Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I would like to dynamically generate a string of text based on a current day. So, for example, if it is day 1 then I would like my code to generate = "Its the <dynamic>1*<dynamic string>st</dynamic string>*</dynamic>".

There are 12 days in total so I have done the following:

  1. I've set up a for loop which loops through the 12 days.

  2. In my html I have given my element a unique id with which to target it, see below:

    <h1 id="dynamicTitle" class="CustomFont leftHeading shadow">On The <span></span> <em>of rest of generic text</em></h1>
    
  3. Then, inside my for loop I have the following code:

    $("#dynamicTitle span").html(i);
    var day = i;
    if (day == 1) {
        day = i + "st";
    } else if (day == 2) {
        day = i + "nd"
    } else if (day == 3) {
        day = i + "rd"
    }
    

UPDATE

This is the entire for loop as requested:

$(document).ready(function () {
    for (i = 1; i <= 12; i++) {
        var classy = "";
        if (daysTilDate(i + 19) > 0) {
            classy = "future";
            $("#Day" + i).addClass(classy);
            $("#mainHeading").html("");
            $("#title").html("");
            $("#description").html("");
        } else if (daysTilDate(i + 19) < 0) {
            classy = "past";
            $("#Day" + i).addClass(classy);
            $("#title").html("");
            $("#description").html("");
            $("#mainHeading").html("");
            $(".cta").css('display', 'none');
            $("#Day" + i + " .prizeLink").attr("href", "" + i + ".html");
        } else {
            classy = "current";
            $("#Day" + i).addClass(classy);
            $("#title").html(headings[i - 1]);
            $("#description").html(descriptions[i - 1]);
            $(".cta").css('display', 'block');
            $("#dynamicImage").attr("src", ".." + i + ".jpg");
            $("#mainHeading").html("");
            $(".claimPrize").attr("href", "" + i + ".html");
            $("#dynamicTitle span").html(i);
            var day = i;
            if (day == 1) {
                day = i + "st";
            } else if (day == 2) {
                day = i + "nd"
            } else if (day == 3) {
                day = i + "rd"
            } else if (day) {
            }
        }
    }
share|improve this question
    
If your source code is short enough, would you mind posting the full thing, and also saying exactly what is wrong or what's confusing you? –  RonaldBarzell Nov 29 '12 at 13:56
    
What is it that your code does/doesn't do currently? You did not clearly state what's going wrong. –  Pointy Nov 29 '12 at 13:56
    
I'm guessing the code shown is the content of an if block which is further contained by the loop? Show more code.... –  MrCode Nov 29 '12 at 13:59
    
@MrCode - Yes you are correct. I have updated the post to include the entire for loop. I hope this clears it up! –  Antonio Vasilev Nov 29 '12 at 14:09
    
neat and it works well. –  shan Jan 3 '14 at 3:29

9 Answers 9

up vote 60 down vote accepted

The rules are as follows:

  • st is used with numbers ending in 1 (e.g. 1st, pronounced first)
  • nd is used with numbers ending in 2 (e.g. 92nd, pronounced ninety-second)
  • rd is used with numbers ending in 3 (e.g. 33rd, pronounced thirty-third)
  • As an exception to the above rules, all the "teen" numbers ending with 11, 12 or 13 use -th (e.g. 11th, pronounced eleventh, 112th, pronounced one hundred [and] twelfth)
  • th is used for all other numbers (e.g. 9th, pronounced ninth).

The following JavaScript code (rewritten in Jun '14) accomplishes this:

function ordinal_suffix_of(i) {
    var j = i % 10,
        k = i % 100;
    if (j == 1 && k != 11) {
        return i + "st";
    }
    if (j == 2 && k != 12) {
        return i + "nd";
    }
    if (j == 3 && k != 13) {
        return i + "rd";
    }
    return i + "th";
}

Sample output for numbers between 0-115:

  0  0th
  1  1st
  2  2nd
  3  3rd
  4  4th
  5  5th
  6  6th
  7  7th
  8  8th
  9  9th
 10  10th
 11  11th
 12  12th
 13  13th
 14  14th
 15  15th
 16  16th
 17  17th
 18  18th
 19  19th
 20  20th
 21  21st
 22  22nd
 23  23rd
 24  24th
 25  25th
 26  26th
 27  27th
 28  28th
 29  29th
 30  30th
 31  31st
 32  32nd
 33  33rd
 34  34th
 35  35th
 36  36th
 37  37th
 38  38th
 39  39th
 40  40th
 41  41st
 42  42nd
 43  43rd
 44  44th
 45  45th
 46  46th
 47  47th
 48  48th
 49  49th
 50  50th
 51  51st
 52  52nd
 53  53rd
 54  54th
 55  55th
 56  56th
 57  57th
 58  58th
 59  59th
 60  60th
 61  61st
 62  62nd
 63  63rd
 64  64th
 65  65th
 66  66th
 67  67th
 68  68th
 69  69th
 70  70th
 71  71st
 72  72nd
 73  73rd
 74  74th
 75  75th
 76  76th
 77  77th
 78  78th
 79  79th
 80  80th
 81  81st
 82  82nd
 83  83rd
 84  84th
 85  85th
 86  86th
 87  87th
 88  88th
 89  89th
 90  90th
 91  91st
 92  92nd
 93  93rd
 94  94th
 95  95th
 96  96th
 97  97th
 98  98th
 99  99th
100  100th
101  101st
102  102nd
103  103rd
104  104th
105  105th
106  106th
107  107th
108  108th
109  109th
110  110th
111  111th
112  112th
113  113th
114  114th
115  115th
share|improve this answer
    
