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I'll try to be specific as possible. I have a dropdown menu[select tag] which gives the user to select 5 options; namely numbers from 1 to 5. Now depending upon the the selected option i want to display a new form with same number of input tags as the option selected

So if the user selects 3 from the dropdown menu, then a sub table will appear at the bottom displaying three input tags. the code is:

<select id="formName9" name="blockUnits">
 <option selected="selected" value="1">1</option>
 <option value="2">2</option>
 <option value="3">3</option>
 <option value="4">4</option>
 <option value="5">5</option>
</select>
share|improve this question
    
Why tag jQuery if you're not after a jQuery solution? arjuncc's answer is completely valid if you're not using jQuery, but if you are then you may as well use the jQuery solution as it features less lines of code and is more resourceful. Don't tag jQuery if you're not actually using it. –  James Donnelly Mar 20 '13 at 9:41

6 Answers 6

up vote 7 down vote accepted

I support James Donnelly's answer. If you want it to be pure java script you can use this alternative.

HTML

 <select id="formName9" name="blockUnits" onchange="addInput()">
     <option selected="selected" value="1" >1</option>
     <option value="2">2</option>
     <option value="3">3</option>
     <option value="4">4</option>
     <option value="5">5</option>
    </select>
    <form>
    <div id="newAdd"> </div>.
    </form>

JAVASCRIPT

function addElement() {
    var element = document.createElement("input"); //creating input
    element.setAttribute("value", "");//setting its value
    element.setAttribute("name", "newInput");//naming the input
    var foo = document.getElementById("newAdd");
    foo.appendChild(element);//appendign the value into the parant div
}
function addInput(){
    document.getElementById("newAdd").innerHTML="";//clearing the div
     var noInp=parseInt(document.getElementById("formName9").value);
        while(noInp>0)
        {
        addElement();
            noInp--;
        }           
    }

here is the JSFIDDLE

share|improve this answer
    
this is exactly what i was looking for –  Hunain Mar 20 '13 at 9:21

You'd make use of the on change event listener:

$('select#formName9').on('change', function() {
    /* Remove the existing input container, if it exists. */
    $('form#container').remove();

    /* Get the selected value and create the new container. */
    var val = $(this).val()
        $container = $('<form id="container"></form>');

    /* Loop through creating input elements based on value. */
    for(i=0;i<val;i++)
    {
        /* Create the new input element. */
        var $input = $('<input type="text"/>');

        /* Append this input element to the container. */
        $input.appendTo($container);
    }

    /* Add container to the page. */
    $container.insertAfter($(this));
})

JSFiddle example.

You could then expand upon this to add a default input based on the initially selected option:

Extended JSFiddle.

share|improve this answer
    
+1 You're right. I agree. It's not a competition. :) –  JoDev Mar 20 '13 at 8:55
$('select#formName9').on('change', function() {
var ddVal=$(this).val();
for(i=0;i<ddVal.length;i++)
{
$("#FORMPOSITION").append("<input type='text' name='ddG"+i+"' id='ddVL"+i+"'>");
}
});

consider the quotes before executing.

share|improve this answer

I tried and worked. Try it:

        $(document).ready(function() {
            $('#formName9').change(function() {
                var number = parseInt($('#formName9').val());
                if(number == 3) {
                    alert('3 HERE');
                }
            });
        });
share|improve this answer

Here's a sort of dynamic example using jQuery and CSS. I've provided a working jsFiddle.

This is the basic idea, you can work off of this and add more inputs if needed.

HTML:

<select id="formName9" name="blockUnits">
    <option selected="selected" value="1">1</option>
    <option value="2">2</option>
    <option value="3">3</option>
    <option value="4">4</option>
    <option value="5">5</option>
</select>
<div id="form1" class="hiddenForm form">Form 1</div>
<div id="form2" class="hiddenForm form">Form 2</div>
<div id="form3" class="hiddenForm form">Form 3</div>
<div id="form4" class="hiddenForm form">Form 4</div>
<div id="form5" class="hiddenForm form">Form 5</div>

jQuery:

$("#form1").show()
$("#formName9").change(function () {
    var form = "#form" + $(this).val();
    $(form).siblings(".hiddenForm").hide()
    $(form).show();
});

CSS:

.form {
    padding: 10px;
    border: 1px dotted #000;
    margin: 5px;
}
.hiddenForm {
    display: none;
}
share|improve this answer
    
I don't think that adding all DIV at the beginning and just SHOW/HIDE them is the best solution. You can easily create the DOM in a JS function... –  JoDev Mar 20 '13 at 8:58
    
You definitely can, that's true. I've never been a big fan of using JS to do that sort of thing, so I personally try not to do that unless it's needed. Why would doing it in JS versus using a simple show/hide be better? –  Doctor Oreo Mar 20 '13 at 9:00
    
Ok, It's an alternative way, that's work fine and don't use a lot of JS. I confess. –  JoDev Mar 20 '13 at 9:06

You can use Ajax call, and add the response to the DOM, or directly add the DOM using JS.

For direct DOM, somethink like (using jQuery):

$('#formName9').on('change', function() {
   var selected = $(this).val();
   $('#aDomElement').empty();
   for (var i=1; i<=selected; i++) {
       $('#aDomElement').append(
           $('<div id="'+i+'">').html(
                   $('<input>').attr('name', 'input'+i).attr('type', 'text')
           )
        );
   }
});

Where aDomElement is the ID of an existing HTML element.

share|improve this answer
    
Why would you use Ajax? You aren't making any requests to other pages. –  James Donnelly Mar 20 '13 at 8:43
    
Ajax was just if you wan't to add some particular treatment (like database call) before to show input –  JoDev Mar 20 '13 at 8:49
    
doing the same thing, but without the AJAX, only Jquery. it it works this will the solution –  Hunain Mar 20 '13 at 8:52
    
@JoDev the question didn't mention anything about database calls. –  James Donnelly Mar 20 '13 at 8:53
    
@Hunain this is basically a copy of my answer without any explanation of what's going on... –  James Donnelly Mar 20 '13 at 8:54

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