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Jiahui Yao

5 accepted papers

2025

Clear Up Confusion: Iterative Differential Generation for Fine-grained Intent Detection with Contrastive Feedback

COLING 2025main

Fine-grained intent detection involves identifying a large number of classes with subtle variations. Recently, generating pseudo samples via large language models has attracted increasing attention to alleviate the data scarcity caused by emerging new intents. However, these methods generate samples…

Cited by 0SourcePDFScholar
2025

Instance Relation Learning Network with Label Knowledge Propagation for Few-shot Multi-label Intent Detection

IJCAI 2025

Few-shot Multi-label Intent Detection (MID) is crucial for dialogue systems, aiming to detect multiple intents of utterances in low-resource dialogue domains. Previous studies focus on a two-stage pipeline. They first learn representations of utterances with multiple labels and then use a threshold-

Cited by 0SourcePDFScholar
2025

Less is Enough: Relation Graph Guided Few-shot Learning for Multi-label Aspect Category Detection

ICASSP 2025accepted

Few-shot Multi-label Aspect Category Detection (FMACD) is an essential task, which aims to identify multiple aspect categories in a given sentence with limited data. Recently, the prototypical network as a mainline has been used for the task due to its powerful capacity. However, existing methods mo…

Cited by 0SourceScholar
2025

PR-KGC: Text-enhanced Knowledge Graph Completion with Pair-wise Re-ranking

ICASSP 2025accepted

Recent advancements in Knowledge Graph Completion (KGC) often adopt a two-stage pipeline that combines triple-based retrieval with text-based re-ranking. However, point-wise re-rankers, which score candidates individually, often fail to capture subtle distinctions between similar candidates due to t…

Cited by 0SourceScholar
2024

From Discrimination to Generation: Low-Resource Intent Detection with Language Model Instruction Tuning

ACL 2024findings

Intent detection aims to identify user goals from utterances, and is a ubiquitous step towards the satisfaction of user desired needs in many interaction systems. As dynamic and varied intents arise, models that are capable of identifying new intents promptly are required. However, existing studies…

Cited by 3SourcePDFScholar