Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I am trying to create a function that determines the end date of an advert based on the start date and duration parameter passed by a user.

Example:

If user specify start date as 5th June 2013 and duration as 45 days:

$ad_startdate = '2013-06-05';
$ad_duration = 45;

The function should automatically get the end date which should be 20th July 2013:

$ad_end_date = '2013-07-20';

Pls note that to make it easy to generate the end date, I've assigned the variable for months a constant value which will be 30 days. Whether it's february or november or a leap year, every month has a fixed variable value of 30.

I was trying to come up with something around this but just cant figure it out.

$ad_startdate = '2013-06-05';
$ad_duration = 45;

// End date should be 2013-07-20


function getAdvertEndDate ($ad_startdate, $ad_duration){

    //Add up start date with duration
    $end_date = strtotime($ad_startdate) + $ad_duration;

return $end_date;
}

I have browsed through SO questions just to see if anyone has something around this but the answered ones are so different from mine challenge. Would be very grateful getting help with this.

share|improve this question
    
@everyone who offered an answer or comment to help, Thanks! Very grateful... – John May 31 '13 at 10:00
up vote 1 down vote accepted
function getAdvertEndDate ($ad_startdate, $ad_duration){
    return date("Y-m-d", strtotime($ad_startdate) + ($ad_duration * 86400));
}

Use like so:

$endDate = getAdvertEndDate("2013-04-08", 40);
share|improve this answer
    
works perfectly... Thanks a million! – John May 31 '13 at 9:59
    
This may produce unexpected results. strtotime may get confused using the format provided, read the notes on php.net/strtotime – Phil Cross May 31 '13 at 10:02
    
Beware of adding "days * 86400" as not all days are 86400 (=24 hours) long! It may produce unexpected results in some cases (at least twice per year) I strongly recommend a solution like Andrey Volk's (or singh's) – Qualcuno Jun 5 '13 at 22:41

PHP >= 5.3.0 Object oriented style

$date = DateTime::createFromFormat('Y-m-d', '2013-06-05');
$date->add(new DateInterval('P45D'));
echo $date->format('Y-m-d') . "\n";

Or Procedural style

$date = date_create('2013-06-05');
date_add($date, date_interval_create_from_date_string('45 days'));
echo date_format($date, 'Y-m-d');

Result:

2013-07-20

Code:

function getAdvertEndDate ($ad_startdate, $ad_duration){
    $date = DateTime::createFromFormat('Y-m-d', $ad_startdate);
    $date->add(new DateInterval('P'.$ad_duration.'D'));
    return $date->format('Y-m-d');
}

For PHP < 5.3 use strtotime():

function getAdvertEndDate ($ad_startdate, $ad_duration){
    //Add up start date with duration
    return date('Y-m-d', strtotime($ad_startdate. " + $ad_duration days"));
}    

echo getAdvertEndDate('2013-06-05', '45'); // 2013-07-20

http://www.php.net/manual/en/datetime.add.php

share|improve this answer

Try this code

$date = '2013-06-05'; 
$date1 = strtotime($date);
$date2 = strtotime('+45 day',$date1);
echo date('Y-m-d', $date2);
share|improve this answer

The native strtotime() function does this work.

share|improve this answer

Use this:

$ad_startdate = '2013-06-05';
$ad_duration = 45;

$dateArray = explode('-', $ad_startdate);

$newDate = date('Y-m-d', strtotime('+ ' . $ad_duration . ' days', mktime(0, 0, 0, $dateArray[1], $dateArray[2], $dateArray[0]));

If you're using strtotime, you cant use the date format you've specified, as if using - seperators, strtotime() expects the format differently.

From PHP.net

Note:
Dates in the m/d/y or d-m-y formats are disambiguated by looking at the separator between the various components: if the separator is a slash (/), then the American m/d/y is assumed; whereas if the separator is a dash (-) or a dot (.), then the European d-m-y format is assumed.

To avoid potential ambiguity, it's best to use ISO 8601 (YYYY-MM-DD) dates or DateTime::createFromFormat() when possible.
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.