0

I know there is a lot of posts on this subject but most of them refer to external JSON files.

I actually want to send the JSON Object that is mentioned on the same page by AJAX to a PHP page and out put all the sent JSON values to the PHP page in a h1 tag how can this be done?

This is my code example.

index.php

<script>

document.addEventListener('DOMContentLoaded',function(){

document.querySelector('#submit').addEventListener('click',fx);

function fx(){

//<JSON data>

var data = {
    firstName: "Jon",
    lastName: "Smith",
    age: 24
};

//</JSON data>

//<AJAX>
var xhr= new XMLHttpRequest();
xhr.onreadystatechange= function(){

if(xhr.readyState == 4){

document.querySelector('#output').innerHTML= xhr.responseText;

}
}

xhr.open('POST','x');
xhr.setRequestHeader("Content-type", "application/x-www-form-urlencoded");
xhr.send(data);
//</AJAX>
}

});

</script>

<button id='submit'>Send JSON data</button>

<div id='output'></div>

x.php

<?php
//???
?>

<h1><?php //show all the sent JSON object values in this h1 tag ?></h1>
0

Turn the object into a JSON string with JSON.stringify() and send it, then on the php script you decode the JSON into an object or array with json_decode().

the javascript

var data = {
    firstName: "Jon",
    lastName: "Smith",
    age: 24
};
var myJSON = JSON.stringify(data); 

// additions to your xhttp send section
xhttp.open("POST", "x.php", true); // setting the third parameter to 'true' make the ajax call asynchronous, remove that if you want a synchronous request
xhttp.setRequestHeader("Content-type", "application/x-www-form-urlencoded");
xhttp.send("jsonstr=myJSON"); 

the php

$jsonstr = $_POST["jsonstr"];
$data = json_decode($jsonstr); // if you want $data to be an object

echo $data->firstName; // Jon
echo $data->lastName; // Smith
echo $data->age; // 24

or

$jsonstr = $_POST["jsonstr"];
$data = json_decode($jsonstr,true); // if you want $data to be an array

echo $data[firstName]; // Jon
echo $data[lastName]; // Smith
echo $data[age]; // 24

In x.php you should be able to set the heading like this:

<h1><?php echo $data->firstName.' '.$data->lastName.' '.$data->age;?></h1>
| improve this answer | |
  • Thanks for your reply but its showing errors in the php part I put this <h1><?php echo $var = json_decode($jsonstr); ?></h1> and it gave me this error Notice: Undefined variable: jsonstr in C:\xampp\path\x.php on line 1 – user10682694 Jul 12 '19 at 23:30
  • You need to catch the posted data on the php page and save it into a variable named $jsonstr or any other name as you prefer. – John.M Jul 12 '19 at 23:34
  • But what is x refering to the $_POST['X']; this is what I put – user10682694 Jul 12 '19 at 23:39
  • <?php echo $jsonstr= $_POST['firstName']; ?> <h1><?php echo $var = json_decode($jsonstr); ?></h1> – user10682694 Jul 12 '19 at 23:39
  • Undefined index: firstName – user10682694 Jul 12 '19 at 23:40
-1

Try this example.

index.php

<script>

document.addEventListener('DOMContentLoaded',function(){

document.querySelector('#submit').addEventListener('click',sendUserInfo);

function sendUserInfo(){

//<JSON data>

var user_info = {
    first_name: "John",
    last_name: "Smith",
    age: 24
};

//</JSON data>

var user_info_json_object= 'user_info_json_object='+JSON.stringify(user_info); 

//<AJAX>
var xhr= new XMLHttpRequest();
xhr.onreadystatechange= function(){

if(xhr.readyState == 4){

document.querySelector('#output').innerHTML= xhr.responseText;

}
}

xhr.open('POST','x');
xhr.setRequestHeader("Content-type", "application/x-www-form-urlencoded");
xhr.send(user_info_json_object);
//</AJAX>
}

});

</script>

<button id='submit'>Send JSON data</button>

<div id='output'></div>

x.php

<?php

$user_info_json_object = json_decode($_POST['user_info_json_object']);

$first_name= $user_info_json_object->first_name;
$last_name= $user_info_json_object->last_name;
$age= $user_info_json_object->age;

?>

<h1><?php echo $first_name; ?></h1>
<h1><?php echo $last_name; ?></h1>
<h1><?php echo $age; ?></h1>
| improve this answer | |
  • I tried out your example as well and your example is also good as well but I have to give the best answer award to John.M because he was the one that helped me out first but thank you for trying to help me out to. – user10682694 Jul 13 '19 at 5:16
  • This encoding isn't complete. In any case, the extra wrap with the URL-encoded form data is unnecessary. You can just post the JSON. Also, your code is open to XSS attacks. Never concatenate arbitrary data into HTML. You must escape it with htmlspecialchars() (or equivalent) first. – Brad Jul 15 '19 at 0:22

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy