34

Is this the only way to use the body.json() and also get the status code?

let status;

return fetch(url)
    .then((response => {
         status = response.status;
         return response.json()
     })
    .then(response => {
        return {
            response: response,
            status: status
        }
    });

This doesn't work as it returns a promise in the response field:

.then((response)=> {return {response: response.json(), status: response.status}})
1
  • What is wrong with return {'response': resp.json(), 'status': resp.status} ? – Nico Van Belle Nov 13 '17 at 15:00
86

Your status is not visible in the second then. You can just get the two properties in the single then.

json() returns a new Promise to you, so you need to create your object inside the then of the result of that function. If you return a Promise from a function, it will be fulfilled and will return the result of the fulfillment - in our case the object.

fetch("https://jsonplaceholder.typicode.com/posts/1")
.then(r =>  r.json().then(data => ({status: r.status, body: data})))
.then(obj => console.log(obj));

2
  • response.body is a ReadableStream. response.json is a method that returns a promise to an object. – Domino Nov 13 '17 at 15:04
  • 1
    dear lord, ajax does this so much better – Nikhil VJ Nov 19 '20 at 14:13
14

I was faced with the exact same problem last week. The .json method returns a promise to the parsed JSON, not the parsed JSON itself. If you want to access both the response and the parsed JSON at once, you'll need to use nested closures like this:

fetch(url)
    .then(response => {
        response.json().then(parsedJson => {
            // code that can access both here
        })
    });

Alternatively, you can use the async/await syntax:

async function fetchTheThing() {
    const response = await fetch(url);
    const parsedJson = await response.json();

    // code that can access both here
}

Of course, you'll want to check for errors, either with a .catch(...) call on a Promise or with a try...catch block with an async function. You could make a function that handles JSON and error cases, and then reuse it for all fetches. For example, something like this:

function fetchHandler(response) {
    if (response.ok) {
        return response.json().then(json => {
            // the status was ok and there is a json body
            return Promise.resolve({json: json, response: response});
        }).catch(err => {
            // the status was ok but there is no json body
            return Promise.resolve({response: response});
        });

    } else {
        return response.json().catch(err => {
            // the status was not ok and there is no json body
            throw new Error(response.statusText);
        }).then(json => {
            // the status was not ok but there is a json body
            throw new Error(json.error.message); // example error message returned by a REST API
        });
    }
}

I don't think it's the best design pattern, but hopefully this clarifies how the fetch API works.

2
  • Note: I have used a solution like this in production once, but it was for a small app calling a backend API I made myself. There are probably better patterns to follow if your use case isn't trivial. – Domino Jan 29 '20 at 22:24
  • Interesting patterns can be found here: danlevy.net/you-may-not-need-axios – Domino Apr 20 '20 at 14:15
5

Using two 'then's seem unnecessary to me.

async/await could get the job done pretty easily.

    fetch('http://test.com/getData')
      .then( async (response) => {

        // get json response here
        let data = await response.json();
        
        if(response.status === 200){
         // Process data here
        }else{
         // Rest of status codes (400,500,303), can be handled here appropriately
        }

      })
      .catch((err) => {
          console.log(err);
      })
1

Did you try this?

return fetch(url)
    .then((r)=> {return {response: r.json(), status: r.status}})
2
  • 1
    I've tried. The problem is that r.json() is a promise and returning it like this means I get a promise in the response field. – Guy Nov 13 '17 at 15:08
  • than @Suren Srapyan is best solution I think – Drag13 Nov 13 '17 at 15:34
0

I think the cleanest way is to create a Promise.all() with the pieces you need.

.then(response => Promise.all([Promise.resolve(response.ok), response.text()]))

Which can be written shorter as

.then(response => Promise.all([response.ok, response.text()]))

The promise returns an array with all of the results

.then(data => ({ status: data[0], response: data[1] }))

0

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