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.

How do I delete array items I'm not interested in? If I would leave them—my memory would get overflowed with unnecessary items.

I need to implement in Perl one task. One file is being continuously filled with messages containing:

 "IP - URL"

I need to continuously read this file and measure if there were more than, say five, same IP - URL pairs in, say, a five second interval.

If I read the file from last position every five seconds and count duplicates then I can run into the situation when there were eight same line pairs during five seconds but during first read there were four of them and another four were during second read after five seconds. Thus I need to check the interval between last five duplicate lines.

What I can:

$pairs[$ip_url_line] = ['time-stamp',....,'time-stamp-N']

Then get last five array items for this hash key and calculate time shift. If it exceeds five seconds—do something.

Sure I can run through all hash elements and all array items in a loop and check whether it's older then 5 seconds but it's too resource-expensive.

share|improve this question

3 Answers 3

up vote 5 down vote accepted
  1. Store the timestamps per IP address in order. You were probably going to do that anyway.
  2. Whenever you do get a log line and you add a new entry, remove any stale entries right there, before you check how many entries there are. You can do it easily with a grep.
  3. Periodically (once a minute?) delete any IP addresses from the hash that have a last (newest) timestamp more than 5 minutes ago, because that means that all the entries are more than 5 minutes old and that address hasn't been seen for a while.

It's simple, it's easy to prove correct, it tries to avoid doing too much work at one time, and it keeps your tables from getting unreasonably large. With a 1-minute interval for step 3, no entry can possibly live more than 11 minutes. (If the first entry for 1.2.3.4 was added at 00:00:00, the latest an an entry could be added without shifting off the first one would be 00:04:59. The latest a step 3 sweep can run without deleting the whole array would then be 00:09:58; assuming that worst case, the next sweep would be at 00:10:58.) If you can keep 11 minutes of data in memory, you're golden.

share|improve this answer
1  
After discussing the idea with my colleague we've found even more efficient way: 1. every time entry being added to array - keep only last 10 array items. 2. Delete items older than 5 seconds. 3. If there are more than 10 items - do some action ++++ your idea once a minute cycle through all hash items. If the last array item time stamp older than 5 seconds - delete hash element. Solved! Thanks!!! Some times it's enough to tell somebody about your idea and way you want to implement it and you'll have an answer to your question))) –  Dmytro Leonenko Nov 18 '09 at 11:48
1  
You can tell that I let the timeframe slip from my mind when I was reading your question -- obviously I wrote it with "5 minutes" in mind. :) –  hobbs Nov 18 '09 at 12:11
#!/usr/bin/perl

use strict; use warnings;

my @ts;

for (1 .. 10) {
    push @ts, time;
    sleep rand 3;
}

my $now = time;
@ts = grep { $now - $_ <= 5 } @ts;

print $_, "\n" for @ts;
share|improve this answer

This sounds like you want a least-recently used (LRU) cache of some sort. Although I don't often recommend it, I think this is a job for a tied hash or array. You STORE new elements and as you do so, you clean out old elements. This takes the complexity out of the higher elements and hides it behind the normal array or hash accesses. Look at Tie::Cache for an example.

Alternately, you could keep some sort of FIFO where add new elements from one end of an array then check the other end for items to delete.

share|improve this answer

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.