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Published July 18, 2020 | Version v1

Probabilistic Analysis of Binary Sessions

  • 1. Gran Sasso Science Institute, Italy
  • 2. ICC – Universidad de Buenos Aires – Conicet, Argentina
  • 3. Università di Torino, Italy

Description

We study a probabilistic variant of binary session types that relate to a class of Finite-State Markov Chains. The probability annotations in session types enable the reasoning on the probability that a session terminates successfully, for some user-definable notion of successful termination. We develop a type system for a simple session calculus featuring probabilistic choices and show that the success probability of well-typed processes agrees with that of the sessions they use. To this aim, the type system needs to track the propagation of probabilistic choices across different sessions.

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Additional details

Funding

European Commission
BEHAPI - Behavioural Application Program Interfaces 778233