Word-level abstractions for sequential design verification using algebraic geometry

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Publication Type dissertation
School or College College of Engineering
Department Electrical & Computer Engineering
Author Sun, Xiaojun
Title Word-level abstractions for sequential design verification using algebraic geometry
Date 2017
Description Formal verification of hardware designs has become an essential component of the overall system design flow. The designs are generally modeled as finite state machines, on which property and equivalence checking problems are solved for verification. Reachability analysis forms the core of these techniques. However, increasing size and complexity of the circuits causes the state explosion problem. Abstraction is the key to tackling the scalability challenges. This dissertation presents new techniques for word-level abstraction with applications in sequential design verification. By bundling together k bit-level state-variables into one word-level constraint expression, the state-space is construed as solutions (variety) to a set of polynomial constraints (ideal), modeled over the finite (Galois) field of 2^k elements. Subsequently, techniques from algebraic geometry -- notably, Groebner basis theory and technology -- are researched to perform reachability analysis and verification of sequential circuits. This approach adds a "word-level dimension" to state-space abstraction and verification to make the process more efficient. While algebraic geometry provides powerful abstraction and reasoning capabilities, the algorithms exhibit high computational complexity. In the dissertation, we show that by analyzing the constraints, it is possible to obtain more insights about the polynomial ideals, which can be exploited to overcome the complexity. Using our algorithm design and implementations, we demonstrate how to perform reachability analysis of finite-state machines purely at the word level. Using this concept, we perform scalable verification of sequential arithmetic circuits. As contemporary approaches make use of resolution proofs and unsatisfiable cores for state-space abstraction, we introduce the algebraic geometry analog of unsatisfiable cores, and present algorithms to extract and refine unsatisfiable cores of polynomial ideals. Experiments are performed to demonstrate the efficacy of our approaches.
Type Text
Publisher University of Utah
Subject Algebraic geometry; Formal verification; Groebner basis; multiplier; normal basis; unsatisfiability
Dissertation Name Doctor of Philosophy
Language eng
Rights Management ©Xiaojun Sun
Format Medium application/pdf
ARK ark:/87278/s6sn4f77
Setname ir_etd
ID 1345267
Reference URL https://collections.lib.utah.edu/ark:/87278/s6sn4f77
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