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Philip Wilson

Publications and source records attributed to Philip Wilson.

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Active Inference: A method for Phenotyping Agency in AI systems?

The proliferation of agentic artificial intelligence has outpaced the conceptual tools needed to characterize agency in computational systems. Prevailing definitions mainly rely on autonomy and goal-directedness. Here, we argue for a minimal notion open to principled inspection given three criteria: intentionality as action grounded in beliefs and desires, rationality as normatively coherent action entailed by a world model, and explainability as action causally traceable to internal states; we subsequently instantiate these as a partially observable Markov decision process under a variational framework wherein posterior beliefs, prior preferences, and the minimization of expected free energy jointly constitute an agentic action chain. Using a canonical T-maze paradigm, we evidence how empowerment, formulated as the channel capacity between actions and anticipated observations, serves as an operational metric that distinguishes zero-, intermediate-, and high-agency phenotypes through structural manipulations of the generative model. We conclude by arguing that as agents engage in epistemic foraging to resolve ambiguity, the governance controls that remain effective must shift systematically from external constraints to the internal modulation of prior preferences, offering a principled, variational bridge from computational phenotyping to AI governance strategy

cs.AI

Empathy Modeling in Active Inference Agents for Perspective-Taking and Alignment

Artificial agents that model other agents must predict their behavior and determine whether their outcomes matter within action selection. We introduce an active inference framework that separates these components by combining a history-conditioned Theory of Mind model with an explicit other-regarding valuation parameter, $\lambda$. We instantiate the framework in the Iterated Prisoner's Dilemma. The joint empathy configuration $(\lambda_i,\lambda_j)$ reorganizes the long-run cooperation landscape: sufficiently strong and symmetric other-regarding valuation supports sustained mutual cooperation, whereas strong asymmetry exposes the more empathic agent to systematic exploitation. Along the symmetric diagonal, cooperation exhibits a sharp but continuous finite-precision crossover. Fixed-partner sweeps reveal that the apparent cooperation boundary is path-dependent and that temporal variability is elevated where those paths cross it. Online Bayesian inference over opponent parameters modestly facilitates cooperation near the behavioral boundary but does not substitute for other-regarding valuation. Direct model comparison likewise shows that opponent-sensitive prediction at $\lambda=0$ does not generate cooperation. Planning depth has a partner-dependent effect: it slightly reduces cooperation when modeled reciprocity is weak but strongly increases cooperation against a reciprocating partner such as tit-for-tat. These results distinguish prediction, planning, and prosocial valuation as separable but interacting components of social agency. They also reveal a central limitation of unconditional empathic concern: the same valuation that stabilizes mutual cooperation creates predictable vulnerability when concern is not reciprocated.

physics.soc-ph

In-flight calibration and verification of the Planck-LFI instrument

In this paper we discuss the Planck-LFI in-flight calibration campaign. After a brief overview of the ground test campaigns, we describe in detail the calibration and performance verification (CPV) phase, carried out in space during and just after the cool-down of LFI. We discuss in detail the functionality verification, the tuning of the front-end and warm electronics, the preliminary performance assessment and the thermal susceptibility tests. The logic, sequence, goals and results of the in-flight tests are discussed. All the calibration activities were successfully carried out and the instrument response was comparable to the one observed on ground. For some channels the in-flight tuning activity allowed us to improve significantly the noise performance.

astro-ph.IM