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Effect of Speech Recognition Errors on Text Understandability for People who are Deaf or Hard of Hearing

机译:语音识别误差对聋人或难以听力的人文的效果

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摘要

Recent advancements in the accuracy of Automated Speech Recognition (ASR) technologies have made them a potential candidate for the task of captioning. However, the presence of errors in the output may present challenges in their use in a fully automatic system. In this research, we are looking more closely into the impact of different inaccurate transcriptions from the ASR system on the understandability of captions for Deaf or Hard-of-Hearing (DHH) individuals. Through a user study with 30 DHH users, we studied the effect of the presence of an error in a text on its understandability for DHH users. We also investigated different prediction models to capture this relation accurately. Among other models, our random forest based model provided the best mean accuracy of 62.04% on the task. Further, we plan to improve this model with more data and use it to advance our investigation on ASR technologies to improve ASR based captioning for DHH users.
机译:自动语音识别(ASR)技术准确性的最新进展使它们成为标题任务的潜在候选者。然而,输出中存在错误可能在完全自动系统中使用挑战。在这项研究中,我们仔细研究了对ASR系统不同不准确的转录的影响,就聋哑人或听力态度(DHH)个体的标题的可理解性。通过使用30 DHH用户的用户学习,我们研究了在文本中存在错误的效果,就DHH用户的可理解性。我们还调查了不同的预测模型,准确地捕获这一关系。在其他模型中,我们随机林的模型提供了任务最佳平均准确性62.04%。此外,我们计划通过更多的数据来改进该模型,并使用它来推进我们对ASR技术的调查,以改善基于DHH用户的基于ASR的标题。

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