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I want to display numbers as follows

  • 1 as 1st,
  • 2 as 2nd,
  • ...,
  • 150 as 150th.

How should I find the correct ordinal suffix (st, nd, rd or th) for each number in my code?

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2  
See my answer here. stackoverflow.com/questions/69262/… That question was for .NET, but I answered with a PHP solution, so it should help you out. –  nickf Jun 24 '10 at 12:51
    
The only way I can think of doing this is have a if statement going up for every number you could possible have, IE, if(1) then "st" elseif (2) then "nd" etc etc if (23000) then "nd". It's a problem if you have big numbers but you could write a program to write the code for you, it could loop all the numbers printing the ifs for you to copy + paste into your code. –  Tom Gullen Jun 24 '10 at 12:52
2  
@Tom, a lookup table might be better, just initialize it with the 23000 values and get the value at index n, where n is the number you want the ordinal. –  John Boker Jun 24 '10 at 12:55
2  
Col. Shrapnel. you may brilliant but not all. any way thanks for showing interest on my question –  ArK Jun 24 '10 at 12:56
    
@John, very very clever idea, it would be very quick to access as well as each index represents the number you are looking up. –  Tom Gullen Jun 24 '10 at 12:56

10 Answers 10

up vote 123 down vote accepted

from wikipedia:

$ends = array('th','st','nd','rd','th','th','th','th','th','th');
if (($number %100) >= 11 && ($number%100) <= 13)
   $abbreviation = $number. 'th';
else
   $abbreviation = $number. $ends[$number % 10];

Where $number is the number you want to write. Works with any natural number.

As a function:

function ordinal($number) {
    $ends = array('th','st','nd','rd','th','th','th','th','th','th');
    if ((($number % 100) >= 11) && (($number%100) <= 13))
        return $number. 'th';
    else
        return $number. $ends[$number % 10];
}
//Example Usage
echo ordinal(100);
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1  
Lovely solution –  Tom Gullen Jun 24 '10 at 12:50
25  
+1 for using the array, the duct tape of the universe :) –  Lukman Jun 24 '10 at 13:02
1  
Terrific solution, works great. –  Nicholas Kreidberg Dec 7 '10 at 0:33
2  
I like your solution. Additionally if you prefer not to generate 0th modify the last line to be $abbreviation = ($number)? $number. $ends[$number % 10] : $number; –  Gavin Jackson Feb 26 '14 at 10:02
1  
plus 1 to wikipedia –  Elvis Ciotti Dec 10 '14 at 12:39

PHP has built-in functionality for this. It even handles internationalization!

$locale = 'en_US';
$nf = new NumberFormatter($locale, NumberFormatter::ORDINAL);
echo $nf->format($number);

Note that this functionality is only available in PHP 5.3.0 and later.

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13  
Note this also requires PECL intl >= 1.0.0 –  rymo Nov 30 '12 at 19:57
    
Do you know if it is possible to get the ordinal number in word form? i.e. first, second, third, etc. instead of 1st, 2nd, 3rd... –  its_me Oct 16 '13 at 19:05
    
@jeremy When I tried to use NumberFormatter, it always throws an error that NumberFomatter file not found. How did you work around this? –  Jhn Feb 21 '14 at 1:42

from http://www.phpro.org/examples/Ordinal-Suffix.html

<?php

/**
 *
 * @return number with ordinal suffix
 *
 * @param int $number
 *
 * @param int $ss Turn super script on/off
 *
 * @return string
 *
 */
function ordinalSuffix($number, $ss=0)
{

    /*** check for 11, 12, 13 ***/
    if ($number % 100 > 10 && $number %100 < 14)
    {
        $os = 'th';
    }
    /*** check if number is zero ***/
    elseif($number == 0)
    {
        $os = '';
    }
    else
    {
        /*** get the last digit ***/
        $last = substr($number, -1, 1);

        switch($last)
        {
            case "1":
            $os = 'st';
            break;

            case "2":
            $os = 'nd';
            break;

            case "3":
            $os = 'rd';
            break;

            default:
            $os = 'th';
        }
    }

    /*** add super script ***/
    $os = $ss==0 ? $os : '<sup>'.$os.'</sup>';

