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This function seems to only return false. Are any of you getting the same? I'm sure I'm overlooking something, however, fresh eyes and all that ...

 function isweekend($date){
  $date = strtotime($date);
  $date = date("l", $date);
  $date = strtolower($date);
  echo $date;
  if($date == "saturday" }|| $date == "sunday"){
   return "true";
  } else {
   return "false";
  }
 }

I call the function using the following:

$isthisaweekend = isweekend('2011-01-01')
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11  
Your true and false should not be quoted as strings. Also your code should give a parse error and not even run at all because of the stray } in your if. –  BoltClock Jan 26 '11 at 7:54

5 Answers 5

up vote 66 down vote accepted

If you have PHP >= 5.1:

function isWeekend($date) {
    return (date('N', strtotime($date)) >= 6);
}

otherwise:

function isWeekend($date) {
    $weekDay = date('w', strtotime($date));
    return ($weekDay == 0 || $weekDay == 6);
}
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3  
If you use PHP < 5 then using return date('w', strtotime($date)) % 6 == 0 is a little shorter. –  Jim Jan 16 '12 at 14:25
3  
While that does the same thing, I'd say the explicit check is more obvious for someone reading the code. –  ThiefMaster Jan 16 '12 at 15:21

Here:

function isweekend($year, $month, $day)
{
    $time = mktime(0, 0, 0, $month, $day, $year);
    $weekday = date('w', $time);
    return ($weekday == 0 || $weekday == 6);
}
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The working version of your code (from the errors pointed out by BoltClock):

<?php
$date='2011-01-01';
        $date1 = strtotime($date);
        $date2 = date("l", $date1);
        $date3 = strtolower($date2);
        echo $date3;
        if(($date3 == "saturday" )|| ($date3 == "sunday")){
            echo "true";
        } else {
            echo "false";
        }

?>

The stray "{" is difficult to see, especially without a decent PHP editor (in my case). So I post the corrected version here.

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You should also not return quoted true or false - or better still, just return the condition. –  alex Jan 26 '11 at 8:07
    
@alex: I use "echo" to confirm the result, so.. that's it. Thanks for the advice. –  Hoàng Long Jan 26 '11 at 8:13
7  
Your variable names suck. –  ThiefMaster Jan 26 '11 at 9:01
    <?php
$strt_date = date_create('2013-11-11');
$end_date = date_create('2013-11-18');
date_sub($strt_date, date_interval_create_from_date_string('1 day'));
$interval = date_diff($strt_date, $end_date);
$num=$interval->format('%a');
for($i=0;$i<$num;$i++)
{
date_add($strt_date, date_interval_create_from_date_string('1 day'));
$next_day=date_format($strt_date, 'd-m-Y');
echo "<br>";

$new_date = new DateTime($next_day);
$weeknum=$new_date->format('w');
if(($weeknum!=0)&&($weeknum!=6))
{
echo "not a holiday :$next_day ";
}
}
    ?>
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For guys like me, who aren't minimalistic, there is a PECL extension called "intl". I use it for idn conversion since it works way better than the "idn" extension and some other n1 classes like "IntlDateFormatter".

Well, what I want to say is, the "intl" extension has a class called "IntlCalendar" which can handle many international countries (e.g. in Saudi Arabia, sunday is not a weekend day). The IntlCalendar has a method IntlCalendar::isWeekend for that. Maybe you guys give it a shot, I like that "it works for almost every country" fact on these intl-classes.

EDIT: Not quite sure but since PHP 5.5.0, the intl extension is bundled with PHP (--enable-intl).

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