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I am facing problems while writing a program that has 3 radio buttons, each radio button, when checked, should display a small form on the part of the same webpage. I am using AJAX and PHP. My question is, how do I write the function to display the corresponding form if a radio button is checked? Please note that I am new to AJAX/PHP.

<input type="radio" 
       name="RadioGroup1" 
       value="radio" 
       id="RadioGroup1_0" 
       onclick="showView()" />
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I'm not understanding the importance of AJAX or PHP to your question. Are these forms being loaded via AJAX? Or are you POSTing the initial form with the radio button which then loads the correct form? Otherwise this seems more like a Javascript question to me –  jerluc Jul 4 '11 at 1:31
    
Thanks for your response. I want to load the forms using AJAX. I would like to know how this can be done using JavaScript. –  Rahul Desai Jul 4 '11 at 1:41
    
No problem, do you have any basic source you're working with? Also, are you using any libraries such as jQuery? –  jerluc Jul 4 '11 at 1:43
    
I am not using jquery. Here is more information about the problem statement: I need to design a webpage which is similar to the recurrence appointment form in the MS Outlook. So I have 3 radio buttons for each of Daily, Weekly and Monthly. And now I need to display the corresponding form on selection of a radio button. –  Rahul Desai Jul 4 '11 at 1:55
    
<input type="radio" name="RadioGroup1" value="radio" id="RadioGroup1_0" onclick="showView()"/> Here is the part of the code. I want to implement the function showView(). Please tell me if this can be done in a better way if we use jQuery. –  Rahul Desai Jul 4 '11 at 1:55

1 Answer 1

Personally? I would hold them each in a div and conditionally display them. Unless you have really good cause, there is no reason you can't load this up front (and it introduces another point of failure to use AJAX to actually load the div's here).

function hideElements()
{
    // using jQuery, I would probably loop and use a class selector here.
    // but this is an example.
    document.getElementById("tag1").style.display = "none";
    document.getElementById("tag2").style.display = "none";
    document.getElementById("tag3").style.display = "none";
}

As your listener on the radio buttons (probably through something like $("#tag1, #tag2, #tag3).click, if you're using jQuery, onclick or addEventListener if you're doing this bare-bones)

function showElement( tag ) //tag == "tag1" through "tag3"
{
    hideElements();
    document.getElementById("tag1").style.display = "inline"
}

If AJAX is a must (back-end logic is a requirement for whether the form is shown), I would still load them up front and only conditionally display the forms based off of the response from the back-end.

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