会議情報
NNNLP 2025: International Conference on Neural Networks and Natural Language Processing
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提出日: |
2025-03-10 |
通知日: |
2025-04-15 |
会議日: |
2025-06-27 |
場所: |
Kuala Lumpur, Malaysia |
閲覧: 4172 追跡: 0 出席: 0
論文募集
Topics of interest for submission include, but are not limited to:
Machine Learning for NLP
Graph-based methods
Knowledge-augmented methods
Knowledge engineering
Artificial intelligence
Logic programming
Human-computer interaction
Deep learning
Signal processing
Information extraction
Natural language inference
Multi-task learning
Self-supervised learning
Contrastive learning
Generation model
Data augmentation
Word embedding
Structured prediction
Transfer learning / domain adaptation
Representation learning
Model compression methods
Parameter-efficient finetuning
Few-shot learning
Reinforcement learning
Optimization methods
Continual learning
Adversarial training
Meta learning
Causality
Graphical models
Human-in-a-loop / Active learning
Interpretability and Analysis of Models in NLP
Calibration/uncertainty
Counterfactual/contrastive explanations
Data influence
Data shortcuts/artifacts
Explantion faithfulness
Feature attribution
Free-text/natural language explanation
Hardness of samples
Hierarchical & concept explanations
Human-subject application-grounded evaluations
Knowledge tracing/discovering/inducing
NLP Applications
Educational applications, GEC, essay scoring
Hate speech detection
Multimodal applications
Code generation and understanding
Fact checking, rumour/misinformation detection
Healthcare applications, clinical NLP
Legal NLP
Mathematical NLP
Security/privacy
Knowledge graph
Machine Learning for NLP
Graph-based methods
Knowledge-augmented methods
Knowledge engineering
Artificial intelligence
Logic programming
Human-computer interaction
Deep learning
Signal processing
Information extraction
Natural language inference
Multi-task learning
Self-supervised learning
Contrastive learning
Generation model
Data augmentation
Word embedding
Structured prediction
Transfer learning / domain adaptation
Representation learning
Model compression methods
Parameter-efficient finetuning
Few-shot learning
Reinforcement learning
Optimization methods
Continual learning
Adversarial training
Meta learning
Causality
Graphical models
Human-in-a-loop / Active learning
Interpretability and Analysis of Models in NLP
Calibration/uncertainty
Counterfactual/contrastive explanations
Data influence
Data shortcuts/artifacts
Explantion faithfulness
Feature attribution
Free-text/natural language explanation
Hardness of samples
Hierarchical & concept explanations
Human-subject application-grounded evaluations
Knowledge tracing/discovering/inducing
NLP Applications
Educational applications, GEC, essay scoring
Hate speech detection
Multimodal applications
Code generation and understanding
Fact checking, rumour/misinformation detection
Healthcare applications, clinical NLP
Legal NLP
Mathematical NLP
Security/privacy
Knowledge graph
最終更新 Dou Sun 2025-02-28
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関連仕訳帳
| CCF | 完全な名前 | インパクト ・ ファクター | 出版社 | ISSN |
|---|---|---|---|---|
| b | IEEE Transactions on Neural Networks and Learning Systems | 8.9 | IEEE | 1045-9227 |
| Mechanical Systems and Signal Processing | 8.9 | Elsevier | 0888-3270 | |
| b | Neural Networks | 6.3 | Elsevier | 0893-6080 |
| c | IEEE Transactions on Network and Service Management | 5.4 | IEEE | 1932-4537 |
| IEEE/ACM Transactions on Audio Speech and Language Processing | 5.1 | IEEE | 2329-9290 | |
| Journal of Real-Time Image Processing | 3.0 | Springer | 1861-8200 | |
| c | Neural Processing Letters | 2.8 | Springer | 1370-4621 |
| Quantum Information Processing | 2.2 | Springer | 1570-0755 | |
| ACM Transactions on Asian and Low-Resource Language Information Processing | 2.0 | ACM | 2375-4699 | |
| c | Natural Language Engineering | 1.9 | Cambridge University Press | 1351-3249 |