105

I want to wrap all the nodes within the #slidesContainer div with JavaScript. I know it is easily done in jQuery, but I am interested in knowing how to do it with pure JS.

Here is the code:

<div id="slidesContainer">
    <div class="slide">slide 1</div>
    <div class="slide">slide 2</div>
    <div class="slide">slide 3</div>
    <div class="slide">slide 4</div>
</div>

I want to wrap the divs with a class of "slide" collectively within another div with id="slideInner".

15 Answers 15

104

If your "slide"s are always in slidesContainer you could do this

org_html = document.getElementById("slidesContainer").innerHTML;
new_html = "<div id='slidesInner'>" + org_html + "</div>";
document.getElementById("slidesContainer").innerHTML = new_html;
9
  • 5
    @Squadrons: Are you also using jQuery? If so, you really shouldn't do this. (Even if you're not, you're destroying and recreating this part of the DOM unnecessarily.)
    – user113716
    Commented Jul 27, 2011 at 0:38
  • 1
    I am not using jquery. I am trying to get somewhat comfortable with JS before I move to a framework. I am trying out all of the answers in this thread, however. Do you recommend aroth's answer? If so, why over this one?
    – Squadrons
    Commented Jul 27, 2011 at 2:13
  • 2
    My answer is a bit slower than operating on a node level, however unless you have a lot of nodes(slides) the difference should be imperceptible. If you are using jquery/or have any events wired to the slides you would need to rescan the dom. However this method will work in most browsers without the need to deal with getElementsByClass name incompatibilities. So for simple functionality (and not too complex DOM) this is probably better....Important to say that if you were generating the slides dynamically it is faster to use innerHtml rather than build DOM tree node by node.
    – Michal
    Commented Jul 27, 2011 at 4:02
  • 30
    Note that replacing innerHTML will remove events from all contained nodes.
    – user2467065
    Commented Dec 11, 2016 at 15:05
  • 7
    This will nuke any event handlers or what have you on the elements, and is rather slow. I'd prefer @user113716's answer
    – Ansikt
    Commented Jan 22, 2018 at 17:39
60

How to "wrap content" and "preserve bound events"?

// element that will be wrapped
var el = document.querySelector('div.wrap_me');

// create wrapper container
var wrapper = document.createElement('div');

// insert wrapper before el in the DOM tree
el.parentNode.insertBefore(wrapper, el);

// move el into wrapper
wrapper.appendChild(el);

or

function wrap(el, wrapper) {
    el.parentNode.insertBefore(wrapper, el);
    wrapper.appendChild(el);
}

// call function
// wrapping element "wrap_me" into a new element "wrapper"
wrap(document.querySelector('div.wrap_me'), document.createElement('div'));

ref

https://plainjs.com/javascript/manipulation/wrap-an-html-structure-around-an-element-28

2
  • 1
    This is basically the same answer as the one by user1767210 in 2013: stackoverflow.com/a/18453767/339803 but maybe a little clearer.
    – redfox05
    Commented Nov 10, 2021 at 12:30
  • @redfox05 sure because it's the common pattern - see ref link
    – Bruno
    Commented Nov 11, 2021 at 21:42
51

Like BosWorth99, I also like to manipulate the dom elements directly, this helps maintain all of the node's attributes. However, I wanted to maintain the position of the element in the dom and not just append the end incase there were siblings. Here is what I did.

var wrap = function (toWrap, wrapper) {
    wrapper = wrapper || document.createElement('div');
    toWrap.parentNode.insertBefore(wrapper, toWrap);
    return wrapper.appendChild(toWrap);
};
4
  • 2
    I'm sure this is a poor question, I'm not as familiar with javascript/query as say CSS, but why would you set this as a variable instead of assigning it as a function? e.g. function wrap(toWrap, wrapper) {?
    – darcher
    Commented Oct 6, 2015 at 18:18
  • I generally function expressions instead of declarations for consistent coding style and to simplify hoisting behavior. javascriptweblog.wordpress.com/2010/07/06/… Commented Jun 6, 2016 at 19:34
  • 2
    This does not answer the question. The OP is wanting to wrap all children not a single element. Commented Dec 30, 2016 at 4:37
  • 13
    If toWrap is not the last child, the wrapper ends up as the wrong child (it does end up as last child). Better to use insertBefore() e.g. replace toWrap.parentNode.appendChild(wrapper); with toWrap.parentNode.insertBefore(wrapper, toWrap);
    – MoonLite
    Commented Nov 5, 2021 at 19:26
17

A general good tip for trying to do something you'd normally do with jQuery, without jQuery, is to look at the jQuery source. What do they do? Well, they grab all the children, append them to a a new node, then append that node inside the parent.

