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Pin-Jui Ku

4 accepted papers

2025

An Explicit Consistency-Preserving Loss Function for Phase Reconstruction and Speech Enhancement

ICASSP 2025accepted

In this work, we propose a novel consistency-preserving loss function for recovering the phase information in the context of phase reconstruction (PR) and speech enhancement (SE). Different from conventional techniques that directly estimate the phase using a deep model, our idea is to exploit ad-ho…

Cited by 0SourceScholar
2025

Generative Speech Foundation Model Pretraining for High-Quality Speech Extraction and Restoration

ICASSP 2025accepted

This paper proposes a generative pretraining foundation model for high-quality speech restoration tasks. By directly operating on complex-valued short-time Fourier transform coefficients, our model does not rely on any vocoders for time-domain signal reconstruction. As a result, our model simplifies…

Cited by 0SourceScholar
2024

Hot-Fixing Wake Word Recognition for End-to-End ASR Via Neural Model Reprogramming

ICASSP 2024accepted

This paper proposes two novel variants of neural reprogramming to enhance wake word recognition in streaming end-to-end ASR models without updating model weights. The first, "trigger-frame reprogramming", prepends the input speech feature sequence with the learned trigger-frames of the target wake w…

Cited by 0SourceScholar