8

the problem

so i'm getting the error shown in the image and my question is: How should I use stream.cast in this case?

2 Answers 2

21

Try to change this :

var stream  = new http.ByteStream(DelegatingStream.typed(_image.openRead()));

To this :

var stream  = new http.ByteStream(_image.openRead());
stream.cast();
3

Use this:

var stream = http.ByteStream(image.openRead())..cast();
  var length = await image.length();
  var multipartFile = http.MultipartFile('image', stream, length,
      filename: basename(image.path));
  requestBody.files.add(multipartFile);
2
  • Is it the same using this? var stream = new http.ByteStream(Stream.castFrom(image.openRead())); Feb 6 at 14:51
  • 1
    Hopefully same. Feb 7 at 7:05

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