Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a dropdown box which lists a set of logos, like flower, butterfly etc.

<p class="title1">Logo</p>
<select name="logoMenu" class="select" size="7">
    <?php foreach($logos as $logo):?>
        <option id="<?php echo $logo['Subproperty']['id'];?>" value="<?php echo $logo['Subproperty']['values'];?>">
            <?php echo $logo['Subproperty']['values'];?>
        </option>
    <?php endforeach;?>
</select>

Suppose I select the logo 'Flower' from the drop down box, I want the flower picture to be displayed in a div. This is the div that I have to display the pictures:

<div id="theme_logos" class="float_left spaceleft" style="display:none;">
    <?php foreach($defaultLogos as $logo):
        //if($logo['Subproperty']['values']==clicked option value){?>
        <img height="50" width="50" src="/FormBuilder/app/webroot/img/themes/<?php echo $logo['Subproperty']['images'];?>" class="float_left user_profile_image user_profile_image" alt="Default50"/> 
    <?php endforeach;?>
</div>

The problem with this code is that it displays all the pictures found in the table. Because in my controller code I give only the property id as that of 'Logo', but do not give which logo.

$this->set('defaultLogos',$this->Subproperty->find('all',array('conditions'=>array('Subproperty.property_id'=>1,'Subproperty.values'=>"Flower"))));

Here I have hard coded 'flower' so that I only get the flower picture.

If I select the logo from the drop down box, how can I pass that selected value to the controller code? Or if I get the selected logo name using jQuery, how can I use that value in the if condition inside the foreach loop?

I am using the CakePHP framework.

$("#logoMenu option").click(function(){
    selectedLogo=$(this).attr("value");
    $('#subproperty_id').val($(this).attr("id"));   

    if(selectedLogo=="Your logo"){
        $("#themes_upload").show();
    }
    else{
        alert(selectedLogo);
        $("#themes_upload").hide();
        $("#theme_logos").show();
    }
});

EDIT:

Now I have tried an AJAX POST where I pass the selected logo to the same action of the controller. I get the value when I alert the passed value in the success function of the ajax function but the picture doesn't appear.

$("#logoMenu option").click(function(){
    selectedLogo=$(this).attr("value");
    $('#subproperty_id').val($(this).attr("id"));   

    if(selectedLogo=="Your logo"){
        $("#themes_upload").show();
    } else {
        alert(selectedLogo);
        $.ajax({
            type: "POST",
            url: "http://localhost/FormBuilder/index.php/themes/themes/",
            async: false,
            data: "selectedLogo="+selectedLogo,
            success: function(msg){
            alert( "Data Saved: " + msg);
    }
});

$("#themes_upload").hide();
$("#theme_logos").show();
}

function themes(){  
    $this->set('themes',$this->Theme->find('all'));
    $logo=$this->params['form']['selectedLogo']; 
    echo "logo:".$logo;  
    $this->set('defaultLogos',$this->Subproperty->find('all',array('conditions'=>array('Subproperty.property_id'=>1,'Subproperty.values'=>$logo))));
}

When I try to display the image in the page, it doesn't appear. Is it because the div show command is after the AJAX request?

share|improve this question
    
Should you not use AJAX for this? –  Graviton Sep 18 '09 at 6:37
    
It's not clear if you want to do this using Ajax or just form submitting –  Jani Hartikainen Sep 18 '09 at 6:47
    
I want to stay in the same page,so I do not want form submitting. If I select a particular logo,its image should be displayed. TheVillageIdiot's answer sounds sensible,but it doesn't work out. –  Angeline Sep 18 '09 at 10:16
    
Will sending an ajax post to the same page work? –  Angeline Sep 18 '09 at 10:46
    
If the images are really small and don't slow initial loading then you don't need ajax. –  TheVillageIdiot Sep 18 '09 at 10:58

1 Answer 1

if you can put the src of image in value of you select option or put attribute of image in hidden div to the value of the item you are showing in select option it will be really easy. Like:

CASE 1) Putting img src in value property of option

<option id="<?php echo $logo['Subproperty']['id'];?>" 
 value="/FormBuilder/app/webroot/img/themes/
                <?php echo $logo['Subproperty']['images'];?>">....</option>

$("#logoMenu").change(function(){
    var logo=$("#logoMenu option:selected").attr("value");
    $("#theme_logos img").hide();
    $("#theme_logos img[src='"+logo+"']").show();
})

CASE 2) Putting image's alt to value in option

<img height="50" width="50" src="..<?php echo $logo['Subproperty']['images'];?>"
      class="..." alt="<?php echo $logo['Subproperty']['values'];?>"/>

<option id="<?php echo $logo['Subproperty']['id'];?>" 
 value="<?php echo $logo['Subproperty']['values'];?>">..</option>

$("#logoMenu").change(function(){
    var alt=$("#logoMenu option:selected").attr("value");
    $("#theme_logos img").hide();//hide any other logo that is showing
    $("#theme_logos img[alt='"+alt+"']").show();//show selected logo
})

EDIT:- Test Code (CASE 2)

<div id="logos">
   <img src="flwrs_1.jpg" alt="1" height="32" width="32" style="display:none;" />
   <img src="flwrs_2.jpg" alt="2" height="32" width="32" style="display:none;" />
   <img src="flwrs_3.jpg" alt="3" height="32" width="32" style="display:none;" />
   <img src="flwrs_4.jpg" alt="4" height="32" width="32" style="display:none;" />
   <img src="flwrs_5.jpg" alt="5" height="32" width="32" style="display:none;" />
</div>
<select id="logo">
   <option id='1' value='1'>1</option>
   <option id='2' value='2'>2</option>
   <option id='3' value='3'>3</option>
   <option id='4' value='4'>4</option>
   <option id='5' value='5'>5</option>
</select>

<script type="text/javascript">
$(document).ready(function(){
     $("#logo").change(function(){
         var i=$("#logo option:selected").attr("value");
         $("div#logos img").hide();
         $("#logos img[alt='"+i+"']").show();
     });
});
</script>
share|improve this answer
    
Both the cases aren't working for me.. :( –  Angeline Sep 18 '09 at 10:09
    
please see the code i've added to the answer –  TheVillageIdiot Sep 18 '09 at 10:57
    
I get the value in the i variable. But the image doesn't appear.. Can u explain the line $("#logos img[alt='"+i+"']").show(); Its function? –  Angeline Sep 18 '09 at 11:20
    
Lets say $("#logo option:selected").attr("value") returns foobar. then this line will be: $("#logos img[alt='foobar']") it will select image having alt attribute value 'foobar' in div with logos. –  TheVillageIdiot Sep 18 '09 at 11:52
    
i even hard coded the value,i.e., gave img[alt='Flower'] and also gave the alt attribute value as Flower. Still I dont get the image.Plz help me.. –  Angeline Sep 22 '09 at 5:48

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.