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I'm trying to make a select box to switch from one searchform to the other, but I'm very unexperienced with HTML forms.

The two options should be "Blog" and "Shop". (FYI the blog one for Wordpress and the shop one for Opencart.)

For Wordpress the search url would be: /?s=TEST For Opencart: /shop/?route=product/search&filter_name=TEST

These are the two forms so far:

<form method="get" id="blogsform" class="form-search" action="/">
 <input type="search" name="s" id="s" placeholder="Blog durchsuchen ...">
 <input type="submit" class="submit" id="searchsubmit" value="Durchsuchen">
</form>

<form method="get" id="shopsform" class="form-search" action="/shop/">
 <input type="hidden" name="route" value="product/search">
 <input type="search" name="filter_name" placeholder="Shop durchsuchen ...">
 <input type="submit" class="submit" id="searchsubmit" value="Durchsuchen">
</form>

Thanks in advance for your help, Markus

share|improve this question
    
How do you define "switch from one searchform to the other"? One is hidden and the other shown based on your select box choice? –  mellamokb Apr 11 '12 at 17:11
    
Sorry, haven't really thought about that. It should actually be the same form, but with other action/values. Just like that: Search [Blog/Shop]: [searchfield] [searchbutton] –  reitermarkus Apr 11 '12 at 17:17
    
Do you have the ability to use a JavaScript library like jQuery in your project? –  mellamokb Apr 11 '12 at 17:18
    
Yes, I use the Twitter Bootstrap, so I will need it anyway. –  reitermarkus Apr 11 '12 at 17:21
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1 Answer

up vote 2 down vote accepted

With jQuery, these are simple changes applied in the onchange event of a select box:

<select id="chooseform">
    <option value="">Select Form...</option>
    <option value="Blog">Blog</option>
    <option value="Shops">Shops</option>
</select>

If you want to have two forms, and show/hide each form based on the selection, you might do something like this:

$('#chooseform').change(function() {
    var choice = $(this).val();
    if (choice == "Blog")
    {
        $('#blogsform').show();
        $('#shopsform').hide();
    }
    else if (choice == "Shops")
    {
        $('#blogsform').hide();
        $('#shopsform').show();
    }
    else
    {
        $('#blogsform').hide();
        $('#shopsform').hide();
    }
});​

Demo: http://jsfiddle.net/Pf9QQ/


If you want to have a single form, but change the action/method and display properties of the form dynamically based on the selection, you could do it something like this:

$('#chooseform').change(function() {
    var choice = $(this).val();
    if (choice == "Blog")
    {
        $('#theform').attr('action', '/');
        $('#s').attr('name', 's');
        $('#s').attr('placeholder', 'Blog durchsuchen ...');
        $('#theform').show();
    }
    else if (choice == "Shops")
    {
        $('#theform').attr('action', '/shop/');
        $('#s').attr('name', 'filter_name');
        $('#s').attr('placeholder', 'Shop durchsuchen ...');
        $('#theform').show();
    }
    else
    {
        $('#theform').hide();
    }
});​

Demo: http://jsfiddle.net/JgLSE/


Which method you choose depends on which way is easier to maintain. If you have really large forms with only a few minor differences, you could use the second method. If the forms are very different, I would just maintain two separate entire forms and show/hide them appropriately based on the user's selection, because that will be less confusing or complicated.

share|improve this answer
    
Ok, thank you, but you forgot the name="route" and value="product/search". Would you suggest the first method for this problem? –  reitermarkus Apr 11 '12 at 17:44
    
If there's no reason that the forms need to be combined, and you're fine with maintaining both, I would definitely go with the first solution because it's cleaner. As far as the name="route", I purposely left it in there assuming the blogsform would ignore the extraneous field, but you could technically add/remove the input field dynamically as well. –  mellamokb Apr 11 '12 at 17:49
    
Thanks, it is working in jsFiddle, but not on the actual site. May be an issue with the cloudflare minification. –  reitermarkus Apr 11 '12 at 18:17
    
Great, it's working now, thank you very much for the help. –  reitermarkus Apr 11 '12 at 18:27
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