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I wish to replace all the backslashes (which appear on the same line with an include directive) with slashes.

Here's what I have until now..

echo '#include "..\etc\filename\yes"' | sed 's&\(#include.*\)\\&\1\/&g'

This works as I expect, but the problem is that it replaces only one \ at a time... If I want to replace all three in the above text, I have to run the sed command 3 times... The g flag at the end should make the replacements globally, no?

I'm using sed 4.2.1 on Ubuntu 11.10...

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The g is global but your .* is greedy! –  Ray Toal Oct 22 '11 at 6:01
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2 Answers 2

up vote 6 down vote accepted

The problem is the way you're matching. The .* is greedy, so it matches the last backslash first and then thinks it's done. Try this:

... | sed '/^#include/s&\\&/&g'

That runs the substitutions only on lines matching the first pattern.

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thank you :) this works great –  Adi Oct 22 '11 at 6:04
    
+1 Doesn't get any better. –  Ray Toal Oct 22 '11 at 6:06
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You want a compound command - the first pattern matches lines that start with #include, the second does your slash translation.

sed '/^#include/ s&\\&/&g'
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