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I have a php file that dynamically prints a script in the head of my html page. The php will not print anything unless data has been posted. Once I post the data from a form on my page, I want the php file to refresh, printing the script in the head. What I have looks like this:

<!DOCTYPE html PUBLIC "-//W3C//DTD XHTML 1.0 Transitional//EN" "http://www.w3.org/TR/xhtml1/DTD/xhtml1-transitional.dtd">
<html xmlns="http://www.w3.org/1999/xhtml">
<head>
<meta http-equiv="Content-Type" content="text/html; charset=UTF-8" />
    <link href="graph.css" rel="stylesheet" type="text/css" />

    <?php include("graph.php"); ?>
<script src="jquery.js"></script>
<script type="text/javascript"> 
    $(document).ready(function(){
        //On-load defaults                     
        var critSelected = 'sex';      
        $(".criteria#sex").addClass("criteriaSelected");

        //Action for update button
        $("form#update").submit(function() {
            var formData = $("form#update").serialize();
                $.ajax({
                    type: "POST",
                    url: "graph.php",
                    data: formData + "&criteria=" + critSelected,
                    success: function(data){
                        $('div.graph').fadeOut(function(){$('div.graph').html(data).fadeIn();});
                    }
                });
            return false;
        });
    });</script>
</head>

<body>
<form id="update" method="post">
<div class="leftnav" align="center">

    <div id="title" align="center">
        <select name="graphContent" style="width:150px">
            <option value="Age Distribution">Age Distribution</option>
            <!-- <option value="sex">Sex Distribution</option>
            <option value="volvloc">Volume vs. Location</option>
            <option value="treatment">Treatment Distibution</option> -->
        </select>
        <br />
        <br />
    </div>

    <div id="criteria" align="right">
        <br />
        <div class="criteria" name="sex" id="sex" style="float:left">&nbsp;&nbsp;By Sex&nbsp;&nbsp;</div>
        <div class="criteria" name="loc" id="patient_location" style="float:left">&nbsp;&nbsp;By Location&nbsp;&nbsp;</div>
        <div class="criteria" name="type" id="patient_type" style="float:left">&nbsp;&nbsp;In/Out Patient&nbsp;&nbsp;</div><br />
        <br />
    </div>

    <div id="constraints" align="left">
        <br />
        Age Range : &nbsp&nbsp;
        <input type="text" value="0" style="width:30px" name="ageLow" />
        &nbsp;to&nbsp
        <input type="text" value="110" style="width:30px" name="ageHigh" />
        <br />
        <br />
        Location : 
        <input type="checkbox" value="TR" name="tr" />TR 
        <input type="checkbox" value="RO" name="ro" />RO
        <input type="checkbox" value="Tilch" name="tilch" />Tilch<br />
    </div>

    <div class="submit" align="center" style="padding-top:100px">
    <button type="submit" name="submit"><b>Update Graph</b></button>
    </form>
    </div>


</div>

<div class="graph" style="display:none">
    <div id="chart_div"></div>
</div>

</body>

</html>

Once the Ajax function finishes the php post, I need success to replace the php include with the updated file. The script that graph.php will generate would look something like this:

<script type="text/javascript" src="https://www.google.com/jsapi"></script>
<script type="text/javascript">
  google.load("visualization", "1", {packages:["corechart"]});
  google.setOnLoadCallback(drawChart);
  function drawChart() {
    var data = new google.visualization.DataTable();
    data.addColumn('string', 'Task');
    data.addColumn('number', 'Hours per Day');
    data.addRows(5);
    data.setValue(0, 0, 'Work');
    data.setValue(0, 1, 11);
    data.setValue(1, 0, 'Eat');
    data.setValue(1, 1, 2);
    data.setValue(2, 0, 'Commute');
    data.setValue(2, 1, 2);
    data.setValue(3, 0, 'Watch TV');
    data.setValue(3, 1, 2);
    data.setValue(4, 0, 'Sleep');
    data.setValue(4, 1, 7);

    var chart = new google.visualization.PieChart(document.getElementById('chart_div'));
    chart.draw(data, {width: 450, height: 300, title: 'My Daily Activities'});
  }
</script>

Thanks!

share|improve this question
    
is that script displaying an image or? –  Claudiu May 26 '11 at 0:01
    
it prints a script that generates a graph based on the posted data –  meburbo May 26 '11 at 0:02
    
You seem to be missing <script> tags around your jQuery .. –  drudge May 26 '11 at 0:03
    
you're right. i was copy and pasting code together to condense and i forgot to include. it's there in my code though –  meburbo May 26 '11 at 0:03
    
ok, but it's an image, right? or what is it? why do you put the graph in the .graph div if you want it in the header? –  Claudiu May 26 '11 at 0:04

1 Answer 1

up vote 1 down vote accepted

You can't do what you're going for here. It looks like you want to reload javascript in your and have it execute. It will not do that. Even if you ajax new html into the body of your page, javascript that is placed inside that html will not execute like it would on a normal page load. You should send back some json data in the response and send that to a javascript function that is loaded initially. That function should output your new chart.

share|improve this answer
    
I'm not sure that will work. The post is sending information to a php script that assembles a mysql query that calls another php script that writes the javascript function based on the query results. –  meburbo May 26 '11 at 0:34
    
I'm not sure how that prevents you from modifying that last script to output some json object rather than direct javascript commands. You can just as easily run what you need to on the page when you get the json back. –  Jage May 26 '11 at 0:40
    
I gotcha. I'm really gonna have to rework my strategy =/ Thanks! –  meburbo May 26 '11 at 0:58
    
It's not really safe, but you can send back your javascript and eval() it on the page. –  Jage May 26 '11 at 4:17

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