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Issue title: Special Issue on Machines, Computations and Universality (MCU 2018)
Guest editors: Jérôme Durand-Lose, Jarkko Kari and Sergey Verlan
Article type: Research Article
Authors: Whyman, Richard; *
Affiliations: The University of Leeds, Leeds, West Yorkshire, LS2 9JT, UK. richard@mccallumwhyman.com
Correspondence: [*] Address for correspondence: The University of Leeds, Leeds, West Yorkshire, LS2 9JT, UK.
Abstract: We present the concept of a theory machine, which is an atemporal computational formalism that is deployable within an arbitrary logical system. Theory machines are intended to capture computation on an arbitrary system, both physical and unphysical, including quantum computers, Blum-Shub-Smale machines, and infinite time Turing machines. We demonstrate that for finite problems, the computational power of any device characterisable by a finite first-order theory machine is equivalent to that of a Turing machine. Whereas for infinite problems, their computational power is equivalent to that of a type-2 machine. We then develop a concept of complexity for theory machines, and prove that the class of problems decidable by a finite first order theory machine with polynomial resources is equal to 𝒩𝒫 ∩ co-𝒩𝒫.
Keywords: Physical computation, Computable analysis, Blum-Shub-Smale machines, Hypercomputation, The Church-Turing thesis, Non-Causal Computation, Atemporal Computation
DOI: 10.3233/FI-2021-2054
Journal: Fundamenta Informaticae, vol. 181, no. 2-3, pp. 129-161, 2021
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