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Spoken Command Recognition

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Benchmarks

Speech Command v2

결과 4개

Most implemented

Papers

Variational Bayesian Adaptive Learning of Deep Latent Variables for Acoustic Knowledge Transfer

2025-01-26 · Hu Hu, Sabato Marco Siniscalchi, Chao-Han Huck Yang, Chin-Hui Lee

In this work, we propose a novel variational Bayesian adaptive learning approach for cross-domain knowledge transfer to address acoustic mismatches between training and testing conditions, such as recording devices and e…

Acoustic Scene ClassificationScene ClassificationSpoken Command RecognitionTransfer Learning+1

A Quantum Kernel Learning Approach to Acoustic Modeling for Spoken Command Recognition

2022-11-02 · Chao-Han Huck Yang, Bo Li, Yu Zhang, Nanxin Chen 외

We propose a quantum kernel learning (QKL) framework to address the inherent data sparsity issues often encountered in training large-scare acoustic models in low-resource scenarios. We project acoustic features based on…

Spoken Command Recognition

An Ensemble Teacher-Student Learning Approach with Poisson Sub-sampling to Differential Privacy Preserving Speech Recognition

2022-10-12 · Chao-Han Huck Yang, Jun Qi, Sabato Marco Siniscalchi, Chin-Hui Lee

We propose an ensemble learning framework with Poisson sub-sampling to effectively train a collection of teacher models to issue some differential privacy (DP) guarantee for training data. Through boosting under DP, a st…

Ensemble LearningPrivacy Preservingspeech-recognitionSpeech Recognition+1

ATST: Audio Representation Learning with Teacher-Student Transformer

2022-04-26 · Xian Li, Xiaofei Li

Self-supervised learning (SSL) learns knowledge from a large amount of unlabeled data, and then transfers the knowledge to a specific problem with a limited number of labeled data. SSL has achieved promising results in v…

Audio ClassificationInstrument RecognitionRepresentation LearningSelf-Supervised Audio Classification+3

Exploiting Low-Rank Tensor-Train Deep Neural Networks Based on Riemannian Gradient Descent With Illustrations of Speech Processing

2022-03-11 · Jun Qi, Chao-Han Huck Yang, Pin-Yu Chen, Javier Tejedor

This work focuses on designing low complexity hybrid tensor networks by considering trade-offs between the model complexity and practical performance. Firstly, we exploit a low-rank tensor-train deep neural network (TT-D…

Speech EnhancementSpoken Command RecognitionTensor Networks

Exploiting Hybrid Models of Tensor-Train Networks for Spoken Command Recognition

2022-01-11 · Jun Qi, Javier Tejedor

This work aims to design a low complexity spoken command recognition (SCR) system by considering different trade-offs between the number of model parameters and classification accuracy. More specifically, we exploit a de…

Spoken Command Recognition

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