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Is there an easy way to change $month = "July"; so that $nmonth = 7 (07 would be fine too). I could do a case statement, but surely there is already a function to convert? EDIT: I wish I could accept multiple answers, cause two of you basically gave me what I needed by your powers combined.

$nmonth = date('m',strtotime($month));

That will give the numerical value for $month. Thanks!

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15 Answers 15

up vote 26 down vote accepted


$date = 'July 25 2010';
echo date('d/m/Y', strtotime($date));

The m formats the month to its numerical representation there.

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Try this:

  $date = date_parse('July');
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This works with short forms "Jan", "Jul", "Oct" etc. too. – Mauro Vanetti Oct 10 '11 at 13:44
Yeah! it works.. – VKGS Mar 29 '12 at 12:35
perfect, thanks, this is the best solution, imo. – DrCord Jun 19 at 22:27
Kinda late but this should be the best answer. – rayVenues Aug 31 at 22:56

An interesting look here, the code given by kelly works well,

$nmonth = date("m", strtotime($month));

but for the month of february, it won't work as expected when the current day is 30 or 31 on leap year and 29,30,31 on non-leap year.It will return 3 as month number. Ex:

$nmonth = date("m", strtotime("february"));

The solution is, add the year with the month like this:

$nmonth = date("m", strtotime("february-2012"));

I got this from this comment in php manual.

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you can also use this one:

$month = $monthname = date("M", strtotime($month));
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$string = "July";
echo $month_number = date("n",strtotime($string));

returns '7' [month number]

Use date("m",strtotime($string)); for the output "08"

For more formats reffer this..

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$nmonth = date("m", strtotime($month));
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could you please format as code? – NikiC Jul 19 '10 at 18:01
don't know why this answer has been upvoted. it's so simple and clear.. – VKGS Mar 29 '12 at 12:49
I tested this solution and in some cases it returns the wrong number, e.g. '5' for 'April'. Anybody got an idea why? I'll have a closer look at it later. – pat Mar 31 '12 at 1:57
@longeasy Have you passed the month along with the year, have a look at my answer below. – VKGS Mar 31 '12 at 6:21

By using function generally it use while use plugin such datepicke,etc

function getMonthNumber($monthStr) {
$m = trim($monthStr);
switch ($m) {
    case "Jan":
        $m = "01";
    case "Feb":
        $m = "02";
    case "Mar":
        $m = "03";
    case "Apr":
        $m = "04";
    case "May":
        $m = "05";
    case "Jun":
        $m = "06";
    case "Jul":
        $m = "07";
    case "Aug":
        $m = "08";
    case "Sep":
        $m = "09";
    case "Oct":
        $m = "10";
    case "Nov":
        $m = "11";
    case "Dec":
        $m = "12";
return $m;
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It may be easiest to create a fake date so you can use the date function.

Excellent reference here:


$month = 7;

$tempDate = mktime(0, 0, 0, $month, 1, 1900); 

echo date("m",$tempDate);

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could you please format as code? – NikiC Jul 19 '10 at 18:01
Does that look ok? – Ben Guthrie Jul 19 '10 at 18:31
$monthname = date("F", strtotime($month));

F means full month name

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Maybe use a combination with strtotime() and date()?

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$monthNum = 5;
$monthName = date("F", mktime(0, 0, 0, $monthNum, 10));
echo $monthName; //output: May
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date("F", mktime(0, 0, 0, ($month)));

where, $month value will be 1 -> 12
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With PHP 5.4, you can turn Matthew's answer into a one-liner:

$date = sprintf('%d-%d-01', $year, date_parse('may')['month']);
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$date = 'Dec 25 2099'; echo date('d/m/Y', strtotime($date));

This returns 01/01/1970, that means php doesn't support all dates, it returns correct formatted date till 'Jan 19 2038' but 'Jan 20 2038' returns 01/01/1970.

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I know this might seem a simple solution, but why not just use something like this

<select name="month">
  <option value="01">January</option>
  <option value="02">February</option>
  <option selected value="03">March</option>

The user sees February, but 02 is posted to the database

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