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I'm having a little trouble with escaping in Applescript and shell scripts. Basically, a URL will be set as variableUrl, and this will be fed into a shell script:

do shell script "cd dir; cat file | grep -v '^http' | sed 's/^/" & variableUrl & "/' > urlsxy.txt"

This isn't working — I get nothing in my output file. The issue, I think, is that there are unescaped characters. Worse, I can't know ahead of time how the URL will look, and thus I can't set up any way to put backslashes in as escapes. When, instead of using variableUrl, I just insert dummy text, I have no problem. This, for example, works fine:

do shell script "cd dir; cat file | grep -v '^http' | sed 's/^/dummytext/' > urlsxy.txt"

Just now, I have also tried turning the url into a bash variable and doing ...

sed 's/^/"$BASHVAR\\/g

but this fails as well, for presumably the same reason. Can any body tell me if there is a workaround for this problem, or if there is a way of escaping an entire variable without knowing in advance what its content will be?

I'm very new at this, and as you can see am only familiar with the basics.

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2 Answers 2

up vote 2 down vote accepted

Assuming that you want to replace this symbol "^", then this should work:

sed "s/\^/`printf '%q' "${BASHVAR}"`/g"

Or, to insert the content of $BASHVAR at the beginning of each line:

sed "s/^/`printf '%q' "${BASHVAR}"`/g"

NOTE: The backticks (`) around the printf statement are important, since they tell the shell to execute and get the result of :

printf '%q' "${BASHVAR}"

EDIT: To consider the additional restriction (see comments to this answer) that a forward slash may appear in $BASHVAR, then an alternative solution is to use a character different that the forward slash as the separator for sed. Two examples:

sed "s@^@`printf '%q' "${BASHVAR}"`@g"
sed "s#^#`printf '%q' "${BASHVAR}"`#g"
share|improve this answer
    
No luck. I was actually trying to insert the $BASHVAR at the beginning of every line. I tried 'sed -i.bak "s/^/printf '%q' ${BASHVAR}/"' but all my results came out as: printf %q ${BASHVAR}/search.php printf %q ${BASHVAR}register.php?ref=notice_debate –  user2437842 Jun 21 '13 at 19:47
    
You are missing the backticks "`". –  cabad Jun 21 '13 at 20:05
    
Ok, nearly there. When I do your script exactly, I get: 'sed: 1: "s/^/studentr ...": bad flag in substitute command: '/'' . If I take the forward slashes out of the variable, the output works. So the forward slashes aren't being escaped, it seems. Any suggestions? –  user2437842 Jun 21 '13 at 20:39
1  
I have no idea how this works, but dude, you are my hero. This has been driving me crazy. If you want to post this as an answer, I'll give you the big tick. –  user2437842 Jun 21 '13 at 20:54
2  
You also have to quote the variable after %q to prevent word splitting. –  Lri Jun 21 '13 at 22:22

awk supports passing variables with -v:

v=\'\"\$'  '; awk -v v="$v" '!/^http/{print v$0}' file > urlsxy.txt

The first argument for gsub is a regex, but you can escape it or use another scripting language

$ echo a. | awk -v v=. '{gsub(v,"y")}1'
yy
$ echo a. | awk -v v=\\\\. '{gsub(v,"y")}1'
ay
$ echo a. | v=. ruby -pe '$_.gsub! ENV["v"], "y"'
ay

In this case you could also do something like this:

do shell script "while IFS= read -r l; do [[ $l = http* ]] || printf %s " & quoted form of variableUrl & "\"$l\"; done < /tmp/file"

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Thanks a ton for this. I just started learning a couple of weeks ago, and find myself doing all possible things in sed just because I understand it. With your examples I can really start branching out. –  user2437842 Jun 21 '13 at 22:56

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