10
http.get(options, function(res){
            fs.appendFile('log.txt', JSON.stringify(res.headers, null, 4));
})

I have a question regarding the JSON.stringify() function.

I've learned that simply using the res.headers does not in fact output to JSON format.

At the moment, I am restricted to only being able to use one res.xxxxx method within JSON.stringify(). The piece of code in question is pasted above. How am I able to use more than one value? At the moment, I can only put in res.headers into the value parameter. I would also like to use res.statusCode and my own objects, all stringified under one brace {}.

The parameters of JSON.Stringify is as follows: JSON.stringify(value, [replacer], [space]);

  • What's the content of res.headers? – T.J. Crowder Mar 4 '13 at 15:42
  • 1
    What do you mean by "all stringified under one brace"? – Bergi Mar 4 '13 at 15:43
  • @FritsvanCampen Yes, I know. Using res.headers itself doesn't output to JSON. Using JSON.stringify() does. My conundrum is that JSON.stringify() only allows one parameter. I am wondering if there is a work-around to that. @T.J.Crowder They are simply HTTP response headers with things like "date" "server" "x-powered-by" "x-aspnet-version" "location" etc – theGreenCabbage Mar 4 '13 at 15:44
  • JSON.stringify(value, [replacer], [space]); – user8202629 Aug 24 '17 at 6:03
16

You need to create a new js object and put res.headers into it.

var obj = {};
obj.headers = res.headers;
obj.somethingelse = somethingelse;
var string = JSON.stringify(obj);
  • 1
    This is it. Thank you so much, my good friend. Can't believe I didn't think of this. – theGreenCabbage Mar 4 '13 at 15:45
  • thans it worked like a charm – Sudhanshu Gaur Sep 26 '15 at 1:54
3

JSON is always a single value. So the output out JSON.stringify can always only be a single value. It would make sense to have the input be a single value too. This is like asking why can't my function return two things? You can make it return some composite value, but that means you're still returning a single (composite) value. The solution here is the same, compose your input.

var reply = {
    code: res.statusCode,
    headers: parse_http_headers(res.headers),
    etc: /* etc */
};
log(JSON.stringify(reply));

Note that you must write parse_http_headers yourself.

  • 3
    Can you please explain the downvote? mooreds beat me to it by 15 seconds, hardly a reason for a downvote I think. – Halcyon Mar 4 '13 at 15:45
  • I always see you around here @FritsvanCampen Have an upvote. – theGreenCabbage Mar 4 '13 at 16:52
  • Awesome, thanks. – Halcyon Mar 4 '13 at 17:07
2

You could always add the extra things you want to the headers object...

res.headers.statusCode = res.statusCode
JSON.stringify(res.headers, null, 4);

I don't know if there are any bad side effects if you mutate the res object in node. You might want to consider creating a shallow copy of the headers object if you are worried about that.

2

You could as well stringify more than only the headers part of your object:

JSON.stringify(res, …)

If you want to stringify only certain parts of your object, you can

  • filter them with the replacer function,
  • delete everything else before,
  • or build a new object to be stringified:

    JSON.stringify({
        heads: res.headers,
        …
    }, …)
    
2

If you'd like to flatten several objects, you can use this function.

function merge() {
  var out = {};
  insert = function(e) {
    for (var i in e) {
      if (Object.prototype.hasOwnProperty.call(e, i))
          out[i] = e[i];
    }
  };

  for (var i = 0; i < arguments.length; i++) {
    insert(arguments[i]);  
  }

  return out; 
}

var a = {'a': 'aa'};
var b = {'b': 'bb', 'bbb': 'bbbb'};
var c = {'c': 'cc'};


var combined = merge(a,b,c);
  • hasOwnProperty has some known pitfalls. Try flattening this object: { hasOwnProperty: function () { return false; }, foo: "bar" }. The solution is to use Object.prototype.hasOwnProperty.call(..) – Halcyon Mar 4 '13 at 15:52
  • Thank you, @Frits. – Brigand Mar 4 '13 at 15:57

Your Answer

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

Not the answer you're looking for? Browse other questions tagged or ask your own question.