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i want to display numbers as follows

1 as 1st, 2 as 2nd and so on to 150 as 150th. the problem is how to find 'st' , 'nd' ,'rd' and 'th' for numbers through 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

9 Answers 9

up vote 96 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.

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1  
Lovely solution –  Tom Gullen Jun 24 '10 at 12:50
17  
+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
1  
Made it a function: gist.github.com/mnbayazit/6195925 –  Mark Aug 9 '13 at 18:32
1  
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 at 10:02

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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10  
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 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;
}
?> 
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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.

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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 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 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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protected by Praveen Kumar Mar 3 at 22:08

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