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My code:

#!/bin/bash

for i in $@;
    do echo $i;
done;

run script:

# ./script 1 2 3

1
2
3

So, I want to skip the first argument and get:

# ./script 1 2 3

2
3
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4 Answers 4

up vote 15 down vote accepted

Use the offset parameter expansion

#!/bin/bash

for i in "${@:2}"; do
    echo $i
done

Example

$ func(){ for i in "${@:2}"; do echo "$i"; done;}; func one two three
two
three
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1  
+1, way better. And way bashier. Thanks for teaching me something. :) –  Dan Fego Jan 18 '12 at 6:46
    
@DanFego I know he is really good with command line. This is pretty cool stuff. +1 –  jaypal Jan 18 '12 at 7:16
    
@DanFego thanks guys, just paying it forward for all the tricks I've learned over the years –  SiegeX Jan 18 '12 at 7:22

Use shift command. (Sorry, can't post code, no bash access right now).

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Thx, I did't know about shift –  Alexander Guiness Jan 18 '12 at 6:54

Look into Parameter Expansions in the bash manpage.

#/bin/bash
for i in "${@:2}"
    do echo $i
done
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1  
You'll want to quote "${@:2}" to protect arguments with spaces. –  glenn jackman Jan 18 '12 at 14:23

You could just have a variable testing whether it's the first argument with something like this (untested):

#!/bin/bash
FIRST=1
for i in $@
do
    if [ FIRST -eq 1 ]
    then
        FIRST=0
    else
        echo $i
    fi
done
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