How to create an instance of System.IO.Stream stream. One of my function receives System.IO.Stream stream as parameter and write some thing to it. So how can I create a new instance of the same and pass it to the function ?
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System.IO.Stream stream = new System.IO.MemoryStream();
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3Short answer: Yes. For the longer answer, check out John Skeet's answer stackoverflow.com/a/234257/1480854 – Josh Jul 26 '15 at 21:14
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You have to create an instance of one of the subclasses. Stream is an abstract class that can't be instantiated directly.
There are a bunch of choices if you look at the bottom of the reference here:
Stream Class | Microsoft Developer Network
The most common probably being FileStream or MemoryStream. Basically, you need to decide where you wish the data backing your stream to come from, then create an instance of the appropriate subclass.
answered Nov 4 '11 at 5:34
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Stream is a base class, you need to create one of the specific types of streams, such as MemoryStream.
answered Nov 4 '11 at 5:34
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System.IO.Stream stream is an abstract class. Please find the MSDN article below.
http://msdn.microsoft.com/en-us/library/system.io.stream.aspx
For example following code creates an instance of StreamReader.
System.IO.Stream textStream = new System.IO.StreamReader("");
System.IO.Stream is the base class of System.IO.StreamReader class ( and other set of classes).
answered Nov 4 '11 at 5:36
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Uhm, StreamReader is NOT a derived class of Stream. StreamReader is a composition over Stream. MemoryStream, FileStream, NetworkStream etc are examples of Derived class from Stream. Check the System.IO Namespace. Apart from that, your answer is correct :) – Polity Nov 4 '11 at 6:05
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This is a big fail, StreamReader cannot be cast to Stream cause it is not a subclass – Mauro Sampietro Jan 28 '15 at 10:43
