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I am trying to send a zip file I create in one API (lets call this 'API 1') to another (aka 'API 2').

Originally I attempted to just send the byte[] as the response in API 1 but when accessing the response within API 2, the byte[] was a different size and the file was corrupt. I then attempted to convert the byte[] in API 1 to a base64 string and then decode in API 2, but realised the strings were not the same and again, the file was corrupt.

Here is my code as it currently stands...

API 1 Code

[HttpPost]
public IActionResult BuildZipFile(Custom myObject)
{
    CODE HERE WHICH GENERATES ZIP FILE
    byte[] zipFile = System.IO.File.ReadAllBytes(ZIP FILE PATH);
    return Ok(Convert.ToBase64String(zipFile));
}

API 2 Code

[HttpPost]
public IActionResult RetrieveZipFile(Custom myObject)
{
    RestClient client = new RestClient(@"https://localhost:44323/api/ProcessBuild");
    RestRequest request = new RestRequest(Method.POST);
    request.AddHeader("content-type", "application/json");
    request.AddParameter("application/json", JsonConvert.SerializeObject(myObject), ParameterType.RequestBody);
    var response = client.Execute(request);
    byte[] retrievedZipFile = Convert.FromBase64String(response.Content);
    return File(retrievedZipFile, "application/zip", process.Name + ".zip");
}

Currently this returns a zip file which is corrupt. Any help on this would be greatly appreciated!

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  • I'm guessing you are using RestSharp and not the .NET Framework HttpClient? It seems you are sending the file the wrong way. I found this example: csharp.hotexamples.com/examples/RestSharp/RestRequest/AddFile/… – mortb Oct 11 '19 at 14:08
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    In API you are returning a string, by converting it to base 64, yet your signature says byte[] – Anil Goel Oct 11 '19 at 14:08
  • @mortb This seems to be attaching a file to a request. I am trying to send it as a response and receive it. – unknownpresense Oct 11 '19 at 14:13
  • @AnilGoel Good spot! I have updated the post now, this was a typo. – unknownpresense Oct 11 '19 at 14:14
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I am not sure about the mime type. This should work fine. I am not familiar with RestSharp.

using (FileStream fileStream = new FileStream(filePath, FileMode.Open, FileAccess.Read, FileShare.Read))
    {
        return File(System.IO.File.OpenRead(filePath), "application/zip");
    }
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  • The file will be in memory at the point of presenting back to the user (in API 2). Therefore I will not have a filePath to provide. – unknownpresense Oct 11 '19 at 14:16
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    @unknownpresense ok i see now what you are saying. Why split the request though? Also you can pass a full object to the controller action, you can pass the path. Please see docs for more info for return File();. – panoskarajohn Dec 3 '19 at 14:18

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