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I just started working with htmlagilitypack, and I am loving it so far.

I'm trying to select a radio button and submit a form using htmlagility.

Here is the structure of the website:

<form class="picker" action="link.html" method="POST">
    <ul class="selection-list">
        <li>
            <label>
                <span class="left-side">
                    <input name="id" value="t1" type="radio">
                </span>
                <span class="right-side">
                    Test1
                </span>
            </label>
        </li>
        <li>
            <label>
                <span class="left-side">
                    <input name="id" value="t2" type="radio">
                </span>
                <span class="right-side">
                    Test2
                </span>
            </label>
        </li>
        <li>
            <label>
                <span class="left-side">
                    <input name="id" value="t3" type="radio">
                </span>
                <span class="right-side">
                    Test3
                </span>
            </label>
        </li>
    </ul>
</form>

I can get the form. Here is the code:

    HtmlWeb web = new HtmlWeb();
HtmlDocument doc = web.Load(urlAddress);

// Get the form
var form = doc.DocumentNode.SelectSingleNode("//form[@class='picker']");

How can I select, for example, the

  • Test2 and submit the form? Is it possible using htmlagilitypack or I need another library?

    Thanks

    1
    var uri = // get uri from form;
    var formVariables = new List<KeyValuePair<string, string>>();
    
    // Populate your variables here; HtmlAgilityPack is useful for propagating existing form values
    formVariables.Add(new KeyValuePair<string,string>("id","t2"));
    
    var formContent = new FormUrlEncodedContent(formVariables);
    
    using (var message = new HttpRequestMessage { Method = HttpMethod.Post, RequestUri = uri, Content = formContent })
    {
        // use HttpClient to send the message
        using (var postResponse = await client.SendAsync(message))
        {
            if (postResponse.IsSuccessStatusCode)
            {
                var stringContent = await response.Content.ReadAsStringAsync();
    
                // Do something with string content
            }
        }
    }
    
    | improve this answer | |
    • Thank you. I got the uri by string actionValue = form.Attributes["action"]?.Value; System.Uri uri = new System.Uri(actionValue); How can I get the new page generated after posting? – user6824563 Sep 28 '17 at 21:28
    • The new page is the response content from sending the message (e.g. client.SendAsync(message)). – Eric Sep 28 '17 at 21:33
    • HttpClient client = new HttpClient(); var response = client.SendAsync(message); Response result is null and status WaitingForActivation. Is it correct? – user6824563 Sep 28 '17 at 21:36
    • SendAsync returns Task<HttpResponseMessage>. You will need to await the call. I'll edit the sample. – Eric Sep 29 '17 at 13:52

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