SOTAVerified

Keyword Spotting

In speech processing, keyword spotting deals with the identification of keywords in utterances.

( Image credit: Simon Grest )

Papers

Showing 251–275 of 407 papers

TitleStatusHype
Bifocal Neural ASR: Exploiting Keyword Spotting for Inference Optimization—0
Proposal-based Few-shot Sound Event Detection for Speech and Environmental Sounds with Perceivers—0
Multi-task Learning with Cross Attention for Keyword Spotting—0
AUC Optimization for Robust Small-footprint Keyword Spotting with Limited Training Data—0
An Integrated Framework for Two-pass Personalized Voice Trigger—0
PQK: Model Compression via Pruning, Quantization, and Knowledge Distillation—0
Evaluation of a Region Proposal Architecture for Multi-task Document Layout Analysis—0
Zero-Shot Federated Learning with New Classes for Audio Classification—0
Encoder-Decoder Neural Architecture Optimization for Keyword Spotting—0
Teaching keyword spotters to spot new keywords with limited examples—0
Noisy student-teacher training for robust keyword spotting—0
A Streaming End-to-End Framework For Spoken Language Understanding—0
Building and benchmarking an Arabic Speech Commands dataset for small-footprint keyword spottingCode0
Efficient Keyword Spotting by capturing long-range interactions with Temporal Lambda NetworksCode0
End-to-end Keyword Spotting using Neural Architecture Search and Quantization—0
The DKU System Description for The Interspeech 2021 Auto-KWS Challenge—0
A Probabilistic Framework for Lexicon-based Keyword Spotting in Handwritten Text Images—0
PATE-AAE: Incorporating Adversarial Autoencoder into Private Aggregation of Teacher Ensembles for Spoken Command Classification—0
SubSpectral Normalization for Neural Audio Data Processing—0
Prototype-based Personalized Pruning—0
EdgeCRNN: an edgecomputing oriented model of acoustic feature enhancement for keyword spotting—0
An Ultra-low Power RNN Classifier for Always-On Voice Wake-Up Detection Robust to Real-World Scenarios—0
The NPU System for the 2020 Personalized Voice Trigger Challenge—0
Meta-Learning for improving rare word recognition in end-to-end ASR—0
Dynamic curriculum learning via data parameters for noise robust keyword spotting—0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1NNI non-filtered(for the development set)Cnxe6.09—Unverified
2NNI Choi(for the development set)Cnxe5.89—Unverified
3NTU rnn (eval)Cnxe2.01—Unverified
4NTU dtw (eval)Cnxe2.01—Unverified
5NTU dtw (dev)Cnxe2.01—Unverified
6NTU rnn (dev)Cnxe2.01—Unverified
7ELiRF SDTW (eval)Cnxe1.19—Unverified
8ELiRF SDTW-avg (eval)Cnxe1.07—Unverified
9ELiRF SDTW (dev)Cnxe1.07—Unverified
10CUNY [Subseq+MFCC] (eval)Cnxe1.07—Unverified
#ModelMetricClaimedVerifiedStatus
1WaveFormerGoogle Speech Commands V2 1298.8—Unverified
2QNNGoogle Speech Commands V2 3598.6—Unverified
3TripletLoss-res15Google Speech Commands V1 1298.56—Unverified
4M2DGoogle Speech Commands V2 3598.5—Unverified
5EAT-SGoogle Speech Commands V2 3598.15—Unverified
6Audio Spectrogram TransformerGoogle Speech Commands V2 3598.11—Unverified
7EdgeCRNN 2.0×Google Speech Commands V2 1298.05—Unverified
8BC-ResNet-8Google Speech Commands V1 1298—Unverified
9HTS-ATGoogle Speech Commands V2 3598—Unverified
10Wav2KWSGoogle Speech Commands V1 1297.9—Unverified
#ModelMetricClaimedVerifiedStatus
1Stacked 1D CNNError Rate1.99—Unverified
2End-to-end DNN-HMMError Rate1.7—Unverified
3HEiMDaLError Rate0.45—Unverified
#ModelMetricClaimedVerifiedStatus
1Res26Accuracy95.88—Unverified
2EfficientNet-A0 + SA + TLAccuracy95.83—Unverified
#ModelMetricClaimedVerifiedStatus
1QuaternionNeuralNetworkAccuracy (10-fold)98.53—Unverified
2SSAMBAAccuracy (10-fold)97.4—Unverified
#ModelMetricClaimedVerifiedStatus
1TensorFlow's model version 2TFMA89.7—Unverified
2TensorFlow's model version 1TFMA85.4—Unverified
#ModelMetricClaimedVerifiedStatus
12D-ConvNetAccuracy (%)95.4—Unverified
21D-ConvNetAccuracy (%)93.7—Unverified
#ModelMetricClaimedVerifiedStatus
1Quaternion Neural NetworksAccuracy(10-fold)98.53—Unverified
#ModelMetricClaimedVerifiedStatus
1MicroNet-KWS-LAccuracy95.3—Unverified