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I was reading this article about parallel programming and I came across a return statement that I don't quite understand. I've read about namespaces and Boost::Chrono::steady_clock, though I've never used either in practice, I understand their purposes.

This is the line of code found in the run_tests function which puzzles me:

return boost::chrono::duration <double, boost::milli> (end - start).count();

What's going on here exactly? Shouldn't an object name come before .count()? Is there some overloading of the - operator in Chrono?

The full code can be found here.

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5 Answers

up vote 9 down vote accepted
       boost::chrono::duration

is the name of a class template.

       boost::chrono::duration <double, boost::milli>

Is an instantiation of a class template, that is, a class.

       boost::chrono::duration <double, boost::milli> (end - start)

Creates a temporary object of that type, initialized with the value of the expression end-start.

       boost::chrono::duration <double, boost::milli> (end - start).count()

Invokes the .count() method of the temporary object.

return boost::chrono::duration <double, boost::milli> (end - start).count();

Returns the result of the .count() method.

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This much: boost::chrono::duration <double, boost::milli> (end - start) is constructing an object, much like int(x) does.

Then .count() is called on that (temporary) object, and the return from that is what gets returned.

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There's three parts here. The first part is the simple end - start. I'm not familiar with Boost, but I'd wager that end and start do overload operator-() to subtract the two times and produce a boost:chrono:duration<> object.

This object is then passed in to the constructor for boost::chrono::duration<double, boost::milli>. I would guess that this serves to convert the duration from whatever format the subtraction provided to the one seen in this template, namely, double-precision duration that represents milliseconds.

Finally, the method .count() is called on this boost::chrono::duration object, which presumably returns the duration's value as a number (I'm guessing as a double).

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The code first constructs a temporary unnamed object of type boost::chrono::duration<double, boost::milli>, passing whatever end - start is to the constructor of that object.

It then calls the count() method on this new, unnamed object.

Whatever that method returns is what this function returns.

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Actually duration is a data type, (end - start) evaluates to a parameter for the constructor.

Then count() is invoked on the constructed object and it happens to return a double, which is the first typename parameter to duration. (duration <double, boost::milli>)

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