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I want to use awk in my bashscript, and this line clearly doesn't work:

line="foo bar"
echo $line | awk '{print $1}'

How do I escape $1, so it doesn't get replaced with the first argument of the script?

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8  
It won't be replaced. It will be the first word in "$line" –  user000001 Aug 20 '13 at 20:35
1  
The very purpose of those single quotes around the awk "program" is to make sure that bash will not attempt to perform any parameter expantion, so your script will work as expected. –  Costi Ciudatu Aug 20 '13 at 21:13
1  
@CostiCiudatu the word is expansion –  Nirk Aug 20 '13 at 21:19
    
@Nirk: You're right ! And I'm embarrassed (I hope I spelled that right) :) –  Costi Ciudatu Aug 20 '13 at 21:22

2 Answers 2

up vote 5 down vote accepted

Your script (with single quotes around the awk script) will work as expected:

$ cat script-single
#!/bin/bash
line="foo bar"
echo $line | awk '{print $1}'

$ ./script-single test
foo

The following, however, will break (the script will output an empty line):

$ cat script-double
#!/bin/bash
line="foo bar"
echo $line | awk "{print $1}"

$ ./script-double test
​

Because the double quotes expand the $1 variable, the awk command will get the script {print test}, which prints the contents of the awk variable test (which is empty). Here's a script that shows that:

$ cat script-var
#!/bin/bash
line="foo bar"
echo $line | awk -v test=baz "{print $1}"

$ ./script-var test
baz

Related reading: Bash Reference Manual - Quoting and Shell Expansions

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1  
+1 for figuring the apprehension in the question. –  devnull Aug 20 '13 at 21:12

As currently written, the $1 will not be replaced (since it's within single-quoted string, bash will not parse it)

If you write awk "{print $1}", bash will expand the $1 within the double-quoted string

Note that the variable expansion rules depend on the outermost level of quoting, so the $1 in "awk '{print $1}'" will be expanded

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