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I have a property on the scope which can hold an url (bgUrl) of an image. Now I would like to use this image as a background image of a 'div'. However, if the property is undefined I would like to use a default image which is defined by the class bg-image. Now I can do it like

<img ng-show="bgUrl" ng-src="bgUrl"/>
<div ng-hide="bgUrl" class="bg-image"/>

However, I would like to combine this into one element. I tried something like this

<div class="gb-image" ng-style="{true: 'background-image': 'url(\'' + bgUrl + '\')'}[bgUrl]"/>

I just copied some code from google (no idea if this can ever work). One thing is clear though, this doesn't work :) What would be a nice angular way to solve this and can my solution work ?

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1 Answer 1

up vote 1 down vote accepted

Right way is a directive way:

app.directive('bg', function () {
    return {
        link: function(scope, element, attrs) {
          } else {

Take a look:

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nice, I guess you're right! Thats the one I will use. Just curious, is the thing I tried possible too (the solution with only one div) ? And do you know how ? – Jeanluca Scaljeri Sep 24 '13 at 20:01
@JeanlucaScaljeri honestly , i don't know how to use a syntax like in your example. as for me it is not readable and too much logic/code in a view.. – Cherniv Sep 24 '13 at 20:04

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