133

I have the following dojo codes to create a surface graphics element under a div:

....
<script type=text/javascript>
....
   function drawRec(){
      var node = dojo.byId("surface");
      //   remove all the children graphics
      var surface = dojox.gfx.createSurface(node, 600, 600);

      surface.createLine({
         x1 : 0,
         y1 : 0,
         x2 : 600,
         y2 : 600
      }).setStroke("black");
   }
....
</script>
....
<body>
<div id="surface"></div>
....

drawRec() will draw a rectangle graphics first time. If I call this function again in an anchor href like this:

 <a href="javascript:drawRec();">...</a>

it will draw another graphics again. What I need to clean all the graphics under the div and then create again. How can I add some dojo codes to do that?

0

8 Answers 8

292
while (node.hasChildNodes()) {
    node.removeChild(node.lastChild);
}
12
  • 17
    Just to be pedantic --- removing DOM nodes without corresponding JS objects will lead to memory leaks. Feb 10, 2011 at 1:28
  • 2
    @Eugene: Could you say more about that? Aug 28, 2011 at 15:39
  • 7
    @Tom: dojox.gfx creates JavaScript objects to communicate with the underlying graphics system, which may have DOM nodes (SVG, VML) or not (Silverlight, Flash, Canvas). Removing DOM nodes from DOM does not remove those JavaScript objects, and it does not remove DOM nodes either because JavaScript objects still have references to those DOM nodes. The correct way to handle this situation is described in my answer for this question. Aug 29, 2011 at 5:38
  • 3
    @robocat It has nothing to do with IE: JS objects reference DOM objects keeping them in memory, underlying JS objects are kept in memory by references from other JS objects. For example: a gfx surface references all its children, a group references all its children too, and so on. Deleting just DOM nodes is not enough. Jul 2, 2013 at 22:16
  • 3
    @david-chu-ca - probably the later answer by Eugene (a primary author of the dojo GFX library) should be marked as the accepted answer. Eugene - thanks for clarification.
    – robocat
    Jul 24, 2013 at 3:03
48
node.innerHTML = "";

Non-standard, but fast and well supported.

8
24

First of all you need to create a surface once and keep it somewhere handy. Example:

var surface = dojox.gfx.createSurface(domNode, widthInPx, heightInPx);

domNode is usually an unadorned <div>, which is used as a placeholder for a surface.

You can clear everything on the surface in one go (all existing shape objects will be invalidated, don't use them after that):

surface.clear();

All surface-related functions and methods can be found in the official documentation on dojox.gfx.Surface. Examples of use can be found in dojox/gfx/tests/.

1
  • Could you please also add how to create a surface? It might not be clear to users pop over here like me :) Thanks Aug 8, 2013 at 8:46
20
while(node.firstChild) {
    node.removeChild(node.firstChild);
}
1
  • 1
    jQuery 1.x empty() works that way. In jQuery 2.x which only supports modern browsers, empty() uses elem.textContent = ""; however just because jQuery does it doesn't mean it isn't buggy for example stwissel says "innerHTML only works if you are only dealing with HTML. If there is e.g. SVG inside only Element removal will work". Also see other relevant notes here: stackoverflow.com/questions/3955229/…
    – robocat
    Jul 2, 2013 at 0:53
18

In Dojo 1.7 or newer, use domConstruct.empty(String|DomNode):

require(["dojo/dom-construct"], function(domConstruct){
  // Empty node's children byId:
  domConstruct.empty("someId");
});

In older Dojo, use dojo.empty(String|DomNode) (deprecated at Dojo 1.8):

dojo.empty( id or DOM node );

Each of these empty methods safely removes all children of the node.

3

From the dojo API documentation:

dojo.html._emptyNode(node);
2

If you are looking for a modern >1.7 Dojo way of destroying all node's children this is the way:

// Destroys all domNode's children nodes
// domNode can be a node or its id:
domConstruct.empty(domNode);

Safely empty the contents of a DOM element. empty() deletes all children but keeps the node there.

Check "dom-construct" documentation for more details.

// Destroys domNode and all it's children
domConstruct.destroy(domNode);

Destroys a DOM element. destroy() deletes all children and the node itself.

1
  • 1
    He only wants the children to be removed, that means domConstruct.empty() would be better in this case.
    – g00glen00b
    Feb 18, 2014 at 6:44
0
const wipeOut = elm => [...elm.childNodes].forEach(child => child.remove());

wipeOut(elm);
2
  • @SebastianSimon Yes you are right, I updated my answer and I did realize that I need to convert the nodelist to array in order to wipeout all children of the passed parent, despite the foreach method works with nodelist ! Jul 10, 2021 at 11:56
  • 1
    Yes, the reason is mentioned in What do querySelectorAll and getElementsBy* methods return?. .childNodes is a live NodeList, so removing those nodes in a loop will throw off the loop. Jul 10, 2021 at 14:22

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