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I have this script which reads lines from two files and outputs them in order of:

The first line of file1
the first line of file2
the second line of file1
the second line of file2
etc

How do I do this without using the external paste command in the script ?

paste -d'\n' file1 file2 | while read line1 && read line2;
do
#echo "$line1 $line2" 
echo "$line1" 
echo "$line2" 
done
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what you want to do if one file has more lines than the second one? –  Ján Vorčák Dec 7 '11 at 22:46

4 Answers 4

Use file descriptors and read, e.g. see here.

exec 5< file1
exec 6< file2

read line1 <&5
read line2 <&6

echo -n "$line1\n$line2"
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bash.sh

#!/bin/bash

exec 3< bash.sh
exec 4< data

while read l1 <&3 && read l2 <&4
do
    echo "$l1"
    echo "$l2"
done

data

1908 462
232 538
232 520
232 517

./bash.sh

#!/bin/bash
1908 462

232 538
exec 3< bash.sh
232 520
exec 4< data
232 517

If you don't want to end when you reach end of the first file, use this

#!/bin/bash

exec 3< aaa
exec 4< bbb

while true
do
    end=1
    read l <&3
    if [ $? -eq 0 ];
    then
        echo "$l"
        end=0
    fi

    read l <&4
    if [ $? -eq 0 ];
    then
        echo "$l"
        end=0
    fi

    if [ $end -eq 1 ];
    then
        break
    fi

done
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External to the while, and external to some enclosing script file are two different things. You're perfectly free to move the paste into the file, and still pipe into the while within.

I'm not sure if that's what you're getting after. Is it?

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up vote 0 down vote accepted

Thanks for that article Kerrek .... have updated my code which works fine now :

exec 5< file1
exec 6< file2
while read line1 <&5 && read line2 <&6
do
echo  "$line1"
echo "$line2"
done
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