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He Qu

3 papers

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papers

Publications (3)

cs.SD2024

Boosting Code-Switching ASR with Mixture of Experts Enhanced Speech-Conditioned LLM

Fengrun Zhang, Wang Geng, Hukai Huang +3

In this paper, we introduce a speech-conditioned Large Language Model (LLM) integrated with a Mixture of Experts (MoE) based connector to address the challenge of Code-Switching (C…

cs.CL2024

Dynamic Language Group-Based MoE: Enhancing Code-Switching Speech Recognition with Hierarchical Routing

Hukai Huang, Shenghui Lu, Yahui Shan +5

The Mixture of Experts (MoE) model is a promising approach for handling code-switching speech recognition (CS-ASR) tasks. However, the existing CS-ASR work on MoE has yet to levera…

cs.SD2023

Minimally-Supervised Speech Synthesis with Conditional Diffusion Model and Language Model: A Comparative Study of Semantic Coding

Chunyu Qiang, Hao Li, Hao Ni +5

Recently, there has been a growing interest in text-to-speech (TTS) methods that can be trained with minimal supervision by combining two types of discrete speech representations a…

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