Scalable Verification of Probabilistic Networks

April 17, 2019 ยท Declared Dead ยท ๐Ÿ› ACM-SIGPLAN Symposium on Programming Language Design and Implementation

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Authors Steffen Smolka, Praveen Kumar, David M Kahn, Nate Foster, Justin Hsu, Dexter Kozen, Alexandra Silva arXiv ID 1904.08096 Category cs.PL: Programming Languages Citations 31 Venue ACM-SIGPLAN Symposium on Programming Language Design and Implementation Last Checked 1 month ago
Abstract
This paper presents McNetKAT, a scalable tool for verifying probabilistic network programs. McNetKAT is based on a new semantics for the guarded and history-free fragment of Probabilistic NetKAT in terms of finite-state, absorbing Markov chains. This view allows the semantics of all programs to be computed exactly, enabling construction of an automatic verification tool. Domain-specific optimizations and a parallelizing backend enable McNetKAT to analyze networks with thousands of nodes, automatically reasoning about general properties such as probabilistic program equivalence and refinement, as well as networking properties such as resilience to failures. We evaluate McNetKAT's scalability using real-world topologies, compare its performance against state-of-the-art tools, and develop an extended case study on a recently proposed data center network design.
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