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 am relatively new to hashes. I have a problem. I have a file in which each entry is of the form

187.231.45.47 - - www.xyz.com 200 10567 www.abc.com. 

The file is a log file and contains around 20000 entries.

I next split the entry on whitespaces and store it in an array, lets say, arr. so arr[3] is www.xyz.com and arr[6] is www.abc.com

What I want to find out is that for every element in the position of arr[3] how many different arr[6] are present and what is the count of the arr[6] for the corresponding arr[3].

for eg if the log file is

187.231.45.47 - - www.xyz.com 200 10567 www.abc.com 
187.231.45.47 - - www.xyz.com 200 10567 www.ab.com 
187.231.45.47 - - www.xyz.com 200 10567 www.ab.com 
187.231.45.47 - - www.xyz.com 200 10567 www.c.com 
187.231.45.47 - - www.x.com 200 10567 www.abc.com 

then i should get the output for www.xyz.com

www.abc.com =1
www.ab.com=2
www.c.com=1

for www.x.com

www.abc.com=1

and so on. I really require help for this. Hope somebody could provide the code for this.

share|improve this question
    
what else could the - fields be? in particular, might there be quoted strings that have spaces? –  ysth Mar 22 '13 at 21:05
    
no sir. those are ust dashes. nothing much to worry i guess. –  drastogi Mar 22 '13 at 21:11

2 Answers 2

up vote 1 down vote accepted

The key is doing

++$counts{ $fields[3] }{ $fields[6] };

for each record of the file.

To generate your output, just use a pair of nested for loops to iterate over the keys of the hashes once your done building them.

for my $foo (keys(%counts)) {
   for my $bar (keys(%{ $counts{$foo} })) {
      my $count = $counts{$foo}{$bar};
      ...
   }
}

Here's the whole thing:

my %counts;
while (<>) {
   my @fields = split;
   ++$counts{ $fields[3] }{ $fields[6] };
}

for my $foo (keys(%counts)) {
   print("For $foo,\n");
   for my $bar (keys(%{ $counts{$foo} })) {
      my $count = $counts{$foo}{$bar};
      print("$bar=$count\n");
   }
   print("\n");
}
share|improve this answer
    
I will try and implement this out. Thank You. –  drastogi Mar 22 '13 at 21:23
    
@drastogi, Added full program. –  ikegami Mar 22 '13 at 22:25
    
I already did implement the same. But still thanks a lot –  drastogi Mar 23 '13 at 14:16

The easiest way to create such a HoH is via its structure reference tree, which creates all the nodes for you in the path if they don't exist presently:

my $hohStruct;

$hohStruct->{'1'}->{'A'}->{'I'} = 5;
$hohStruct->{'1'}->{'A'}->{'II'} = 4;
$hohStruct->{'1'}->{'B'}->{'I'} = 2;
$hohStruct->{'2'}->{'A'}->{'I'} = 7;

That way, when you convert the root $hohStruct to hash (%$hohStruct), it will have two keys, (1 and 2), %$hohStruct->{'1'} will have 2 (A and B) %$hohStruct->{'1'}->{'A'} will have 2 (I and II), %$hohStruct->{'2'} will have just one (2), etc. You can loop and traverse through the structure similarly. Works identical to a filesystem directory tree. If your tree depth is fixed by convention and you know the structure, you can write nested for(each) loops to flatten the structure.

So in your case, I would put the 2nd domain name (www.abc.com) in the first node below the root, IP in the second level etc.

share|improve this answer
    
%hohStruct is an HoHoH. Not sure why, especially since you tell him to use an HoH. –  ikegami Mar 22 '13 at 21:18
    
what do you call a structure with a flexible node depth (like a FS directory) ? he may have a more complex structure than HoH, to store other fields –  amphibient Mar 22 '13 at 21:24
    
i think the term HoH is applicable regardless of the depth, IOW i don't think we need to reflect the depth of the structure in the plain English naming convention for what we call the thing. –  amphibient Mar 22 '13 at 21:25
    
every HoHoH is a HoH, but the converse isn't true –  ysth Mar 22 '13 at 21:28
1  
A $SantaHoHoHoHoliday just struct me... –  Kenosis Mar 22 '13 at 21:43

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.