Here's a simple little method to do precisely that:

const wrapAll = (target, wrapper = document.createElement('div')) => {
  ;[ ...target.childNodes ].forEach(child => wrapper.appendChild(child))
  target.appendChild(wrapper)
  return wrapper
}

And here's how you use it:

// wraps everything in a div named 'wrapper'
const wrapper = wrapAll(document.body) 

// wraps all the children of #some-list in a new ul tag
const newList = wrapAll(document.getElementById('some-list'), document.createElement('ul'))
4
  • I like how the second parameter is optional. You can provide an element, or it creates a div for you. This works great, thanks! Commented Mar 7, 2020 at 17:27
  • 1
    You can now use parentNode.append instead of appendChild. E.g. wrapper.append(...target.childNodes)
    – Azmisov
    Commented Jan 28, 2021 at 19:53
  • What's the semicolon doing in the first code snippet's second line at the first letter?
    – user19690494
    Commented Aug 11, 2022 at 16:31
  • 2
    @CodemasterUnited, the short version is: you don't need it. The long version is: you can write JavaScript without semi-colons, with a couple exceptions where the interpreter can get confused. One of those exceptions is if a line starts with an array literal, as it can be seen as indexing an element from the prior line. That wouldn't be a problem here, as that's the first line of the function, but I was using a linter at the time which enforced that rule.
    – Ansikt
    Commented Aug 12, 2022 at 18:05
16

If you patch up document.getElementsByClassName for IE, you can do something like:

var addedToDocument = false;
var wrapper = document.createElement("div");
wrapper.id = "slideInner";
var nodesToWrap = document.getElementsByClassName("slide");
for (var index = 0; index < nodesToWrap.length; index++) {
    var node = nodesToWrap[index];
    if (! addedToDocument) {
        node.parentNode.insertBefore(wrapper, node);
        addedToDocument = true;
    }
    node.parentNode.removeChild(node);
    wrapper.appendChild(node);
}

Example: http://jsfiddle.net/GkEVm/2/

5
  • @aroth: Yep, works now. You can simplify a bit if you just manage adding the wrapper outside the loop. Also, remember that a DOM node can only be in one place at a time, so you really don't need to do a removeChild then an appendChild. Just do the appendChild, and it will remove it from its current location. jsfiddle.net/GkEVm/3 ;o)
    – user113716
    Commented Jul 27, 2011 at 0:46
  • @patrick - Much cleaner, although won't the modified version error out if no elements are matched by the `getElementsByclassName?
    – aroth
    Commented Jul 27, 2011 at 1:30
  • @aroth: Great point. My way would need to add a if( nodesToWrap[0] ).
    – user113716
    Commented Jul 27, 2011 at 1:55
  • Would someone mind explaining the var addedToDocument = false?
    – Squadrons
    Commented Jul 27, 2011 at 2:49
  • 1
    @Squadrons - The addedToDocument variable is just a flag that says whether or not the wrapper element has been added to the DOM. The reason for it is that 1) the insertion position of the wrapper div depends upon the matched nodes and that 2) there may be no matched nodes, in which case the wrapper should not be added to the DOM at all and that 3) when there are multiple nodes matched the wrapper should only be added to the DOM once, in front of the first match. The flag just ensures these conditions are all met.
    – aroth
    Commented Jul 27, 2011 at 4:31
15

I like to manipulate dom elements directly - createElement, appendChild, removeChild etc. as opposed to the injection of strings as element.innerHTML. That strategy does work, but I think the native browser methods are more direct. Additionally, they returns a new node's value, saving you from another unnecessary getElementById call.

