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홈뉴스최신 연구 논문튜토리얼데이터셋백과사전SOTALLM 모델GPU 랭킹컨퍼런스
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  1. 홈
  2. SOTA
  3. 수면 단계 인식
  4. Sleep Stage Detection On Sleep Edf

Sleep Stage Detection On Sleep Edf

평가 지표

Accuracy
Cohen's kappa
Macro-F1

평가 결과

이 벤치마크에서 각 모델의 성능 결과

모델 이름
Accuracy
Cohen's kappa
Macro-F1
Paper TitleRepository
SleePyCo (Fpz-Cz only)86.8%0.8200.812SleePyCo: Automatic Sleep Scoring with Feature Pyramid and Contrastive Learning
CatBoost86.6%0.8160.810Do Not Sleep on Traditional Machine Learning: Simple and Interpretable Techniques Are Competitive to Deep Learning for Sleep Scoring
DeepSleepNet82%0.760.769DeepSleepNet: a Model for Automatic Sleep Stage Scoring based on Raw Single-Channel EEG
IITNet CRNN (Fpz-Cz only)84.0%--Intra- and Inter-epoch Temporal Context Network (IITNet) Using Sub-epoch Features for Automatic Sleep Scoring on Raw Single-channel EEG
XSleepNet (EEG, EOG)86.4%0.8130.809XSleepNet: Multi-View Sequential Model for Automatic Sleep Staging
Multitask 1-max CNN81.9%--Joint Classification and Prediction CNN Framework for Automatic Sleep Stage Classification
Linear model86.3%0.8130.805Do Not Sleep on Traditional Machine Learning: Simple and Interpretable Techniques Are Competitive to Deep Learning for Sleep Scoring
Deep CNN with transfer-learning81.3%--Deep Convolutional Neural Networks for Interpretable Analysis of EEG Sleep Stage Scoring-
0 of 8 row(s) selected.
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소개

회사 소개데이터셋 도움말

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뉴스튜토리얼데이터셋백과사전

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