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how can I differentiate the 'select name' of 'f1' and 'f2' currently both named 'subcat' while still having only 1 subcat variable? this code works accurately only if cat value=2, if cat value=1 then subcat value always =0

<?php    
$cat=$_POST['cat'];
$subcat = $_POST['subcat'];
?>
<form action='submitsite.php' method='POST'>
    <table>
        <tr>
            <td>category(optional)</td>
            <td>
                <select name='cat' id = "opts" onchange = "showForm()">
                    <option value = "0">Select</option>
                    <option value = "1">music </option>
                    <option value = "2">film </option>
                </select> 
                <div id = "f1" style="display:none">
                    <select name='subcat' id = "opts" onchange = "showForm()">
                        <option value = "0">Select</option>
                        <option value = "3">pop</option>
                        <option value = "4">rock </option>
                    </select>
                </div>
                <div id = "f2" style="display:none">
                    <select name='subcat' id = "opts" onchange = "showForm()">
                        <option value = "0">Select</option>
                        <option value = "5">comedy</option>
                        <option value = "6">drama</option>
                    </select>
                </div>
    </form>
</div>

<script type = "text/javascript">
    function showForm(){
        var selopt = document.getElementById("opts").value;

        if (selopt == 1) {
            document.getElementById("f1").style.display="block";
            document.getElementById("f2").style.display="none";
        }
        if (selopt == 2) {
            document.getElementById("f2").style.display="block";
            document.getElementById("f1").style.display="none";
        } 
    }
</script>
share|improve this question
    
I am not even giving that code a second look before it's properly indented. –  Hubro Aug 7 '12 at 18:47
1  
There is a whole lot wrong with your code. –  Undefined Aug 7 '12 at 18:50
1  
@Codemonkey I did my best, but that is NOT valid HTML. –  Matt Aug 7 '12 at 18:50
    
@Matt i am rewriting his code now as valid html in jsfiddle. –  Undefined Aug 7 '12 at 18:55
    
@sam It looks like halfway through, OP stopped using tables and started using divs, except he forgot to remove the tables entirely. –  Matt Aug 7 '12 at 18:57

4 Answers 4

up vote 2 down vote accepted

I have altered a lot of your code to make it valid html and also work as i "think" you want it as your question did not make it very clear.

Here is a list of amends I had to make:

  1. Changed ID's to make it clear what they are for.
  2. Removed duplicate ID's.
  3. Closed off your table properly.
  4. Completely changed your JavaScript to show and hide certain select's
  5. Many more things that I have forgotten.

Please see this jsfiddle.

Fixed html:

<form action='submitsite.php' method='POST'>
  <table>
    <tr>
      <td>category(optional)</td>
      <td>
         <select name="cat" id="selectType">
           <option value="0">Select</option>
           <option value="1">music</option>
           <option value="2">film</option>
         </select> 

         <div id="f1" style="display:none">
           <select name='music' id="selectMusic">
             <option value="0">Select</option>
             <option value="3">pop</option>
             <option value="4">rock</option>
           </select>
         </div>

         <div id="f2" style="display:none">
           <select name="type" id="selectFilm">
             <option value="0">Select</option>
             <option value="5">comedy</option>
             <option value="6">drama</option>
           </select>
         </div>
       </td>
     </tr>
   </table>      
 </form>

Fixed JavaScript:

$("#selectType").change(function() {

  var selected = $(this).val();
  $("#f1, #f2").hide();

  switch (selected) {
    case "1":
      $("#f1").show();
      break;

    case "2":
      $("#f2").show();
      break;           
  }            
});​​
share|improve this answer
1  
I think jQuery is a little advanced for OP, but this will help. –  Matt Aug 7 '12 at 19:18
    
thank you, I am having a little trouble integrating the javascript, but I will keep at I'm sure it will come good, thanks for the code :) –  user1559811 Aug 7 '12 at 19:21
    
@user1559811 No problem, let me know in the comments if you have any problems with it :) –  Undefined Aug 7 '12 at 19:25

Add [] to the name. The selects will then be interpreted as an array when submitted.

<select name="subcat[]">...</select>

With PHP it can be accessed (if POSTed) like this:

<?php

    $subCatArr = $_POST['subcat'];

    $firstIndex = $subCatArr[0];
    $secondIndex = $subCatArr[1];

Oh yeah, and reusing IDs in HTML is not valid. They must be unique.

UPDATE After better understanding OP's intent:

If I understand the intent of this spaghetti code (that's a term of endearment, OP), the user may select one category and one subcategory, which is based on the category that he/she selected. Then the user submits the form and that selection is recorded in the database.

First of all, let's get rid of the use of table elements, because they're unnecessary. Secondly, you only need one select for the subcategory.

<form action='submitsite.php' method='POST'>
    <label>category(optional)</label>
    <select name='cat' id = "opts" onchange = "showForm()">
        <option value = "0">Select</option>
        <option value = "1">music </option>
        <option value = "2">film </option>
    </select> 
    <div id="subcatDiv" style="display:none;">
        <select name='subcat' id='opts'></select>
    </div>
    .
    .
    .
    <input type='submit' />
</form>

We can leave it blank, since it's not being displayed anyway.

Now, when the user makes a change, we'll either display the appropriate subcategories, or we'll just hide the div again:

<script type = "text/javascript">
    function showForm(){
        var selopt = document.getElementById("opts");
        var seloptVal = selOpt.value;
        var subcatDiv = document.getElementById("subcatDiv");

        var options = "";
        switch(seloptVal * 1) {
            case 1:
                options = "<option value='0'>Select</option>" + 
                    "<option value='3'>pop</option>" + 
                    "<option value='4'>rock</option>";
                break;
            case 2:
                options = "<option value='0'>Select</option>" + 
                    "<option value='5'>comedy</option>" + 
                    "<option value='6'>drama</option>";
                break;
            default:
                break;
        }

        if (options == "") {
            subcatDiv.style.display = "none";
            selopt.innerHTML = options;
        } else {
            selopt.innerHTML = options;
            subcatDiv.style.display = "block";
        }
    }
</script>

Now you only have to deal with one select for the subcategory.

share|improve this answer
    
Please add that reusing ids in HTML is a deadly sin and you will have my vote. –  Hubro Aug 7 '12 at 18:52
    
@Codemonkey done. Good call. –  Matt Aug 7 '12 at 18:58
    
Already gave you my vote :) –  Hubro Aug 7 '12 at 18:58
    
ok, I'm getting an Undefined offset: 0 notice, also when inserting into mysql do I call the variable $subCatArr ? –  user1559811 Aug 7 '12 at 19:05
    
@user1559811 Well, first make sure that $_POST['subcat'] has a value. Do this with var_dump($_POST['subcat']); –  Matt Aug 7 '12 at 19:07

document.forms[0].subcat will be an array.

document.forms[0].subcat[0] will be the first instance, etc.

p.s. IDs are supposed to be unique.

share|improve this answer
document.getElementById('f2').getElementsByTagName('select')[0]

You are violating HTML standards by reusing IDs, by the way.

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