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I am getting an error object property doesn't support this method when I try to remove the attribute when I load the page.

However I believe this is happening because the disabled attribute was never added on page load, because I do not receive the error after the attribute is added.

My question is how can I check if the attribute exists before trying to remove it.

Thanks

 if (jQuery.inArray($("select option:selected").val(), Codes) == -1) {
                $(serviceSelector).hide();
                $(LocationSelector).hide();

                $("#ctl00_ctl00_body_body_ddlPool option['value=ADD']").removeAttr("disabled");
                $("#ctl00_ctl00_body_body_ddlPool option['value=ADM']").removeAttr("disabled");
            } else {
                $(serviceSelector).show();
                $(LocationSelector).show();
                $("#ctl00_ctl00_body_body_ddlPool  option[value=ADM]").attr("disabled", "disabled");
                $("#ctl00_ctl00_body_body_ddlPool  option[value=ADD]").attr("disabled", "disabled");

            }
            //$find(AcId).set_contextKey($(this).val());
        }).change();
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1  
Please see this question: stackoverflow.com/questions/1318076/… –  brandwaffle Dec 23 '11 at 16:37
5  
You have syntax errors in your selectors: option['value=ADD'] should be option[value='ADD'] (and similarly for other [name='value'] selectors). –  Andrew Whitaker Dec 23 '11 at 16:38

1 Answer 1

up vote 5 down vote accepted

You can use the .hasAttribute method

If you have more than one of each ADD and ADM nodes you will have to test each one:

$("#ctl00_ctl00_body_body_ddlPool option[value='ADD']").each(function(){
    if(this.hasAttribute("disabled"))
        this.removeAttribute("disabled");
});

Otherwise just test against the actual node

if($("#ctl00_ctl00_body_body_ddlPool option[value='ADD']")[0].hasAttribute("disabled"))

EDIT: fixed syntax error per Andrew's comment.

share|improve this answer
    
He's right - Also, it's really helpful to use a debugging console like firebug or developer tools. The console is your friend. –  Chazbot Dec 23 '11 at 16:43
    
thanks this worked, i guess the syntax was the problem –  HELP_ME Dec 23 '11 at 16:47
    
@bugz You're welcome :) glad to help. –  Joseph Marikle Dec 23 '11 at 17:07

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