256

I’m trying to receive a JSON POST on a payment interface website, but I can’t decode it.

When I print :

echo $_POST;

I get:

Array

I get nothing when I try this:

if ( $_POST ) {
    foreach ( $_POST as $key => $value ) {
        echo "llave: ".$key."- Valor:".$value."<br />";
    }
}

I get nothing when I try this:

$string = $_POST['operation'];
$var = json_decode($string);
echo $var;

I get NULL when I try this:

$data = json_decode( file_get_contents('php://input') );
var_dump( $data->operation );

When I do:

$data = json_decode(file_get_contents('php://input'), true);
var_dump($data);

I get:

NULL

The JSON format is (according to payment site documentation):

{
   "operacion": {
       "tok": "[generated token]",
       "shop_id": "12313",
       "respuesta": "S",
       "respuesta_details": "respuesta S",
       "extended_respuesta_description": "respuesta extendida",
       "moneda": "PYG",
       "monto": "10100.00",
       "authorization_number": "123456",
       "ticket_number": "123456789123456",
       "response_code": "00",
       "response_description": "Transacción aprobada.",
       "security_information": {
           "customer_ip": "123.123.123.123",
           "card_source": "I",
           "card_country": "Croacia",
           "version": "0.3",
           "risk_index": "0"
       }
    }
}

The payment site log says everything is OK. What’s the problem?

  • 4
    What does var_dump($_POST) say? Is it an empty array? – Sergiu Paraschiv Sep 18 '13 at 7:51
  • 3
    $_POST has the dictionary of "&" separated post requests. $_POST for json will DEFINITELY not work. Can you print file_get_contents('php://input')? Also is it var_dump($data->operation); or var_dump($data->operacion); ? – Akshaya Shanbhogue Sep 18 '13 at 7:53
  • 4
    JSON is text, why wouldn't it be accessible in POST? As long as the payment service POSTs that text to his PHP endpoint then he should be able to json_decode it. But maybe the service sends data in request body, that's a different story and yes, file_get_contents('php://input') should work then. – Sergiu Paraschiv Sep 18 '13 at 8:03
  • 1
    If so then this has been discussed here: stackoverflow.com/questions/8945879/… – Sergiu Paraschiv Sep 18 '13 at 8:04
  • 1
    $_POST: An associative array of variables passed to the current script via the HTTP POST method when using application/x-www-form-urlencoded or multipart/form-data as the HTTP Content-Type in the request. Not when using application/json. – Cristian Sepulveda May 17 '18 at 16:39
441

Try;

$data = json_decode(file_get_contents('php://input'), true);
print_r($data);
echo $data["operacion"];

From your json and your code, it looks like you have spelled the word operation correctly on your end, but it isn't in the json.

EDIT

Maybe also worth trying to echo the json string from php://input.

echo file_get_contents('php://input');
  • 2
    Hi In both case I get nothing on screen – Pablo Ramirez Sep 18 '13 at 9:00
  • 6
    For what it's worth, operacion is the spelling (give or take an accent) in Spanish. – Patrick Oct 1 '13 at 7:44
  • 9
    His point was that he didn't spell it correctly in both places, either operacion or operation in both spots. – msj121 Dec 12 '13 at 4:39
  • 2
    Before PHP 5.6, getting the contents of php://input could only be done once. Could your code or framework have opened it somewhere before? – aljo f Feb 17 '15 at 23:45
  • operacion is correct, operation isn't. – Felo Vilches Sep 22 '17 at 19:01
73

If you already have your parameters set like $_POST['eg'] for example and you don't wish to change it, simply do it like this:

$_POST = json_decode(file_get_contents('php://input'), true);

This will save you the hassle of changing all $_POST to something else and allow you to still make normal post requests if you wish to take this line out.

  • 1
    Thank you sir. This worked in my case as I am doing json posting from Android to PHP! – vanurag Mar 21 '18 at 11:51
  • Thank you, it did work in my case. I was assigning the $_POST data to a $request variable, now I just assigned to that variable the content of php://input. – Funder Aug 7 at 12:55
37

Use $HTTP_RAW_POST_DATA instead of $_POST.

It will give you POST data as is.

You will be able to decode it using json_decode() later.

