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Streaming Sequence Transduction through Dynamic Compression

Authors :
Tan, Weiting
Chen, Yunmo
Chen, Tongfei
Qin, Guanghui
Xu, Haoran
Zhang, Heidi C.
Van Durme, Benjamin
Koehn, Philipp
Publication Year :
2024

Abstract

We introduce STAR (Stream Transduction with Anchor Representations), a novel Transformer-based model designed for efficient sequence-to-sequence transduction over streams. STAR dynamically segments input streams to create compressed anchor representations, achieving nearly lossless compression (12x) in Automatic Speech Recognition (ASR) and outperforming existing methods. Moreover, STAR demonstrates superior segmentation and latency-quality trade-offs in simultaneous speech-to-text tasks, optimizing latency, memory footprint, and quality.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2402.01172
Document Type :
Working Paper