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Here is the fiddle.

I am trying to make a div show by using $().show(), but it is not working. I suspect it is because it's in a else if () {...}, but I am not sure.

The if/else if statement:

if (i !== "" && ii !== "" && iii !== "") {
    $('#dialog').show();
        $('#dialog').dialog({
            modal: true,
            dialogClass: 'no-close',
            buttons: [{
                text: 'OK',
                click: function () {
                    $(this).dialog('close');
                }
            }]
        });
    } else if (i === "" || ii === "" || iii === "") {
        $('#error').show();
    }
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Your else if statement is redundant, if none of the variables are empty then you can safely assume at least one of them has a value. A simple else will suffice here. –  Mataniko Aug 15 '13 at 5:00

4 Answers 4

up vote 3 down vote accepted

it is not .value() it is .val()

    var i = $('#input').val();
    var ii = $('#input2').val();
    var iii = $('#input3').val();

Demo: Fiddle

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I am so stupid. thanks for pointing that out. –  Joe P. Aug 15 '13 at 3:58
2  
@JJP always look at the browser console to see whether there are any error –  Arun P Johny Aug 15 '13 at 4:00
    
@ArunPJohny I checked my js on jsfiddle, and it didn't come up with any errors. –  Joe P. Aug 15 '13 at 15:39

in jQuery there is no .value() method. It should be as follows.

var i = $('#input').val();
var ii = $('#input2').val();
var iii = $('#input3').val();
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You need to replace .value() with .val()

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Just change the $('#input').value(); to $('#input').val(); for all the input values. It should work.

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