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I have an "Ordered List" which contains about 100 "List Items". This ol makes my page very long and users have to scroll too much.

How can I get the UL to show like this:

1.           6.           11.
2.           7.           12.
3.           8.           13.
4.           9.           14.
5.          10.           15.
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What does the row of 1. in the middle represent? the column break? –  Alastair Pitts Feb 27 '10 at 11:07
1  
@Alistair: I think those were supposed to be 6, 7, 8, 9 and 10. –  Andy E Feb 27 '10 at 11:10
    
that was a bug in stack overflow, it changed what I had written –  MMAMail.com Feb 27 '10 at 11:13
    
Here's a live example of how to do it in jquery: jsfiddle.net/EebVF/5 Using this jquery plugin: github.com/fzondlo/jquery-columns –  newUserNameHere May 3 '14 at 14:09

8 Answers 8

up vote 13 down vote accepted

In a perfect world you could use css3 column module but sadly it's currently only partially supported by webkit and gecko browsers (using -webkit and -moz).

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In other words, not supported by I.E. (as usual). –  Guillermo Gutiérrez Jan 15 '14 at 20:03
1  
@GuillermoGutiérrez Not anymore! –  Knu Jan 16 '14 at 10:44
    
IE 10 and 11 have full support, while Mozilla en Webkit (Safari and Chrome) have partial support. –  SPRBRN Apr 15 '14 at 12:28
    
could you please provide working example using css3 column module. –  helpme Apr 23 '14 at 13:35
    
My problem with the css3 columns is they do not align to top very well. I ended up doing it with jquery: jsfiddle.net/EebVF/5 Using this jquery plugin: github.com/fzondlo/jquery-columns –  newUserNameHere May 3 '14 at 14:10

If you does not matter the vertical order, but the layout:

1.      2.      3.       4.
5.      6.      7.       8.
9.      10.     11.      12.

You can simply set the li elements this way:

li {
    display: block;
    width: 25%;
    float: left;
}

It should work. If you need to have them in vertical order you need to act in the php script dividing them into separate divs and then float them.

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is there anyway I can get them in vertical order using css/html? without having to break them up? –  MMAMail.com Feb 27 '10 at 11:14
1  
As far as I know, no. As mentioned, when css3 column mode will be supported it will be an easy task, but every trick I'm wondering needs to break-up the page in some way. –  Enrico Carlesso Feb 27 '10 at 13:04
1  
it seems to have an issue if for example, item 3 is 2 lines tall, and items 4 is 5 lines tall, etc, then there will be big gaps between item 1 and item 5, while the vertical arrangement can have always 1 empty line between item 1 and item 5 –  太極者無極而生 Aug 7 '13 at 22:47

There was an article on A List Apart a while back which covered exactly this question. I guess if what is mentioned there doesn't suffice you could of course always revert to server-sided coding or client-side coding to divide the list automatically in three portions.

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I was able to get the proper ordering with a little jQuery:

function splitList($list, n) {
    var i, k;
    var colHeight = Math.ceil($list.children().length / n)
    var colWidth = Math.floor(100 / n) + "%"

    for (i = 0; i < n; i++) {
        $list.append("<ul class='liCol'></ul>")
        for (k = 0; k < colHeight; k++) {
            $list.children("li").eq(0).appendTo(".liCol:last")          
        }   
    }

    $(".liCol").css("width", colWidth)
    $list.show() // list originally hidden to avoid displaying before ready
}

basic styles for .liCol:

.liCol {
    padding: 0px;
    margin: 0px;
    float: left;
}
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This is a great solution, especially for a CMS where you might not want to hardcode the menu markup (to allow the end user to add more links to the menu later). –  deweydb Apr 17 '13 at 15:38

I created a solution that also works for ordered (numbered) lists. These lists have to continue numbering through the columns.

