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i know, that my code is not well, but i tryed my best.

here is my code:

function submitForm() {
    document.getElementById("formElement").submit();
}

jQuery(document).ready(function($) {
var img = new Image();
    $(img).load(function () {
    $(this).hide();
    $('#loader').removeClass('loading').append(this);
    $(this).fadeIn(800);
}).attr('src', '.chart.php?id=<? echo $sid; ?>&date=<? echo $order; ?>');
});

<div id="loader" class="loading"></div>

<select name="order" class="dropdown" onChange="submitForm()">
<option disabled selected> <? echo(CHOOSE); ?> </option>
<option value="./chart.php?id=<? echo $sid; ?>&date=d"> <? echo(CHOOSE_DAY); ?> </option>
<option value="./chart.php?id=<? echo $sid; ?>&date=m"> <? echo(CHOOSE_MONTH); ?> </option>
<option value="./chart.php?id=<? echo $sid; ?>&date=y"> <? echo(CHOOSE_YEAR); ?> </option>
</select>

my problem is, that i dont want to reload always the page if i use the select options.

i hope any can help me, thx for now^^

share|improve this question
    
If you do not want to reload always onchange, then don't bind the onChange to submitForm. What condition are you looking for to submit? –  Mrchief Jul 1 '11 at 16:24
    
Yep, confused here as well. When I order steak, they bring me a steak. How can I stop that? –  Chris Pratt Jul 1 '11 at 16:28

2 Answers 2

You need to learn how to make "Ajax" with jQuery. You could start with : 5 Ways to Make Ajax Calls with jQuery

share|improve this answer
    
i tryed already a different code like: $(".dropdown").change(function() { var src = $("option:selected", this).val(); $("#loader").html(src ? "<img src='" + src + "'>" : ""); }); and i change the values from options, delete the submit code. but now the first img not display, just if i use select. maybe i have to use if val() == "" then show standard img? or something? thx for help me^^ –  Mike Jul 1 '11 at 17:14

On your select you are calling onChange="submitForm()"

Your submitForm() function submits the form.

If you wanted to submit the form via ajax, instead of by a standard form submit, which will always reload the page, then inside your jQuery(document).ready(function($){}) call, you can use $.post:

jQuery(document).ready(function($){
    $('#formElement').submit(function(){
        $.post('url/to/post/to.php', $(this).serialize, function(data){
            // Some code to run on successful post
        });
        return false;
    });
})

This way, when your submitForm() function calls .submit(), the return false; blocks the page reload, but the $.post() still posts your data to whatever page is processing your form submits.

share|improve this answer
    
hi daybreaker, i cant make it work, your code. now i try it with ajax and still not really work. im to stupid, sorry guys. –  Mike Jul 3 '11 at 22:39

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