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Token Matching Mention Recognition

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https://github.com/VictorMorand/llm2ner
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Papers

ToMMeR -- Efficient Entity Mention Detection from Large Language Models

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ToMMeR is a lightweight probing model (~300K params) extracting emergent mention detection capabilities from early layers representations of any LLM backbone, achieving high Zero Shot recall across a wide set of NER benchmarks. More information in the associated ACL2026 paper

models 35

llm2ner/ToMMeR-phi-4_L3_R64

Token Classification • 660k • Updated Apr 9

llm2ner/ToMMeR-phi-2_L5_R64

Token Classification • 330k • Updated Apr 9

llm2ner/ToMMeR-phi-1_5_L5_R64

Token Classification • 264k • Updated Apr 9

llm2ner/ToMMeR-mistral-7b_L5_R64

Token Classification • 528k • Updated Apr 9

llm2ner/ToMMeR-Llama-3.2-3B_L1_R64

Token Classification • 396k • Updated Apr 9

llm2ner/ToMMeR-Llama-3.1-8B_L5_R64

Token Classification • 528k • Updated Apr 9

llm2ner/ToMMeR-bert-base-uncased_L5_R64

Token Classification • 99.1k • Updated Apr 9

llm2ner/ToMMeR-ModernBERT-base_L5_R64

Token Classification • 99.1k • Updated Apr 9

llm2ner/ToMMeR-roberta-base_L5_R64

Token Classification • 99.1k • Updated Apr 9

llm2ner/ToMMeR-pythia-70m_L1_R64

Token Classification • 66.1k • Updated Apr 9
View 35 models

datasets 0

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