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Automatic speech recognition using advanced deep learning approaches: A survey
Recent advancements in deep learning (DL) have posed a significant challenge for
automatic speech recognition (ASR). ASR relies on extensive training datasets, including …
automatic speech recognition (ASR). ASR relies on extensive training datasets, including …
[PDF][PDF] A review of speech-centric trustworthy machine learning: Privacy, safety, and fairness
Speech-centric machine learning systems have revolutionized a number of leading
industries ranging from transportation and healthcare to education and defense …
industries ranging from transportation and healthcare to education and defense …
Backdoor attacks and defenses in federated learning: Survey, challenges and future research directions
Federated learning (FL) is an approach within the realm of machine learning (ML) that
allows the use of distributed data without compromising personal privacy. In FL, it becomes …
allows the use of distributed data without compromising personal privacy. In FL, it becomes …
Novel speech recognition systems applied to forensics within child exploitation: Wav2vec2. 0 vs. whisper
The growth in online child exploitation material is a significant challenge for European Law
Enforcement Agencies (LEAs). One of the most important sources of such online information …
Enforcement Agencies (LEAs). One of the most important sources of such online information …
Fedaudio: A federated learning benchmark for audio tasks
Federated learning (FL) has gained substantial attention in recent years due to data privacy
concerns related to the pervasiveness of consumer devices that continuously collect data …
concerns related to the pervasiveness of consumer devices that continuously collect data …
Continual learning framework for a multicenter study with an application to electrocardiogram
Deep learning has been increasingly utilized in the medical field and achieved many goals.
Since the size of data dominates the performance of deep learning, several medical …
Since the size of data dominates the performance of deep learning, several medical …
Decentralized bilevel optimization for personalized client learning
Decentralized optimization with multiple networked clients/learners has advanced machine
learning significantly over the past few years. When data distributions at different …
learning significantly over the past few years. When data distributions at different …
End-to-end speech recognition from federated acoustic models
Training Automatic Speech Recognition (ASR) models under federated learning (FL)
settings has attracted a lot of attention recently. However, the FL scenarios often presented …
settings has attracted a lot of attention recently. However, the FL scenarios often presented …
Privacy attacks for automatic speech recognition acoustic models in a federated learning framework
This paper investigates methods to effectively retrieve speaker information from the
personalized speaker adapted neural network acoustic models (AMs) in automatic speech …
personalized speaker adapted neural network acoustic models (AMs) in automatic speech …
Toward a Personalized Clustered Federated Learning: A Speech Recognition Case Study
Most speech recognition systems utilize cloud computing for model training and updates.
Speech data, being personally identifiable information (PII), encompasses personal, privacy …
Speech data, being personally identifiable information (PII), encompasses personal, privacy …