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I´m really frustrated about a problem with my website. From a php File, I get this list of JSON:

{"Data":{"Recipes":{"Recipe_5":{"ID":"5","TITLE":"Spaghetti Bolognese"},"Recipe_7":{"ID":"7","TITLE":"Wurstel"},"Recipe_9":{"ID":"9","TITLE":"Schnitzel"},"Recipe_10":{"ID":"10","TITLE":null},"Recipe_19":{"ID":"19","TITLE":null},"Recipe_20":{"ID":"20","TITLE":"Hundefutter"},"Recipe_26":{"ID":"26","TITLE":"Apfelstrudel"},"Recipe_37":{"ID":"37","TITLE":null},"Recipe_38":{"ID":"38","TITLE":"AENDERUNG"},"Recipe_39":{"ID":"39","TITLE":null},"Recipe_40":{"ID":"40","TITLE":"Schnitzel"},"Recipe_42":{"ID":"42","TITLE":"Release-Test"},"Recipe_43":{"ID":"43","TITLE":"Wurstel2"}}},"Message":null,"Code":200}

In my html file, I´ve got a JS function that parses this JSON data and save it to a array.

<script type="text/javascript">
    function test() {
            //var availableTags = new Array(400);
            //availableTags[0] = "Test";
            alert("misstake");
            var availableTags = JSON.parse(<?php include("/php/search_new.php"); ?>);
            alert("misstake");
            //var availableTags = JSON.parse(<?php include("/php/getAllRecipes.php"); ?>);
            alert("misstake");
            for(var i=0;i<availableTags.length;i++){
                alert("<b>availableTags["+i+"] is </b>=>"+availableTags[i]+"<br>");
            } 
            alert("Hallo");
        }
    </script>

I´m sure, the function is called because I tried it just with a alert in it. Here´s my HTML:

<body>
        <form action="search.html" onsubmit="test()">
            <input  type="text" class="searchinput" style="margin-left: 850px; margin-top: 0px; width:170px; background: #fff url(images/search_icon.png) no-repeat 100%;" placeholder="Suchen..."></input>
            <input type="submit"  value="" width: 5px></input>
        </form>         
</body>

So there must be a mistake at

var availableTags = JSON.parse(<?php include("/php/search_new.php"); ?>);

What is the problem? How can I figure out that?

If you need the php:

<?php
include 'db_connect.php';
 session_start();
      if (isset($_SESSION['last_activity']) && (time() - $_SESSION['last_activity'] > 1200)) {
        session_destroy();   
        session_unset(); 
      }
      else
      {
        $_SESSION['last_activity'] = time();
      }
$arr = array('Data' => null,'Message' => null,'Code' => null);


$sql = "SELECT * FROM  RECIPES";
$result = mysql_query($sql,$db) or exit("QUERY FAILED!");
            while($row = mysql_fetch_array($result))
             {
                 $arr['Data']['Recipes']['Recipe_'.$row['recipes_id']]['ID'] = $row['recipes_id'];
                 $arr['Data']['Recipes']['Recipe_'.$row['recipes_id']]['TITLE'] = $row['title'];
             }
if($arr['Data'] == null)
{
    $arr['Message']= "nothing found";
    $arr['Code'] = 404;
}
else
{
    $arr['Code'] = 200;
}
mysql_close($db);
echo json_encode($arr);
?>
share|improve this question
2  
Try to remove the JSON.parse(): var availableTags = <?php include(...) ?>;. If you echo JSON like this, it will already be interpreted as JavaScript object and you cannot parse it. –  Felix Kling Nov 4 '11 at 11:05
2  
Is your HTML file actually a PHP file (saved as .php)? –  apnerve Nov 4 '11 at 11:05
1  
But is it served through PHP? It has to be... as I said in your previous question, you have to have a look at the resulting HTML, the one the browser sees. If it still contains the PHP directives, then the file is not parsed by PHP. You cannot execute PHP code with JavaScript (if that is what you want to do). –  Felix Kling Nov 4 '11 at 11:07
2  
Open the site in your browser and inspect the source. If you see <?php... ?> in that line instead of {"Data":..., then your file is not processed by PHP. It has to be processed by PHP if you want to make this work or use other ways to retrieve the data, like an Ajax call. –  Felix Kling Nov 4 '11 at 11:12
1  
possible duplicate of Javascript function not called –  Quentin Nov 4 '11 at 11:15

1 Answer 1

You don't need to do a JSON.parse you can simply do

var availableTags = <?php include("/php/search_new.php"); ?>;

And name your php file as somename.php and make sure it is on some local or hosted server.

and you can see you data as,

alert(a['Data']["Recipes"]["Recipe_5"]["ID"]);
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