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It turns out that iptables doesn't handle leading zeros too well. As $machinenumber that is used has to have a leading zero in it for other purposes, the idea is simply to create a new variable ($nozero) based on $machinenumber, where leading zeros are stripped away.

$machinenumber is a two-digit number between 01 and 24. Currently it's 09

$machinetype is 74 for now and hasn't caused any problems before.

What I have so far is:

nozero = (echo $machinenumber | sed 's/^0*//')
iptables -t nat -I POSTROUTING -s 10.($machinetype).($nozero).0/24 -j MASQUERADE

While I believe I'm on the right track, the code results in:

ERROR - Unknown string operation
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11 Answers 11

You don't need to use sed or another external utility. Here are a couple of ways Bash can strip the leading zeros for you.

iptables -t nat -I POSTROUTING -s "10.$machinetype.$((10#$machinenumber)).0/24" -j MASQUERADE

The $(()) sets up an arithmetic context and the 10# converts the number from base 10 to base 10 causing any leading zeros to be dropped.

shopt -s extglob
iptables -t nat -I POSTROUTING -s "10.$machinetype.${machinenumber##+(0)}.0/24" -j MASQUERADE

When extglob is turned on, the parameter expansion shown removes all leading zeros. Unfortunately, if the original value is 0, the result is a null string.

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5  
The 10# is the simplest and most elegant solution I've found so far. Thank you! – desgua Dec 5 '14 at 17:00
    
echo $((10#${machinenumber})) works in kornshell too! I was looking for a non-bashism and this should work fine. ksh M-11/16/88f – bgStack Nov 6 '15 at 13:33
    
It works in zsh, too. – Dennis Williamson Nov 8 '15 at 21:45

No, you make all (alomost all) correct. You just must:

  • remove spaces around =
  • use $() or backticks instead of ()

That would be correct:

 nozero=$(echo $machinenumber | sed 's/^0*//')

Also you must use variables without () around them. You can add "" if you want:

iptables -t nat -I POSTROUTING -s "10.$machinetype.$nozero.0/24" -j MASQUERADE

And of course variables here are not necessary. You can say simply:

iptables -t nat -I POSTROUTING -s "10.$(echo $machinenumber | sed 's/^0*//').$nozero.0/24" -j MASQUERADE
share|improve this answer
    
It works, cheers. What if i wanted to bake it into the iptables command, tho? I prefer not to declare any new variables. – Jarmund Jun 20 '12 at 16:40
    
@Jarmund: it will work also. It would be even muche better – Igor Chubin Jun 20 '12 at 16:42
    
Could you provide me with the correct syntax? My bash scripting is dodgy at best. – Jarmund Jun 20 '12 at 16:46
    
@Jarmund: yes, of course :) – Igor Chubin Jun 20 '12 at 16:53

you can also do

machinenumber=$(expr $machinenumber + 0)
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This turned out to be the simplest, working approach: iptables -t nat -I POSTROUTING -s 10.($machinetype).($machinenumber + 0).0/24 -j MASQUERADE – Jarmund Sep 10 '14 at 15:35

I can't comment as I don't have sufficient reputation, but I would suggest you accept Dennis's answer (which is really quite neat)

Firstly, I don't think that your answer is valid bash. In my install I get:

> machinetype=74
> machinenumber=05
> iptables -t nat -I POSTROUTING -s 10.($machinetype).($machinenumber + 0).0/24 -j MASQUERADE
-bash: syntax error near unexpected token `('
> echo 10.($machinetype).($machinenumber + 0).0/24
-bash: syntax error near unexpected token `('

If I quote it I get:

> echo "($machinetype).($machinenumber + 0)"
(74).(05 + 0)

I'm assuming you mean:

> echo 10.$(($machinetype)).$(($machinenumber + 0)).0/24
10.74.5.0/24

But, of course it's still a bad solution because of octal:

> machinenumber=09
> echo 10.$(($machinetype)).$(($machinenumber + 0)).0/24
-bash: 09: value too great for base (error token is "09")

I assume that your numbers aren't 08 or 09 at the moment.

Here's Dennis's:

> echo $((10#09))
9
> echo $((10#00))
0
> echo $((10#00005))
5
> echo $((10#))
0

Admittedly, that last one might be an input validation problem for someone.

The sed solution has the problem of:

> echo "0" | sed 's/^0*//'

>
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nozero=$(echo $machinenumber | sed 's/^0*//')

Try without the spaces around = and with an additional $ sign.

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A pure bash solution:

> N=0001023450 
> [[ $N =~ "0*(.*)" ]] && N=${BASH_REMATCH[1]}
> echo $N 
1023450
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Using sed:

echo 000498 | sed "s/^0*\([1-9]\)/\1/;s/^0*$/0/"
498
echo 000 | sed "s/^0*\([1-9]\)/\1/;s/^0*$/0/"
0
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I also can't comment or vote up yet, but the Duncan Irvine answer is the best.

I'd like to add a note about portability. The $((10#0009)) syntax is not portable. It works in bash and ksh, but not in dash:

$ echo $((10#09))
dash: 1: arithmetic expression: expecting EOF: "10#09"

$ dpkg -s dash | grep -i version
Version: 0.5.7-2ubuntu2

If portability is important to you, use the sed answer.

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up vote 0 down vote accepted

I had to revisit this code the other day due to some unrelated stuff, and due to compatibility with some other software that reads the same script, i found it a lot easiest to rewrite it into this, which should still be valid bash:

iptables -t nat -I POSTROUTING -s 10.($machinetype).($machinenumber + 0).0/24 -j MASQUERADE

Basically, adding 0 forces it to be interpreted as an integer, hence automatically stripping the leading zeros

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I do it by using

awk '{print $1 + 0}'

I like this better than the sed approach as it still works with numbers like 0, 000, and 001

So in your example I would replace nozero = (echo $machinenumber | sed 's/^0*//') with nozero = (echo $machinenumber | awk '{print $1 + 0}' )

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In bash it is most simple:

%> a=00123
%> b=${a//0/}

The value of b is now "123". The general form is ${varname//find/replace} and it replaces any number of occurrences of find.

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Wouldn't that regex also remove any other zeroes? I.E. 0102030 => 123 – Jarmund Feb 4 at 17:18
    
You are absolutely right. It removes all occurrences. So, all I wrote was not wrong, though not solving the original problem. :-) – gsl yesterday

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