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I have a jqgrid in my page and outside the grid there is a button like the following:

<input type="button" id="mybutton" value="click here" />

On document ready I am disabling and hiding the button with the following code:

$(document).ready(function () {
    var btn = $('#mybutton');
    btn.prop('disabled', true);
    btn.hide();
    ...
    setupGrid();
});

setupGrid() is a function wich does the jqgrid setup and has this code in the loadComplete event

[...]
loadComplete: function() {
    //do some logic here and then...
    var btn = $('#mybutton');
    if ( mycustomlogic ) {
        btn.prop('disabled', false);
        btn.show();        
    }
}

but unfortunately the button is not enabled again after that. It is correctly showed when mycustomlogic evaluate to true but it remains in disabled state. I have also tried to use btn.attr('disabled', 'disabled') and btn.removeAttr('disabled') instead of .prop() with no luck.

Any suggestion?

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Have you tried .removeProp('disabled')? –  DarkAjax Nov 20 '12 at 15:27
    
@darkajax don't use removeProp!! unless you plan on never using that property again. Anyways .prop() should be working since it worked to disable the button. Do you have any errors in the console? –  ᾠῗᵲᄐᶌ Nov 20 '12 at 15:28
    
No. I am getting stuck with this. The console does not report any error or warning... –  Lorenzo Nov 20 '12 at 15:29
    
@Lorenzo is it a jQuery button or just a regular input button? –  ᾠῗᵲᄐᶌ Nov 20 '12 at 15:32
    
@wirey: it is a jQuery button. Do you think I should use btn.button('enable') instead? –  Lorenzo Nov 20 '12 at 15:36

1 Answer 1

up vote 1 down vote accepted

When using jQuery UI buttons, it's best to use the api's methods to enable/disable the buttons http://api.jqueryui.com/button/

$(element).button('disable/enable')

That way it handles all the other changes for you besides just the disabled property

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