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If I have two dates 20-4-2010 and 22-4-2010 in two text box and I want the dates to be like this 20, 21, 22. How do I get that ?

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3 Answers

up vote 11 down vote accepted

I am pretty sure this has been answered a quadrillion times before, but anyway:

$start = strtotime('20-04-2010 10:00');
$end   = strtotime('22-04-2010 10:00');
for($current = $start; $current <= $end; $current += 86400) {
    echo date('d-m-Y', $current);
}

The 10:00 part is to prevent the code to skip or repeat a day due to daylight saving time.

By giving the number of days:

for($i = 0; $i <= 2; $i++) {
    echo date('d-m-Y', strtotime("20-04-2010 +$i days"));
}

With PHP5.3

$period = new DatePeriod(
    new DateTime('20-04-2010'),
    DateInterval::createFromDateString('+1 day'),
    new DateTime('23-04-2010') // or pass in just the no of days: 2
);

foreach ( $period as $dt ) {
  echo $dt->format( 'd-m-Y' );
}
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+1 The Bestest Reply... –  OM The Eternity Apr 29 '10 at 12:16
    
+1 for the Date* classes, -1 for calling it "fancy" and "overkill", +1 for giving something other than the oft-quoted strtotime solution. :) –  salathe Apr 29 '10 at 12:31
    
@gordon can you explain why setting the 10:00am time there allows those to account for DST appropriately? For reference why I ask, see: stackoverflow.com/questions/15302469/… –  Shackrock Mar 9 '13 at 12:25
1  
@Shackrock because eval.in/12288 –  Gordon Mar 9 '13 at 13:27
1  
@Shackrock you are welcome. Note that it does not have to be 10:00 specifically. It just should not be a time that would cause a day change after applying or removing DST. –  Gordon Mar 9 '13 at 14:13
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You can use mktime().

mktime() is useful for doing date arithmetic and validation, as it will automatically calculate the correct value for out-of-range input.

If you increment the day number you get a valid date back, even if you go past the end of the month:

<?php
$day= 25;
$dateEnd = mktime(0,0,0,5,3,2010);
do {
    $dateCur = mktime(0,0,0,4,$day,2010);
    $day++;
    print date( 'd-m-y', $dateCur) .'<br>';
} while ($dateCur < $dateEnd);

Output:

25-04-10
26-04-10
27-04-10
28-04-10
29-04-10
30-04-10
01-05-10
02-05-10
03-05-10
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You can do:

$start = strtotime("2010-04-20"); // get timestamp for start date.
$end = strtotime("2010-04-22");   // get timestamp for end date.

// go from start timestamp to end timestamp adding # of sec in a day.
for($t=$start;$t<=$end;$t+=86400) {
        // get the date for this timestamp.
        $d = getdate($t);

        // print the date.
        echo $d['mday'].'-'.$d['mon'].'-'.$d['year']."\n";
}

Output:

20-4-2010
21-4-2010
22-4-2010
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