heterogeneity

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#heterogeneity

Toward Machine Learning with the Unit as a Primitive: Learning from Unit-Linked Events

arXiv cs.LG · 2026-08-27 Cached

The paper proposes 'unit' as an explicit primitive in machine learning, where learning tasks declare persistent individuals, and supervised learning specializes to unit-conditioned response laws with tokenization.

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#heterogeneity

Towards Effective Federated Multimodal Graph Learning via Navigating Multifaceted Heterogeneity

arXiv cs.LG · 2026-08-04 Cached

Proposes FedTCR, the first systematic federated multimodal graph learning algorithm that handles task, modality, and topology heterogeneity via topology-aware cross-modal routing and tri-level contrastive learning, outperforming baselines across 7 domains.

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#heterogeneity

Dementia Etiology Diagnosis via Collaborative Meta Knowledge Enhancement

arXiv cs.LG · 2026-07-28 Cached

Proposes a Collaborative Meta Knowledge Enhancement (COME) framework for dementia etiology diagnosis that injects heterogeneity-aware embeddings into a unified Transformer architecture, achieving state-of-the-art performance across multiple independent cohorts.

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HERO: A Heterogeneity-Aware Benchmark Library for Federated Continual Learning

arXiv cs.LG · 2026-07-13 Cached

Introduces HERO, a heterogeneity-aware benchmark library for federated continual learning that separates task splits, client data splits, and client task sequences to enable reproducible and setting-aware evaluation.

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Decentralised Federated Learning over Temporal Networks: The Role of Heterogeneities

arXiv cs.LG · 2026-07-07 Cached

This paper analyzes the effect of structural and temporal heterogeneities in decentralized federated learning over temporal networks, showing that ignoring these heterogeneities leads to unrealistically rapid convergence and that real-world networks slow down diffusion.

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AI Receptivity or AI Adoption Breadth? A Tool-Specific Reanalysis of the Lower-Literacy/Higher-Usage Link

arXiv cs.AI · 2026-06-15 Cached

This paper reanalyzes a prior study claiming lower AI literacy predicts greater AI receptivity, finding that the aggregate negative relationship masks heterogeneity: the effect is not significant for text AI tools but remains strong for non-text AI tools, indicating a narrower pattern of broader adoption rather than general receptivity.

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