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The command:

value=${value%?}

will remove the last character from a variable. Is there any logical reason why it would not work from within a script? In my script it has no effect whatsoever.

if [[ $line =~ "What I want" ]]
    then
            if [[ $CURRENT -eq 3 ]]
            then
                    echo  "line is " $line 
                    value=`echo "$line" | awk '{print $4}'`
                    echo "value = "$value   
                    value=${value%?}
                    echo "value = $value "

                    break
            fi
fi

I cant post the whole script, but this is the piece I refer to. The loop is being entered properly, but the 2 echo $value lines return the same thing.

Edit - this question still stands. The code works fine line bu line in a terminal, but all together in a script it fails.

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Are you sure your script calling bash and not, say, sh? –  keltar Oct 8 '12 at 9:11
    
it has #!/bin/bash at the start, if thats what youo are referring to. I'm new to bash.. –  confusified Oct 8 '12 at 9:12
    
echo the new value immediately after the change. It should be there. The problem is somewhere else - aren't you perphaps changing the value in a subshell? –  choroba Oct 8 '12 at 9:14
    
@choroba, That seems like the most likely answer, but for the life of me I cant figure it out. I was under the impression though, that doing something within an if statement did NOT create a subshell? –  confusified Oct 8 '12 at 9:18
    
@confusified: Show the code. The right side of a pipe runs in a subshell. –  choroba Oct 8 '12 at 9:19
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2 Answers

Echo adds an extra line character to $value in this line:

value=`echo "$line" | awk '{print $4}'`

And afaik that extra char is removed with %?, so it seems it does not change anything at all.

Try echo -n instead, which does not add \n to the string:

value=`echo -n "$line" | awk '{print $4}'`
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Nope, Still happening. The value before and after the %? is the same –  confusified Oct 8 '12 at 9:30
1  
Even better use printf, which is far more portable than echo with -e or -n option. –  helpermethod Oct 8 '12 at 9:37
    
printf within the awk? or instead of echo? I'm not familiar with that.. –  confusified Oct 8 '12 at 9:38
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Since you have provided only the relevant part in the code and not the whole file, I'm going to assume that the first line of your file reads `#!/bin/sh'. This is your problem. What you are trying to do (parameter expansion) is specific to bash, so unless /bin/sh points to bash via a symlink, then you are running the script in a shell which does not understand bash parameter expansion.

To see what /bin/sh really is you can do: ls -l /bin/sh. And to remedy the situation, force the script to run in bash by changing the `shebang' at the top to read `#!/bin/bash'

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