SOTAVerified

Automatic Speech Recognition (ASR)

Automatic Speech Recognition (ASR) involves converting spoken language into written text. It is designed to transcribe spoken words into text in real-time, allowing people to communicate with computers, mobile devices, and other technology using their voice. The goal of Automatic Speech Recognition is to accurately transcribe speech, taking into account variations in accent, pronunciation, and speaking style, as well as background noise and other factors that can affect speech quality.

Papers

Showing 22512275 of 3012 papers

TitleStatusHype
Artie Bias Corpus: An Open Dataset for Detecting Demographic Bias in Speech Applications0
Malayalam Speech Corpus: Design and Development for Dravidian Language0
Corpora for Cross-Language Information Retrieval in Six Less-Resourced Languages0
Corpus Generation for Voice Command in Smart Home and the Effect of Speech Synthesis on End-to-End SLU0
Evaluation of Off-the-shelf Speech Recognizers Across Diverse Dialogue Domains0
Open-Source High Quality Speech Datasets for Basque, Catalan and Galician0
ATC-ANNO: Semantic Annotation for Air Traffic Control with Assistive Auto-Annotation0
Large Corpus of Czech Parliament Plenary Hearings0
Analysis of GlobalPhone and Ethiopian Languages Speech Corpora for Multilingual ASR0
Fully Convolutional ASR for Less-Resourced Endangered Languages0
Samr\'omur: Crowd-sourcing Data Collection for Icelandic Speech Recognition0
CEASR: A Corpus for Evaluating Automatic Speech Recognition0
Phonemic Transcription of Low-Resource Languages: To What Extent can Preprocessing be Automated?0
Automatically Assess Children's Reading Skills0
The SAFE-T Corpus: A New Resource for Simulated Public Safety Communications0
Large Vocabulary Read Speech Corpora for Four Ethiopian Languages: Amharic, Tigrigna, Oromo and Wolaytta0
Towards Building an Automatic Transcription System for Language Documentation: Experiences from Muyu0
Transfer Learning for Less-Resourced Semitic Languages Speech Recognition: the Case of Amharic0
Exploring Pre-training with Alignments for RNN Transducer based End-to-End Speech Recognition0
Automatic Speech Recognition for Uyghur through Multilingual Acoustic Modeling0
Using Automatic Speech Recognition in Spoken Corpus Curation0
Acoustic-Phonetic Approach for ASR of Less Resourced Languages Using Monolingual and Cross-Lingual Information0
LinTO Platform: A Smart Open Voice Assistant for Business Environments0
Where are we in Named Entity Recognition from Speech?0
DNN-Based Multilingual Automatic Speech Recognition for Wolaytta using Oromo Speech0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1TM-CTCTest WER10.1Unverified
2TM-seq2seqTest WER9.7Unverified
3CTC/attentionTest WER8.2Unverified
4LF-MMI TDNNTest WER6.7Unverified
5Whisper-LLaMATest WER6.6Unverified
6End2end ConformerTest WER3.9Unverified
7End2end ConformerTest WER3.7Unverified
8MoCo + wav2vec (w/o extLM)Test WER2.7Unverified
9CTC/AttentionTest WER1.5Unverified
10WhisperTest WER1.3Unverified
#ModelMetricClaimedVerifiedStatus
1SpatialNetCER14.5Unverified
2CleanMel-L-maskCER14.4Unverified
#ModelMetricClaimedVerifiedStatus
1ConformerTest WER15.32Unverified
2Whisper-largev3-finetunedTest WER10.82Unverified
#ModelMetricClaimedVerifiedStatus
1Conformer TransducerWER (%)1.89Unverified
#ModelMetricClaimedVerifiedStatus
1DistillAVWER1.4Unverified
#ModelMetricClaimedVerifiedStatus
1Conformer TransducerWER (%)4.28Unverified
#ModelMetricClaimedVerifiedStatus
1Conformer TransducerWER (%)8.04Unverified
#ModelMetricClaimedVerifiedStatus
1Conformer TransducerWER (%)3.36Unverified
#ModelMetricClaimedVerifiedStatus
1Conformer Transducer (German)WER (%)8.98Unverified