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thesis.lyx
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#LyX 2.2 created this file. For more info see http://www.lyx.org/
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Imperial College London
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Department of Computing
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Pony: Co-designing a Type System and a Runtime
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Sylvan W.
Clebsch
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October 2017
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Submitted in part fulfilment of the requirements for the degree of Doctor
of Philosophy in Computing of Imperial College London and the Diploma of
Imperial College London
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\begin_layout Section*
Declaration
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\begin_layout Standard
This thesis and the work presented within are my own, except where acknowledged
otherwise.
\end_layout
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\align right
Sylvan Clebsch
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The copyright of this thesis rests with the author and is made available
under a Creative Commons Attribution Non-Commercial No Derivatives licence.
Researchers are free to copy, distribute or transmit the thesis on the
condition that they attribute it, that they do not use it for commercial
purposes and that they do not alter, transform or build upon it.
For any reuse or redistribution, researchers must make clear to others
the licence terms of this work.
\end_layout
\begin_layout Section*
Abstract
\end_layout
\begin_layout Standard
We have developed a new programming language, called Pony, that allows the
user to easily write fast, safe, parallel programs.
The focus of this work is using a powerful and novel static type system
to guarantee properties of a program in order to eliminate many runtime
checks.
This includes eliminating all forms of locking, as well as enabling a novel
fully concurrent garbage collection protocol for both objects and actors
that has no stop-the-world step, while also having no read or write barriers.
Essentially, the type system is used to enable not just safer computation
but faster computation.
\end_layout
\begin_layout Standard
The core type system feature that enables this is
\emph on
reference capabilities
\emph default
.
These are a system of type annotations that guarantee data-race freedom
even in the presence of asynchronous messages that can contain mutable
data.
Reference capabilities show that concepts such as isolation and immutability
can be derived rather than being treated as fundamental.
\end_layout
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Properties of the type system and operational semantics, such as
\emph on
atomic behaviours
\emph default
and data-race freedom
\emph on
\emph default
are leveraged to allow actors themselves to be garbage collected when it
can be proved they will never again have messages in their queue.
Message-based Actor Collection (
\emph on
MAC
\emph default
) achieves this using only message passing, without the need for any other
form of thread synchronisation or coordination, using a system of deferred,
distributed, weighted reference counting in which reference counts do not
reflect the number of reachable paths in a heap.
This requires a cycle detection actor to be able to collect isolated cyclic
graphs of actors.
To do this with no stop-the-world step, a novel and inexpensive CNF-ACK
protocol is used to determine that the cycle detector's view of the actor
topology was the true actor topology when the cycle was detected.
\end_layout
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Guaranteeing data-race freedom allows the language to use a novel fully
concurrent garbage collection protocol.
This protocol allows each actor to collect its own heap independently and
concurrently, while still allowing objects to be sent by reference in asynchron
ous messages (zero-copy message passing).
This is achieved using Ownership and Reference Counting for Actors (
\emph on
ORCA
\emph default
), a protocol derived from
\emph on
MAC
\emph default
that allows passive objects shared across
\emph on
actor-local heaps
\emph default
to be garbage collected with no stop-the-world step.
\end_layout
\begin_layout Standard
To validate these ideas, we have written a complete runtime (including a
work-stealing scheduler, garbage collector, memory allocator, message queuing,
asynchronous I/O, and more) and an ahead-of-time optimising compiler.
The language is open source.
\end_layout
\begin_layout Section*
Acknowledgements
\end_layout
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Although I developed the type system, operational semantics, and garbage
collector protocols, and implemented the compiler and runtime, many other
people have contributed to Pony.
Sophia Drossopoulou, my advisor, has contributed to every part of the formalisa
tion of Pony, especially the proofs, and has literally taught me everything
I know about formal methods, as well as being a constant source of help
and inspiration.
This project could not possibly have happened without her.
Other key contributors have been Sebastian Blessing (masters thesis on
distributed Pony), Andy McNeil (implementation work on the compiler), Juliana
Franco (formalisation of object garbage collection), Luke Cheeseman (value-depe
ndent types), George Steed (formalisation of type expressions), and the
SLURP group at Imperial College (invaluable feedback and discussion).
Also of special note are Tobias Wrigstad, Dave Clarke, and the Upscale
Project, who have bravely used the Pony runtime for their own language,
Encore.
Additional special thanks are due to Constantine Goulimis and Justin Fry.
\end_layout
\begin_layout Standard
More recently, the Pony open-source community has been amazing, including
(in no particular order) Sean Allen, Joe Eli McIlvain, Benoit Vey, Theo
Butler, Vid Jain, Chuck Blake, Perelandric, Reini Urban, Gordon Tisher,
Dipin Hora, Jonas Lasauskas, John Mumm, Andy Turley, George Marrows, Darach
Ennis, Tommy McGuire, Carl Quinn, Malthe Borch, Kevin Cantú, Markus Fix,
Chris Double, Dan Connolly, and many others.
I owe them all a beer, and I owe anyone I've failed to mention two beers.
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