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20242026
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cs.AI2025

Inferring Capabilities from Task Performance with Bayesian Triangulation

John Burden, Konstantinos Voudouris, Ryan Burnell +3

As machine learning models become more general, we need to characterise them in richer, more meaningful ways. We describe a method to infer the cognitive profile of a system from d…

cs.AI2025

Cognitive Science-Inspired Evaluation of Core Capabilities for Object Understanding in AI

Danaja Rutar, Alva Markelius, Konstantinos Voudouris +2

One of the core components of our world models is 'intuitive physics' - an understanding of objects, space, and causality. This capability enables us to predict events, plan action…

cs.AI2025

General Scales Unlock AI Evaluation with Explanatory and Predictive Power

Lexin Zhou, Lorenzo Pacchiardi, Fernando Martínez-Plumed +23

Ensuring safe and effective use of AI requires understanding and anticipating its performance on novel tasks, from advanced scientific challenges to transformed workplace activitie…

cs.AI2025

Bringing Comparative Cognition To Computers

Konstantinos Voudouris, Lucy G. Cheke, Eric Schulz

Researchers are increasingly subjecting artificial intelligence systems to psychological testing. But to rigorously compare their cognitive capacities with humans and other animals…

cs.AI2025

The Animal-AI Environment: A Virtual Laboratory For Comparative Cognition and Artificial Intelligence Research

Konstantinos Voudouris, Ibrahim Alhas, Wout Schellaert +11

The Animal-AI Environment is a unique game-based research platform designed to facilitate collaboration between the artificial intelligence and comparative cognition research commu…

cs.AI2025

Predictable Artificial Intelligence

Lexin Zhou, Pablo A. Moreno-Casares, Fernando Martínez-Plumed +12

We introduce the fundamental ideas and challenges of Predictable AI, a nascent research area that explores the ways in which we can anticipate key validity indicators (e.g., perfor…