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I have the date range (two UNIX timestamps) and I need to find point(s) at 23:59:59 if exists. How I can do it with Perl?

P.S. I think for() is not good idea because I can have very big range. Anything another variants?

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Do you mean epoch seconds? – DVK Dec 14 '10 at 15:01

4 Answers 4

up vote 5 down vote accepted

I would use Date::Calc. Suppose your two timestamps are located in $ts1 and $ts2:

use Date::Calc qw(Time_to_Date Date_to_Time Delta_Days Add_Delta_Days);

my @date1 = (Time_to_Date($ts1))[0..2];
my @date2 = (Time_to_Date($ts2))[0..2];
my @midnights;

for (my $i = 0; $i < Delta_Days(@date1, @date2); ++$i) {
    push @midnights, Date_to_Time(Add_Delta_Days(@date1, $i), 23, 59, 59);

@midnights now contains the UNIX timestamps (epoch seconds) of all 23:59:59 point(s) between the two given timestamps.

Disclaimer: Of course you could also do it with DateTime.

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Thanks, It's what I need! – VeroLom Dec 15 '10 at 8:13

use DateTime;

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That's a generic algorithm. X is the 1st timestamp Y is the last one

1) Get the first change date, Z.

If Z > Y , there is no change.

2) Get the last change date, W

   If W = Z, there is only one change date.

3) Get the range of dates, R. Considering the range of one day is D

   R = W - Z .. The number of points will be the integer of (W - Z)/D
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Here's an example I scrapped together based on my semi-recent knowledge of the UNIX timestamp (school is such a long time ago...)

while (entry) {
   if ((timestamp-1) % 86400 == 0) {
   } else {

However, like everybody else, I would suggest using other tools to do that since my example does not take leap seconds into account and I highly doubt it's POSIX-compliant. More info here.

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