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Hi I am new to shell script. I want to pass an argument to a shell script. I know how to do the same.I have written a simple shell script

#!/bin/bash
parameter=$1
whatispased=${parameter:-"nothing"}
echo $whatispassed

If something is passed as the first argument, it is printed else "nothing" is printed. I have seen some people writing.

parameter=${1,,}

i tried replacing the first line with the one above, but i am getting a bad substitution error. Any help is appreciated.

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Save yourself troubles and use quotes a lot to survive a lot of characters. Less than perfect but better than no defense at all: whatispased="${1:-"nothing"}"; echo "$whatispassed"; –  Gilbert Oct 18 '12 at 10:22
    
i just wanted to confirm what the second format is doing –  parameswar Oct 18 '12 at 11:41
    
actually in the new version of bash, it converts the argument to lowercase. just went through the features of bash 4.0. thanks for the support though –  parameswar Oct 18 '12 at 12:26

1 Answer 1

First you can reduce this to:

#!/bin/bash
whatispassed=${1:-"nothing"}
echo $whatispassed

or even:

#!/bin/bash
echo ${1:-"nothing"}

For ${parameter,,pattern} look into Shell Parameter Expansion

For more on bash or shell scripting, see info:bash and Linux Bash Shell Scripting Books.

share|improve this answer
    
actually in the new version of bash, it converts the argument to lowercase. just went through the features of bash 4.0, Got it, thanks for the support though. –  parameswar Oct 18 '12 at 12:26
    
is there any book which helps to understand the above kind of bash scripting I am a bit new to this –  Registered User Mar 7 '13 at 5:57
    
@RegisteredUser Please see updated answer. –  Olaf Dietsche Mar 7 '13 at 7:36

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