Papers

Quadruple Path Modeling with Latent Feature Transfer for Permutation-free Continuous Speech Separation

International Conference
2021~
작성자
김지현
작성일
2025-08-13 20:10
조회
2371
Authors : Jihyun Kim, Doyeon Kim, Hyewon Han, Jinyoung Lee, Jonguk Yoo, Chang Woo Han, Jeongook Song, Hoon-Young Cho, Hong-Goo Kang

Year : 2025

Publisher / Conference : INTERSPEECH

Research area : Speech Signal Processing, Source Separation

Presentation/Publication date : 2024.08.19

Presentation : Poster

This paper proposes Quadruple Path Modeling (QPM), a permutation-free and generalized continuous speech separation (CSS) model designed to handle varying speaker conditions and efficiently address the permutation problem in chunk-based streaming scenarios. QPM integrates intra-chunk feature modeling, inter-speaker and inter-chunk processing, and latent feature transfer (LFT) modules to enhance separation performance while ensuring speaker consistency across segments. By leveraging a memory-based inter-chunk mechanism and a learnable gating strategy, QPM effectively propagates relevant speaker information across segments, thus reducing speaker permutation errors in streaming CSS tasks. Designed for lightweight and low-latency applications, including live streaming, QPM demonstrates strong performance using a 2-second chunk size. Experimental results confirm the efficacy of the proposed system in resolving the permutation problem, offering a scalable and adaptable solution for CSS.
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