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Is this possible?

xmlHttp.send({
    "test" : "1",
    "test2" : "2",
});

Maybe with: a header with content type : application/json?:

xmlHttp.setRequestHeader('Content-Type', 'application/json')

Otherwise I can use:

xmlHttp.setRequestHeader('Content-Type', 'application/x-www-form-urlencoded')

and then JSON.stringify the JSON object and send it in a parameter, but it would be cool to send it in this way if it's possible.

share|improve this question
up vote 102 down vote accepted

@mellamokb Your answer will generate simple post data key/value pairs using the application/x-www-form-urlencoded mime type

@CIRK

If you want to post JSON you could do this

$.post("test.php", { json_string:JSON.stringify({name:"John", time:"2pm"}) });

or

(not using jQuery here)

var xmlhttp = new XMLHttpRequest();   // new HttpRequest instance 
xmlhttp.open("POST", "/json-handler");
xmlhttp.setRequestHeader("Content-Type", "application/json;charset=UTF-8");
xmlhttp.send(JSON.stringify({name:"John Rambo", time:"2pm"}));
share|improve this answer
    
but man I can use content-type:application/x-www-form-urlencoded too if I use stringify, then what's the point to use application/json? :) – Adam Jun 20 '11 at 23:31
1  
@CIRK: What's it matter? The content-type setting is completely arbitrary unless the server treats the one or the other specially. It's just data flowing back and forth at the end of the day. – mellamokb Jun 21 '11 at 0:14
7  
well if your post body is expected to be JSON eg ({name:"John",time:"2pm"}) use content type application/json if your post body is form urlencoded data (name=John&time=2pm) use application/x-www-form-urlencoded – Nathan Romano Jun 21 '11 at 13:56
    
where should I put the URL? – Shurui Liu Jul 11 '15 at 13:40
    
The content-type header is required for some backends. The resource controllers in Spring for example fail if the "Consumes" meta specifies application/json. You can also set responseType if "Produces" meta is set on the method. – Shanimal Jan 7 at 20:15

If you`re not using jQuery then please make sure:

var json_upload = "json_name=" + JSON.stringify({name:"John Rambo", time:"2pm"});
var xmlhttp = new XMLHttpRequest();   // new HttpRequest instance 
xmlhttp.open("POST", "/file.php");
xmlhttp.setRequestHeader("Content-Type", "application/x-www-form-urlencoded");
xmlhttp.send(json_upload);

And for the php receiving end:

 $_POST['json_name'] 
share|improve this answer
    
sorry for the bad formatting. I am new here – shantanu chandra Nov 18 '15 at 2:14

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