Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

i am working in extjs4. I am working on weather module. i am retriving weather information with help of controller code as-

getWeather : function() {
        var getdata=this.getipaddress();
        console.log(getdata);
        var city = "pune";
        var urllink="http://api.wunderground.com/api/4ab310c7d75542f3/geolookup/conditions/q/IA/" + city + ".json";
        console.log(urllink);
        Ext.require('Ext.data.JsonP', function() {
            Ext.data.JsonP.request({
                //url : "http://api.wunderground.com/api/4ab310c7d75542f3/geolookup/conditions/q/IA/pune.json",
                url:urllink,
                success : function(parsed_json) {
                    var location = parsed_json['location']['city'];
                    var temp_c = parsed_json['current_observation']['temperature_string'];
                    alert("Current temperature in " + location + " is: "
                            + temp_c);
                            return temp_c;

                var viewObj=Ext.create('Balaee.view.sn.user.weather');
                var viewObj.show();
                }
            });
        });
    },

Now i want to display this temp_c variable's value and city on view. I have these both variables directly. I dont have any store related to it.Suppose i have view as-

Ext.define('Balaee.view.sn.user.weather',
{
        extend:'Ext.view.View',
        id:'weatherId',
        alias:'widget.weatherView',
        config:
        {
            tpl:'<tpl for=".">'+
                '<div id="main">'+
                '</br>'+                    
                '<b>City :- </b> {city} </br>'+
                '<b>Temp:- </b> {temp_c} </br>'+

                '</div>'+
                '</tpl>',
            itemSelector:'div.main',}

}); But above view is not displaying any value. So how to display these variables on view?

share|improve this question

1 Answer 1

up vote 2 down vote accepted

You can render template with Ext.container.Container ( Ext.view.View is not necessary if you don't have store) here is the example on your case:

Ext.define('Balaee.view.sn.user.weather',{
   extends:'Ext.container.Container',
   alias:'widget.weatherView',
   tpl:Ext.create('Ext.XTemplate',
        '<div id="main"></br>',
          '<b>City :- </b> {city} </br>',
          '<b>Temp:- </b> {temp_c} </br>',
        '</div>')
});

Then Ajax response can call it like below:

var viewObj=Ext.create('Balaee.view.sn.user.weather',{
   renderTo:'IdOfYourRenderingArea' // Or it can be Ext.getBody()
});
viewObj.update({city:location, temp_c:temp_c});

If you want render with dataview then you need store and model.

share|improve this answer
    
thanx sir...its working... –  user1722857 Apr 23 '13 at 9:38
    
i am glad it helped you –  XenoN Apr 23 '13 at 14:34

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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