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Efficient intent detection with dual sentence encoders

2 Pith papers cite this work. Polarity classification is still indexing.

2 Pith papers citing it

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dataset 1

citation-polarity summary

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cs.AI 1 cs.CL 1

years

2026 1 2024 1

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dataset 1

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representative citing papers

Jamba: A Hybrid Transformer-Mamba Language Model

cs.CL · 2024-03-28 · conditional · novelty 7.0

Jamba presents a hybrid Transformer-Mamba MoE architecture for LLMs that delivers state-of-the-art benchmark performance and strong results up to 256K token contexts while fitting in one 80GB GPU with high throughput.

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Showing 2 of 2 citing papers.

  • Jamba: A Hybrid Transformer-Mamba Language Model cs.CL · 2024-03-28 · conditional · none · ref 4

    Jamba presents a hybrid Transformer-Mamba MoE architecture for LLMs that delivers state-of-the-art benchmark performance and strong results up to 256K token contexts while fitting in one 80GB GPU with high throughput.

  • CASCADE: Case-Based Continual Adaptation for Large Language Models During Deployment cs.AI · 2026-05-05 · unverdicted · none · ref 101

    CASCADE enables LLMs to continually adapt at deployment via case-based episodic memory and contextual bandits, improving macro-averaged success by 20.9% over zero-shot on 16 tasks spanning medicine, law, code, and robotics.