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I'm trying to understand if it's possible to create a set of variables that are numbered based on another variable (using eval) in a loop, and then call on it before the loop ends.

As an example I've written a script called question (The fist command is to show what is the contents of the variable $tab)

(23:32:12\[deco@S.Man)
[~/bin]$ listQpsk 40|grep -w [1-4]
40 SMANHUBAQPSK1          1    1344      1195        88
40 SMANHUBAQPSK1          2    1668      1470        88
40 SMANHUBAQPSK1          3    1881      1539        81
40 SMANHUBAQPSK1          4    1686      1409        83


(23:18:42\[deco@S.Man)
[~/bin]$ cat question
#!/usr/bin/bash
tab=`listQpsk 40|grep -w [1-4]`
seq=1
num=4
until [[ $seq -gt $num ]];do
eval count$seq=`echo "$tab"|grep -w $seq|awk '{print $5}'`
seq=$(($seq+1))
done
echo $count1
echo $count2
echo $count3
echo $count4

When I run this I get

(23:32:23\[deco@S.Man)
[~/bin]$ ./question 
1195
1471
1538
1409

Which is exactly what I would expect, but is there a way to move the echo commands inside of the until loop so that part of the loop is echoing the value of the variable that was just created. Something like:

until [[ $seq -gt $num ]];do
eval count$seq=`echo "$tab"|grep -w $seq|awk '{print $5}'`
seq=$(($seq+1))
echo "$count$seq"
done

PS: Sorry if my formatting is off...first time posting here, and I only know markdown from reddit.

share|improve this question

4 Answers 4

up vote 1 down vote accepted

Use indirection:

until [[ $seq -gt $num ]];do
    var="count$seq"
    eval $var=$(echo "$tab"|awk -v seq=$seq '$3==seq {print $5}') # awk loves to do grep's job
    let seq+=1    # another way
    echo "${!var}"    # indirection
done

No need for another eval.

share|improve this answer
    
That worked perfectly. I'm not sure I understand the indirection part though. But it worked both the way you wrote it and just as echo $var –  user127321 Jun 23 '09 at 20:46
    
echo $var would give "count1", for example. echo ${!var} gives the contents of the contents of var which would be "1195". echo ${!var} works similarly to echo $(eval echo \$$var) –  Dennis Williamson Jun 23 '09 at 22:50

Not exactly answering your question, but... did you know bash has array variables?

seq=1
num=4
until [[ $seq -gt $num ]];do
count[$seq]=`echo "$tab"|grep -w $seq|awk '{print $5}'`
seq=$(($seq+1))
done
echo ${count[*]}

Or without arrays:

seq=1
num=4
until [[ $seq -gt $num ]];do
eval count$seq=`echo "$tab"|grep -w $seq|awk '{print $5}'`
eval echo \$count$seq
seq=$(($seq+1))
done
share|improve this answer
    
I'm aware of them, but I haven't really started working them into scripts yet. 0 Formal training + full time work as a sysadmin means that I generally have to learn new skills as I have a need for them. I try not to get too far ahead of myself, because I worry I won't absorb it. Awesome reply though. Seeing the array syntax in something I already mostly understand is a huge help in my general understanding. Other than cleanliness, is there an advantage in this instance? It's still the same amount of built-ins vs external commands no? –  user127321 Jun 23 '09 at 3:59
    
I would consider it the "right" way to do this. However, the syntax can get kind of ugly, as evidenced by the echo statement. Without arrays you have to throw more evals at it (as per cma's answer). BTW, I've read the man bash page a dozen times top to bottom and I still find a new awesome "where have you been all my life" feature every time I read it again. ;-) –  John Kugelman Jun 23 '09 at 4:07

Yes, like this (in bash at least):

$ count1=xyz
$ seq=1
$ value=`eval echo \$\{count$seq\}`
$ echo $value
share|improve this answer

Try this:

varName=a
for i in 1 2 3
do
   eval $varName$i=stuff
   eval var=\$$varName$i
   echo $var
done

some versions of shell also let you use ${!var} to indirectly reference variables

share|improve this answer
1  
That's the part he's already doing. –  Dennis Williamson Jun 23 '09 at 11:07
    
Ah oops, fixed so it does what he wants now :) –  Charles Ma Jun 23 '09 at 12:18

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