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I am writing a script that prints arguments starting with a vowel and end in a digit

Example : ./script Alex1GB0 Bud1GG0 Ethan8DC0 Chad5XZ7d

The output should be

Alex1GB0 Ethan8DC0 

This is what I have tried so far

 for x in $*; do
     o=$(echo $x | grep '\<[AEIOUaeiou]...[0-9].\>')

     if[$? -eq 0]; then
            echo $o
 exit 0

It doesn't work ; What should I change?

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2 Answers 2

up vote 2 down vote accepted

There is nothing like ellipsis (...) in bash. Instead, use .*. Also, the dot after [0-9] means there is something after the digit, which is against the specification.

In fact, there is no need to run a subshell and grep, when we have pattern matching:

#! /bin/bash
for x in "$@"; do
    if [[ $x == [AEIOUaeiou]*[0-9] ]] ; then
        echo "$x"
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Works like a charm , it prints what I want!Thanks! I didn't have the slightest idea you could check a string like that, without sed, awk, grep. –  SpaceNecron Jan 30 '13 at 15:00


grep -oP '(?<=\s)[AEIOUaeiou][^ ]*[0-9](?=\s)'

your example:

kent$  echo "Example : ./script Alex1GB0 Bud1GG0 Ethan8DC0 Chad5XZ7d"|grep -oP '(?<=\s)[AEIOUaeiou][^ ]*[0-9](?=\s)'


awk '{for(i=1;i<=NF;i++)if($i~/^[AEIOUaeiou][^ ]*[0-9]$/)print $i}' file

your example:

kent$  echo "Example : ./script Alex1GB0 Bud1GG0 Ethan8DC0 Chad5XZ7d"|awk '{for(i=1;i<=NF;i++)if($i~/^[AEIOUaeiou][^ ]*[0-9]$/)print $i}'
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Thanks, I will keep in mind these examples, they will help me with similar scripts. What does (?<=\s) stand for (in grep), though? –  SpaceNecron Jan 30 '13 at 15:06
\s means all blank characters. (?<=abc)x means match x, only if x is following abc. google look-behind. –  Kent Jan 30 '13 at 15:13

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