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In page1.php

2 drop down(dd) boxes - dd1(id="dd1") and dd2(id="dd2") and other input boxes are there.

When the page is visited , both dds are visible . Drop down values for dd1 are there but no values except 'Select One ' are there for dd2.

a value is chosen from dd1.

Based on this value, drop down values for dd2 are to be determined.

So a jquery ajax call ($.get) is made to page2.php. From page2.php a drop down box (id="dd3") is created. and the ajax response replaces dd2 so the drop down values for dd2 are visible now.

A valus is chosen from dd2 and other input box values are also given. Then the submit button is pressed manually and data is inserted into db through another jquery ajax call.

Everything is ok up to this point.

But I want to make the values of all the dds and input fields become the default ones i.e. no value selected or given.

code used is: $("#id_name").val('');

I have been successful for everything (dd1 and input fields) except for dd2.

I think when dd2 is replaced through jquery ajax response by the element with id dd3, then jQuery code in page1.php does not recognize id name of the dd3 as the id name was given in page2.php.

code used: $("#dd3").val(''); I used this too: $("#dd2").val(''). But no success

How can i make dd2 get back to its default value?

share|improve this question

"ajax response replaces dd2"

How can you alter an element when you have already replaced it with some thing else ?

My suggestion would be to make the dd2 as Display:none and then apply your logic

share|improve this answer
    
once you replace the element it no longer exists... there is no way to modify something that doesn't exist !! – Gaurav Shah Jul 27 '11 at 7:12
    
alter?! what do u mean? Suppose i want to keep dd2 visible always. Even if i apply the display:none css to dd2, how will that solve the problem? Will the code in page1.php recognize the id name given in page2.php? – sof_user Jul 27 '11 at 7:15
    
that should work the first time – Enki Jul 27 '11 at 7:16
    
@Gaurav Shah, i used both $("#dd3").val('') and $("#dd2").val('') but was not successful. what is the solution? – sof_user Jul 27 '11 at 7:17
    
did you try to select the parent element and then traverse down to the element? – Semyazas Jul 27 '11 at 8:04

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