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How to increment date with 1 (day/year) in PHP?

Im not really sure where to begin with this but im trying to make a year start at 1928 and stop at 1948 and for every year the years increment by one so since its 2012 the date ranges are 1928 - 1948 and for 2013 it would be 1929 - 1949 and 2014 would be 1930 - 1950 and so on...

right now i just have a basic loop for when to start and stop the years but its not too dynamic, like i said im pretty much at a blank on where to begin other then date('Y')+1.

for($i=1928;$i<=date('Y');$i++)
{
    echo '<option value='.$i.'>'.$i.'</option>';
    if($i == '1948'){break;}
}
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marked as duplicate by PeeHaa, DaveRandom, SomeKittens, hakre, Brendan Long Oct 1 '12 at 21:10

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

5 Answers 5

up vote 7 down vote accepted

So you want it to go between current year minus 84 and the current year minus 64? Use this code:

$firstYear = (int)date('Y') - 84;
$lastYear = $firstYear + 20;
for($i=$firstYear;$i<=$lastYear;$i++)
{
    echo '<option value='.$i.'>'.$i.'</option>';
}

Edit: updated for performance. Current year is determined before the loop (per Pitchinnate's comment).

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looks like the start year changes too in his example –  WayneC Oct 1 '12 at 20:46
    
Ahh yeah, thanks. Just updated my sample –  Adam Plocher Oct 1 '12 at 20:47
    
Thanks man, perfect! –  Suzed Oct 1 '12 at 20:59
1  
That is still having to evaluate the max and min every time through the loop ($currentYear - 64) –  Pitchinnate Oct 1 '12 at 21:02
    
Ahh, I suppose it is. I changed it again. Thanks –  Adam Plocher Oct 1 '12 at 21:04

It looks like you have a constant with how far back you want the date range to be from the current year that you can use to write a loop that will work for you.

Since it's 2012 now, and you want the range to start at 1928 when it's 2012, then we can use 2012 - 1928 = 84, so the year that starts the range should always be 84 less than the current year.

Therefore we could write code like:

$startingYear = date('Y') - 84;
$endingYear = $startingYear + 20;

for ($i = $startingYear;$i <= $endingYear;$i++)
{
    echo '<option value='.$i.'>'.$i.'</option>';
}
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for($i =0; $i <= 20 ;$i++)
{
    $year = date('Y') - 84 + $i;
    echo '<option value='.$year.'>'.$year.'</option>';
}
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Please add an explanation to your code. –  Code-Apprentice Oct 1 '12 at 20:49

Something like this?

$base_year = 2012;
$start_year = $base_year - 84;
$end_year = $start_year + 20;

for( $i = $start_year; $i <= $end_year; $i++)
{   
    echo '<option value='.$i.'>'.$i.'</option>';
}
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Try this:

$year = date('Y');
$add = $year - 2012;
$min = 1928 + $add;
$max = $min + 20;
for($i=$min;$i<=$max;$i++)
{
    echo '<option value='.$i.'>'.$i.'</option>';
}

I isn't a good idea to have date('Y') or any evaluations done on the for loop as it gets calculated every time through the loop. Article about this.

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