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I have a button and when ever the user clicks it, i need to show a different view/page (navigate to a different view).

For example, Screen A, has a button, and when i click on that button, i need to navigate to Screen B.

my code is as follows;

onLoginSuccess : function(){
Ext.create('Ext.container.Viewport', {

                    items: [
                    {
                        xtype: 'screenb'
                    }
                    ]
                });
}

but, what hapence is that, When i click on the Button in Screen A, i navigate to Screen B and also Screen A appears on Screen B. I need to get rid of Screen A (after the user clicks the button and show only screen B)

===================== UPDATE 2 =======================================

Ext.define('Proj.view.loca.Person' ,{
    extend: 'Ext.form.Panel', 
    alias : 'widget.person',

    items: [

            {
        xtype: 'textfield',
        fieldLabel: 'Name',
        name: 'name'
    }, {
        xtype: 'textfield',
        fieldLabel: 'School',
        name: 'school'
      }],
    buttons: [{
        text: 'Submit',
        handler: function() {
            var form = this.up('form').getForm();
            if (form.isValid()) {
                form.submit({
                    success: function(form, action) {
                    Ext.create('Ext.container.Viewport', {

                    items: [
                    {
                        xtype: 'screenb'
                    }
                    ]
                });

                    },
                    failure: function(form, action) {
                    // Navigate to some other view
                    }
                });
            }
        }
    }]
});
share|improve this question

1 Answer 1

up vote 1 down vote accepted

I think the best way to achieve this is using a card layout.

Here is roughly how it's done:

Ext.application({
    name: 'BS',

    appFolder: 'app',

    refs:
    [{
        ref: 'viewport',
        selector: 'viewport'
    }],

    launch: function() {

        Ext.create('Ext.container.Viewport', {
            layout: 'card',
            items: [{
                xtype: 'panel',
                id: 'panel1',
            },{
                xtype: 'panel',
                id: 'panel2',        
            }]
        });
    },


    onLoginSuccess : function() {
        this.getViewport().getLayout().setActiveItem(1);        
    }

});
share|improve this answer
    
Isn't there any other way i could do it, because i will have to change my entire code to make the above changes :S –  sharon Hwk Jul 4 '12 at 12:41
    
There might be, but you'll have to provide more of your app/controller/view code for us to help. –  Izhaki Jul 4 '12 at 13:15
    
I have added the complete source code of the view –  sharon Hwk Jul 4 '12 at 13:31
1  
Well, you'll have to change some code I believe - you are rendering a viewport from the button handler of a panel. I'm not sure how come the form panel is displayed (was there another viewport in the app launch?), but if it's rendered it is in the document body already when you add the viewport to it. Regardless, I would argue that it is a good and standard practice to create the viewport upon app launch. I doubt anyone has ever created the viewport like you did. –  Izhaki Jul 4 '12 at 13:37
1  
That's odd. you console log shows the application object, so your scope is fine. Could be a typo. Anyway, try putting this.vp = Ext.create('Ext.container.Viewport', {..... ,and then replcae this.getViewport() with this.vp. –  Izhaki Jul 4 '12 at 16:30

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