🤖 AI Summary
This study addresses the absence of formalized criteria for conscious access in Global Workspace Theory by proposing the Global Mediation Workspace framework. Modeling subnetworks as open systems, this approach leverages cybernetics, reachability and observability analysis, and boundary Hankel operators to quantify mediation capacity and input-output alignment, thereby establishing testable criteria for conscious access. Experiments demonstrate that this method effectively distinguishes mediating architectures in synthetic benchmarks and successfully captures dynamic alterations in consciousness signatures within macaque ECoG data under anesthesia. Collectively, these findings provide a robust theoretical and empirical foundation for localizing the global workspace from neural recordings, bridging computational modeling with neurophysiological validation.
📝 Abstract
Global workspace theory explains conscious access as the broadcasting of selected information to the rest of the network, but it lacks a formal criterion for identifying the mechanism that enables this access. We propose that a global workspace is a mediator, namely, a subnetwork that receives activity from distributed systems, transforms it through internal modes, and returns differentiated effects to the broader network. We formalize this claim as the Global Mediation Workspace (GMW), a control-theoretic formulation in which a candidate subnetwork is treated as an open system embedded in the remainder of the network. In this framework, reachability characterizes how the remainder can drive the candidate, observability characterizes how candidate states affect the remainder, and a boundary Hankel operator identifies the internal modes linking the two directions. The resulting signature quantifies mediation capacity, input-output alignment, effective dimensionality, and routed source-target breadth, each of which characterizes different components of global workspace. In synthetic benchmarks, we tested whether the signature can distinguish a planted differentiated mediator from dense hubs, one-sided receivers or broadcasters, and a split read/write aggregate with no common internal route. A nonlinear extension characterizes mediation through trajectory-conditioned differential operators, finite-amplitude response profiles, and state-dependent coalitions. As a preliminary application, we estimated the signature from ECoG recordings in four macaques under ketamine anesthesia. We found that input-output alignment was reduced during unconsciousness whereas potential capacity was increased. The GMW thus provides a formal and testable criterion for locating candidate global workspaces in neural recordings and for asking which aspects of mediation is crucial for conscious access.