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probably simple question for someone who knows, but I'm having a hard time retrieving some variable values from a file. My file is something like:

variable1 12
variable2 43
variable3 897

and I want to get the value of variable2, 43.

I tried some commands with sed but with no luck:

sed -n 's/variable2 //;s/variable3//' myFile
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4 Answers 4

up vote 3 down vote accepted

With only sed:

$ sed -n 's/^variable2 //p' file
43

Your problem is you are using -n to suppress the output of sed so you need the p flag so sed prints the lines where the substitution took place.

As this just pattern matching I would go with only grep for this:

$ cat file
variable1 12
variable2 43
variable3 897

$ grep -Po '(?<=^variable2 )\d+' file
43

Or even just awk:

$ awk '$1=="variable2"/{print $2}' file
43
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While I love grep -Po, I rarely recommend it because it's not very portable. +1 for your sed solution, though. –  ghoti Jan 10 '13 at 15:20
    
@ghoti I would say the very high majority Linux and OSX come with GNU sed, where is not supported out of curiosity? –  iiSeymour Jan 10 '13 at 15:24
    
GNU/Linux systems usually come with GNU sed, but OSX, FreeBSD, Solaris, HP/UX, etc all have their own. Well, OSX's sed is derived from FreeBSD's, and Solaris came with both a SysV and a BSD sed until version 11. But your sed solution is fine, and portable. It's grep's -P option that is not, in FreeBSD, or any of the others except OSX, which started supporting it in version 10.6. It certainly isn't universal. –  ghoti Jan 10 '13 at 23:00
    
And your awk solution fails if the file includes a variable20. When looking for a fixed string, best to test for a fixed string. awk '$1=="variable2"{print $2}' Or what pepoluan posted, as it provides better flexibility. –  ghoti Jan 10 '13 at 23:01

Must you use sed?

I prefer using awk for this kind of stuff:

awk -v varname="variable2" '$1==varname {print $2}' myFile

This will work as long as there are no variables (in the left column) that contains a space.

Edit:

Since the title is "Get variable value from file with bash", here's a version that does not involve an external program

wantvar="variable2"
datafile="myFile"
while read varname varval; do
  # Case-insensitive matching. If you need case-sensitivity, remove the pair of commas
  # on both sides.
  if [[ ${varname,,} = ${wantvar,,} ]]; then
    echo $varval
    break
  fi
done < $datafile
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There is no benefit in passing varname if you do the assignment inline might as well be awk '$1=="variable2"{print $2}' file plus say away from bash for things like this. –  iiSeymour Jan 10 '13 at 15:33
    
@sudo_O true. Just in case the question-maker wants to embed that line in a script somewhere. As to your second statement, the title of the question is "... with bash". I wrote the script to prevent the question-maker from doing something totally unnecessary like some_variable="$(awk ....)" –  pepoluan Jan 10 '13 at 15:35
    
Don't get hung up on title, I have changed it to reflect the question, the OP just missed the p flag to sed. Really bash is not suited to this kind of thing! –  iiSeymour Jan 10 '13 at 15:41

Use grep to find the line and then use cut to extract the value:

$ grep ^variable2 myFile | cut -d ' ' -f 2

Test:

$ cat myFile 
variable1 12
variable2 43
variable3 897
$ grep ^variable2 myFile | cut -d ' ' -f 2
43
$ 
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perfect thanks! –  Sullivan Orlean Jan 10 '13 at 15:06

For a file formatted like that, a grep|awk will work:

grep variable2 file | awk '{print $2}'

Don't count on it for files formatted even slightly differently.

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You're right - I did... and fixed it. –  John Jan 10 '13 at 15:03
1  
This is redundant, there's no need to pipe from grep to awk. See pepoluan's answer. –  ghoti Jan 10 '13 at 15:18
    
Or see mine.. Either use grep or awk both is 1 process to many. –  iiSeymour Jan 10 '13 at 15:18

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