kumar26d@interspeech_2026@ISCA

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#1 Search-GRT: Guided Retrieval Training of Search Agents to Optimize for Complex Question Answering [PDF] [Copy] [Kimi] [REL]

Authors: Aounon Kumar, Sudipta Paul, Vivek Kulkarni, Vijay Srinivasan, Srinivas Chappidi

Streaming multi-speaker ASR is a challenging task that must balance accuracy, latency, and efficiency while handling overlapping speech and maintaining coherent longcontext modeling over extended conversations in an online fashion. We present a unified framework that categorizes streaming multi-speaker ASR into four architectural strategies based on how diarization and ASR are integrated. Using a shared pair of open-source streaming ASR and diarization models as a common foundation, we derive four multi-speaker ASR systems that differ in whether they employ multiple model instances, fine-tuning, or both. We evaluate these systems across multi-speaker accuracy, single-speaker accuracy degradation, memory footprint, and training complexity. Through this systematic architectural analysis, we clarify the design space for streaming multi-speaker ASR and provide practical guidance for selecting the most suitable approach under diverse deployment constraints.

Subject: INTERSPEECH.2026 - Language and Multimodal