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I am using the below script to move files older than a day to other directory, and I was just checking with an echo statement whether its working fine.

    for i in `ls -lhrt | grep TRACK`
    do
     for j in `$i | awk '{print $7}'`
     do
      if [[ $j -lt $((`date |  awk '{print $3}'` - 1)) ]];
       then echo $j less than $((`date |  awk '{print $3}'` - 1))
      fi
     done
    done

But I see some errors and the script is not working fine. If i do an ls -lhrt | grep TRACK | awk '{print $7}', it works fine and returns the date ( the numerical field).

If I modify the script like:

    for i in `ls -lhrt | grep TRACK | awk '{print $7}'`
    do 
     if [[ $i -lt $((`date |  awk '{print $3}'` - 1)) ]]; 
      then echo $i less than $((`date |  awk '{print $3}'` - 1))
     fi
    done

It works fine though.

What is the exact logic I'm missing out in the original script?

share|improve this question
    
I'm pretty sure you could do this with find with the -mtime +1 or -ctime +1 option. –  Paul Tomblin Dec 16 '12 at 14:18
    
@paul : That's right. But I just wanted to know what could be wrong with this particular script. Mant thanks –  dig_123 Dec 16 '12 at 14:23
    
I'm not sure what you're trying to accomplish, but your for j line is trying to execute whatever is in $i, and pass the output of that to awk. I suspect you meant to echo $i and pass that to awk. –  Paul Tomblin Dec 16 '12 at 20:07

2 Answers 2

Your script works on the assumption that the first for loop (for i in ...) iterates on lines, but that assumption is wrong. If you add an echo "$i" in the body of the loop, you will see that it operates on words, not lines.

The next error has already been pointed out and is that in the line

for j in `$i | awk '{print $7}'`

the script tries to execute the content of the variable $i. You want to add an echo command here, like this:

for j in `echo $i ...

But of course this wouldn't solve your problem, because $i contains already single words and there will be no 7th word that awk could print.

A simple solution (if you insist on not using find) is indeed what you already wrote yourself:

for i in `ls -lhrt | grep TRACK | awk '{print $7}'`

But if you wish to keep both loops, you can change the special variable IFS (internal field separator) in the script, like this:

#!/bin/bash

OIFS="$IFS"
IFS="
"
for i in `ls -lhrt` ; do
  IFS="$OIFS"
  echo ">>$i<<"
  for j in `echo $i|awk '{print $7}'` ; do
    echo ">>$j<<"
  done
done

The line with IFS=" contains nothing after the " the assignment ends on the next line with the single " and so assigns the line feed character to the IFS special variable. Be sure to restore IFS as soon as possible in your scripts. (If you fail to do that you will get very confusing behavior from the shell, as spaces no longer separate words...)

PS: You are aware that your script will fail every time when a new month starts?

PPS: You are aware that your script depends on the current locale? On my PC the 7th word of the lines is "Dez" at this time of the year, so I had to add an LANG=C when running the script.

share|improve this answer

Just seen your update

$i | ...

will try to run an executable that is called whatever the value of $i is. In your case, this will work for $i = 1, 2 and 3 (but not do what you want it to) and fail otherwise.

You want to send the string to the next process in the pipe, not run an executable by that name. You need to do

echo $i | ...
share|improve this answer
    
No doesn't help. This doesn't yield any output –  dig_123 Dec 16 '12 at 14:44
    
echo $i will simply break the line wherever it finds the space. –  dig_123 Dec 16 '12 at 14:50

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