I’m using bash shell on Linux. I have this simple script ...
#!/bin/bash
TEMP=`sed -n '/'"Starting deployment of"'/,/'"Failed to start context"'/p' "/usr/java/jboss/standalone/log/server.log" | tac | awk '/'"Starting deployment of"'/ {print;exit} 1' | tac`
echo $TEMP
However, when I run this script
./temp.sh
all the output is printed without the carriage returns/new lines. Not sure if its the way I’m storing the output to $TEMP, or the echo command itself.
How do I store the output of the command to a variable and preserve the line breaks/carriage returns?
2 Answers 2
With shell scripting, one needs to always quote variables, especially when working with strings.
Here is an example of the problem:
Example variable:
$ f="fafafda
> adffd
> adfadf
> adfafd
> afd"
Output without quoting the variable:
$ echo $f
fafafda adffd adfadf adfafd afd
Output WITH quoting the variable:
$ echo "$f"
fafafda
adffd
adfadf
adfafd
afd
Explaination:
Without quotes, the shell replaces $TEMP with the characters it contains (one of which is a newline). Then, before invoking echo shell splits that string into multiple arguments using the Internal Field Separator (IFS), and passes that resulting list of arguments to echo. By default, the IFS is set to whitespace (spaces, tabs, and newlines), so the shell chops your $TEMP string into arguments and it never gets to see the newline, because the shell considers it a separator, just like a space.
3 Comments
xdotool type "$myVar" doesn't work. it's still typing the content of the variable without new linesFOO="$(echo $VAR)"; how do you quote $VAR properly when it's already inside quotes?"$(echo "$VAR")". Yes, it's odd to parse, but apparently easier for shells than for us.I have ran into the same problem, a quote will help
ubuntu@host:~/apps$ apps="abc
> def"
ubuntu@host:~/apps$ echo $apps
abc def
ubuntu@host:~/apps$ echo "$apps"
abc
def
don'tstorecommandsinvariables.Useafunctioninstead