223

I have a date returned as part of a mySQL query in the form 2010-09-17

I would like to set the variables $Date2 to $Date5 as follows:

$Date2 = $Date + 1

$Date3 = $Date + 2

etc..

so that it returns 2010-09-18, 2010-09-19 etc...

I have tried

date('Y-m-d', strtotime($Date. ' + 1 day'))

but this gives me the date BEFORE $Date.

What is the correct way to get my Dates in the format form 'Y-m-d' so that they may be used in another query?

462

All you have to do is use days instead of day like this:

<?php
$Date = "2010-09-17";
echo date('Y-m-d', strtotime($Date. ' + 1 days'));
echo date('Y-m-d', strtotime($Date. ' + 2 days'));
?>

And it outputs correctly:

2010-09-18
2010-09-19
| improve this answer | |
  • 7
    It outputs correctly using just day as well... date("Y-m-d", strtotime('2010-09-17 + 1 day')) -> 2010-09-18, date("Y-m-d", strtotime('2010-09-17 + 2 day')) -> 2010-09-19 – Daniel Vandersluis Sep 16 '10 at 14:50
  • Just tried it this way and it worked. I still have no idea why I got a value one day before my start date when I initially tried it. – Istari Sep 16 '10 at 15:30
  • What if I had a variable for de number of days to add? – Carlos Martins Jun 14 '14 at 10:53
  • 3
    @Carlos echo date("Y-m-d", strtotime($Date.' + '.$variable.' days')); – Pradeep Kumar Prabaharan Feb 4 '16 at 10:31
  • Nope this method doesn't works at all. It is returning some date of 2004. – gegobyte Feb 5 '16 at 10:16
85

If you're using PHP 5.3, you can use a DateTime object and its add method:

$Date1 = '2010-09-17';
$date = new DateTime($Date1);
$date->add(new DateInterval('P1D')); // P1D means a period of 1 day
$Date2 = $date->format('Y-m-d');

Take a look at the DateInterval constructor manual page to see how to construct other periods to add to your date (2 days would be 'P2D', 3 would be 'P3D', and so on).

Without PHP 5.3, you should be able to use strtotime the way you did it (I've tested it and it works in both 5.1.6 and 5.2.10):

$Date1 = '2010-09-17';
$Date2 = date('Y-m-d', strtotime($Date1 . " + 1 day"));
// var_dump($Date2) returns "2010-09-18"
| improve this answer | |
  • Sorry Daniel, but the webserver runs php 5.2.6, so this won't work – Istari Sep 16 '10 at 14:27
  • 2
    DateTime::construct uses the same mechanism as strtotime to parse the date, so you can also do new DateTime("+1 day $date") which would not require 5.3 – Gordon Sep 16 '10 at 14:37
  • I didn't mean to downvote this, but somehow I did =/ – Steven Dec 22 '17 at 17:17
  • This is the actual answer for php 5.5+ – TheLegendaryCopyCoder Dec 8 '18 at 16:41
29

From PHP 5.2 on you can use modify with a DateTime object:

http://php.net/manual/en/datetime.modify.php

$Date1 = '2010-09-17';
$date = new DateTime($Date1);
$date->modify('+1 day');
$Date2 = $date->format('Y-m-d');

Be careful when adding months... (and to a lesser extent, years)

| improve this answer | |
  • accepted answer just gives answer for 15000+ days where this answer gives answer when you add 25000+ days too.. – Pradeep Kumar Prabaharan Feb 4 '16 at 11:07
  • You can also query this on a DateTimeImmutable() and you get a modified copy without risk of altering the original. – Xavi Montero May 7 '18 at 0:53
17

Here is a small snippet to demonstrate the date modifications:

$date = date("Y-m-d");
//increment 2 days
$mod_date = strtotime($date."+ 2 days");
echo date("Y-m-d",$mod_date) . "\n";

//decrement 2 days
$mod_date = strtotime($date."- 2 days");
echo date("Y-m-d",$mod_date) . "\n";

//increment 1 month
$mod_date = strtotime($date."+ 1 months");
echo date("Y-m-d",$mod_date) . "\n";

//increment 1 year
$mod_date = strtotime($date."+ 1 years");
echo date("Y-m-d",$mod_date) . "\n";
| improve this answer | |
8

You can also use the following format

strtotime("-3 days", time());
strtotime("+1 day", strtotime($date));

You can stack changes this way:

strtotime("+1 day", strtotime("+1 year", strtotime($date)));

Note the difference between this approach and the one in other answers: instead of concatenating the values +1 day and <timestamp>, you can just pass in the timestamp as the second parameter of strtotime.

| improve this answer | |
5

Using a variable for Number of days

$myDate = "2014-01-16";
$nDays = 16;
$newDate = strtotime($myDate . '+ '.$nDays.'days');
echo newDate('d/m/Y', $soma); //format new date 
| improve this answer | |
5

Here is the simplest solution to your query

$date=date_create("2013-03-15"); // or your date string
date_add($date,date_interval_create_from_date_string("40 days"));// add number of days 
echo date_format($date,"Y-m-d"); //set date format of the result
| improve this answer | |
2

Here has an easy way to solve this.

<?php
   $date = "2015-11-17";
   echo date('Y-m-d', strtotime($date. ' + 5 days'));
?>

Output will be:

2015-11-22

Solution has found from here - How to Add Days to Date in PHP

| improve this answer | |
0

All have to use bellow code:

$nday = time() + ( 24 * 60 * 60);    
echo 'Now:       '. date('Y-m-d') ."\n";    
echo 'Next Day: '. date('Y-m-d', $nday) ."\n";
| improve this answer | |
  • 1
    You shouldn't do it this way, eventually you will have problems with leap seconds – Nathan Aug 1 '13 at 6:07

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