I have this PHP code:

$monthNum = sprintf("%02s", $result["month"]);
$monthName = date("F", strtotime($monthNum));

echo $monthName;

But it's returning December rather than August.

$result["month"] is equal to 8, so the sprintf function is adding a 0 to make it 08.

  • 6
    Unless you convert this to a full date (08-21-2013), or something that would closely resemble a date strtotime has no idea what your trying to do. Alternatively just use a switch for something like this. – phpisuber01 Aug 27 '13 at 14:05
  • sorry - the $result["month"] is 8 because i have an SQL Query that says select MONTH(date time) from table... so in the table its a full date format – user2710234 Aug 27 '13 at 14:18
  • 1
    But strtotime has no idea what "8" means. strtotime parses complete timestamps like "2012-05-12 08:43:12". What does "8" mean in this context? – deceze Aug 27 '13 at 14:43

18 Answers 18

up vote 282 down vote accepted

The recommended way to do this:

Nowadays, you should really be using DateTime objects for any date/time math. This requires you to have a PHP version >= 5.2. As shown in Glavić's answer, you can use the following:

$monthNum  = 3;
$dateObj   = DateTime::createFromFormat('!m', $monthNum);
$monthName = $dateObj->format('F'); // March

The ! formatting character is used to reset everything to the Unix epoch. The m format character is the numeric representation of a month, with leading zeroes.

Alternative solution:

If you're using an older PHP version and can't upgrade at the moment, you could this solution. The second parameter of date() function accepts a timestamp, and you could use mktime() to create one, like so:

$monthNum  = 3;
$monthName = date('F', mktime(0, 0, 0, $monthNum, 10)); // March

If you want the 3-letter month name like Mar, change F to M. The list of all available formatting options can be found in the PHP manual documentation.

  • 27
    This doesn't respect the LC_TIME locale and will always output the month name in English. – Dereckson Aug 28 '14 at 1:15
  • 2
    I never saw this on SO - Fatal error: Call to a member function format() on a non-object in Noone from 48 pluses didnt have this? – Jaroslav Štreit Jan 8 '15 at 12:12
  • 1
    Why do you say that we "should really" be using DateTime objects for this? DateTime objects are useful, but the date() function is much simpler as has much lower overhead (in terms of both speed and memory) if all you're trying to do is something simple like this. – orrd Jan 6 '16 at 9:51
  • 3
    @orrd: If the speed difference between date() and DateTime turns out to be the bottleneck of the application you're building, I'd say you have bigger problems to worry about. For actual applications, where you are inevitably going to need to do other things with the dates, then having it be in an object is a superior as it's got a easier to read API. – Amal Murali Jan 6 '16 at 14:46
  • 1
    @orrd: Kinda surprised merely suggesting DateTime warrants a downvote :P So much for DRY: artima.com/intv/dry.html – Amal Murali Jan 6 '16 at 14:51

Just because everyone is using strtotime() and date() functions, I will show DateTime example:

$dt = DateTime::createFromFormat('!m', $result['month']);
echo $dt->format('F');
  • Alternately, you can use DateTime::createFromFormat('m|', $result['month']); to reset only fields that are missing. – nullability Jan 22 '14 at 21:51
  • Is there a way to change the language using this solution? – Michel Ayres Jun 4 '14 at 18:08
  • @MichelAyres: Nope. You will have to use strftime() for that. – Amal Murali Jun 4 '14 at 19:49

Use mktime():

<?php
 $monthNum = 5;
 $monthName = date("F", mktime(0, 0, 0, $monthNum, 10));
 echo $monthName; // Output: May
?>

See the PHP manual : http://php.net/mktime

  • Is there any way to get month number when month name is passed ? – Nisha May 29 at 7:40
  • @Nisha use paramter "m" it will return the month as a 2 digit number as a string. e.g. January = 01, February = 02 – zatyh Nov 10 at 6:51

strtotime expects a standard date format, and passes back a timestamp.

You seem to be passing strtotime a single digit to output a date format from.

You should be using mktime which takes the date elements as parameters.

Your full code:

$monthNum = sprintf("%02s", $result["month"]);
$monthName = date("F", mktime(null, null, null, $monthNum));

echo $monthName;

However, the mktime function does not require a leading zero to the month number, so the first line is completely unnecessary, and $result["month"] can be passed straight into the function.

This can then all be combined into a single line, echoing the date inline.

Your refactored code:

echo date("F", mktime(null, null, null, $result["month"], 1));

...

  • Strangely date("F", mktime(null, null, null, 2)); returns March instead of February. – Mischa Mar 30 '15 at 14:35
  • 3
    Well noticed, @Mischa. If you don't set a day (the 5th parameter), mktime will use the current day. Today is 31st. What is the 31st February? :) – Greg Mar 31 '15 at 12:11
  • There is an error in your refactored code. 1 isn't being provided as 5th parameter to mktime but as 3rd parameter to date which would not produce expected results – Ejaz Jul 1 '15 at 17:54

To do the conversion in respect of the current locale, you can use the strftime function:

setlocale(LC_TIME, 'fr_FR.UTF-8');                                              
$monthName = strftime('%B', mktime(0, 0, 0, $monthNumber));

date doesn't respect the locale, strftime does.

