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Mobile Texting: Can Post-ASR Correction Solve the Issues? An Experimental Study on Gain vs. Costs

机译:移动发短信:可以发布后校正解决问题吗?增益与成本的实验研究

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The next big step in embedded, mobile speech recognition will be to allow completely free input as it is needed for messaging like SMS or email. However, unconstrained dictation remains error-prone, especially when the environment is noisy. In this paper, we compare different methods for improving a given free-text dictation system used to enter text-based messages in embedded mobile scenarios, where distraction, interaction cost, and hardware limitations enforce strict constraints over traditional scenarios. We present a corpus-based evaluation, measuring the trade-off between improvement of the word error rate versus the interaction steps that are required under various parameters. Results show that by post-processing the output of a "black box" speech recognizer (e.g. a web-based speech recognition service), a reduction of word error rate by 55% (10.3% abs.) can be obtained. For further error reduction, however. a richer representation of the original hypotheses (e.g. lattice) is necessary.
机译:