English

Psi-Turing Machines: Bounded Introspection for Complexity Barriers and Oracle Separations

Computational Complexity 2026-04-14 v3 Formal Languages and Automata Theory Logic in Computer Science

Abstract

We introduce Psi-Turing Machines (Psi-TM): classical Turing machines equipped with a constant-depth introspection interface ι \iota and an explicit per-step information budget B(d,n)=cdlog2n B(d,n)=c\,d\log_2 n . With the interface frozen, we develop an information-theoretic lower-bound toolkit: Budget counting, Ψ \Psi -Fooling, and Ψ \Psi -Fano, with worked examples Lk L_k and Lkphase L_k^{\mathrm{phase}} . We prove an oracle-relative separation PΨNPΨ P^{\Psi} \neq NP^{\Psi} and a strict depth hierarchy, reinforced by an Anti-Simulation Hook that rules out polynomial emulation of ιk \iota_k using many calls to ιk1 \iota_{k-1} under the budget regime. We also present two independent platforms (Psi-decision trees and interface-constrained circuits IC-AC0^{0}/IC-NC1^{1}) and bridges that transfer bounds among machine, tree, and circuit with explicit poly/log losses. The model preserves classical computational power outside ι \iota yet enables precise oracle-aware statements about barriers (relativization; partial/conditional progress on natural proofs and proof complexity). The aim is a standardized minimal introspection interface with clearly accounted information budgets.

Cite

@article{arxiv.2510.08577,
  title  = {Psi-Turing Machines: Bounded Introspection for Complexity Barriers and Oracle Separations},
  author = {Rafig Huseynzade},
  journal= {arXiv preprint arXiv:2510.08577},
  year   = {2026}
}

Comments

Withdrawn by the author due to major drafting errors and internal inconsistencies, including duplicated sections, conflicting claims, and incorrect complexity-class statements. This version should not be relied upon; the paper is withdrawn pending a full rewrite and verification

R2 v1 2026-07-01T06:27:39.401Z