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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.

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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
    
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

7 Answers 7

up vote 10 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.

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

$dt = DateTime::createFromFormat('!m', $result['month']);
echo $dt->format('F');
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+1 for the variation. –  Greg Aug 27 '13 at 14:16
    
Alternately, you can use DateTime::createFromFormat('m|', $result['month']); to reset only fields that are missing. –  nullability Jan 22 at 21:51
    
Is there a way to change the language using this solution? –  Michel Ayres Jun 4 at 18:08
    
@MichelAyres: Nope. You will have to use strftime() for that. –  Amal Murali Jun 4 at 19:49

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"]));
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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

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Its rocks mintedsky... thanks for code –  Abdul Rahman Jun 2 at 7:11

Use a native function such as jdmonthname():

echo jdmonthname($monthNum, CAL_MONTH_GREGORIAN_LONG);
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jdmonthname(3, CAL_MONTH_GREGORIAN_LONG); returns November –  Onimusha May 14 at 12:17

Assuming your integer is between 1 and 12, a simple array lookup should suffice:

$months = array('January', 'February', 'March', 'April', 'May', 'June', 'July', 'August', 'September', 'October', 'November', 'December');
$monthName = $months[$result["month"] - 1];
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That's not really the problem here. –  Clément Malet Aug 27 '13 at 14:08
2  
No, but it answers the question, surely? I believe this is an XY problem... Why bother with two or three function calls for something menial, when an array lookup will be much quicker and achieve the same results? –  BenM Aug 27 '13 at 14:09
    
Somehow, yes, but it's always better to point to a more generic answer and explain why the given code didn't work. –  Clément Malet Aug 27 '13 at 14:11
    
Not a valid reason to DV IMO. A commenter has already explained why the original code didn't work... This is still the cleanest solution to achieve what the OP needs. I can see very little advantage in using extra function calls and increasing overheads when all he wants to do is convert 8 to August, and so forth... –  BenM Aug 27 '13 at 14:13
    
You're right, I didn't DV though. OP wants month now, but he could be looking for years, days etc later on. ;) –  Clément Malet Aug 27 '13 at 14:22

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));
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