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Plattform
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SOTA
Slot-Füllung
Slot Filling On Mixatis
Slot Filling On Mixatis
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Micro F1
Ergebnisse
Leistungsergebnisse verschiedener Modelle zu diesem Benchmark
Columns
Modellname
Micro F1
Paper Title
MISCA
90.5
MISCA: A Joint Model for Multiple Intent Detection and Slot Filling with Intent-Slot Co-Attention
Co-guiding Net
89.8
Co-guiding Net: Achieving Mutual Guidances between Multiple Intent Detection and Slot Filling via Heterogeneous Semantics-Label Graphs
SSRAN
89.4
A Scope Sensitive and Result Attentive Model for Multi-Intent Spoken Language Understanding
BiSLU
89.4
Joint Multiple Intent Detection and Slot Filling with Supervised Contrastive Learning and Self-Distillation
UGEN
89.2
Incorporating Instructional Prompts into a Unified Generative Framework for Joint Multiple Intent Detection and Slot Filling
Topic Information
88.7
Exploiting Topic Information for Joint Intent Detection and Slot Filling
DGIF
88.5
A Dynamic Graph Interactive Framework with Label-Semantic Injection for Spoken Language Understanding
Global Intent-Slot Co-occurence
88.5
Enhancing Joint Multiple Intent Detection and Slot Filling with Global Intent-Slot Co-occurrence
SLIM
88.5
SLIM: Explicit Slot-Intent Mapping with BERT for Joint Multi-Intent Detection and Slot Filling
Uni-MIS
88.3
Uni-MIS: United Multiple Intent Spoken Language Understanding via Multi-View Intent-Slot Interaction
GL-GIN
88.3
GL-GIN: Fast and Accurate Non-Autoregressive Model for Joint Multiple Intent Detection and Slot Filling
TFMN
88.0
A Transformer-based Threshold-Free Framework for Multi-Intent NLU
SLIM (PACL)
87.3
A Two-Stage Prediction-Aware Contrastive Learning Framework for Multi-Intent NLU
TFMN (PACL)
86.7
A Two-Stage Prediction-Aware Contrastive Learning Framework for Multi-Intent NLU
RoBERTa (PACL)
86.0
A Two-Stage Prediction-Aware Contrastive Learning Framework for Multi-Intent NLU
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