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Aonghus Lawlor

2 accepted papers

2024

Breaking the Barrier: Selective Uncertainty-Based Active Learning for Medical Image Segmentation

ICASSP 2024accepted

Active learning (AL) has found wide applications in medical image segmentation, aiming to alleviate the annotation workload and enhance performance. Conventional uncertainty-based AL methods, such as entropy and Bayesian, often rely on an aggregate of all pixel-level metrics. However, in imbalanced…

Cited by 0SourceScholar
2023

Keeping People Active and Healthy at Home Using a Reinforcement Learning-based Fitness Recommendation Framework

IJCAI 2023poster

Recent years have seen a rise in smartphone applications promoting health and well being. We argue that there is a large and unexplored ground within the field of recommender systems (RS) for applications that promote good personal health. During the COVID-19 pandemic, with gyms being closed, the de…

Cited by 8SourcePDFScholar