Printing a Variable Which Contains $ Sign
I have a bash script which contains awscli as well. I am trying to print a variable which is created in a for loop. The variable that I am trying to print contains $ sign because of for loop. I couldn't print the value. Below I ams sharing the script. The output of this script is only numbers which is generated in the for loop. I want to print the value which is generated in the command.
!/bin/bash
declare -i counter=11
declare -i counter2=14
for i in {1..2}
do
declare v1$i=$(aws iam get-group --group-name VideoEditors | awk -v counter1=$counter 'NR==counter1' | awk -F" '{print $4}')
counter=$counter+7
declare v2$i=$(aws iam get-group --group-name VideoEditors | awk -v counter3=$counter2 'NR==counter3' | awk -F" '{print $4}')
counter2=$counter2+7
echo $v1$i
echo $v2$i
done
linux bash shell-script variable
New contributor
add a comment |
I have a bash script which contains awscli as well. I am trying to print a variable which is created in a for loop. The variable that I am trying to print contains $ sign because of for loop. I couldn't print the value. Below I ams sharing the script. The output of this script is only numbers which is generated in the for loop. I want to print the value which is generated in the command.
!/bin/bash
declare -i counter=11
declare -i counter2=14
for i in {1..2}
do
declare v1$i=$(aws iam get-group --group-name VideoEditors | awk -v counter1=$counter 'NR==counter1' | awk -F" '{print $4}')
counter=$counter+7
declare v2$i=$(aws iam get-group --group-name VideoEditors | awk -v counter3=$counter2 'NR==counter3' | awk -F" '{print $4}')
counter2=$counter2+7
echo $v1$i
echo $v2$i
done
linux bash shell-script variable
New contributor
1
Use"${var}"
instead of just$var
;${x}${y}
instead of$x$y
. See unix.stackexchange.com/questions/4899/…
– Kenneth B. Jensen
6 mins ago
add a comment |
I have a bash script which contains awscli as well. I am trying to print a variable which is created in a for loop. The variable that I am trying to print contains $ sign because of for loop. I couldn't print the value. Below I ams sharing the script. The output of this script is only numbers which is generated in the for loop. I want to print the value which is generated in the command.
!/bin/bash
declare -i counter=11
declare -i counter2=14
for i in {1..2}
do
declare v1$i=$(aws iam get-group --group-name VideoEditors | awk -v counter1=$counter 'NR==counter1' | awk -F" '{print $4}')
counter=$counter+7
declare v2$i=$(aws iam get-group --group-name VideoEditors | awk -v counter3=$counter2 'NR==counter3' | awk -F" '{print $4}')
counter2=$counter2+7
echo $v1$i
echo $v2$i
done
linux bash shell-script variable
New contributor
I have a bash script which contains awscli as well. I am trying to print a variable which is created in a for loop. The variable that I am trying to print contains $ sign because of for loop. I couldn't print the value. Below I ams sharing the script. The output of this script is only numbers which is generated in the for loop. I want to print the value which is generated in the command.
!/bin/bash
declare -i counter=11
declare -i counter2=14
for i in {1..2}
do
declare v1$i=$(aws iam get-group --group-name VideoEditors | awk -v counter1=$counter 'NR==counter1' | awk -F" '{print $4}')
counter=$counter+7
declare v2$i=$(aws iam get-group --group-name VideoEditors | awk -v counter3=$counter2 'NR==counter3' | awk -F" '{print $4}')
counter2=$counter2+7
echo $v1$i
echo $v2$i
done
linux bash shell-script variable
linux bash shell-script variable
New contributor
New contributor
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asked 10 mins ago
user335828user335828
1
1
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1
Use"${var}"
instead of just$var
;${x}${y}
instead of$x$y
. See unix.stackexchange.com/questions/4899/…
– Kenneth B. Jensen
6 mins ago
add a comment |
1
Use"${var}"
instead of just$var
;${x}${y}
instead of$x$y
. See unix.stackexchange.com/questions/4899/…
– Kenneth B. Jensen
6 mins ago
1
1
Use
"${var}"
instead of just $var
; ${x}${y}
instead of $x$y
. See unix.stackexchange.com/questions/4899/…– Kenneth B. Jensen
6 mins ago
Use
"${var}"
instead of just $var
; ${x}${y}
instead of $x$y
. See unix.stackexchange.com/questions/4899/…– Kenneth B. Jensen
6 mins ago
add a comment |
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1
Use
"${var}"
instead of just$var
;${x}${y}
instead of$x$y
. See unix.stackexchange.com/questions/4899/…– Kenneth B. Jensen
6 mins ago