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I have to use an extern library providing lots of free functions that do a lot of networking stuff. This library, unfortunately, is not very failsafe, and it happens to get stuck in some of these functions forever (or at least a very long time). This is not an option for me, so I want to interrupt the call if it is taking too long.

Taking a look at C++: How to implement a timeout for an arbitrary function call? and the boost::lambda library, I came up with this:

#include <iostream>
#include <boost/thread/thread.hpp>
#include <boost/lambda/lambda.hpp>
#include <boost/lambda/bind.hpp>

int foo(int a, int b) {
    boost::this_thread::sleep(boost::posix_time::seconds(2));
    return a+b;
}

int main() {
    int ret;
    boost::thread thrd(boost::lambda::var(ret) = boost::lambda::bind<int>(&foo, 1, 2));
    if(thrd.timed_join(boost::posix_time::seconds(1))) {
        std::cout << ret << std::endl;
    }
    else {
        std::cerr << "Function timed out." << std::endl;
    }
    return 0;
}

Compiles and works like a charm. The problem however is, that I have lots of functions with different parameters and return values, and writing the above for every case seems like tedious and redundant work to me. So I want to wrap it in a function:

template <class t> t timeout(bindparam<t> &bind /* read below */, long sleep) {
    t ret;
    boost::thread thrd(boost::lambda::var(ret) = bind);
    if(thrd.timed_join(boost::posix_time::milliseconds(sleep))) {
        return ret;
    }
    else throw std::runtime_error("timeout");
}

The idea is that I can run the critical function with

try {
    int ret = timeout<int>(boost::lambda::bind<int>(&foo, 1, 2), 500);
    std::cout << ret << std::endl;
}
catch(std::runtime_error &e) {
    std::cerr << e.what() << std::endl;
}

but I have no idea how to do this, or whether it is even possible. Can I pass arbitrary boost::lambda::binds to my function somehow?

Update:

As suggested, I tried it with boost::packaged_task:

template <class T> T timeout(boost::packaged_task<T> &f, long sleep) {
    T ret;
    boost::thread thrd(boost::lambda::var(ret) = f);
    if(thrd.timed_join(boost::posix_time::milliseconds(sleep))) {
        return ret;
    }
    else {
        thrd.interrupt();
        throw std::runtime_error("timeout");
    }
}

But when I try to use it as timeout<int>(boost::packaged_task<int>(boost::bind(&foo, 1, 2)), 500); I get a strange compiler error:

main.cpp: In function ‘int main(int, char**)’:
main.cpp:35: error: no matching function for call to ‘timeout(boost::packaged_task<int>, int)’

Isn't timeout(boost::packaged_task<int>, int) pretty much exactly my function signature of timeout, except for the int part that will be converted implicitly? What am I doing wrong?

Update 2:

I finally got it to work, but I have no idea whether what I am doing is a good way of doing it, because I found it incredibly hard to find any documentation or examples on boost::packaged_task and basically all I worked with is the source code of the library. Here is my working function:

template <class T> T timeout(boost::packaged_task<T> &f, long sleep) {
    boost::thread thrd(boost::lambda::bind(&boost::packaged_task<T>::operator(), &f));
    if(thrd.timed_join(boost::posix_time::milliseconds(sleep))) {
        boost::unique_future<T> ret = f.get_future();
        return ret.get();
    }
    thrd.interrupt();
    throw std::runtime_error("timeout");
}

I am not completely happy with it, mainly because it does not work with temporaries, meaning you have to go this way to use it:

try {
    boost::packaged_task<int> f(boost::lambda::bind(&foo, 1, 2));
    int sum = timeout<int>(f, 500);
    std::cout << sum << std::endl;
}
catch(std::runtime_error &e) {
    std::cerr << e.what() << std::endl;
}

I would still be very happy if someone more adept with these structures could comment on this.

share|improve this question
    
Why not just use boost::packaged_task? –  Mankarse Jan 24 '12 at 19:08
    
@Mankarse To be honest, because I have never heard of it. I will take a look into it. Thanks. –  nijansen Jan 24 '12 at 19:32
    
@Mankarse Got it to work with boost::packaged_task. Thanks! –  nijansen Jan 24 '12 at 22:16
    
PS: Maybe promote your comment to an answer so I can give you credit for it? –  nijansen Jan 24 '12 at 22:34
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1 Answer

up vote 1 down vote accepted

would this work?

template <class T, class F>
T timeout(const F &bind, long sleep) {
    T ret;
    boost::thread thrd(boost::lambda::var(ret) = bind);
    if(thrd.timed_join(boost::posix_time::milliseconds(sleep))) {
        return ret;
    }
    else throw std::runtime_error("timeout");
}
share|improve this answer
    
How would I call this function? –  nijansen Jan 24 '12 at 19:31
    
If the function times out, behavior is undefined. The thread will continue running, and it will eventually try to store a value in ret, but after control leaves timeout, that reference to ret won't be valid anymore. –  Rob Kennedy Jan 24 '12 at 19:33
    
@Rob Kennedy Yes, the thread should be interrupted in the else case. Thanks. –  nijansen Jan 24 '12 at 20:00
    
you call it just as yiu have in the example. F type will be resolved automatically. Just make sure your bind object can be const or can be copied. –  Anycorn Jan 24 '12 at 22:44
    
Oh boy, sometimes I really don't see the solution right in front of my eyes. Thanks for your help, it works perfectly. –  nijansen Jan 24 '12 at 23:06
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