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I keep getting the following error in my bash script when i attempt to run it, i can't seem to find the problem. I think it has something to do with how i am closing my loop(s). Any help would be much appreciated

bash: random: line 66: syntax error: unexpected end of file

Below is my code

#!/bin/bash
one=$RANDOM
two=$RANDOM

# Declare variable choice and assign value 4
choice=5
# Print to stdout
echo "1. -l"
echo "2. -m"
echo "3. -c"
echo "4. -i"
echo -n "Please choose a word [1,2,3,4]? "
while [ $choice -eq 5 ]; do


  #option -l
  if [ $choice -eq 1 ] ; then
   #do something

      else
      echo "Please make a choice between 1 -4 !"
      echo "1.-l"
      echo "2.-m"
      echo "3.-c"
      echo "4.-i"
      echo -n "Please choose a word [1,2,3 or 4]? "
      choice=5

      fi

echo"finished"
done

EDIT* Removed bulky code as it was causing an indent problem.

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closed as too localized by Jonathan Leffler, C. A. McCann, kapa, Steve Fenton, JYelton Nov 1 '12 at 21:04

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1  
In addition to the answer by Marc. Proper use of indentation can save you a lot of trouble. –  Bernhard Nov 1 '12 at 15:55
1  
Also, echo"finished" will try to find the command "echofinished" -- whitespace is critical in shells –  glenn jackman Nov 1 '12 at 18:49
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1 Answer

up vote 4 down vote accepted

You haven't done a done for your while loop:

while [ $choice -eq 5 ]; do
   ...lots of stuff ...
done <---you're missing this
share|improve this answer
    
Thanks for the reply, I am now getting line 62: syntax error near unexpected token `done' which is meant to be the done closing the if else loops. Any ideas? –  Paperghost Nov 1 '12 at 15:59
    
@Paperghost You should probably (hard to tell with the indentation) put that done at the last line. –  doubleDown Nov 1 '12 at 16:04
    
if-else statements are closed with fi. Please post further questions separately, rather than as comments to answers. –  chepner Nov 1 '12 at 16:04
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