11

I am learning angularjs and I am trying use ng-repeat to create an svg graph.

I have this html:

<svg>
    <g id="g_{{$index}}" ng-repeat="i in range" ng-cloak>
        <rect x="{{i / 5}}" y="{{i / 5}}" width="{{i / 5}}" height="{{i / 5}}"></rect>
    </g>
</svg>

the 'range' is just a simple array which is defined in controller like this:

$scope.range = [100, 200, 300];

the html is working; the rects are rendered on my page.

However, Chrome keeps throwing the following error:

Error: Invalid value for <rect> attribute height="{{i / 5}}"    js/angular.js:1584
  JQLiteClone   js/angular.js:1584
  JQLite.(anonymous function)   js/angular.js:2163
  publicLinkFn  js/angular.js:3862
  ngRepeatWatch js/angular.js:13641
  Scope.$digest js/angular.js:7889
  Scope.$apply  js/angular.js:8097
    js/angular.js:961
  invoke    js/angular.js:2857
  resumeBootstrapInternal   js/angular.js:959
  bootstrap js/angular.js:973
  angularInit   js/angular.js:934
    js/angular.js:14756
  fire  js/jquery-2.0.0.js:2863
  self.fireWith js/jquery-2.0.0.js:2975
  jQuery.extend.ready   js/jquery-2.0.0.js:398
  completed js/jquery-2.0.0.js:93

It seems that it does not quite like what I am doing...

Does anyone have an idea why I'm receiving this error?

10

The problem is Chrome sees the Angular interpolation str as an invalid value for those attributes (since at least at one time the element actually exists in the DOM -- though invisibly -- with "invalid" values). I have written a solution that is in line with other Angular solutions as to browser handling of special attributes where instead of using x, y, width, and height, you specify ng-x, ng-y, ng-width, and ng-height and the real attributes are set after the values are interpolated.

Here is the solution on JSFiddle. I'm going to submit a patch to Angular to see if we can get this in the core.

HTML

<div ng-app="SampleApp" ng-controller="MainCtrl">
    <svg>
        <g id="g_{{$index}}" ng-repeat="i in range" ng-cloak>
            <rect ng-x="{{i / 5}}" ng-y="{{i / 5}}" ng-width="{{i / 5}}" ng-height="{{i / 5}}"></rect>
        </g>
    </svg>
</div>

JS

angular.module('SampleApp', [], function() {})
    .directive('ngX', function() {
        return function(scope, elem, attrs) {
            attrs.$observe('ngX', function(x) {
                elem.attr('x', x);
            });
        };
    })
    .directive('ngY', function() {
        return function(scope, elem, attrs) {
            attrs.$observe('ngY', function(y) {
                elem.attr('y', y);
            });
        };
    })
    .directive('ngWidth', function() {
        return function(scope, elem, attrs) {
            attrs.$observe('ngWidth', function(width) {
                elem.attr('width', width);
            });
        };
    })
    .directive('ngHeight', function() {
        return function(scope, elem, attrs) {
            attrs.$observe('ngHeight', function(height) {
                elem.attr('height', height);
            });
        };
    });

function MainCtrl($scope) {
    $scope.range = [100, 200, 300];
}
  • 9
    angular 1.1.4 (or maybe earlier) has a new generic directive to bind late github.com/lrlopez/angular.js/commit/… – hooblei May 6 '13 at 11:35
  • @markus, both of your solutions worked brilliantly, I adopt the attr-ng- approach as it has in the code base – Ethan Li May 6 '13 at 12:16
  • That's awesome, @markus! – Ezekiel Victor May 7 '13 at 5:57
  • 1
    As this is the accepted answer, I think it's worth changing it to use the official late binding attributes ng-attr-x, ng-attr-y... and keep the rest as a DIY – MondKin Sep 22 '17 at 16:48
11

Markus' comment to use late binding is best.

Ie. prefix your attribute with either 'ng-attr-', 'ng:attr:' or 'ng_attr_', like this:

<rect ng:attr:x="{{i / 5}}" ng:attr:y="{{i / 5}}" ng:attr:width="{{i / 5}}" nng:attr:height="{{i / 5}}"></rect>
  • 1
    Perfect, I had the same issues when using ng-repeat it was showing errors when using x, and y svg attrs and this solved it. – ericsicons Aug 10 '15 at 17:13

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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