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There is probably a very simple explanation for this (and likely a much cleaner way to do it), but I'm new and can't quite figure it out. Any assistance would help the learning process...

I have one script that displays one div or another based (show instead of hide) on what a user selects from a dropdown list. Like so:

var PickDiv = (function(){

var _obj = {};

var hideShow = function(elem){
    if($(elem).val() === '1'){
          $("#slider_action").show();
          $("#slider_dollar").hide();
        }else if($(elem).val() === '2'){
          $("#slider_dollar").show();    
           $("#slider_action").hide();
        }else{
          $("#slider_dollar, #slider_action").hide();
        }
};

_obj.checkValue = function(){
    hideShow($('#build_opt'))
};

var events = function(){
    $('#build_opt').change(function(){
       hideShow(this);
    });
};

$(document).ready(function(){
    events ();
    checkValue ();
});

return _obj;

}());

This works great and displays the right div based on what is selected from the dropdown. I thought I could reuse this same idea later in my code to have the same effect. Once the div is displayed (after making a selection related to script above), I need to provide another dropdown with additional options. The user will select one of these and then a div will display. So, I figured, I could use something like this:

var RunRate = (function(){

var _obj2 = {};

var hideShow_2 = function(elem_2){
    if($(elem_2).val() === '6'){
          $("#db_sign").show();
          $("#app_down", "#in_redem", "#site_vis", "#cont_ent" ).hide();
        }else if($(elem_2).val() === '7'){
          $("#app_down").show();    
        else{
          $("#app_down", "#in_redem", "#site_vis", "#db_sign", "#cont_ent" ).hide();
        }
};

_obj2.checkValue_2 = function(){
    hideShow_2($('#action_type_2'))
};

var events_2 = function(){
    $('#action_type_2').change(function(){
       hideShow_2(this);
    });
};

$(document).ready(function(){
    events_2 ();
    checkValue_2 ();
});

return _obj2;

}());

Of course, this doesn't work. I tried a number of different things with no luck. Note that if I exclude the first script from my code, the second script works fine, so I know it works. I'm guessing it has something to do with the two scripts sharing a variable or something about jquery that I'm clearly missing.

Any help would be appreciated. Overall, looking to be able to do a number of these types of dependent dropdowns without interfering with one another.

Thanks for your help!

UPDATE:

Note that if in the second script, I replace:

$(document).ready(function(){

with

$( window ).load(function() {

then the problem is solved. So, clearly the problem is related to the document.ready interfering with each other, but I don't know how to fix this without this "hack" above especially if I want to use more of these dependent dropdowns. Is there a way to pass a different variable and call that instead of document?

UPDATE 2

Figured out the problem...my original code was throwing an error due to an undefined reference (checkValue). That error was causing the document ready to not work in the second function. Referenced a more detailed explanation in my answer below.

share|improve this question
    
Are there any errors in your Javascript console? –  Justin Wood Sep 16 '13 at 23:35
    
Can you throw together a JSFiddle to show your problem? –  Kyle Muir Sep 16 '13 at 23:38
    
I guess you should only have one $(document).ready(function(){...} in your code. Try to combine the two into one and it should be fine. –  luksch Sep 16 '13 at 23:39
    
@JustinWood Just one related to this: "Uncaught ReferenceError: checkValue is not defined". That's related to the first script, which works fine though. –  jonmrich Sep 16 '13 at 23:40
    
Try combining the document ready functions and moving outside the enclosing functions? –  Neil Neyman Sep 16 '13 at 23:42

2 Answers 2

Could be that $(document).ready() overwrites the initial job? It doesn't matter if you use different functions/variable names ...$(document).ready is the same ...

share|improve this answer
    
You can have multiple $(document).ready as shown here: jsfiddle.net/TZHNM –  andrewb Sep 16 '13 at 23:46
    
Could be, but not sure what to try in order to test this out. –  jonmrich Sep 17 '13 at 0:09
    
Just added an update to my and I think you're onto something @Jerez. UPDATE: Note that if in the second script, I replace: $(document).ready(function(){ with $( window ).load(function() { then the problem is solved. So, clearly the problem is related to the document.ready interfering with each other, but I don't know how to fix this without this "hack" above especially if I want to use more of these dependent dropdowns. Is there a way to pass a different variable and call that instead of document? –  jonmrich Sep 17 '13 at 0:15

Figured out the problem thanks to this answer to a related question pointed out by @skmasq. @JustinWood was onto something with his comment on my original question. Turns out that my scripts were throwing an error ("Uncaught ReferenceError: checkValue is not defined"), which was not allowing the document ready function to work properly.

Here's the critical part of the answer :

It is important to note that each jQuery() call must actually return. If an exception is thrown in one, subsequent (unrelated) calls will never be executed.

This applies regardless of syntax. You can use jQuery(), jQuery(function() {}), $(document).ready(), whatever you like, the behavior is the same. If an early one fails, subsequent blocks will never be run.

share|improve this answer
    
I knew it. GZ Figuring it out. I would suggest give more detailed answer. –  skmasq Sep 17 '13 at 0:55

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