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#multi-label

@JFPuget: Significant: one can now use XGBoost for multi class or multi label problems without having to train a model for each c…

X AI KOLs Timeline · 3d ago Cached

XGBoost has been updated to support multi-class and multi-label problems without the need to train separate models for each class or label, introducing the Vector-Leaf Model.

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#multi-label

Towards Multi-Label Graph Foundation Models: from Single-Vector Representation Learning to Multi-Semantic Basis Learning

arXiv cs.AI · 2026-08-10 Cached

This paper proposes MSB-GFM, a multi-semantic basis graph foundation model for cross-domain multi-label node classification, addressing semantic entanglement by representing nodes as adaptive compositions of semantic bases.

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#multi-label

One Round Is All You Need: Analytic Federated Learning for Task-Heterogeneous Multi-Label Medical Image Classification

arXiv cs.LG · 2026-07-24 Cached

Proposes an analytic federated learning framework that requires only one or two communication rounds for multi-label medical image classification under task heterogeneity, outperforming existing methods on ChestXray14 by up to 18.44 BACC and 13.24 AUC points.

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#multi-label

Multi-Label Node Classification with Label Influence Propagation

arXiv cs.LG · 2026-07-02 Cached

The paper proposes Label Influence Propagation (LIP), a model that analyzes and propagates label influences in graph neural networks for multi-label node classification, consistently outperforming state-of-the-art methods.

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#multi-label

Knowledge Graph-Enhanced Zero-Shot Topic Classification: A Multi-Strategy Comparative Study

arXiv cs.CL · 2026-06-01 Cached

This paper proposes a zero-shot multi-label topic classification framework enhanced with per-article knowledge graphs, comparing four base variants and their graph-augmented counterparts across fifteen LLMs and eight datasets. The study finds that keyword-enhanced classification performs best, and graph augmentation improves small models but degrades performance in larger ones.

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#multi-label

TADDLE: A Tool-Augmented Agent for Detecting Deficient LLM-Generated Peer Reviews

arXiv cs.AI · 2026-05-27 Cached

Introduces TADDLE, a tool-augmented agent for detecting deficient LLM-generated peer reviews, along with an expert-annotated benchmark of 1,800 reviews on 50 ICLR 2025 papers. The system decomposes detection into four specialized analysis tools and uses two-stage semi-supervised learning for binary and multi-label classification.

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#multi-label

Retrieval-Based Multi-Label Legal Annotation: Extensible, Data-Efficient and Hallucination-Free

arXiv cs.CL · 2026-05-19 Cached

This paper proposes a retrieval-based approach for multi-label legal annotation that uses frozen embedding models to retrieve labels via k-nearest neighbors, achieving competitive accuracy, high data efficiency, and eliminating label hallucination by design.

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