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I am trying to return my SQL query array into a javascript array and then display the info one at a time. I have found a few helpful posts already on here but I still cannot get it to work. I am new to ajax and so please forgive any stupid mistakes. Below is the php followed by a description. php: this is in an external file from index.php

<?php
include('connection.php');

$query = "SELECT * FROM photos";
$queryresult = mysql_query($query);

while ( $line = mysql_fetch_array($result) ) {
    $path[] = $row[0];
}
$paths = json_encode($path);
header('Content-type: application/json');
echo $paths;
?>

This gets the results (they are file paths) array and json encodes them to pass to javascript. Connection.php is correct and it is working.

HTML/Javascript:

<html>
<head>
<script src="JavaScript/gjs.js" type="text/javascript"></script>
<script src="jquery/jquery-1.4.3.min.js" type="text/javascript"></script>
<script>
function imageload(){
var i = 1;
$.getJSON('phpfiles/getpiccode.php', function(data) {

    var can = document.getElementById('canvas').getContext('2d');

    $.each(data,function(idx, row){
    var img = new Image();
    img.onload = function(){
        can.drawImage(img, 0, 0, 1280, 800);
    }
    img.src = row;
            i++;
});

});

}
</script>
</head>

<body>
<div class="container">
<canvas id="canvas" class="canvas-one" width="1280" height="800">
<script>imageload();</script>This text is displayed if your browser does not support HTML5 Canvas</canvas>
</div>

</body>
</html>

I hope that makes sense. Thanks again!

share|improve this question
    
var newpath = "<?=$paths ?>"; inside the change handler.. that really looks messed up.. –  Ben Jan 12 '11 at 0:59
    
I got that from another post on this site. I do not know if it is correct, but have tried many other ways and nothing else seems to work. Open to ideas. Thanks for the reply! –  Siriss Jan 12 '11 at 1:26
    
I have updated my javascript using all the suggestions to hopefully explain it better. Thank you all for the help! –  Siriss Jan 13 '11 at 18:39
    
Anyone have any ideas? Thanks! –  Siriss Jan 16 '11 at 20:57

1 Answer 1

up vote 7 down vote accepted

Use json_encode() to encode it as JSON. In recent browsers you can simply turn the string from that function into a JavaScript object using var obj = JSON.parse(yourstring); - but better use e.g. jQuery for AJAX and JSON parsing.

Update: Your JavaScript should looke like that to iterate over the data from your query:

$.getJSON('phpfiles/getpiccode.php', function(data) {
    // get canvas object. it's the same for all images so only do it once
    var can = document.getElementById('canvas').getContext('2d');
    // iterate over the elements in data
    $.each(data, function(idx, row) {
        var img = new Image();
        img.onload = function() {
            can.drawImage(img, 0, 0, 1280, 800);
        }
        img.src = row;
    });
});

However, it might not do what you want: It will draw all images pretty much at once at the same position.

Also replace <script>imageload() </script> (assuming that's the function containing your JavaScript) with <script type="text/javascript">imageload();</script> as that's the correct/proper syntax.

In your PHP code you'll have to replace return $paths; with echo $paths; unless you are using some framework which relies on your file returning something. Additionally it'd be good to send a JSON header: header('Content-type: application/json');

PS: SELECT * combined with MYSQL_NUM is a BadThing. It relies on the columns in the table having a certain order. If you just need one column use "SELECT columnName"; if you need all, use MYSQL_ASSOC to get an associative array.

share|improve this answer
    
I agree. I also think that jQuery could make the stated intent (an incremental image display) much easier in other ways. And I'm curious why the new canvas is necessary, unless this is going to be expanded upon? –  Ben Saufley Jan 12 '11 at 0:47
    
Thanks for the reply. I thought I was using JSON in my PHP. I did not know it could be parsed though. I will try that. I am just starting to learn jquery, but I tend to default to what I know, I will try to update the code with jquery if I can. I chose canvas simply because it seemed easy and is new. I am not stuck to it though. –  Siriss Jan 12 '11 at 1:22
    
Using canvas for drawing-related stuff is perfectly fine and actually a good thing. jQuery just helps you with AJAX and DOM manipulations in case you need some. --> jQuery and canvas are for completely different things. –  ThiefMaster Jan 12 '11 at 7:12
    
I am aware that they are different, I just cannot get them to work. I encode the php array using json_encode(), but do I need to decode it? How do I pass to, and then read that encoded array in javascript? Thanks for the replies. –  Siriss Jan 12 '11 at 11:23
    
JSON is a subset of JavaScript. So you could do something like var obj = <?php echo json_encode($array); ?>; When using AJAX you need to use eval or JSON.parse (or let e.g. jQuery do that for you) –  ThiefMaster Jan 12 '11 at 23:01

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