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I know this should be a basic question but I am hitting a brick wall. I am looking to go to a URL/URI download the resulting string as if I had opened a file and then get it out into a String variable.

I have been stuffing about with IO.Stream and Net.httpxxx but haven't managed to get the elements to line up in the right way.

I get "the given path's format is not supported" from opening the page in the standard stream, because it's not in the local file system ... that bit i understand, the bit I don't get is ... how do I achieve the equivelent of:

Public Function GetWebPageAsString(pURL As String) As String
        Dim lStream As IO.StreamReader = New System.IO.StreamReader(pURL)
        Return lStream.ReadToEnd

End Function
share|improve this question
    
Thanks everyone, each one solution did work (eventually) the one I accepted returned what I was looking for rather than what I asked for which is why I choose it. (plus its 2 lines in VB). Translation for the next VB guy: Dim client As System.Net.WebClient = New System.Net.WebClient() Dim html As String = client.DownloadString("google.com") – Robin Vessey May 31 '09 at 2:32
    
Additional note: I just realised half of my problem is that the URLs I'm trying to get have '-' which needs to be escaped before I make the request. I probably wouldn't have needed to ask if I had picked this at half midnight last night :) – Robin Vessey May 31 '09 at 2:40
up vote 7 down vote accepted

The short answer, in C#, looks like

using(System.Net.WebClient client = new System.Net.WebClient())
{
  string html = client.DownloadString("http://www.google.com");
}
share|improve this answer
    
But this doesn't give you a Stream, as the OP asked for. – M4N May 30 '09 at 15:08
    
@Martin: It includes a solution for the "and then get it out into a String variable" part – Henk Holterman May 30 '09 at 17:41
    
Strictly no it was what I asked for, but it was what I wanted :) – Robin Vessey May 31 '09 at 2:24

WebClient.OpenRead() might be what you're looking for.

Sample from the MSDN page linked above:

 Dim uriString as String
 uriString = "http://www.google.com"

 Dim myWebClient As New WebClient()

 Console.WriteLine("Accessing {0} ...", uriString)

 Dim myStream As Stream = myWebClient.OpenRead(uriString)

 Console.WriteLine(ControlChars.Cr + "Displaying Data :" + ControlChars.Cr)
 Dim sr As New StreamReader(myStream)
 Console.WriteLine(sr.ReadToEnd())

 myStream.Close()
share|improve this answer
    
Thanks, but I get The given path's format is not supported On Dim myStream As Stream = myWebClient.OpenRead(uriString) line for webpage alllotto.com/Arizona-Pick-3-May-2009-Lottery-Results.php Is it an issue with the web page or ??? – Robin Vessey May 30 '09 at 14:49
    
Same with this very page stackoverflow.com/questions/929808/… gives the same error, which is the one I have been striking all night. – Robin Vessey May 30 '09 at 14:50
    
When I run the above sample with the URL of this question or with "google.com";, then it works as expected. Can you add your complete code to the question? – M4N May 30 '09 at 15:01
    
I have updated the code with a sample URL. This works for me. – M4N May 30 '09 at 15:04

This function downloads any URI to a file. You could easily adapt it to put it into a string var:

public static int DownloadFile(String remoteFilename, String localFilename, bool enforceXmlSafe)
{
// Function will return the number of bytes processed
// to the caller. Initialize to 0 here.
int bytesProcessed = 0;

// Assign values to these objects here so that they can
// be referenced in the finally block
Stream remoteStream = null;
Stream localStream = null;
WebResponse response = null;			

// Use a try/catch/finally block as both the WebRequest and Stream
// classes throw exceptions upon error
try
{
	// Create a request for the specified remote file name
	WebRequest request = WebRequest.Create(remoteFilename);
	if (request != null)
	{
		// Send the request to the server and retrieve the
		// WebResponse object 
		response = request.GetResponse();
		if (response != null)
		{
			// Once the WebResponse object has been retrieved,
			// get the stream object associated with the response's data
			remoteStream = response.GetResponseStream();

			// Create the local file
			if (localFilename != null)
				localStream = File.Create(localFilename);
			else
				localStream = new MemoryStream();

			// Allocate a 1k buffer
			byte[] buffer = new byte[1024];
			int bytesRead;

			// Simple do/while loop to read from stream until
			// no bytes are returned
			do
			{
				// Read data (up to 1k) from the stream
				bytesRead = remoteStream.Read(buffer, 0, buffer.Length);

				// Write the data to the local file
				localStream.Write(buffer, 0, bytesRead);

				// Increment total bytes processed
				bytesProcessed += bytesRead;
			} while (bytesRead > 0);
		}
	}
}
catch (Exception e)
{
	Console.WriteLine(e.Message);
}
finally
{
	// Close the response and streams objects here 
	// to make sure they're closed even if an exception
	// is thrown at some point
	if (response != null) response.Close();
	if (remoteStream != null) remoteStream.Close();
	if (localStream != null) localStream.Close();
}

// Return total bytes processed to caller.
return bytesProcessed;
}
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