It is binding 2 to the second argument of the function (which is b) but _1 to a which means
the argument you call f with is passed as a to your function. Hence f(3) prints 3 2 and returns 5.
If you want 2 3 you need:
boost::function<float(float)> f = boost::lambda::bind(fx,2,boost::lambda::_1);

cheers
Arnaldur

"Chris Weed" <chrisweed@gmail.com>
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19.10.2006 12:18

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Subject	Re: [Boost-users] [function][lambda] Create a boost function to a bind functor

Hi, I can get the following code to compile and it prints 3 2 5 but I don't quite understand why it doesn't print 2 3 5 or how to get it to do so. I thought since it is binding 2 to _1, this would bind it to the a argument. #include <boost/function.hpp> #include <boost/lambda/lambda.hpp> #include <boost/lambda/bind.hpp> #include <iostream> float fx(float a, float b) { std::cout << a << " " << b << std::endl; return a+b; } int main() { boost::function<float(float)> f = boost::lambda::bind(fx,boost::lambda::_1,2); std::cout << f(3) << std::endl; return 0; } Thanks, Chris On 10/19/06, Arnaldur Gylfason <arnaldur.gylfason@decode.is> wrote: > > a) You want to use _1 instead of _2 > b) _1/_2 are in namespace boost::lambda > boost::function<float(float)> f = boost::lambda::bind(fx,boost::lambda::_1,2); > > It is actually possible to use _2 but then the functor takes to args and ignores the first: > boost::function<float(float,float)> f = boost::lambda::bind(fx,boost::lambda::_2,2); > std::cout << f(100,3) << std::endl; // returns 5 > > cheers > > Arnaldur > > > _______________________________________________ Boost-users mailing list Boost-users@lists.boost.org http://lists.boost.org/mailman/listinfo.cgi/boost-users