 'Text'\nA new line
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This can make the trick:

$ echo "some \'Text\'\nA new line" | sed 's/\\\([^n]\)/\1/g'
some 'Text'\nA new line

That is, it replaces \ as well as there is no n after it. The \([^n]\) catches the character after \ so that we can print it back. And that's what we do when making the subtitution: print \1, that refers to the character after \.

To avoid so many slashes, it can be put also as:

$ echo "some \'Text\'\nA new line" | sed 's:\\\([^n]\):\1:g'
some 'Text'\nA new line
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1  
We are synchronised, @Jaypal :) –  fedorqui Jun 12 '13 at 12:45
    
This deletes the character trailing the backslash if it is not an n. Related to my example the apostrophe around "Text" are missing –  tmanthey Jun 12 '13 at 12:59
    
Solved, @tmanthey, now I catch the character and print it back –  fedorqui Jun 12 '13 at 13:05

How about:

echo "some \'Text\'\nA new line" | sed 's,\\[^n],,g'

With perl

echo "some \'Text\'\nA new line" | perl -pe 's,\\(?!n),,g'
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In your sed line parentheses are missing: sed 's,\\\([^n]\),\1,g'. This is the same as this (accepted answer). –  captcha Jun 12 '13 at 19:03

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