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I am trying to make an HTTP POST request with the flutter plugin HTTP but I am getting an error of the title. Does anyone know the cause of this since in my other applications this works just perfectly fine?

await http.post(Uri.encodeFull("https://api.instagram.com/oauth/access_token"), body: {
      "client_id": clientID,
      "redirect_uri": redirectUri,
      "client_secret": appSecret,
      "code": authorizationCode,
      "grant_type": "authorization_code"
    });

2 Answers 2

261

To improve compile-time type safety, package:http 0.13.0 introduced breaking changes that made all functions that previously accepted Uris or Strings now accept only Uris instead. You will need to explicitly use Uri.parse to create Uris from Strings. (package:http formerly called that internally for you.)

Old Code Replace With
http.get(someString) http.get(Uri.parse(someString))
http.post(someString) http.post(Uri.parse(someString))

(and so on.)

In your specific example, you will need to use:

await http.post(
  Uri.parse("https://api.instagram.com/oauth/access_token"),
  body: {
    "client_id": clientID,
    "redirect_uri": redirectUri,
    "client_secret": appSecret,
    "code": authorizationCode,
    "grant_type": "authorization_code",
  });

Edit:

Since I'm still getting upvotes on this answer over a year later, it seems that there are still many people encountering this problem, probably from outdated tutorials. If so, while I appreciate the upvotes, I strongly recommend leaving comments on those tutorials to request that they be updated.

2
  • What's the difference between Uri.parse() and Uri.https() or Uri.http()?
    – Tayan
    Jun 28, 2021 at 10:55
  • 5
    @Tayan Read the documentation. Uri.parse takes a single URL string. Uri.https/Uri.http build a Uri from parts (a hostname, a path, and a Map for query arguments). If you already have the URL as a String, just use Uri.parse; it's far less error-prone than using Uri.https/Uri.http directly.
    – jamesdlin
    Jun 28, 2021 at 11:19
22
String url ='example.com';

http.get(Uri.parse(url),

);
1
  • Question uses post. Are you saying to change it to get? Dec 5, 2022 at 18:07

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