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I am reading arguments from a file, line-by-line, but each line has several arguments. The gist of the code is below

cat file.txt | while read LINE ; do
    echo -e `./foo.sh "$COUNT" "$LINE"`
done

foo.sh

#!/bin/bash
echo "$2\t$3\t$4"

file.txt

0 0 0
0 0 1
0 1 0
0 0 1

returned. Note it is not tabbed

0 0 0
0 0 1
0 1 0
0 0 1

This is simpler example of what I'm trying to do; my foo.sh is actually making a sql call using the arguments. I know that my foo.sh function works through debugging, so I've narrowed it down to the line reader. Any help with where I'm going wrong?

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2 Answers 2

I think you need to do either:

  1. Unquote the variable
  2. Eval the string

So it becomes either:

echo -e `./foo.sh "$COUNT" $LINE`

or

echo -e `eval ./foo.sh "$COUNT" "$LINE"`

Otherwise bash will call foo.sh passing $LINE as a single parameter. By evaluating it explicitly, bash will first generate the final command string, and then reinterpret it, actually splitting $LINE into separate arguments.

Hope this helps =)

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Perfect. I tried both seperatly and both solutions make it function correctly. Any preference for which solution is better? –  TheTargetmobile Oct 9 '12 at 22:51
    
Either solution works? Cool! I thought that they had to be together. I guess the back-quote behaves similarly to eval. I would prefer to use the option without eval then =) –  Janito Vaqueiro Ferreira Filho Oct 9 '12 at 22:55
    
I edited the answer for future reference. Thanks! –  Janito Vaqueiro Ferreira Filho Oct 9 '12 at 22:57
1  
@JanitoVaqueiroFerreiraFilho: Re: "I guess the back-quote behaves similarly to eval": Net exactly. What happens is, when you don't quote a parameter-substitution, it undergoes word-splitting and filename-expansion. That's not just inside back-quotes; it also happens in a regular command. (See gnu.org/software/bash/manual/bash.html#Word-Splitting.) eval does much more than that, in that it also processes internal quotes like " and ', redirection operators like < and >>, and so on. –  ruakh Oct 9 '12 at 23:01
    
@ruakh: Thanks for the enlightenment! –  Janito Vaqueiro Ferreira Filho Oct 10 '12 at 1:09

Is there a reason you're nesting the outer command in an echo? What about something like this? I just added -e to the echo in foo.sh and took out the echo in the outer call.

cat foo.txt | while read LINE ; do
    ./foo.sh $COUNT $LINE
done

foo.sh:

#!/bin/bash
echo -e "$2\t$3\t$4"
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3  
No need cat. while read LINE ; do; ./foo.sh "$COUNT" $LINE; done < foo.txt –  StardustOne Oct 9 '12 at 23:22
    
outer command is actually being used to append to a file, so it looks closer to this: cat file.txt | while read LINE ; do echo -e ./foo.sh "$COUNT" "$LINE" >> tmp done It may not be necessary for that either, I'm still learning all this –  TheTargetmobile Oct 10 '12 at 0:18

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