On the Preciseness of Subtyping in Session Types
File(s)cdy14.pdf (279.13 KB)
Accepted version
Author(s)
Chen, T-C
Dezani-Ciancaglini, M
Yoshida, N
Type
Conference Paper
Abstract
Subtyping in concurrency has been extensively studied since early 1990s as one of the most interesting issues in type theory. The correctness of subtyping relations has been usually provided as the soundness for type safety. The converse direction, the completeness, has been largely ignored in spite of its usefulness to define the greatest subtyping relation ensuring type safety. This paper formalises preciseness (i.e. both soundness and completeness) of subtyping for mobile processes and studies it for the synchronous and the asynchronous session calculi. We first prove that the well-known session subtyping, the branching-selection subtyping, is sound and complete for the synchronous calculus. Next we show that in the asynchronous calculus, this subtyping is incomplete for type-safety: that is, there exist session types T and S such that T can safely be considered as a subtype of S, but this fact is not derivable by the subtyping. We then propose an asynchronous subtyping system which is sound and complete for the asynchronous calculus. The method gives a general guidance to design rigorous channel-based subtypings respecting desired safety properties.
Date Issued
2014-09-08
Date Acceptance
2014-06-30
Citation
Proceedings of the 16th International Symposium on Principles and Practice of Declarative Programming, pp.135-146
ISBN
978-1-4503-2947-7
Publisher
ACM
Start Page
135
End Page
146
Journal / Book Title
Proceedings of the 16th International Symposium on Principles and Practice of Declarative Programming
Copyright Statement
© ACM, 2014. This is the author's version of the work. It is posted here by permission of ACM for your personal use. Not for redistribution. The definitive version was published in PPDP ’14, September 08–10 2014, Canterbury, UK., https://dx.doi.org/10.1145/2643135.2643138
Source
Principles and Practice of Declarative Programming (PPDP'14)
Publication Status
Accepted
Start Date
2014-09-08
Coverage Spatial
Canterbury, United Kingdom