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I have a method to POST some data to server. Server may return aswer means I need change URL and send data to other server. I use for it HttpClient class from 4.5 framework. I use either do-while loop to repeat requests until I do not need redirecton. But there is a problem.

The question is why if I create HttpClient instance outside loop, second await didn't happen and my programm get out of loop, but if I create HttpClient instance inside the loop again and again - all is fine? Can I reuse one HttpClient for several POST requsts inside do-while loop inside async method?

My working code sample:

public async Task<bool> GameLogin()
{
    JToken r;
    do
    {
        var clientHandler = new HttpClientHandler
        {
            CookieContainer = this.myCContainer,
            AutomaticDecompression = DecompressionMethods.GZip | DecompressionMethods.Deflate,
        };
        var client = new HttpClient(clientHandler);
        client.DefaultRequestHeaders.Add("client-ver", Versoin);
        client.DefaultRequestHeaders.Add("method", "SignIn");
        client.DefaultRequestHeaders.Add("authKey", AppParams["auth_key"].ToString());

        var content = new StringContent(this.SendStr);

        var answer = await client.PostAsync(this.CurrentUrl, content);
        var rawString = await answer.Content.ReadAsStringAsync();
        DinamicData = JObject.Parse(rawString);
        r = DinamicData["r"];
        if (r == null) continue;
        this.CurrentUrl = string.Format("http://{0}/main.ashx", r);
    } while (r != null);

    return DinamicData.Type != JTokenType.Null;
}

My did not working code sample:

public async Task<bool> GameLogin()
{
    var clientHandler = new HttpClientHandler
    {
        CookieContainer = this.myCContainer,
        AutomaticDecompression = DecompressionMethods.GZip | DecompressionMethods.Deflate,
    };
    var client = new HttpClient(clientHandler);
    client.DefaultRequestHeaders.Add("client-ver", Versoin);
    client.DefaultRequestHeaders.Add("method", "SignIn");
    client.DefaultRequestHeaders.Add("authKey", AppParams["auth_key"].ToString());

    var content = new StringContent(this.SendStr);

    JToken r;
    do
    {
        var answer = await client.PostAsync(this.CurrentUrl, content);
        var rawString = await answer.Content.ReadAsStringAsync();
        DinamicData = JObject.Parse(rawString);
        r = DinamicData["r"];
        if (r == null) continue;
        this.CurrentUrl = string.Format("http://{0}/main.ashx", r);
    } while (r != null);

    return DinamicData.Type != JTokenType.Null;
}

And my second code did not wait await in secont loop turn.

share|improve this question
    
Well you say it didn't wait - what did happen? Was there an exception? –  Jon Skeet Feb 1 '13 at 20:48
    
Note that when you reuse the same HttpClient, you're effectively in one session - which could definitely affect how authentication etc is handled. It would be useful to look at what's happening at the HTTP level, e.g. with WireShark. –  Jon Skeet Feb 1 '13 at 20:49
    
I did not get answer. My app gets out of do-while and out of GameLogin method –  Jagget Feb 1 '13 at 20:50
    
It would only "not get" answer if an exception occurred. Otherwise some value has to be returned. (I assume you're awaiting the return value of GameLogin, of course...) Please provide more information - it's very hard to help you at the moment. –  Jon Skeet Feb 1 '13 at 20:51
    
Exception! Of course! How can I forget? Yes, now I have much more info. It says that I "Cannot access a disposed object. Object name: 'System.Net.Http.StringContent'.". This is answer! Thank you!! –  Jagget Feb 1 '13 at 21:01

1 Answer 1

up vote 2 down vote accepted

Okay, now we've got the exception...

I suspect the problem isn't reusing the HttpClient - it's reusing this:

var content = new StringContent(this.SendStr);

I suspect that content is probably being disposed by the HttpClient's first call, which makes the second call fail.

Just move that line inside the loop (it's inside the loop in your working code), and I expect all will be well.

share|improve this answer

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