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I am trying to replace a hex code in my stylesheets to a variable - I am trying to do:

grep -rl '#e5f6fc' mydirectory | xargs sed -i 's/#e5f6fc/$highlight-blue/g'

I am assuming that the "#", "$" and "-" are doing something to cause this error. I tried to research how to type expressions with grep but I cant find anything to help me out. Any help would be greatly appreciated. The error I get is:

unterminated substitute in regular expression

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1 Answer 1

You have a missing single quote in grep command, it should be:

grep -irl '#e5f6fc' mydirectory | xargs sed -i.bak 's/#e5f6fc/$highlight-blue/Ig'

PS: I made both grep and sed ignore case

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My apologizes I may have deleted the quote when I was formatting it in stack overflow. I entered this: grep -irl '#e5f6fc' mydirectory | xargs sed -i 's/#e5f6fc/$highlight-blue/g' and grep -rl '#e5f6fc' mydirectory | xargs sed -i 's/#e5f6fc/$highlight-blue/g' and I still get 'unterminated substitute in regular expression' –  Jamie Jul 26 '13 at 19:28
    
@Jamie: What is your sed version? As that edited command of yours is working fine for me. –  anubhava Jul 26 '13 at 19:31
    
Can you try: grep -irl '#e5f6fc' mydirectory | xargs sed -i.bak 's/\#e5f6fc/\$highlight-blue/g' –  anubhava Jul 26 '13 at 19:36
    
I tried using the backslashes - but i will try again with the next commands you added. –  Jamie Jul 26 '13 at 19:47
1  
@adbar: Newer sed works with out an extension with -i but older sed versions needed an argument with -i. –  anubhava Jul 27 '13 at 6:22

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