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Let's say I have a variable $day. It can be anything from Monday to Sunday. How could I use that $day variable and increment it by 1 day?

Let's say, I have $day = "Friday". How do I increment it to a Saturday?

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8 Answers 8

up vote 2 down vote accepted

Use date() and strtotime() adding '+1 day' to your string:

<?php
$day = "friday";
$day = date('D',strtotime($day.'+1 day'));
echo $day; // "Saturday"
?>
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Here's a fairly clean solution, without using an array:

$day = "Monday"
$NextDay = strtotime("+1 day", strtotime($day));
echo date("l", $NextDay);

Combined Solution:

$day = "Monday";
echo date("l", strtotime("+1 day", strtotime($day)));

Keep in mind, strtotime("Monday") will return the next monday from the current date. Cheers!

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Use an array. There is little chances that weekdays will ever change in the near future (sarcastic)

// $weekday can be a string or a numeric value (1=Monday, 0,7=Sunday)
function getNextDayOfWeek($weekday, $count = 1) {
    static $weekdays = array('Sunday', 'Monday', 'Tuesday', 'Wednesday', 'Thursday', 'Friday', 'Saturday');

    if (!is_numeric($weekday)) {
        $weekday = (int) array_search(ucfirst(strtolower($weekday)), $weekdays);
    }
    // make $count positive!
    if ($count < 0) $count = ($count % -7) + 7;

    return $weekdays[($weekday + $count) % 7];
}

If you're worried about localization, just have translation arrays :)

$weekdays_fr = array('Monday' => 'lundi', 'Tuesday' => 'mardi', ...);

$nextDay_fr = $weekdays_fr[getNextDayOfWeek('Friday')];  //= 'samedi'

** Edit **

Here is another way using built-in PHP functions, but I'd still prefer an array solution.

$weekday = 'Friday';

$nextDay = strftime('%A', strtotime("{$weekday} +1 day"));
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You'd better use an array for that:

$your_integer = 10;
$weekdays = array('Monday', 'Tuesday', 'Wednesday', 'Thursday', 'Friday', 'Saturday', 'Sunday');
print($weekdays[$your_integer % 7]);

By incrementing $your_integer, you will loop through the $weekdays-array; the modulo operation (%) keeps you within the correct range, so 10 % 7 will yield 3, thus the output will be Thursday.

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Maybe a bit simpler to use repeatedly:

$nextday = array(
    "Monday" => "Tuesday",
    "Tuesday" => "Wednesday",
    "Wednesday" => "Thursday",
    "Thursday" => "Friday",
    "Friday" => "Saturday",
    "Saturday" => "Sunday",
    "Sunday" => "Monday",
);

$day = $nextday[$day];
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what if the requirement changes and the user wants 2 days from any given day? –  Yanick Rochon Nov 9 '12 at 2:13
    
@YanickRochon Then we have little hope. Your answer would be better in that case. –  irrelephant Nov 9 '12 at 2:15

Good exercise in thought on rotating patterns in arrays, but just in case you're trying to replicate time functions, don't. PHP has a neat strtotime() one that does wonders.

$ts = strtotime( "+3 day", strtotime("December 30, 2007"));
echo date("r", $ts );

That gives you:

Wed, 02 Jan 2008 00:00:00 -0500

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It would be better to use an array. But this would work too.

$day = "Friday";
$next_day = date('l', strtotime("{$day} +1 DAY"));
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see strtotime() and strftime()

$time = strtotime(<your_date_as_a_string>) + (60*60*12); // seconds in 12 hours
$date = strftime(<format_you want>, $time); // or date(<same params>)
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