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Initially I am trying to create a function to display how many times does a specific day fall into particular date. for example how many times does Saturday fall into January 1st of certain year to certain year.

<?php 

$firstDate = '01/01/2000';
$endDate = '01/01/2012';
$newYearDate= '01/01';

# convert above string to time
$time1 = strtotime($firstDate);
$time2 = strtotime($endDate);
$newYearTime = strtotime($newYearDate);

for($i=$time1; $i<=$time2; $i++){
    $saturday = 0;
    $chk = date('D', $newYearTime); #date conversion
   if($chk == 'Sat' && $chk == $newYearTime){ 
      $saturday++;    
      } 
}
echo $saturday;

?>
share|improve this question
    
but it takes forever to loop –  George Lim Dec 25 '12 at 0:02
    
the way I would do it is 1. find the first week day you want starting from $firstDate 2. find the total number of days from the week day (not $firstDate) to $endDate 3. $total_number_of_days % 7 and that should be it. –  kennypu Dec 25 '12 at 0:11
    
@kennypu That doesn't seem right. If you add one day to the end day, your procedure will add 1 to the result, but the result usually shouldn't change. –  Barmar Dec 25 '12 at 0:14
    
@Barmar good point, I just thought that up real quick, didn't really think about it. I suppose dividing by 7, and losing the remainders will be the correct way. –  kennypu Dec 25 '12 at 0:16
    
Your loop is taking forever because you're incrementing one second at a time. Try doing it one day at a time with $i+=86400 instead. –  Barmar Dec 25 '12 at 0:16

2 Answers 2

You can only have a saturday to be in, say January 1, once in a year, so:

$firstDate = '01/01/2000';
$endDate = '01/01/2012';

$time1 = strtotime($firstDate);
$time2 = strtotime($endDate);

$saturday = 0;
while ($time1 < $time2) {

    $time1 = strtotime(date("Y-m-d", $time1) . " +1 year");
    $chk = date('D', $time1);
    if ($chk == 'Sat') {
        $saturday++;
    }

}

echo "Saturdays at 01/01/yyyy: " . $saturday . "\n";

The line I changed was:

$time1 = strtotime(date("Y-m-d", strtotime($time1)) . " +1 year");

to

$time1 = strtotime(date("Y-m-d", $time1) . " +1 year");

as $time1 is already in seconds from the epoch -- the format required for date.

share|improve this answer
    
hi Rubens, why is ur code takes forever to run? how can i make it faster? –  George Lim Dec 25 '12 at 1:16
    
@GeorgeLim sorry, I did not test it; I will try it here and edit with the adjustments; just a second! –  Rubens Dec 25 '12 at 2:12
    
@GeorgeLim I've added an edit, please, check it out. –  Rubens Dec 25 '12 at 2:23

strtotime gives you seconds since 1970-01-01. Since you're interested in days only, you can increment your loop by 86400 seconds per day to speed up your calculation

for($i = $time1; $i <= $time2; $i += 86400) {
...
}

There are several points

  • move $saturday out of your loop
  • check new year's eve with day of year
  • check the loop counter $i instead of $newYearTime

This should work

$firstDate = '01/01/2000';
$endDate = '01/01/2012';

# convert above string to time
$time1 = strtotime($firstDate);
$time2 = strtotime($endDate);

$saturday = 0;
for($i=$time1; $i<=$time2; $i += 86400){
    $weekday = date('D', $i);
    $dayofyear = date('z', $i);
    if($weekday == 'Sat' && $dayofyear == 0){ 
        $saturday++;    
    } 
}

echo "$saturday\n";
share|improve this answer
    
Thanks. but why is my counter still giving me zero, i have given the condition if it matches SAT and it is on 1st of January it should add one to the counter –  George Lim Dec 25 '12 at 0:28
    
@GeorgeLim Please see updated answer. –  Olaf Dietsche Dec 25 '12 at 0:32
    
Thanks for that Olaf, but there is a problem, if i change the date to 1900, the counter become lesser, why is that happen? it should give me more counter –  George Lim Dec 25 '12 at 0:51
    
@GeorgeLim When I start from 2000-01-01, I get 3. From 1900-01-01, it gives 16. –  Olaf Dietsche Dec 25 '12 at 0:59
    
does it matter if i use different date format. my computer is giving me less counter.when i choose below 1900 –  George Lim Dec 25 '12 at 1:15

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