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Update 2: I'm not sure why this is still being upvoted (March 2014). This appears to be fixed since I asked this question many years ago. Make sure you're using a recent version of boost.

UPDATE: Perhaps C++ streams need to be initialized in order to format numbers, and the initialization is not happening when the shared library is loaded in Python?

I am calling

cout << 1 << "!" << endl; 

in a method that is exported to a shared library via boost.python. It doesn't print anything, but if I do

cout << "%" << "!" << endl; 

it works.

This is important because I want to do this:

ostream& operator <<(ostream &os, const Bernoulli& b) {
    ostringstream oss;
    oss << b.p() * 100.0 << "%";
    return os << oss.str();
}

I exposed that by doing this:

BOOST_PYTHON_MODULE(libdistributions)
{
    class_<Bernoulli>("Bernoulli")
        .def(init<>())
        .def(init<double>())

        .def("p", &Bernoulli::p)
        .def("set_p", &Bernoulli::set_p)
        .def("not_p", &Bernoulli::not_p)

        .def("Entropy", &Bernoulli::Entropy)
        .def("KL", &Bernoulli::KL)
        .def(self_ns::str(self))
    ;
}

but when I call the str method in python on a Bernoulli object, I get nothing. I suspect the simpler cout problem is related.

share|improve this question
    
I did not have problem with iostreams and boost.python... maybe the problem comes from a more subtile bug? However, the technique in the docs (1dl.us/dAD) didn't work for me, I had to write .def("__str__", &print_wrapper<Bernouilli>). What is self_ns?. Also, in your method, why not just {return os << b.p() * 100.0 << "%"; }? –  rafak Dec 6 '10 at 19:59
    
@rafak the reason for doing it via ostringstream is explained in this question: stackoverflow.com/questions/2249018/… –  Neil G Dec 6 '10 at 20:31
    
@rafak where is print_wrapper defined? I can't find it in boost. –  Neil G Dec 6 '10 at 20:35
    
I should have said that it is mine: template <class C> inline std::string print_wrapper(const C& obj) { std::ostringstream os; os << obj; return os.str(); } –  rafak Dec 6 '10 at 21:03
1  
Possible duplicate of: stackoverflow.com/questions/2828903/… –  vz0 Jan 25 '11 at 4:17
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3 Answers 3

up vote 1 down vote accepted

I also run into this problem a while ago, using self_ns as outlined in the answers here Build problems when adding `__str__` method to Boost Python C++ class

The reason for using self_ns is explained by Dave himself here http://mail.python.org/pipermail/cplusplus-sig/2004-February/006496.html


Just for the sake of debugging, please try

inline std::string toString(const Bernoulli& b) 
{
   std::ostringstream s;
   s << b;
   return s.str(); 
}

And replace .def(self_ns::str(self)) with

class_<Bernoulli>("Bernoulli")
[...]
.def("__str__", &toString)
share|improve this answer
    
I used self_ns as shown in the question, and it didn't fix this problem. –  Neil G Nov 12 '12 at 11:05
    
Can you try .def(self_ns::str(self_ns::self))? –  H. Brandsmeier Nov 12 '12 at 11:37
    
Also you could try to add a `std::cout << "hello world << std::endl" inside your operator<< and report if your function gets called at all. –  H. Brandsmeier Nov 12 '12 at 11:38
    
Hi, I did try that code. I'm pretty sure that Boost.Python is not properly initializing the integer-to-string code for streams. Using a printf works, but using ostream doesn't. –  Neil G Nov 13 '12 at 0:01
    
@Neil G: Did you try what I wrote under "Just for the sake of debugging", did that work? –  H. Brandsmeier Nov 13 '12 at 10:20
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Have you tried using boost::format instead? Since you are already using boost, it shouldn't be too much of a hassle.

boost::format( "%d%%" ) % ( b.p() * 100.0 )

Another thing, try passing std::endl explicitly to the output os.

share|improve this answer
    
Thanks. The number is still not being shown, but the "%" sign is there. It appears that the buffer in which the number is stringified is not being created. –  Neil G Jan 11 '11 at 20:56
1  
Hm. I'll try to reproduce the problem then. –  UncleZeiv Jan 12 '11 at 12:39
    
Thank you. Please let me know if you can't reproduce it and if you ever find a solution. –  Neil G Jan 19 '11 at 1:50
    
Ok, I wrote an empty Bernoulli class, with p defined as double p() {return 2.5;}; in Python, str(b) prints 250% as expected. I used boost 1.42 and Python 2.5. Which versions are you using? –  UncleZeiv Feb 1 '11 at 12:12
    
I'm using boost 1.48 and Python 3.1 now. –  Neil G Jan 28 '12 at 22:10
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have you tried flushing the stream prior to using the .str() method?

oss << b.p() * 100.0 << "%" << std::flush;
share|improve this answer
    
Thanks, I just tried this. Unfortunately, it didn't work. –  Neil G Jan 11 '11 at 20:53
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