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  1. Research Outputs

DOLFIN: Balancing Stability and Plasticity in Federated Continual Learning

Conference Paper
Publication Date:
2026
Short description:
DOLFIN: Balancing Stability and Plasticity in Federated Continual Learning / Moussadek, Omayma; Salami, Riccardo; Calderara, Simone. - 16170:(2026), pp. 175-183. ( Workshops and competitions hosted by the 23rd International Conference on Image Analysis and Processing, ICIAP 2025 ita 2025) [10.1007/978-3-032-11381-8_15].
abstract:
Federated continual learning (FCL) enables models to learn new tasks across multiple distributed clients, protecting privacy and without forgetting previously acquired knowledge. However, current methods face challenges balancing performance, privacy preservation, and communication efficiency. We introduce a Distributed Online LoRA for Federated INcremental learning methodDOLFIN, a novel approach combining Vision Transformers with low-rank adapters designed to efficiently and stably learn new tasks in federated environments. Our method leverages LoRA for minimal communication overhead and incorporates Dual Gradient Projection Memory (DualGPM) to prevent forgetting. Evaluated on CIFAR-100, ImageNet-R, ImageNet-A, and CUB-200 under two Dirichlet heterogeneity settings,DOLFINconsistently surpasses six strong baselines in final average accuracy while matching their memory footprint. Orthogonal low-rank adapters offer an effective and scalable solution for privacy-preserving continual learning in federated settings.
Iris type:
Relazione in Atti di Convegno
Keywords:
DualGPM; Federated Continual Learning; LoRA
List of contributors:
Moussadek, Omayma; Salami, Riccardo; Calderara, Simone
Authors of the University:
CALDERARA Simone
MOUSSADEK OMAYMA
SALAMI RICCARDO
Handle:
https://iris.unimore.it/handle/11380/1396849
Book title:
Lecture Notes in Computer Science
Published in:
LECTURE NOTES IN COMPUTER SCIENCE
Journal
LECTURE NOTES IN COMPUTER SCIENCE
Series
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