  • Thanks, working nice! However, I had to use $monthName = utf8_encode(strftime('%B', mktime(0, 0, 0, $monthNumber))); in order to display accentuated characters like in 'Août' – Roubi Nov 26 at 1:42
  • 1
    @Roubi As utf8_encode is documented as "Encodes an ISO-8859-1 string to UTF-8", it means your û was an ISO-8859-1. If you want UTF-8 everywhere (and your PHP code doesn't run by default in UTF-8), you can use LC_ALL instead of LC_TIME in setlocale. – Dereckson Nov 30 at 21:35

If you just want an array of month names from the beginning of the year to the end e.g. to populate a drop-down select, I would just use the following;

for ($i = 0; $i < 12; ++$i) {
  $months[$m] = $m = date("F", strtotime("January +$i months"));
}

If you have the month number, you can first create a date from it with a default date of 1st and default year of current year, then extract the month name from the date created:

echo date("F", strtotime(date("Y") ."-". $i ."-01"))

This code assume you have your month number stored in $i

Hope this helps someone

$monthNum = 5;
$monthName = date("F", mktime(0, 0, 0, $monthNum, 10));

I found this on https://css-tricks.com/snippets/php/change-month-number-to-month-name/ and it worked perfectly.

adapt as required

$m='08';
$months = array (1=>'Jan',2=>'Feb',3=>'Mar',4=>'Apr',5=>'May',6=>'Jun',7=>'Jul',8=>'Aug',9=>'Sep',10=>'Oct',11=>'Nov',12=>'Dec');
echo $months[(int)$m];

Am currently using the solution below to tackle the same issue:

//set locale, 
setlocale(LC_ALL,"US");

//set the date to be converted
$date = '2016-08-07';

//convert date to month name
$month_name =  ucfirst(strftime("%B", strtotime($date)));

echo $month_name;

To read more about set locale go to http://php.net/manual/en/function.setlocale.php

To learn more about strftime go to http://php.net/manual/en/function.strftime.php

Ucfirst() is used to capitalize the first letter in a string.

  • for a compatibility with utf8 try : utf8_encode(ucfirst(strftime("%B", strtotime($date)))); – Mimouni Aug 9 at 11:21
  • @Mimouni This isn't needed as the utf8_encode function converts ISO-8859-1 strings into UTF-8, but through LC_ALL, the code can be instructed to output UTF-8, for example if you use en_US.UTF-8 instead of US. – Dereckson Nov 30 at 21:44

You need set fields with strtotime or mktime

echo date("F", strtotime('00-'.$result["month"].'-01'));

With mktime set only month. Try this one:

echo date("F", mktime(0, 0, 0, $result["month"], 1));
date("F", strtotime($result["month"]))

use the above code

this is trivially easy, why are so many people making such bad suggestions? @Bora was the closest, but this is the most robust

/***
 * returns the month in words for a given month number
 */
date("F", strtotime(date("Y")."-".$month."-01"));

this is the way to do it

I think using cal_info() is the easiest way to convert from number to string.

$monthNum = sprintf("%02s", $result["month"]); //Returns `08`
$monthName = cal_info(0); //Returns Gregorian (Western) calendar array
$monthName = $monthName[months][$monthNum];

echo $monthName; //Returns "August"

See the docs for cal_info()

Use:

$name = jdmonthname(gregoriantojd($monthNumber, 1, 1), CAL_MONTH_GREGORIAN_LONG);

I know this question was asked a while ago now, but I figured everyone looking for this answer was probably just trying to avoid writing out the whole if/else statements, so I wrote it out for you so you can copy/paste. The only caveat with this function is that it goes on the actual number of the month, not a 0-indexed number, so January = 1, not 0.

function getMonthString($m){
    if($m==1){
        return "January";
    }else if($m==2){
        return "February";
    }else if($m==3){
        return "March";
    }else if($m==4){
        return "April";
    }else if($m==5){
        return "May";
    }else if($m==6){
        return "June";
    }else if($m==7){
        return "July";
    }else if($m==8){
        return "August";
    }else if($m==9){
        return "September";
    }else if($m==10){
        return "October";
    }else if($m==11){
        return "November";
    }else if($m==12){
        return "December";
    }
}
  • 4
    Why didn't you use switch/case? – Artjom B. Sep 11 '15 at 16:53
  • Could've done i guess, personal choice mostly, i find if/else easier to read, and with only 12 options, any speed differences will be negligable. – Freaky Turtle Sep 11 '15 at 17:54
  • 4
    switch/case is better in this case for readability pupose... – smarber Apr 19 '17 at 14:11

You can just use monthname() function in SQL.

SELECT monthname(date_column) from table group by monthname(date_column)

Use a native function such as jdmonthname():

echo jdmonthname($monthNum, CAL_MONTH_GREGORIAN_LONG);
  • jdmonthname(3, CAL_MONTH_GREGORIAN_LONG); returns November – Onimusha May 14 '14 at 12:17
  • jdmonthname() expects a Julian DAY, which is a incremental count of days used in astronomy. Day 0 was January 01, 4713 BC, Day 1 was January 02, 4713 BC, etc. October 20, 2014 (as a Gregorian date) is Julian day 2456951 (which as a Julian date is October 7, 2014). PHP strangely doesn't seem to handle the 0 Julian Day properly: echo jdtojulian(0)."<br/>"; echo jdtojulian(1)."<br/>"; echo jdtojulian(2)."<br/>"; returns: 0/0/0 1/2/-4713 1/3/-4713 – George Langley Oct 21 '14 at 0:25

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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