    /*** return ***/
    return $number.$os;
}
?> 
share|improve this answer

Here is a one-liner:

$a = <yournumber>;
echo $a.substr(date('jS', mktime(0,0,0,1,($a%10==0?9:($a%100>20?$a%10:$a%100)),2000)),-2);

Probably the shortest solution. Can of course be wrapped by a function:

function ord($a) {
  // return English ordinal number
  return $a.substr(date('jS', mktime(0,0,0,1,($a%10==0?9:($a%100>20?$a%10:$a%100)),2000)),-2);
}

Regards, Paul

EDIT1: Correction of code for 11 through 13.

EDIT2: Correction of code for 111, 211, ...

EDIT3: Now it works correctly also for multiples of 10.

share|improve this answer
    
I like this approach, but alas, it doesn't work :-( 30th comes out as 30st. 40th comes out as 40st. etc. –  Flukey Jun 24 '10 at 13:59
1  
Yeah, sorry. When I read the question I thought, hey this should be possible by a single line of code. And I just typed it away. As you see from my edits, I'm improving. After the third edit now I think it's quite done. At least all numbers from 1 to 150 print out nicely on my screen. –  Paul Jun 24 '10 at 14:02
    
Looks good up to 500! (haven't tested it further than that). Good work! :-) –  Flukey Jun 24 '10 at 14:04
    
Thanks! ;) I like these brain-teasing tasks. –  Paul Jun 24 '10 at 14:09

This can be accomplished in a single line by leveraging similar functionality in PHP's built-in date/time functions. I humbly submit:

Solution:

function ordinalSuffix( $n )
{
  return date('S',mktime(1,1,1,1,( (($n>=10)+($n>=20)+($n==0))*10 + $n%10) ));
}

Detailed Explanation:

The built-in date() function has suffix logic for handling nth-day-of-the-month calculations. The suffix is returned when S is given in the format string:

date( 'S' , ? );

Since date() requires a timestamp (for ? above), we'll pass our integer $n as the day parameter to mktime() and use dummy values of 1 for the hour, minute, second, and month:

date( 'S' , mktime( 1 , 1 , 1 , 1 , $n ) );

This actually fails gracefully on values out of range for a day of the month (i.e. $n > 31) but we can add some simple inline logic to cap $n at 29:

date( 'S', mktime( 1, 1, 1, 1, ( (($n>=10)+($n>=20))*10 + $n%10) ));

The only positive value this fails on is $n == 0, but that's easily fixed by adding 10 in that special case:

date( 'S', mktime( 1, 1, 1, 1, ( (($n>=10)+($n>=20)+($n==0))*10 + $n%10) ));

Just wrap it in a function for convenience and off you go!

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2  
+1 for creativity. –  Michael J. Calkins Feb 12 '13 at 22:14

I wrote this for PHP4. It's been working ok & it's pretty economical.

function getOrdinalSuffix($number) {
    $number = abs($number);
    $lastChar = substr($number, -1, 1);
    switch ($lastChar) {
        case '1' : return ($number == '11') ? 'th' : 'st';
        case '2' : return ($number == '12') ? 'th' : 'nd';
        case '3' : return ($number == '13') ? 'th' : 'rd'; 
    }
    return 'th';  
}
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Generically, you can use that and call echo get_placing_string(100);

<?php
function get_placing_string($placing){
    $i=intval($placing%10);
    $place=substr($placing,-2); //For 11,12,13 places

    if($i==1 && $place!='11'){
        return $placing.'st';
    }
    else if($i==2 && $place!='12'){
        return $placing.'nd';
    }

    else if($i==3 && $place!='13'){
        return $placing.'rd';
    }
    return $placing.'th';
}
?>
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you just need to apply given function.

function addOrdinalNumberSuffix($num) {
  if (!in_array(($num % 100),array(11,12,13))){
    switch ($num % 10) {
      // Handle 1st, 2nd, 3rd
      case 1:  return $num.'st';
      case 2:  return $num.'nd';
      case 3:  return $num.'rd';
    }
  }
  return $num.'th';
}
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I made a function that does not rely on the PHP's date(); function as it's not necessary, but also made it as compact and as short as I think is currently possible.

