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Hello i am new with Json in php. I have a web service that gives me data in json format. I take this data making decode put when i try to use this data i cant

Here is my code:

 $url = "http://www.webinsurer.gr/....;

    $json = json_decode(@file_get_contents($url), true);

and if i make debug i see the data i take :

[file] => C:\xampp\htdocs\development.insurancemarket.gr\mvc\protected\models\Ratingsmail.php
[line] => 18
[data] => Array
    (
        [0] => Array
            (
                [POL_EXPIREDATE] => 2014-05-19 12:00:00
                [INCO_IWCODE] => 41
                [INCO_DESC] => MAPFRE ASISTENCIA
                [PACK_IWCODE] => 0
                [PACK_DESC] => 
                [OFFERCODE] => 
                [PAYMENTCODE] => 
            )

        [1] => Array
            (.....

But i dont now how to use that data. when i try this :

$b= $json->{1}->{'INCO_IWCODE'};

    Debug::debuger($b);

the result is nothing

what is wrong? sorry for long post.

share|improve this question
    
show us console.log($json), it will output to the firebug/developer tools console (f12 in any browser) – Bartłomiej Wach May 15 '14 at 8:28
    
"if I make debug" with what code? Is this print_r($json)? If so you need to use $json['data'][0]['INCO_IWCODE']. – h2ooooooo May 15 '14 at 8:28
    
See my answer here – Hüseyin BABAL May 15 '14 at 8:29
    
@BartłomiejWach What? You cannot debug PHP variables on a javascript console. – EJTH May 15 '14 at 8:29
    
remove ", true" from your json decode line. – Jake May 15 '14 at 8:32

When setting the second argument on json_decode to true, you are actively asking for the data to be returned in an associative array and not objects. Thats why your code didn't work.

share|improve this answer
    
so what i have to do to work? :/ – theodosis May 15 '14 at 8:30
    
i removed the true and again in the debug the data was empty – theodosis May 15 '14 at 8:37
1  
@theodosis $json->data[1]->INCO_IWCODE - you are using {...} which is wrong and has a different meaning in PHP – DanFromGermany May 15 '14 at 8:47
    
Also what Dan said :-) To elaborate: {...} is for dynamic referencing, eg. if the variable you want depends on a computed result, or when the variable has a naming which is incompatible with PHP syntax: $obj->{$myvar} or $obj->{'invalid-variable-name'} are examples of valid uses. It does not work with arrays of any kind, only objects. – EJTH May 15 '14 at 9:49

Demo

You are converting json to associative array. You need to use;

$b = $json["data"][1]["INCO_IWCODE"];
share|improve this answer
    
its not working the result is : Array ( [file] => C:\xampp\htdocs\development.insurancemarket.gr\mvc\protected\models\Ratingsmail.‌​php [line] => 30 [data] => ) – theodosis May 15 '14 at 8:34
    
@user3438570 it is not working with what? Your formatting a bit hard to read. Please see my demo in answer – Hüseyin BABAL May 15 '14 at 8:36
    
I took your code but again in the debug the data was empty. i dont now why. – theodosis May 15 '14 at 8:38
up vote 0 down vote accepted

$a = $json[0]->INCO_IWCODE;

That worked for my guys. thanks you all!!!

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