Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need to search a file that has the number of people who logged in each date, their username and the time logged in. The last printout of the run is to contain the total dates investigated. The script must be in either awk, sed or grep. The output is supposed to look like this:

Oct 5 :===: 4
joesag    20:50
heidi3    17:42
jlandis   15:53
dskahnkar 21:51

this line will change depending on the number of dates the script finds. The file I'm working with only has 3 different dates the 5, 6, and 7th. The total number of dates investigated is 3

This is my code so far:

awk 'BEGIN{print "Oct 5 :===:"}; $4 ~ /5/{print $1, $5}' whotb
echo
awk 'BEGIN{print "Oct 6 :===:"}; $4 ~ /6/{print $1, $5}' whotb
echo
awk 'BEGIN{print "Oct 7 :===:"}; $4 ~/7/{print $1, $5}' whotb

This is what it prints out:

Oct 5 :===: 
jlandis 15:53 
dshankar 21:51 
heidi3 17:42 
revans 19:30
shawj 13:51 
axkrk 17:15 
emgarcia 13:31 
joesag 20:50

Oct 6 :===: 
hinze 12:17 
natasha 12:57 
lestrat 22:17 
eyora 18:46
hoythill 15:00 
wkb13 15:03 
wolves24 08:53 
fonstad 21:48 
joseher 18:08


Oct 7 :===: 
gelderen 05:52 
bwood3 04:43 
atsxc 05:40 
jaquez 05:48
jondrnj 05:50 
ash786 00:39 
yiyun827 01:07

The input file has 27 of lines:

gelderen pts/0 Oct 7 05:52 (egelderen-c217.la.asu.edu)

bwood3 pts/1 Oct 7 04:43 (ss1-04.inre.asu.edu)

share|improve this question
1  
Give us a hint as to what your input looks like –  mpez0 Apr 30 at 19:29
    
@mpez0 gelderen pts/0 Oct 7 05:52 (egelderen.cob.asu.edu) –  user3590575 Apr 30 at 21:01
add comment

2 Answers 2

up vote 1 down vote accepted

The counter variable you put in the END block will do nothing since END block is ran after the file has been processed.

I would recommend to create different arrays (depending on dates) and push the pairs in it as keys. Since you mention that file only has three dates, you can create three arrays and iterate them in the END block.

awk '
BEGIN { SUBSEP = FS }
$4==5 { fifth[$1,$5]++ }
$4==6 { sixth[$1,$5]++ }
$4==7 { seventh[$1,$5]++ }
END {
    print "Oct 5 :===: ", length(fifth); for(pair in fifth) print pair
    print "Oct 6 :===: ", length(sixth); for(pair in sixth) print pair
    print "Oct 7 :===: ", length(seventh); for(pair in seventh) print pair
}' whotb
share|improve this answer
    
I posted the wrong version of my script with the counter. I will edit that.This works well, but it doesn't have the counter at the end. However, that is an easy fix. I appreciate the help. –  user3590575 May 1 at 16:33
    
@user3590575 Not sure if you need the counter to count users per group. If so, then since we are pushing every pair to an array, length(array) gives us the count. Hence I never used one. –  jaypal May 1 at 16:35
    
There needs to be a count for the number of dates. For example, this script would output: The total number of dates investigated is 3 –  user3590575 May 1 at 17:03
add comment

You can try the following perl script:

#! /usr/bin/perl

use v5.12;

my %info;

while (<>) {
    my @fld=split(" ");
    my $key=join(" ",@fld[2..3]);
    if (!defined $info{$key}) {
        $info{$key}={num => 0, users => []};
    }
    $info{$key}->{num}++;
    my $user=join(" ",@fld[0,4]);
    push( @{$info{$key}->{users}}, $user);
}

for my $key (sort keys %info) {
    say $key,":===:",$info{$key}->{num};
    say $_ for (@{$info{$key}->{users}});
    say "";
}

Run it as ./p.pl whotb

share|improve this answer
    
Thank you for the response, but unfortunately, I need to have this done in grep, sed or awk. –  user3590575 Apr 30 at 23:42
    
@user3590575 Ok.. Why is that so? –  Håkon Hægland Apr 30 at 23:56
    
This is part of an assignment that I am working on. My teacher told me to "Google" it. –  user3590575 May 1 at 0:09
    
@user3590575 Ok.. It can be done in awk also, but I like to do it in perl.. I have to sign off now for 8 hours.. Good luck! –  Håkon Hægland May 1 at 0:12
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.