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I have the following json

country_code({"latitude":"45.9390","longitude":"24.9811","zoom":6,"address":{"city":"-","country":"Romania","country_code":"RO","region":"-"}})

and i want just the country_code, how do i parse it?

I have this code

<?php
$json = "http://api.wipmania.com/jsonp?callback=jsonpCallback";
$jsonfile = file_get_contents($json);

var_dump(json_decode($jsonfile));
?>

and it returns NULL, why?

Thanks.

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After you do file_get_contents, what is the value of your $jsonfile variable? –  Aleks G Mar 29 '12 at 17:33
    
do a var_dump($jsonfile) and add the output the the question –  tereško Mar 29 '12 at 17:34
    
check json_last_error() –  Cfreak Mar 29 '12 at 17:35
    
var_dump($jsonfile) = string(144) "jsonpCallback({"latitude":"45.9390","longitude":"24.9811","zoom":6,"address":{"‌​city":"-","country":"Romania","country_code":"RO","region":"-"}})" –  Master345 Mar 29 '12 at 17:35

7 Answers 7

up vote 8 down vote accepted
<?php
$jsonurl = "http://api.wipmania.com/json";
$json = file_get_contents($jsonurl);
var_dump(json_decode($json));
?

You just need json not jsonp.
You can aslo try json_decode($json, true) to return array.

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Excellent. This is the kind of simple solution I've been searching high and low for. Thank you so much for your simple answer. –  3Dom Jan 22 at 14:20

you're requesting jsonp with http://api.wipmania.com/jsonp?callback=jsonpCallback, which returns a function containing JSON like:

jsonpCallback({"latitude":"44.9718","longitude":"-113.3405","zoom":3,"address":{"city":"-","country":"United States","country_code":"US","region":"-"}})

and not JSON itself. change your URL to http://api.wipmania.com/json to return pure JSON like:

{"latitude":"44.9718","longitude":"-113.3405","zoom":3,"address":{"city":"-","country":"United States","country_code":"US","region":"-"}}

notice the second chunk of code doesn't wrap the json in the jsonpCallback() function.

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what?? i never heard about that, so that's not a json? it looks like one –  Master345 Mar 29 '12 at 17:36
    
@RowMinds Does jsonpCallBack({"a":1}) look like JSON to you? –  Juan Mendes Mar 29 '12 at 17:38
    
@RowMinds it's json, just with a bit of extra data that PHP doesn't understand. –  JKirchartz Mar 29 '12 at 17:39
    
ok, and now how do ii get only the "RO" conuntry code fast? –  Master345 Mar 29 '12 at 17:41
1  
@RowMinds, country_code in under address use $jsonobject->address->country_code to get there... –  JKirchartz Mar 29 '12 at 18:01

The website doesn't return pure JSON, but wrapped JSON. This is meant to be included as a script and will call a callback function. If you want to use it, you first need to remove the function call (the part until the first paranthesis and the paranthesis at the end).

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i can replace jsonpCallback( and ) with whitespace .... but it will kill my procesor –  Master345 Mar 29 '12 at 17:38
    
If you use an efficient method (for example, the substring method) the time taken to remove the callback part of the string is negligible compared to the time the http request (to get the JSON file) takes. –  dutchflyboy Mar 29 '12 at 17:40

If your server implements JSONP, it will assume the callback parameter to be a JSONP signal and the result will be similar to a JavaScript function, like

jsonpCallback("{yada: 'yada yada'}")

And then, json_decode won't be able to parse jsonpCallback("{yada: 'yada yada'}") as a valid JSON string

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it will kill my processor maby api.wipmania.com/json will save me –  Master345 Mar 29 '12 at 17:40
    
yap, may be... did u check the diff between that url and api.wipmania.com/jsonp?callback=jsonpCallback ?? they are very different –  Felipe Sabino Mar 29 '12 at 20:16

If country_code( along with closing parenthesis are include in your json, remove them. This is not a valid json syntax: json

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You are being returned JSONP, not JSON. JSONP is for cross-domain-requests in JavaScript. You don't need to use it when using PHP because you aren't affected by cross-domain-policies.

Since you are getting a string from the file_get_contents() function you can do a replacement of the country_code( text (this is the JSONP specific part of the response):

<?php
$json = "http://api.wipmania.com/jsonp?callback=jsonpCallback";
$jsonfile = substr(file_get_contents($json)), 13, -1);

var_dump(json_decode($jsonfile));
?>

Note

This works but JKirchartz's solution looks better, just request the correct data rather than messing around with the incorrect data.

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it will kill my processor maby api.wipmania.com/json will save me –  Master345 Mar 29 '12 at 17:40
    
@RowMinds Using substr() will create unnecessary overhead since you can just request the correct data to begin with. But it's not going to "kill" anything, it's a pretty lightweight thing to do. –  Jasper Mar 29 '12 at 17:44
    
<?php $json = "api.wipmania.com/json";; $jsonfile = file_get_contents($json); echo "<br>"; print_r(json_decode($jsonfile)); echo $jsonfile['country_code']; echo $jsonfile->$country_code; ?> this might help me ... but it wont work –  Master345 Mar 29 '12 at 17:45

Obviously in this situation, using the correct URL to access the API will return pure jSON.

"http://api.wipmania.com/json"

A lot of people are providing an alternative to the API in use, rather than answering the OP's question, so here is a solution for those looking for a way of handling jSONp in PHP.

First, the API allows you to specify a callback method, so you can either use Jasper's method of getting the jSON sub string, or you can give a callback method of json_decode, and modify the result to use with a call to eval. This is my alternative to Jasper's code example since I don't like to be a copy cat:

$json = "http://api.wipmania.com/jsonp?callback=json_decode";
$jsonfile eval(str_replace("(", "('", str_replace(")", "')", file_get_contents($json)))));

var_dump($jsonfile);

Admittedly this seems a little longer, more insecure, and not as clear to read as Jasper's code:

$json = "http://api.wipmania.com/jsonp?callback=jsonpCallback";
$jsonfile = substr(file_get_contents($json)), 13, -1);

var_dump(json_decode($jsonfile));

Then the jSON "address":{"city":"-","country":"Romania","country_code":"RO","region":"-"} tells us to access the country_code like so:

$jsonfile->{'address'}->{'country_code'};
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