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Does anyone have a PHP snippet to calculate the next business day for a given date? How does, for example, YYYY-MM-DD need to be converted to find out the next business day?

Example: For 03.04.2011 (DD-MM-YYYY) the next business day is 04.04.2011. For 08.04.2011 the next business day is 11.04.2011.

This is the variable containing the date I need to know the next business day for

$cubeTime['time'];

Variable contains: 2011-04-01 result of the snippet should be: 2011-04-04

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1  
    
a detail blog is here: goo.gl/YOsfPX –  Suresh Kamrushi Sep 4 at 5:57

7 Answers 7

up vote 19 down vote accepted

This finds the next weekday from a specific date (not including Saturday or Sunday):

echo date('Y-m-d', strtotime('2011-04-05 +1 Weekday'));

You could also do it with a date variable of course:

$myDate = '2011-04-05';
echo date('Y-m-d', strtotime($myDate . ' +1 Weekday'));

Although the OP mentioned "I dont need to consider holidays", if you DO happen to want to ignore holidays, just remember - "Holidays" is just an array of whatever dates you don't want to include and differs by country, region, company, person...etc.

Simply put the above code into a function that excludes/loops past the dates you don't want included.

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Perfect, works like a charm! Thank you alot! –  Marko Apr 4 '11 at 5:22
    
This isn't quite right. The question asked for next business day of a date, this is just the next weekday. What about bank holidays, christmas etc? –  John Hunt Feb 19 '13 at 11:47
    
@John Hunt - "holidays" is just an array of whatever dates you don't want to include and differs by country, region, company, person...etc. Simply put this into a function that excludes/loops past the dates you don't want included... it's quite easy to increment - just use $i instead of 1. –  Dave Feb 19 '13 at 15:31
    
@JohnHunt - btw, the OP had already mentioned "I dont need to consider holidays." prior to my answer (see his comment on middaparkas answer) –  Dave Feb 19 '13 at 15:35
    
Here is a working example of how to exclude public/bank/national holidays: codepad.viper-7.com/NamlGN –  MacroMan Nov 5 at 11:31

What you need to do is:

  1. Convert the provided date into a timestamp.

  2. Use this along with the or w or N formatters for PHP's date command to tell you what day of the week it is.

  3. If it isn't a "business day", you can then increment the timestamp by a day (86400 seconds) and check again until you hit a business day.

N.B.: For this is really work, you'd also need to exclude any bank or public holidays, etc.

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I dont need to consider holidays. –  Marko Apr 3 '11 at 19:52
function next_business_day($date) {
  $add_day = 0;
  do {
    $add_day++;
    $new_date = date('Y-m-d', strtotime("$date +$add_day Days"));
    $new_day_of_week = date('w', strtotime($new_date));
  } while($new_day_of_week == 6 || $new_day_of_week == 0);

  return $new_date;
}

This function should ignore weekends (6 = Saturday and 0 = Sunday).

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This function will calculate the business day in the future or past. Arguments are number of days, forward (1) or backwards(0), and a date. If no date is supplied todays date will be used:

// returned $date Y/m/d
function work_days_from_date($days, $forward, $date=NULL) 
{
    if(!$date)
    {
        $date = date('Y-m-d'); // if no date given, use todays date
    }

    while ($days != 0) 
    {
        $forward == 1 ? $day = strtotime($date.' +1 day') : $day = strtotime($date.' -1 day');
        $date = date('Y-m-d',$day);
        if( date('N', strtotime($date)) <= 5) // if it's a weekday
        {
          $days--;
        }
    }
    return $date;
}
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I stumbled apon this thread when I was working on a Danish website where I needed to code a "Next day delivery" PHP script.

Here is what I came up with (This will display the name of the next working day in Danish, and the next working + 1 if current time is more than a given limit)

$day["Mon"] = "Mandag"; 
$day["Tue"] = "Tirsdag";
$day["Wed"] = "Onsdag";
$day["Thu"] = "Torsdag";
$day["Fri"] = "Fredag";
$day["Sat"] = "Lørdag";
$day["Sun"] = "Søndag";

date_default_timezone_set('Europe/Copenhagen');

$date = date('l');
$checkTime = '1400';
$date2 = date(strtotime($date.' +1 Weekday'));
if( date( 'Hi' ) >= $checkTime) {
$date2 = date(strtotime($date.' +2 Weekday'));
}
if (date('l') == 'Saturday'){
$date2 = date(strtotime($date.' +2 Weekday'));
}
if (date('l') == 'Sunday') {
$date2 = date(strtotime($date.' +2 Weekday'));
}
echo '<p>Næste levering: <span>'.$day[date("D", $date2)].'</span></p>';

As you can see in the sample code $checkTime is where I set the time limit which determines if the next day delivery will be +1 working day or +2 working days.

'1400' = 14:00 hours

I know that the if statements can be made more compressed, but I show my code for people to easily understand the way it works.

I hope someone out there can use this little snippet.

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For UK holidays you can use

https://www.gov.uk/bank-holidays#england-and-wales

The ICS format data is easy to parse. My suggestion is...

# $date must be in YYYY-MM-DD format
# You can pass in either an array of holidays in YYYYMMDD format
# OR a URL for a .ics file containing holidays
# this defaults to the UK government holiday data for England and Wales
function addBusinessDays($date,$numDays=1,$holidays='') {
    if ($holidays==='') $holidays = 'https://www.gov.uk/bank-holidays/england-and-wales.ics';

    if (!is_array($holidays)) {
        $ch = curl_init($holidays);
        curl_setopt($ch,CURLOPT_RETURNTRANSFER,true);
        $ics = curl_exec($ch);
        curl_close($ch);
        $ics = explode("\n",$ics);
        $ics = preg_grep('/^DTSTART;/',$ics);
        $holidays = preg_replace('/^DTSTART;VALUE=DATE:(\\d{4})(\\d{2})(\\d{2}).*/s','$1-$2-$3',$ics);
    }

    $addDay = 0;
    while ($numDays--) {
        while (true) {
            $addDay++;
            $newDate = date('Y-m-d', strtotime("$date +$addDay Days"));
            $newDayOfWeek = date('w', strtotime($newDate));
            if ( $newDayOfWeek>0 && $newDayOfWeek<6 && !in_array($newDate,$holidays)) break;
        }
    }

    return $newDate;
}
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See the example below:

$startDate = new DateTime( '2013-04-01' );    //intialize start date
$endDate = new DateTime( '2013-04-30' );    //initialize end date
$holiday = array('2013-04-11','2013-04-25');  //this is assumed list of holiday
$interval = new DateInterval('P1D');    // set the interval as 1 day
$daterange = new DatePeriod($startDate, $interval ,$endDate);
foreach($daterange as $date){
if($date->format("N") <6 AND !in_array($date->format("Y-m-d"),$holiday))
$result[] = $date->format("Y-m-d");
}
echo "<pre>";print_r($result);

For more info: http://goo.gl/YOsfPX

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