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I have a std::vector<int> and I want serialize it. For this purpose I am trying to use a std::stringstream

 vector<int> v;
 v.resize(10);
 for (int i=0;i<10;i++)
 v[i]=i;


 stringstream ss (stringstream::in | stringstream::out |stringstream::binary);

However when I copy the vector to the stringstream this copy it as character

ostream_iterator<int> it(ss);
copy(v.begin(),v.end(),it);

the value that inserted to buffer(_Strbuf) is "123456789"

I sucssesed to write a workaround solution

for (int i=1;i<10;i++)
   ss.write((char*)&p[i],sizeof(int));

I want to do it something like first way by using std function like copy

thanks Herzl

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4 Answers 4

up vote 7 down vote accepted

Actually, this is your workaround but it may be used with std::copy() algorithm.

   template<class T>
   struct serialize
   {
      serialize(const T & i_value) : value(i_value) {}
      T value;
   };

   template<class T>
   ostream& operator <<(ostream &os, const serialize<T> & obj)
   {
      os.write((char*)&obj.value,sizeof(T));
      return os;
   }

Usage

ostream_iterator<serialize<int> > it(ss);
copy(v.begin(),v.end(),it);
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I like this approach in general, but it is often an error to blindly output memory like this. You still need to write something that can properly serialize each type. –  Fred Nurk Feb 1 '11 at 15:14
    
Completely agree. I would never use such code in production. I would prefer above-mentioned "for" cycle :-) –  Stas Feb 1 '11 at 15:16

I know this is not an answer to your problem, but if you are not limited to the STL you could try (boost serialization) or google protocol buffers

Boost even has build-in support for de-/serializing STL containers (http://www.boost.org/doc/libs/1_45_0/libs/serialization/doc/tutorial.html#stl)

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thanks omer but I need connect to a hardware and as I see boost add some control data to the data(type of classed) –  herzl shemuelian Feb 1 '11 at 14:52

To use std::copy with ostream::write, you'd need to write your own output iterator that knows how to correctly serialize the type. That said, I'm not sure what you expect to gain from this approach, but here's a first pass at that for an example:

struct ostream_write_int
  : std::iterator<std::output_iterator_tag, int, void, void, void>
{
  std::ostream *s;
  ostream_write_int(std::ostream &s) : s (&s) {}

  ostream_write_int& operator++() { return *this; }
  ostream_write_int& operator++(int) { return *this; }
  ostream_write_int& operator*() { return *this; }

  void operator=(int x) {
    s->write(reinterpret_cast<char*>(&x), sizeof(x));
  }
};

This could be templated only if you defer the serialization logic to some other function (as the formatted stream iterators do to operator<<).

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Like Fred, I don't see the point of this, what you are effectively trying to do is:

ss.rdbuf()->sputn(reinterpret_cast<char*>(&v[0]), sizeof(int) * v.size());
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1  
This is not very readable. I would never understand such code easily. –  the_drow Feb 1 '11 at 15:17
    
@the_drow, "never" is a long time! ;), you can replace .rdbuf()->sputn( with .write( if you want, it's the same thing.. –  Nim Feb 1 '11 at 15:23
1  
This is true for the case of a vector, but an iterator which writes each item (as in mine or Stas's answers) can be used with any input iterators, such as from a std::list. –  Fred Nurk Feb 1 '11 at 15:24
    
@Fred, completely agree... –  Nim Feb 1 '11 at 15:28
    
@Nim: I didn't say that I would never understand that code. I said that this kind of code cannot be read easily. It took me two seconds to figure it out. –  the_drow Feb 1 '11 at 16:06

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