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So, we have the following code:

date("Y-m-d",time()+60*365*24*60*60);

The ideea is that I have to make a prognosis and I have the result in number of days which I have to add to the current date. The prognosis is for the year 2060 or past it...in an 64bit environment that works, but on 32bit not so much :)

any ideeas?

10x.

LE:

Ok so I've tried :

$date = new DateTime();
// for PHP 5.3
$date->add(new DateInterval('P20000D'));
// for PHP 5.2
$date->modify('+20000day');
echo $date->format('Y-m-d') . "\n";

and it works

share|improve this question
    
There shouldn't be any limitation on the size of the number, large ints will simply overflow to floats. Have you tested whether date handles large numbers correctly? (Works for me, don't know if it wouldn't on a 32bit system.) – deceze Jun 10 '11 at 8:50
    
@deceze Just tried and I got Fatal error: Maximum execution time of 90 seconds exceeded in - on line 4 – Arvin Jun 10 '11 at 8:52
    
@deceze: it wouldn't :) tested it on 64 and 32 bit platforms, on 64 works on 32 not :) – Catalin Jun 10 '11 at 8:56
    
@arvin: on my 32bit it simply overflows, no fatal error – Catalin Jun 10 '11 at 8:56
up vote 1 down vote accepted

See this:

http://www.infernodevelopment.com/forum/Thread-Solution-2038-PHP-Date-Bug-Y2-038K-UNIX-TIMESTAMP-BUG

<?php

// Specified date/time in your computer's time zone.
$date = new DateTime('9999-04-05');
echo $date->format('Y-M-j') ."";

// Specified date/time in the specified time zone.
$date = new DateTime('2040-09-08', new DateTimeZone('America/New_York'));
echo $date->format('n / j / Y') . "";

// INPUT UNIX TIMESTAMP as float or bigint from database
// Notice the result is in the UTC time zone.
$r = mysql_query("SELECT date FROM test_table");
$obj = mysql_fetch_object($r);

$date = new DateTime('@'.$obj->date); // a bigint(8) or FLOAT
echo $date->format('Y-m-d H:i: sP') ."";

// OR a constant greater than 2038:
$date = new DateTime('@2894354000'); // 2061-09-19 
echo $date->format('Y-m-d H:i: sP') ."";
?>
share|improve this answer

this is working on my 32bit system:

$date = new DateTime("2071-05-26");
echo $date->format('Y-m-d H:i:s');

//i saw this in this question

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If you are adding full years/days/months, I suppose you could use simple arithmetic on them individually and then use checkdate() (it claims to work up to year 32767) to validate the result

$date = array('Y' => date('Y'), 'm' => date('n'), 'd' => date('j'));
// +60 years
$date['Y'] += 60;
if (checkdate($date['m'], $date['d'], $date['Y'])) {
   $fulldate = implode('-', $date);
}
share|improve this answer
<?php
    // A dirty hack
    function bigdate_to_string($t_64bit)
    {
        $t_base = strtotime('2038-01-01 00:00:00 +0000');
        $t_32bit = $t_64bit - $t_base;
        return date("Y", $t_32bit) + 68 . date("-m-d H:i:s", $t_32bit);
    }

    $t_64bit = 130 * 365 * 86400; // November 30, 2099 UTC
    echo bigdate_to_string($t_64bit) . "\n";
?>

Output:

susam@swift:~$ php datehack.php
2099-11-30 05:30:00

I am subtracting 68 years from the time and adding it back again while printing the formatted output.

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