On the Impact of Speech Recognition Errors in Passage Retrieval for Spoken Question Answering

Open Access
Authors
Publication date 2022
Book title CIKM '22
Book subtitle proceedings of the 31st ACM International Conference on Information & Knowledge Management : October 17-21, 2022, Atlanta, GA, USA
ISBN (electronic)
  • 9781450392365
Event 31st ACM International Conference on Information and Knowledge Management, CIKM 2022
Pages (from-to) 4485-4489
Publisher New York, NY: The Association for Computing Machinery
Organisations
  • Faculty of Science (FNWI)
  • Faculty of Economics and Business (FEB) - Amsterdam Business School Research Institute (ABS-RI)
  • Faculty of Science (FNWI) - Informatics Institute (IVI)
Abstract
Interacting with a speech interface to query a Question Answering (QA) system is becoming increasingly popular. Typically, QA systems rely on passage retrieval to select candidate contexts and reading comprehension to extract the final answer. While there has been some attention to improving the reading comprehension part of QA systems against errors that automatic speech recognition (ASR) models introduce, the passage retrieval part remains unexplored. However, such errors can affect the performance of passage retrieval, leading to inferior end-to-end performance. To address this gap, we augment two existing large-scale passage ranking and open domain QA datasets with synthetic ASR noise and study the robustness of lexical and dense retrievers against questions with ASR noise. Furthermore, we study the generalizability of data augmentation techniques across different domains; with each domain being a different language dialect or accent. Finally, we create a new dataset with questions voiced by human users and use their transcriptions to show that the retrieval performance can further degrade when dealing with natural ASR noise instead of synthetic ASR noise.
Document type Conference contribution
Language English
Published at https://doi.org/10.1145/3511808.3557662
Downloads
3511808.3557662 (Final published version)
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