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I'm trying to do something like this:

using namespace boost::lambda;
using boost::thread;

int add(int a, int b) {return a+b;}

int sum, x=2, y=6;
thread adder(var(sum) = add(_1, _2), x, y);
adder.join();
cout << sum;

I get a compile error:

cannot convert parameter 1 from 'boost::arg' to 'int'

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1 Answer 1

up vote 5 down vote accepted

You’re really close actually! The problem is that you’re directly calling add() with Lambda’s placeholders—it’s not being evaluated lazily inside the lambda, but right away.

Here’s a fixed version:

using namespace boost::lambda;
using boost::thread;

int sum, x=2, y=6;
thread adder(var(sum) = _1 + _2, x, y);
adder.join();
cout << sum;

And if you really want to use the add function, you'd use bind:

using namespace boost::lambda;
using boost::thread;

int add(int a, int b) {return a+b;}

int sum, x=2, y=6;
thread adder(var(sum) = bind(add, _1, _2), x, y);
adder.join();
cout << sum;
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1  
And to delay invocation of a function call, use bind. –  GManNickG May 11 '11 at 23:43
    
I definitely need to use the function, the 'add' example is a gross simplification. :) But I tried your syntax for: thread adder(var(sum) = bind(add, _1, _2), x, y); I get an error on MSVC 9 (boost 1.43). Trimmed to fit: boost/lambda/detail/function_adaptors.hpp(260) : error C2664: 'int (int,int)' : cannot convert parameter 2 from 'rt2' to 'int' with [ Result=int, Func=int (int,int), RET=int, A2=rt1, A3=rt2, Arg1=int, Arg2=int, A1=rt1, I=2 ] –  Matt Chambers May 12 '11 at 15:03
    
Nevermind. I forgot using boost::lambda::_1; etc. I wonder why I didn't get some more revealing error. I'm not even sure which _1/_2 that I had in scope! I don't have any using namespaces for boost or std. –  Matt Chambers May 12 '11 at 15:13
    
Make sure you're using boost::lambda::_1 -- there are a number of places that _1 is defined in Boost so it's easy to use the wrong ones. I think that will fix your problem. –  Cory Nelson May 12 '11 at 15:22

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