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I am building a a script to detect whether or not certain dates fall on a weekend every year.

The 25th and 26th are bank holidays, and if they fall on a weekend the next weekday is a substitute for that bank holiday and the remaining weekdays are working days.

Example: if the 25th is a saturday and 26th is a sunday, 27th and 28th will be bank holidays and then 29th, 30th, 31st are working days

if the 25th is a sunday, 26th and 27th, will then be bank holidays and 28th, 29th, 30th will be working days and the 31sy will be a saturday.

Here are my dates:

date('25-12-Y');
date('26-12-Y');
date('27-12-Y');
date('28-12-Y');
date('29-12-Y');
date('30-12-Y');
date('31-12-Y');

The code i have created is this: (please note the $getyear var is to test different years)

function isWeekend($date) {
    return (date('N', strtotime($date)) >= 6);
}
$getyear = 2013;

echo '25 ';
if (isWeekend(date('25-12-'.$getyear))){
   echo 'weekend'; 
} else {
    echo 'bh';
};
echo '<br>';
echo '26 ';
if (isWeekend(date('26-12-'.$getyear ))){
    echo 'weekend';
} else {
    echo 'bh';
};
echo '<br>';
echo '27 ';
if (isWeekend(date('27-12-'.$getyear ))){
    echo 'weekend'; 
} else { 
    echo 'leave';
};
echo '<br>';
echo '28 ';
if (isWeekend(date('28-12-'.$getyear ))){
    echo 'weekend'; 
} else {
    echo 'leave';
};
echo '<br>';
echo '29 ';
if (isWeekend(date('29-12-'.$getyear ))){
    echo 'weekend'; 
} else {
    echo 'leave';
};
echo '<br>';
echo '30 ';
if (isWeekend(date('30-12-'.$getyear ))){
    echo 'weekend'; 
} else {
    echo 'leave';
};
echo '<br>';
echo '31 ';
if (isWeekend(date('31-12-'.$getyear ))){
    echo 'weekend'; 
} else {
    echo 'leave';
};
echo '<br>';

I know this is probably not best practice, so i am looking for an alternative way to approach this.

share|improve this question
    
You can get the "number of the day" from a date in PHP. 0 is Sunday, 1 is Monday and so on. cfr this page for more info – Laurent S. Nov 14 '13 at 11:18
up vote 1 down vote accepted
$dates = array();
$christmas_days = array(25, 26);

$year = 2013;

for ($day = 25; $day <= 31; $day++)
{
    $dates[$day] = date($day . '-12-' . $year);
}



foreach ($dates as $day => $date)
{
    echo $day . ' ';
    if (isWeekend($date))
    {
        echo 'weekend';
        if (in_array($day, $christmas_days))
        {
            $bh_on_weekend++;
        }
    } 
    else
    {
        if ($bh_on_weekend > 0)
        {
            echo 'bh';
            $bh_on_weekend--;
        } 
        else
        {
            if (in_array($day, $christmas_days))
            {
                echo 'bh';
            } 
            else
            {
                echo 'leave';
            }
        }
    }
    echo '<br>';
}

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

tried to do on the DRY way to repeat as less as possible. date creation is a bit more dynamical. hope it helps you somehow or give an idea how to make it different.

output for 2021

25 weekend
26 weekend
27 bh
28 bh
29 leave
30 leave
31 leave
share|improve this answer
    
thanks for the answer! i only get 1 bh when i change the year to 2015. is this the same for you? – danyo Nov 14 '13 at 11:50
    
i think i generally missunderstood your question a bit. i didnt notice the fact about 25/26 on weekend.. to get the bh on the next working days. ll try to work it out soon – KURN Nov 14 '13 at 12:14
    
thanks KURN, that would be a great help! – danyo Nov 14 '13 at 12:31
    
ok this is a possible solution just quick implemented. again you need to refactor to keep DRY. hope its the output you expected – KURN Nov 14 '13 at 12:53

You should use Carbon to abstract all of that logic.

You can then do:

$dt = Carbon::create(2013, 12, 25);
$dt->isWeekday(); // bool

The Carbon documentation is really good, so I'm sure you will be able to find what you're looking for.

share|improve this answer
    
OP already knows if specified date it on weekend... – Glavić Nov 14 '13 at 12:07

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