Thanks for this! –  Antonio Vasilev Nov 29 '12 at 14:34
1  
It worked really well for mine as well: dateString = monthNames[newValue.getUTCMonth()] + " " + numberSuffix(newValue.getUTCDate()) + ", " + newValue.getUTCFullYear(); –  Michael J. Calkins Jan 27 '13 at 19:07
2  
This does not handle the exceptions for the three "teen" numbers properly. For example the numbers 111, 112, and 113 should result in "111th", "112th", and "113th" respectively, not the "111st", "112nd", and "113rd" produced by the function as currently coded. –  martineau Jun 24 '14 at 15:20
2  
@martineau: good catch after all this time, answer revised. –  Salman A Jun 24 '14 at 19:48
1  
This answer seems to have evolved perfectly. Thank you to all contributors. –  Lonnie Best Jul 24 '14 at 15:46

You've only got 12 days? I'd be tempted to make it just a simple lookup array:

var suffixes = ['','st','nd','rd','th','th','th','th','th','th','th','th','th'];

then

var i = 2;
var day = i + suffixes[i]; // result: '2nd'

or

var i = 8;
var day = i + suffixes[i]; // result: '8th'
share|improve this answer
    
Thanks, this solved my problem. I couldnt get the suffix to match the day so i just populated the array with,both, the numbers and the suffix which works perfectly. I then simply called it like $("#dynamicTitle span").html(suffix[i-1]); –  Antonio Vasilev Nov 29 '12 at 14:32

By splitting the number into an array and reversing we can easily check the last 2 digits of the number using array[0] and array[1].

If a number is in the teens array[1] = 1 it requires "th".

function getDaySuffix(num)
{
    var array = ("" + num).split("").reverse(); // E.g. 123 = array("3","2","1")

    if (array[1] != "1") { // Number is in the teens
        switch (array[0]) {
            case "1": return "st";
            case "2": return "nd";
            case "3": return "rd";
        }
    }

    return "th";
}
share|improve this answer
    
This is perfect. Thanks! –  Jason Sep 18 '13 at 18:02

I wrote this function to solve this problem:

// this is for adding the ordinal suffix, turning 1, 2 and 3 into 1st, 2nd and 3rd
Number.prototype.addSuffix=function(){
    var n=this.toString().split('.')[0];
    var lastDigits=n.substring(n.length-2);
    //add exception just for 11, 12 and 13
    if(lastDigits==='11' || lastDigits==='12' || lastDigits==='13'){
        return this+'th';
    }
    switch(n.substring(n.length-1)){
        case '1': return this+'st';
        case '2': return this+'nd';
        case '3': return this+'rd';
        default : return this+'th';
    }
};

With this you can just put .addSuffix() to any number and it will result in what you want. For example:

var number=1234;
console.log(number.addSuffix());
// console will show: 1234th
share|improve this answer
    
I think number in this string var lastDigits=n.substring(number.length-2); should be changed to this –  slaFFik Oct 3 '13 at 14:34
    
it should be n instead of this, but thanks for pointing that bug out! :) –  Jimmery Oct 3 '13 at 16:45
function getSuffix(n) {return n < 11 || n > 13 ? ['st', 'nd', 'rd', 'th'][Math.min((n - 1) % 10, 3)] : 'th'}
share|improve this answer
    
Nice little oneliner, just a bit hard to understand –  bryc Jan 1 at 0:48

I wrote this simple function the other day. Although for a date you don't need the larger numbers, this will cater for higher values too (1013th, 36021st etc...)

var fGetSuffix = function(nPos){

    var sSuffix = "";

    switch (nPos % 10){
        case 1:
            sSuffix = (nPos % 100 === 11) ? "th" : "st";
            break;
        case 2:
            sSuffix = (nPos % 100 === 12) ? "th" : "nd";
            break;
        case 3:
            sSuffix = (nPos % 100 === 13) ? "th" : "rd";
            break;
        default:
            sSuffix = "th";
            break;
    }

    return sSuffix;
};
share|improve this answer

function ordsfx(a){return["th","st","nd","rd"][(a=~~(a<0?-a:a)%100)>10&&a<14||(a%=10)>3?0:a]}

See annotated version at https://gist.github.com/furf/986113#file-annotated-js

Short, sweet, and efficient, just like utility functions should be. Works with any signed/unsigned integer/float. (Even though I can't imagine a need to ordinalize floats)

share|improve this answer

<p>31<sup>st</sup> March 2015</p>

You can use

1<sup>st</sup> 2<sup>nd</sup> 3<sup>rd</sup> 4<sup>th</sup>

for positioning the suffix

share|improve this answer

From Shopify

function getGetOrdinal(n) {
    var s=["th","st","nd","rd"],
    v=n%100;
    return n+(s[(v-20)%10]||s[v]||s[0]);
 }
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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