Intrinsic Computational Functionalism and Simulated Consciousness
arXiv Preprint Archive June 13, 2026 via arXiv
Summary
AI-generated from the abstractA common objection to artificial consciousness—that a simulated brain is no more conscious than simulated water is wet—is addressed from the perspective of Intrinsic Computational Functionalism. Consciousness depends not on external descriptions but on computational structures a system physically realizes through its own causal-dynamical organization. Previous work defined functional states by input-output roles under a fixed interface, but this is incomplete because it makes lookup tables and unfolded systems canonically equivalent.
Study at a glance
| Characteristics | Theoretical or philosophical paper Peer reviewed |
|---|---|
| Keywords | Q-bio.nc Cs.ai |
| Key finding | Argues that if conscious properties are invariants of intrinsic causal-computational organization, then any system satisfying Intrinsic Causal-Computational Realization (ICCR) realizes the same consciousness-relevant properties, whether biological, artificial, or simulated. |
Abstract
A common objection to artificial or simulated consciousness is that a simulated brain is no more conscious than simulated water is wet. We address this from the perspective of Intrinsic Computational Functionalism (ICF): if consciousness is computationally constituted, it depends not on externally imposed descriptions but on the computational structures a system physically realizes in virtue of its own causal-dynamical organization. In previous work we developed Canonical Functionalism as a mathematically precise special case of this anti-interpretivist program, identifying functional states by their complete future input-output roles under a fixed interface. Here we argue that this input-output construction, though important, is incomplete: as a behavioral boundary case of ICF, it makes lookup tables and unfolded systems that preserve the same boundary behavior canonically equivalent. A consciousness-relevant canonical representation must instead include internal mechanisms, interventions, and joint readouts belonging to the relevant intrinsic organization. We therefore define a mechanism-enriched canonical structure and use it to formulate Intrinsic Causal-Computational Realization (ICCR), a realization relation preserving physical implementation, intrinsic state individuation, transition structure, intervention profiles, and the relevant agent-body-world boundary. The central result is conditional: if conscious properties are invariants of intrinsic causal-computational organization, then any system satisfying ICCR realizes the same consciousness-relevant properties, whether biological, artificial, or simulated. We discuss objections including biological naturalism and integrated information theory. We conclude that to deny consciousness to a simulation, one must identify a consciousness-relevant intrinsic causal-computational structure that the simulation fails to realize.