Add the following script to your page (doesn't matter where, nicest is in a seperate js-file):

<script type="text/javascript">
// As soon as the document's structure has been loaded:
document.addEventListener( "DOMContentLoaded", function() {
    // For each html elem:
    elems = document.getElementsByTagName("*"); // OL and UL wanted: chose all (*) here and select later.
    for ( var e = 0; e < elems.length; e++ ) {
        // Check if elem is a list (ordered/unordered) and has class name "cols":
        if ( ( elems[e].tagName == "OL" || elems[e].tagName == "UL" ) && elems[e].className.search("cols") > -1 ) {
            // Collect list items and number of columns (from the rel attribute):
            var list = elems[e];
            var listItems = list.getElementsByTagName("LI");
            var Ncols = list.getAttribute("rel")*1; // *1 converts rel from string to int.
            // Determine total number of items, items per column and column width:
            var Ntotal = listItems.length;
            var Npercol = Math.ceil( Ntotal/Ncols );
            var colWidth = Math.floor( 100/Ncols )+"%";
            // For each column:
            for ( var c = 0; c < Ncols; c++ ) {
                // Create column div:
                var colDiv = document.createElement("DIV");
                colDiv.style.cssFloat = "left";
                colDiv.style.width = colWidth;
                // Add list items to column div:
                var i_start = c*Npercol;
                var i_end = Math.min( (c+1)*Npercol, Ntotal );
                for ( var i = i_start; i < i_end; i++ )
                    colDiv.appendChild( listItems[0] ); // Using listItems[0] instead of listItems[i], because items are moved to colDiv!
                // Add column div to list:  
                list.appendChild( colDiv );
            }
        }
    }
} );
</script>

Then you can simply create multiple columns lists like this:

<ol class="cols" rel="3">
    <li>A</li>
    <li>B</li>
    <li>C</li>
    <li>D</li>
    <li>E</li>
    <li>F</li>
    <li>G</li>
</ol>

So, setting class="cols" and rel="[number_of_columns]" and the script will do the rest!

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I had a similar problem this morning, if you need only modern browsers you could do it this way:

ul 
{
    list-style-type: none;
    counter-reset: section;

    -moz-column-count: 3;
    -moz-column-gap: 20px;
    -webkit-column-count: 3;
    -webkit-column-gap: 20px;
    column-count: 3;
    column-gap: 20px;
}

ul li 
{
    padding-left: 30px;
    position: relative;
}

ul li:before 
{
    counter-increment: section;
    content: counter(section) ".";
    margin: 0 0 0 -34px;
    text-align: right;
    width: 2em;
    display: inline-block;
    position: absolute;
    height: 100%;
}

jsfiddle

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Support is much wider nowadays[caniuse.com/#feat=multicolumn] and old browsers will still display the list. In fact you could combine this technique with this other one [stackoverflow.com/a/2347094/2817112] for a nice fallback. –  Oriol Mar 2 at 21:23

You can use 2D transforms: they have a wider support by modern browser than CSS3 columns. See my answer here

2 row element layout within horizontal div

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Since I had the same problem and couldn't find anything "clean" I thought I'd posted my solution. In this example I use a reversed while loop so I can use splice instead of slice. The advantage now is splice() only needs an index and a range where slice() needs an index and the total. The latter tends to become difficult while looping.

Disadvantage is I need to reverse the stack while appending.

Example:

cols = 4; liCount = 35

for loop with slice = [0, 9]; [9, 18]; [18, 27]; [27, 35]

reversed while with splice = [27, 8]; [18, 9]; [9, 9]; [0, 9]

Code:

// @param (list): a jquery ul object
// @param (cols): amount of requested columns
function multiColumn (list, cols) {
    var children = list.children(),
        target = list.parent(),
        liCount = children.length,
        newUl = $("<ul />").addClass(list.prop("class")),
        newItems,
        avg = Math.floor(liCount / cols),
        rest = liCount % cols,
        take,
        stack = [];

    while (cols--) {
        take = rest > cols ? (avg + 1) : avg;
        liCount -= take;

        newItems = children.splice(liCount, take);
        stack.push(newUl.clone().append(newItems));
    }

    target.append(stack.reverse());
    list.remove();
}
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