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I am working on parsing a json script queried through ajax from my database. I want to use what I queried (in a json format) in my javascript function "addComp()" that adds a geometric component for each building on a map. Here is the jQuery/ajax code:

$.ajax({ 

        type: "GET",
        url: "ajax_processor.php",
        dataType : "json",

        success:function(data){ 
        console.log(data); //here I got what i want

        var geometryElement = $.parseJSON(data);

                for (var i=0; i<geometryElement.length; i++) {
                      addComp(  geometryElement[i].bldg, 
                                    geometryElement[i].iZ, 
                                    geometryElement[i].iType,
                                    geometryElement[i].x0,
                                    geometryElement[i].y0,
                                    geometryElement[i].p, ...); //parameters p1, p2, p3, p4, p5
                 }
        }
});

The JSON script I got, queried through PHP is :

{"ID_geometryElement":"1","bldg":"1","iZ":"1","iType":"1","x0":"23","y0":"5","p1":"5","p2":"2","p3":"3","p4":"0","p5":"0"},
{"ID_geometryElement":"2","bldg":"1","iZ":"1","iType":"1","x0":"24","y0":"7","p1":"2.5","p2":"4","p3":"3.5","p4":"0","p5":"0"},
 ...

But that doesn't display anything on the map, and I got the following errors:

 Uncaught SyntaxError: Unexpected token o          jquery.js:550
 jQuery.extend.parseJSON                           jquery.js:550    
 $.ajax.success                                    index_LF.php:3725
 fire                                              jquery.js:3074
 self.fireWith                                     jquery.js:3186
 done                                              jquery.js:8253
 callback                                          jquery.js:8796
 handleStateChange                                 firebug-lite.js:18917 

Does anyone know where it comes from and how to fix it ?

EDIT: on the PHP side, I got :

    <?php

    $host = 'localhost';
    $databaseName = 'localdb';
    $tableName = 'building_geometry';
    $user = 'admin';
    $password = 'password';


    $connexion = mysql_connect($host,$user,$password);
    $dbs = mysql_select_db($databaseName, $connexion);

    $sql = mysql_query('SELECT * from building_geometry');

    $rows = array();
    while($r = mysql_fetch_assoc($sql)) {
        $rows[] = $r;
    }

    echo json_encode($rows);

    ?>

but the problem is not in the php, I was parsing twice what was already in json (dataType is json).

share|improve this question
    
The error is probably on the PHP side. It's probably not returning valid javascript, possibly by not escaping something like a ' or " properly. The javascript code seems valid. –  adpalumbo Jul 30 '13 at 19:38

1 Answer 1

up vote 2 down vote accepted

That is not valid JSON. It looks like an array literal but it's missing the outer square brackets.

That is,

{"foo": 0, ... },
{"bar": 1, ... },

is invalid, but it would be valid if it were

[{"foo": 0, ... },
{"bar": 1, ... }]

Anyway, if you're telling jQuery that the data type is JSON, and it really is JSON, then you don't have to parse it. The "data" parameter will be the parsed object, not the unparsed string.

share|improve this answer
    
I have in fact the outer square brackets you are talking about, I was just displaying a sample of what I got. but maybe my question was not clear : did i do something wrong in the "data" parameter like using is as an array in the line "geometryElement[i].bldg" for example ? EDIT: Yes, you were right, no need to parse it, I thought I had to. I got it. Thanks a lot ! –  LaurianeF Jul 30 '13 at 19:32
    
@LaurianeF you're welcome! –  Pointy Jul 30 '13 at 19:50
    
This really helped me, but I'm wondering why the square brackets are not being added to my output inspite of using json_encode. I could just output them manually... –  aalaap Dec 8 '13 at 16:12
    
@aalaap that's a good question; I'm not a PHP coder so I don't know why it would do that. –  Pointy Dec 8 '13 at 16:16

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