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How can I derive my own stream from a standard stream?

In C# language, there is a Stream class, but C++'s streams are too complex.

I want something like this:

class my_stream : public std::stream
{
  // How to derive?
};

void using_a_stream(std::stream* s)
{
  *s << "Hello world";
}

void main()
{
  std::stream s1;
  std::fstream s2("C:\\test.txt");
  my_stream s3;

  using_a_stream(&s1);
  using_a_stream(&s2);
  using_a_stream(&s3);
}

Note: The code just a sample and may be invalid C++ program. Thanks.

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4  
Publically inheriting from the STL classes is strongly discouraged. Why can't you just use the class as-is? –  Cody Gray Jun 27 '11 at 8:56
6  
@Cody Gray: What you say is true for some of the classes. However streams and streambuf classes are made/prepared to be extended by inheritance. –  wilx Jun 27 '11 at 9:04
    
@Cody: I develope a library and I should derive my own stream to replace some STL strams. –  Amir Saniyan Jun 27 '11 at 9:40
    
That doesn't actually answer the question. Why do you need to derive your own stream to replace the STL streams? Yes, wilx is right: the stream and streambuf classes are actually designed for inheritance. But it's fairly complicated, and there's rarely a good reason for it. You don't need to derive your own stream just so it uses your own name. –  Cody Gray Jun 27 '11 at 10:16
1  
It is not an STL stream. The STL comprises the containers library, algorithms library, and iterators, which are used to connect those two libraries. IOStreams is completely separate. I have edited the question accordingly. –  Billy ONeal Jun 27 '11 at 11:05

3 Answers 3

up vote 12 down vote accepted

I think there are three levels of answer to this question:

Level 1: It is complicated, especially if you are completely new to C++, stop right now. Only if you feel adventurous, continue to level 2.

Level 2: Use some library that makes creating streams easier. I would suggest using Boost.IOStreams library. It makes creating own streams and streambufs much easier. If you are still not satisfied, continue to level 3.

Level 3: You will have to derive from std::streambuf and modify its behaviour to suit your needs. Then you will have to plug your streambuf into own stream.

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5  
That's probably the correct answer (except for level 1: it's really not very difficult to derive from std::streambuf). But we can't be sure until we know why he wants to derive from std::stream (and why from std::stream, rather than std::istream and std::ostream). Another possible solution would be a class which contains an std::stream, with template operator<< and operator>> to forward to it. Which solution to use depends on what you are trying to do. –  James Kanze Jun 27 '11 at 10:55
    
+1 -- one should not really derive from a stream, one should derive from a streambuf. –  Billy ONeal Jun 27 '11 at 11:08
    
@BillyONeal: In the end you need both. You derive from streambuf to get the thing working and then you often derive from stream to provide a convenient way of instantiating your streambuf. –  wilx Aug 23 '14 at 17:32

Could you please describe a little bit more what you own streamclass should do? Just asking how without what is not the best way to get a constructive answer.

Maybe you should have a look at boost::iostream, as there is a much simpler and safer way to write own iostream classes.

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honestly, I don't know which STL class should be used as a base class. I want general streaming, like read, write, seek. –  Amir Saniyan Jun 27 '11 at 9:28
    
If you really want to mess up with that, you should have a look at the ios and streambuf classes. –  Thomas Berger Jun 27 '11 at 9:30

Don't.

iostreams is an awful interface. It also lacks a lot of features and has awful performance.

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5  
-1: If you're going to denigrate iostreams, you could at least provide evidence for your assertions. Or failing that, provide an alternative mechanism that he could use. –  Nicol Bolas Jun 27 '11 at 9:17
1  
-1. Not useful or really relevant to the OP. printf is not generic, and you can't extend it at all — so it fails the basic requirement. Not to mention it's type-unsafe. –  Cat Plus Plus Jun 27 '11 at 9:30

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