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Probably this question has been asked many times about being able to include the awk one liner inside your perl script. But these questions were too specific to the problem wherein:

  1. a different approach was provided as a suggestion OR
  2. the syntax within the existing code was rectified OR
  3. Majority of the times -> solutions were provided using perl because experts favored using either awk or perl because they both do the same job. Yes. Perhaps. But i think awk is designed for targetting specific problems which can be solved in awk better than perl.

Example: I have the output of ls -lart and the 9th column is filename. I can easily do that in awk as ls -lart|awk '{print $9}'. Same thing of course can be done using perl using readdir(). But extracting 8th column or 7th column is not that easy in perl? Things become worse if I have to extract data pipe it to awk pipe it to sed etc.

Another Example: I have a specific DIR which has many files in some format like:

ABC_9090_DEF_10-22-30_13-07-2014.temp

notice the date_time.temp stamp part. The format here is ABC_4digits_DEF_hours-minutes-seconds_day-month-year

And I want to see only the new files created just now (say before 5 minutes from now). Approach using awk/sed is(pseudocode,let me know if u need me to copy actual one liner) :

  1. ls -lart|awk '{print $9}'|
  2. egrep to extract 10-22-30_13-07-2014
  3. use sed to replace _ with -|awk to rearrange the to have the number in the format YEARMONTHDAYHOURSMINUTESSECONDS.
  4. use awk again to compare this number using if($1>$mynum) against the variable(which supposedly has a number in the same format representing TODAYS TIME - 5 minutes)

Problem: But for some reason(other complexities) i thought of writing it in perl and i found that the if condition if ($1>$mynum) throws error when i am using it in perl using system command. It says syntax error for using '>' even when using with single quotes,double quotes,no quotes.

Can someone tell me in general:

  1. Why would someone NOT use awk,sed instead of perl in this scenario if given a choice?
  2. Generic explanation not specific to this problem on things one should remember while including awk or sed inside perl(which hopefully should solve this specific problem too.

closed as unclear what you're asking by user2864740, tripleee, Borodin, jaypal singh, delicateLatticeworkFever Jul 13 '14 at 17:04

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  • 6
    Please do not parse ls. – Slade Jul 13 '14 at 5:19
  • 1
    @Slade: why downvote me? Funny!!! – anurag86 Jul 13 '14 at 5:28
  • This question lacks focus.. anyway, just because something can be done doesn't mean it's a good way to do it. awk/sed are generally better paired directly with a shell, even though perl can rather easily invoke them (which doesn't imply it's a good approach). – user2864740 Jul 13 '14 at 5:32
  • You could easily perform this type of task with with ls | sort. Sometimes a less complicated solution is not obvious or perhaps overlooked. – l'L'l Jul 13 '14 at 5:39
  • guys, maybe you were looking to solve a specific question. But what i need is a "GENERIC" answer . Hence i asked a general question with an example and asked for Generic answer only. – anurag86 Jul 13 '14 at 5:41
6

Why would someone NOT use awk,sed instead of perl in this scenario if given a choice?

If you like the idea:

  • to fork a shell from perl
  • inside a shell
  • fork again two processes (ls & awk) what will only print the 9th column

feel free to do it. It sounds a terrible idea for me, but you knows: your mileage...

Generic explanation not specific to this problem on things one should remember while including awk or sed inside perl(which hopefully should solve this specific problem too :) )

Generic things to remember:

  • escaping rules of $variables - like $9 what can be interpreted:
    • by the perl itself (e.g. the $9 can be an perl variable storing the regex captures)
    • by the forked shell (e.g. $9 can be an shell variable holding the 9th positional arg)
    • by the awk (where it means the 9th column)
  • to know how to handle system error codes
  • and mainly - any programming task need to know at least the basics of the used programming language. (it is like my english - it is terrible, but enough good to write an answer) :)

To your example: The ls -lart|awk '{print $9} is one of the worst thing what you can do.

Imagine:

  • if you have file with name: this is my file.txt
  • What will print the ls -lart|awk '{print $9}?

Guessed right, will print only the this. Of course, this is wrong. Parsing filenames what comes from stdin is always terrible idea (unless you have NULL terminated filenames), because filenames can contain whitespaces - not only spaces but tab or newline characters too.

To your second example:

  • instead of running 4 programs in chain (pipes) you can use find to achieve the wanted: print only new files modified in the last 5 min
  • with perl you can use perl modules:
    • File::Find - can do anything what the find command does and much more
    • File::Find::Rule - Alternative interface to File::Find
    • and many other modules: see from the File::Find family
    • but you can use e.g. the Path::Tiny or Class::Path or similar modules
    • etc...
  • +1 for explaining the problem with the approach. One niptick: Parsing filenames from stdin is not always terrible, the classic example is find ... -print0 | xargs -0l ..... As long as the filenames are NULL terminated, then you can parse them safely from stdin. – user000001 Jul 13 '14 at 9:02
  • @user000001 :) youre absolutely right! (print0 | xargs -0 is one of my favoriets in bash) I only don't wanted add to much complications to my answer, it will rather confuses the OP more... ;) – jm666 Jul 13 '14 at 9:05

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