This is really simple, and would need to be attached to some type of event to make any use of.

wrap();
function wrap() {
    var newDiv = document.createElement('div');
    newDiv.setAttribute("id", "slideInner");
    document.getElementById('wrapper').appendChild(newDiv);
    newDiv.appendChild(document.getElementById('slides'));
}

jsFiddle

Maybe that helps your understanding of this issue with vanilla js.

3
  • Why does this need to be attached? I tried running it by attaching to a function named prepareSlideshow(), and running it on load, but can't seem to be able to alter the DOM to have it display the required node
    – Squadrons
    Commented Jul 27, 2011 at 2:01
  • Attached - just so you have control over it, like the onLoad event your calling. I mean - you could just call it too, I just assumed there was a state in which the slides weren't wrapped, and you needed to do alter your element list during runtime. Just run in on any function, and as long as your element id names line up it should work...
    – Bosworth99
    Commented Jul 27, 2011 at 3:04
  • @Bosworth99, I really like this simple way to wrap around the element. Thanks!
    – John Fine
    Commented May 9 at 16:45
13

To simply wrap a div without the need of the parent:

<div id="original">ORIGINAL</div>

<script>

document.getElementById('original').outerHTML
=
'<div id="wrap">'+
document.getElementById('original').outerHTML
+'</div>'

</script>

Working Example: https://jsfiddle.net/0v5eLo29/

More Practical Way:

const origEle = document.getElementById('original');
origEle.outerHTML = '<div id="wrap">' + origEle.outerHTML + '</div>';

Or by using only nodes:

let original = document.getElementById('original');
let wrapper = document.createElement('div');
wrapper.classList.add('wrapper');
wrapper.append(original.cloneNode(true));

original.replaceWith(wrapper);

Working Example: https://jsfiddle.net/wfhqak2t/

4

A simple way to do this would be:

let el = document.getElementById('slidesContainer');
el.innerHTML = `<div id='slideInner'>${el.innerHTML}</div>`;
1
  • It doesn't wrap at all, but inserts it within. Wrapping is from outside.
    – vsync
    Commented Jan 16, 2023 at 13:44
2

Note - below answers the title of the question but is not specific to the OP's requirements (which are over a decade old)

Using the range API is making wrapping easy, by creating a Range which selects only the node wished to be wrapped, and then use the surroundContents API to wrap it.

Below code wraps the first (text) node with a <mark> element and the last node with a <u> element:

const wrapNode = (nodeToWrap, wrapWith) => {
  const range = document.createRange();
  range.selectNode(nodeToWrap);
  range.surroundContents(wrapWith);
}

wrapNode(document.querySelector('p').firstChild, document.createElement('mark'))
wrapNode(document.querySelector('p').lastChild, document.createElement('u'))
<p>
  first node
  <span>second node</span>
  third node
</p>

2

Wrapping all the children in one element

const wrapper = document.createElement("div");
wrapper.classList.add("wrapper");
document.querySelector('#slidesContainer').appendChild(wrapper);

// select all the elements we want to wrap
const slides = document.querySelectorAll(".slide");

// loop over the elements
slides.forEach((item, index) => {

  // add the element to the wrapper
  wrapper.appendChild(item);
});
.wrapper {
  border: 1px solid black;
}
<div id="slidesContainer">
  <div class="slide">slide 1</div>
  <div class="slide">slide 2</div>
  <div class="slide">slide 3</div>
  <div class="slide">slide 4</div>
</div>

Wrapping Each one individually

Using querySelectorAll, forEach, createElement, and before

// select all the elements we want to wrap
const slides = document.querySelectorAll(".slide");

// loop over the elements
slides.forEach((item, index) => {
  const wrapper = document.createElement("div");
  wrapper.classList.add("wrapper");
  item.before(wrapper);

  // add the element to the wrapper
  wrapper.appendChild(item);
});
.wrapper {
  border: 1px solid black;
}
<div id="slidesContainer">
  <div class="slide">slide 1</div>
  <div class="slide">slide 2</div>
  <div class="slide">slide 3</div>
  <div class="slide">slide 4</div>
</div>

Wrapping In groups of 2

If you want to wrap multiple items in a wrapper, you can use a reduce loop with a mod to determine if you need a new wrapper element.

