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I am finding it difficult to run the following shell script containing if-else statement. On running the script I get an error

': not a valid identifier
: command not found
bash: ./demo.sh: line 18: syntax error: unexpected end of file

Could you please help?

Code

#!/bin/bash
para=0

echo "1. choice a"
echo "2. choice b"
echo -n "Select your choice [1 or 2]? "
read para

if [ $para -eq 1 ] ; then
     echo "You choose a"
else
       if [ $para -eq 2 ] ; then
             echo "You choose b"
       else
             echo "Your choice is not a or b"
       fi
fi
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closed as too localized by Robert Harvey Dec 25 '11 at 16:55

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
Note that the shell has a very usable elif command that can be used to prevent the conditions marching off the right side of the screen. –  Jonathan Leffler Dec 24 '11 at 22:14
    
Also, stylistically, making people enter 1 or 2 to choose a or b is not good; let them enter a or b. However, this may very well be the result of simplifying the script for reproducing the problem, in which case (a) well done on reducing the script to bare essentials, and (b) the issue is not critical. –  Jonathan Leffler Dec 24 '11 at 22:17

2 Answers 2

This works fine for me, the error message that you are getting says it's on line 18, and the code you posted only has 17 lines. Check that there's no stray apostrophe's at the end of your script.

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Oh! I was making a mistake in running the script as . ./script.sh instead of ./script.sh –  user1114867 Dec 24 '11 at 22:10
1  
That (running as . ./script.sh instead of ./script.sh) should not matter if you are using the same shell. It might matter if you were using a different shell (say a C shell instead of a POSIX-ish shell), but then the . command wouldn't work anyway. Since the script shown does not contain any single quote or colon, it is hard to know what the 'invalid identifier' message is about; it looks to me like what is posted is not what generated the error. –  Jonathan Leffler Dec 24 '11 at 22:19

If you want to protect against invalid input, quote $para when it is used and use string comparisons:

if [ "$para" = "1" ] ; then
     echo "You choose a"
else
       if [ "$para" = "2" ] ; then
             echo "You choose b"
       else
             echo "Your choice is not a or b"
       fi
fi

You should also consider using a case statement instead of that if/else construct. Things will get out of hand really fast once you have more valid inputs to handle.

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