The code: (121 bytes total)

function ordinal($i) { // PHP 5.2 and later
  return($i.(($j=abs($i)%100)>10&&$j<14?'th':(($j%=10)>0&&$j<4?['st', 'nd', 'rd'][$j-1]:'th')));
}

More compact code below.

It works as follows:

printf("The %s hour.\n",    ordinal(0));   // The 0th hour.
printf("The %s ossicle.\n", ordinal(1));   // The 1st ossicle.
printf("The %s cat.\n",     ordinal(12));  // The 12th cat.
printf("The %s item.\n",    ordinal(-23)); // The -23rd item.

Stuff to know about this function:

  • It deals with negative integers the same as positive integers and keeps the sign.
  • It returns 11th, 12th, 13th, 811th, 812th, 813th, etc. for the -teen numbers as expected.
  • It does not check decimals, but will leave them in place (use floor($i), round($i), or ceil($i) at the beginning of the final return statement).
  • You could also add format_number($i) at the beginning of the final return statement to get a comma-separated integer (if you're displaying thousands, millions, etc.).
  • You could just remove the $i from the beginning of the return statement if you only want to return the ordinal suffix without what you input.

This function works commencing PHP 5.2 released November 2006 purely because of the short array syntax. If you have a version before this, then please upgrade because you're nearly a decade out of date! Failing that, just replace the in-line ['st', 'nd', 'rd'] with a temporary variable containing array('st', 'nd', 'rd');.

The same function (without returning the input), but an exploded view of my short function for better understanding:

function ordinal($i) {
  $j = abs($i); // make negatives into positives
  $j = $j%100; // modulo 100; deal only with ones and tens; 0 through 99

  if($j>10 && $j<14) // if $j is over 10, but below 14 (so we deal with 11 to 13)
    return('th'); // always return 'th' for 11th, 13th, 62912th, etc.

  $j = $j%10; // modulo 10; deal only with ones; 0 through 9

  if($j==1) // 1st, 21st, 31st, 971st
    return('st');

  if($j==2) // 2nd, 22nd, 32nd, 582nd
    return('nd'); // 

  if($j==3) // 3rd, 23rd, 33rd, 253rd
    return('rd');

  return('th'); // everything else will suffixed with 'th' including 0th
}

Code Update:

Here's a modified version that is 14 whole bytes shorter (107 bytes total):

function ordinal($i) {
  return $i.(($j=abs($i)%100)>10&&$j<14?'th':@['th','st','nd','rd'][$j%10]?:'th');
}

Or for as short as possible being 25 bytes shorter (96 bytes total):

function o($i){return $i.(($j=abs($i)%100)>10&&$j<14?'th':@['th','st','nd','rd'][$j%10]?:'th');}

With this last function, simply call o(121); and it'll do exactly the same as the other functions I listed.

Code Update #2:

Ben and I worked together and cut it down by 38 bytes (83 bytes total):

function o($i){return$i.@(($j=abs($i)%100)>10&&$j<14?th:[th,st,nd,rd][$j%10]?:th);}

We don't think it can possibly get any shorter than this! Willing to be proven wrong, however. :)

Hope you all enjoy.

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I fond this small snippet

<?php

  function addOrdinalNumberSuffix($num) {
    if (!in_array(($num % 100),array(11,12,13))){
      switch ($num % 10) {
        // Handle 1st, 2nd, 3rd
        case 1:  return $num.'st';
        case 2:  return $num.'nd';
        case 3:  return $num.'rd';
      }
    }
    return $num.'th';
  }

?>

HERE

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1  
I am not quite sure what this answer offers in addition to ChintanThummar's answer. Well, it hints that ChintanThummar made a copyright violation, unless he wrote the code at your source... –  Andreas Rejbrand Feb 4 at 21:11

protected by Praveen Kumar Mar 3 '14 at 22:08

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