  • 43
    Since $HTTP_RAW_POST_DATA is depreciated now you can use in this way to read JSON POST $json = file_get_contents('php://input'); $obj = json_decode($json); – Bikal Basnet Sep 14 '14 at 7:31
  • 2
    For me this common answer [ use $json = file_get_contents('php://input'); ] I was seeing did not work when the JSON was being sent with outer most "container chars" as []. This answer here with RAW_POST_DATA did the trick for me. And is fine with my current PHP stack. I was stuck for a while .. thanks very much for this solution! – Gene Bo Mar 18 '15 at 21:21
  • This is still pretty current, for GitLab webhooks (for example), you still have to use $HTTP_RAW_POST_DATA. – developius Oct 2 '16 at 10:11
  • Thanx alot man ... it worked like a charm – Abdeali Chandanwala Feb 25 '17 at 11:36
  • I searched and searched for a solution and Bikel Basnet yours worked for me. Thanks! – Scooter Mar 1 '17 at 0:41
36

It is worth pointing out that if you use json_decode(file_get_contents("php://input")) (as others have mentioned), this will fail if the string is not valid JSON.

This can be simply resolved by first checking if the JSON is valid. i.e.

function isValidJSON($str) {
   json_decode($str);
   return json_last_error() == JSON_ERROR_NONE;
}

$json_params = file_get_contents("php://input");

if (strlen($json_params) > 0 && isValidJSON($json_params))
  $decoded_params = json_decode($json_params);

Edit: Note that removing strlen($json_params) above may result in subtle errors, as json_last_error() does not change when null or a blank string is passed, as shown here: http://ideone.com/va3u8U

  • 1
    If someone is expecting a rather large amount of data in the input and/or a high volume of requests, they may want to extend the function to optionally populate a provided variable reference with the result of json_decode, so that the parsing does not need to be performed twice on well-formed input. – faintsignal Feb 2 at 1:23
  • 2
    Done this way, you actually decode the json twice. That's expensive. With the first decode, you can immediately save the decoded value, do that check afterwards (json_last_error() == JSON_ERROR_NONE) and then proceed with the processing if all is well [fail otherwise] – kakoma Mar 26 at 17:12
  • @kakoma, most definitely! This was written with simplicity in mind. For education purposes, simplicity is often more important than efficiency. :) – XtraSimplicity Mar 27 at 8:35
  • 1
    True. For education purposes. Thanks for the clarification @XtraSimplicity Ha, it is even in your name :-) – kakoma Mar 27 at 8:51
11

Read the doc:

In general, php://input should be used instead of $HTTP_RAW_POST_DATA.

as in the php Manual

9
$data = file_get_contents('php://input');
echo $data;

This worked for me.

-3

I'd like to post an answer that also uses curl to get the contents, and mpdf to save the results to a pdf, so you get all the steps of a tipical use case. It's only raw code (so to be adapted to your needs), but it works.

// import mpdf somewhere
require_once dirname(__FILE__) . '/mpdf/vendor/autoload.php';

// get mpdf instance
$mpdf = new \Mpdf\Mpdf();

// src php file
$mysrcfile = 'http://www.somesite.com/somedir/mysrcfile.php';
// where we want to save the pdf
$mydestination = 'http://www.somesite.com/somedir/mypdffile.pdf';

// encode $_POST data to json
$json = json_encode($_POST);

// init curl > pass the url of the php file we want to pass 
// data to and then print out to pdf
$ch = curl_init($mysrcfile);

// tell not to echo the results
curl_setopt ($ch, CURLOPT_RETURNTRANSFER, 1 );

// set the proper headers
curl_setopt($ch, CURLOPT_HTTPHEADER, [ 'Content-Type: application/json', 'Content-Length: ' . strlen($json) ]);

// pass the json data to $mysrcfile
curl_setopt($ch, CURLOPT_POSTFIELDS, $json);

// exec curl and save results
$html = curl_exec($ch);

curl_close($ch);

// parse html and then save to a pdf file
$mpdf->WriteHTML($html);
$this->mpdf->Output($mydestination, \Mpdf\Output\Destination::FILE);

In $mysrcfile I'll read json data like this (as stated on previous answers):

$data = json_decode(file_get_contents('php://input'));
// (then process it and build the page source)
  • Too much useless information.. What does the first code do? The second snippet is the answer tho.. – Fipsi Jul 20 at 10:11
  • @Fipsi, (and to all the downvoters) my answer is only, and quite obviously, a compendium of the others. And,as I wrote, a use case (mpdf). At the time of writing, I would have LOVED to see an answer like this, when I was trying to figure out how to. And my second snippet is certainly NOT the answer, since to receive json data, the data has to be also properly sent, and not only there are more ways to send, but often the way, is exactly the real problem. In this case, the focus is not json_decode, it's instead how to properly get something from file_get_contents('php://input'). – Luca Reghellin Jul 22 at 5:50
  • I didn't downvote and I understand your intention.. But the question is 'Receive JSON' and not 'Send JSON'. It's pretty clear from the question that the OP has issues receiving and isn't really interested in sending – Fipsi Jul 22 at 6:02

protected by Community Dec 2 '14 at 10:36

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