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SOTA
음성 인식
Speech Recognition On Librispeech Test Clean
Speech Recognition On Librispeech Test Clean
평가 지표
Word Error Rate (WER)
평가 결과
이 벤치마크에서 각 모델의 성능 결과
Columns
모델 이름
Word Error Rate (WER)
Paper Title
Repository
AmNet
8.6
Amortized Neural Networks for Low-Latency Speech Recognition
-
HMM-(SAT)GMM
8.0
-
-
Local Prior Matching (Large Model)
7.19
Semi-Supervised Speech Recognition via Local Prior Matching
Snips
6.4
Snips Voice Platform: an embedded Spoken Language Understanding system for private-by-design voice interfaces
Li-GRU
6.2
The PyTorch-Kaldi Speech Recognition Toolkit
HMM-DNN + pNorm*
5.5
-
-
CTC + policy learning
5.42
Improving End-to-End Speech Recognition with Policy Learning
-
Deep Speech 2
5.33
Deep Speech 2: End-to-End Speech Recognition in English and Mandarin
Gated ConvNets
4.8
Letter-Based Speech Recognition with Gated ConvNets
HMM-TDNN + iVectors
4.8
-
-
Centaurus (30 M)
4.4
Let SSMs be ConvNets: State-space Modeling with Optimal Tensor Contractions
-
HMM-TDNN trained with MMI + data augmentation (speed) + iVectors + 3 regularizations
4.3
-
-
CTC-CRF 4gram-LM
4.09
CRF-based Single-stage Acoustic Modeling with CTC Topology
-
Seq-to-seq attention
3.82
Improved training of end-to-end attention models for speech recognition
Model Unit Exploration
3.60
On the Choice of Modeling Unit for Sequence-to-Sequence Speech Recognition
MT4SSL
3.4
MT4SSL: Boosting Self-Supervised Speech Representation Learning by Integrating Multiple Targets
Convolutional Speech Recognition
3.26
Fully Convolutional Speech Recognition
-
tdnn + chain + rnnlm rescoring
3.06
Neural Network Language Modeling with Letter-based Features and Importance Sampling
-
Jasper DR 10x5
2.95
Jasper: An End-to-End Convolutional Neural Acoustic Model
Jasper DR 10x5 (+ Time/Freq Masks)
2.84
Jasper: An End-to-End Convolutional Neural Acoustic Model
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