// convert html collection into an array
const slides = [...document.querySelectorAll(".slide")];

slides.reduce((wrapper, item, index) => {
  // Every 2 so if we are at a start create a new wrapper element
  // And place it before the html element we want to move
  if (index % 2 === 0) {
    wrapper = document.createElement("div");
    wrapper.classList.add("wrapper");
    item.before(wrapper);
  }
  
  // add the element to the wrapper
  wrapper.appendChild(item);
  
  // keep track of the wrapper
  return wrapper;
}, null);
.wrapper {
  border: 1px solid black;
}
<div id="slidesContainer">
    <div class="slide">slide 1a</div>
    <div class="slide">slide 1b</div>
    <div class="slide">slide 2a</div>
    <div class="slide">slide 2b</div>
    <div class="slide">slide 3a</div>
    <div class="slide">slide 3b</div>
    <div class="slide">slide 4a</div>
    <div class="slide">slide 4b</div>
</div>

0

From what I understand @Michal 's answer is vulnerable to XXS attacks (using innerHTML is a security vulnerability) Here is another link on this.

There are many ways to do this, one that I found and liked is:

function wrap_single(el, wrapper) {
    el.parentNode.insertBefore(wrapper, el);
    wrapper.appendChild(el);
}
let divWrapper;
let elementToWrap;
elementToWrap = document.querySelector('selector');
// wrapping the event form in a row
divWrapper = document.createElement('div');
divWrapper.className = 'row';
wrap_single(elementToWrap, divWrapper);

This works well. However for me, I sometimes want to just wrap parts of an element. So I modified the function to this:

function wrap_some_children(el, wrapper, counter) {
  el.parentNode.insertBefore(wrapper, el);
  if ( ! counter ) {
    counter = el.childNodes.length;
  }
  for(i = 0; i < counter;  i++) {
    wrapper.appendChild( el.childNodes[0] );
  }
}
// wrapping parts of the event form into columns
let divCol1;
let divCol2;
// the elements to wrap
elementToWrap = document.querySelector('selector');
// creating elements to wrap with
divCol1 = document.createElement('div');
divCol1.className = 'col-sm-6';
divCol2 = document.createElement('div');
divCol2.className = 'col-sm-6';
// for the first column
wrap_some_children(elementToWrap, divCol1, 13);  // only wraps the first 13 child nodes
// for the second column
wrap_some_children(elementToWrap, divCol2);

I hope this helps.

0

wrapInner multiple tag content


function wilWrapInner(el, wrapInner) {
  var _el = [].slice.call(el.children);
  var fragment = document.createDocumentFragment();
  el.insertAdjacentHTML('afterbegin', wrapInner);
  var _wrap = el.children[0];
  for (var i = 0, len = _el.length; i < len; i++) {
    fragment.appendChild(_el[i]);
  }
  _wrap.appendChild(fragment);
}

Link Demo Jsbin

0
slidesContainer.querySelectorAll("div.slide").forEach(
    (ele)=> slidesInner.appendChild(ele)
); 

don't know why the other answers seems so complex, or resorting to HTML hacks (which is not a good idea for numerous reasons, like event listeners or javascript references)

2
  • This doesn't explain how to use it, and is not an entire answer. What is slidesInner? What is the slides container? How would someone use this?
    – Lisa
    Commented May 23 at 5:11
  • @Lisa see the top question code, "slidesContainer" is OP's <div id="slidesContainer"> and "slidesInner" is OP's div with id="slideInner"
    – hanshenrik
    Commented May 23 at 12:29
-1
var x = document.getElementById("myDIV");
   const container = document.createElement('div');
   container.setAttribute('class', 'slidesContainer');
   const children = document.querySelectorAll('.slide');
   children.forEach(function(child) {
       container.appendChild(child);
       x.appendChild(container);
    });
1
  • 1
    Please read How to Answer and edit your answer to contain an explanation as to why this code would actually solve the problem at hand. Always remember that you're not only solving the problem, but are also educating the OP and any future readers of this post.
    – Adriaan
    Commented Aug 16, 2023 at 9:02
-1
var parent = document.querySelector("#parent");
var children = parent.innerHTML;
// wrapper element
parent.innerHTML = `<a></a>`;
parent.querySelector("a").innerHTML = children;
1
  • 1
    Can we add a description as to why this solves the questions?
    – Lex
    Commented Mar 2 at 6:59

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