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 am NOT good with server-side technologies (have a hard time wrapping my mind around them at points). I am pretty decent with PHP.

I have a form that offers color options (now in drop-down format, but in future will be an image click). There are multiple choices in the form, for instance you can choose a frame color in one select menu, then choose a top color in another select menu in this illustration. Depending on which page you are on, there can be up to 12 of these choices, all named a,b,c,d...through l.

I have an image that is being created by phpgd library. Here is the current setup for the php gd:

    $a = $_POST['a'];//1
    $b = $_POST['b'];//2
    $c = $_POST['c'];//3
    $d = $_POST['d'];//4
    $e = $_POST['e'];//5
    $f = $_POST['f'];//6
    $g = $_POST['g'];//7
    $h = $_POST['h'];//8
    $i = $_POST['i'];//9
    $j = $_POST['j'];//10
    $k = $_POST['k'];//1
    $l = $_POST['l'];//12


    $default = imagecreatefrompng('../configurator-testing/11ta-503/default.png');
    $defaulta = imagecreatefrompng('../configurator-testing/11ta-503/black_a.png');
    $defaultb = imagecreatefrompng('../configurator-testing/11ta-503/black_b.png');

    header('Content-Type: image/png');

    $x = imagesx($default);
    $y = imagesy($default);

    imagecopy($default, $defaulta,0, 0, 0, 0, $x, $y);
    imagecopy($default, $defaultb, 0, 0, 0, 0, $x, $y);

    imagepng($default);

    imagedestroy($default);
    imagedestroy($defaulta);
    imagedestroy($defaultb);

Right now, it only posts a "default" image, which has a black frame, black top. What I want it to do is take the form input, and without refreshing the page or using a submit button, use the submitted values to change what image is created. File names are formatted according to the submitted value (ex. submitted black will correlate to files black_a.php and black_b.php, etc). Here is the form I am testing with:

    <img src="config-gd.php"/>

    <form id="configform" name="configform">
    <label>Frame Color</label>
    <select name="a" id="a">
    <option value="black">black</option>
    <option value="red">red</option>
    <option value="yellow">yellow</option>
    <option value="blue">blue</option>
    </select> 
    <label>Top Color</label>
    <select name="b">
    <option value="black">black</option>
    <option value="red">red</option>
    <option value="yellow">yellow</option>
    <option value="blue">blue</option>
    </select> 

Notice that it is pulling my image (phpgd) file in the first line above the form, so I want the choices to be processed through my phpgd script, and throw out the new color choices in the image above the form.

I can figure out how to get it to process in the phpgd script, no problem. I am having problems with the posting with no refresh and without a button part. Anyone know some jquery/ajax and willing to help? I've been trying to put something together off of tutorials on the web, i'm having an awful time.

I had found some simple functions to model after, and here is what I came up with, but I can't figure out how best to implement, and so far my efforts have not turned out:

    function postImg(layer1, layer2){   

       $.ajax({ 
          url: "config-gd.php", 
          data: { 
              id: layer1, 
              rate: layer2 
          }, 
          type: "POST", 
          success: function(){ 
             alert('Done!'); 
          } 
       }); 

    } 
share|improve this question
    
Yes, for example. Sorry...I was trying to illustrate that I will have the option to have up to 12 choices, and the images are named according to color and letter...so you see where my mind went. –  adoriboo Sep 30 '11 at 15:38

1 Answer 1

If I am right you want an image created by php to load on an event without page reload. I think it is simple.

==================edited part code is replaced==================================

Okay I see you need to send form data to php, it is trivial with Ajax, it's also easy to create the image too however what seems difficult for me is how to turn the raw data sent by php to a real image using js.

So I don't include the ajax here, however you can still sent the form data dynamically, without reload of course and get the desired image, using the src attribute of the image, check this code, maybe it can be of some help if customized to your needs.

image.php

 if($_GET['color']=='red')
    {$red=223;  $green=32;   $blue=3;}
 else
    {$red=0;   $green=0;   $blue=0;}

$im = @imagecreate(110, 20)
    or die("Cannot Initialize new GD image stream");
$background_color = imagecolorallocate($im, $red, $green, $blue);
$text_color = imagecolorallocate($im, 233, 233, 231);
imagestring($im, 11, 5, 5,  $_GET['txt'], $text_color);
imagepng($im);
imagedestroy($im);
?>

index.htm

 <html>
<head>
<script type="text/javascript">

   function updateImage(color)
{   
    var txt = document.getElementById("myTxtId").value;
    document.getElementById("imgElement").src='image.php?txt='+txt+'&color='+color; 
}   

</script> 
</head>
<body > 

Write something here and I will get it back as an image created by php.<br>
<form >
<input type="text" name="txt" id="myTxtId">
<input type=submit value="Get it it black" onclick="updateImage('black');return false;" >
<input type=submit value="Get it it red" onclick="updateImage('red');return false;" >
</form>

 <img  src="" border=24  color=gold height="111" width="222" id="imgElement">   

</body>
</html> 
share|improve this answer
    
I am trying to post the form without refreshing the page...loading the image is not the issue at this point. I need to post the form when choices are made, without a submit button, and without a reload. The image loading can be figured out, with little problem at that point I believe. Any ideas? Thanks for your answer. –  adoriboo Sep 30 '11 at 17:21
    
Thank you for your answer, then your edit of the post. I think I will pursue another direction now, since I need help with the ajax part. –  adoriboo Sep 30 '11 at 18:56

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.