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cs.LG2026

Group-Equivariant Poincaré Convolutional Networks

Aiden Durrant, Rahul Baburajan, Georgios Leontidis

While recent methods like that of the Poincaré ResNet have demonstrated the ability to learning visual representations directly in hyperbolic space, their optimisation remains a ch…

cs.CV2026

HiAP: A Multi-Granular Stochastic Auto-Pruning Framework for Vision Transformers

Andy Li, Aiden Durrant, Milan Markovic +1

Vision Transformers require significant computational resources and memory bandwidth, severely limiting their deployment on resource-constraint hardware. Most structured pruning me…

cs.CV2026

HANCLIP: A Family of Hyperbolic Angular Negation Vision Language Models

Hoang-Bao Le, Aiden Durrant, Thai Son Mai +3

Vision-Language Models (VLMs) are typically pre-trained on large-scale image-text datasets to capture semantic correspondences between visual content and natural language. However,…

cs.LG2026

Trust-Aware Predictive Emissions Monitoring for Gas Turbine Fleets with Limited Labelled Data

Rebecca Potts, Aiden Durrant, Rick Hackney +1

Machine learning-based predictive emissions monitoring systems offer a practical alternative to direct emissions measurement, but their deployment across gas turbine fleets is chal…

cs.LG2026

Agent-Based Post-Hoc Correction of Agricultural Yield Forecasts

Matthew Beddows, Aiden Durrant, Georgios Leontidis

Accurate crop yield forecasting in commercial soft fruit production is constrained by the data available in typical commercial farm records, which lack the sensor networks, satelli…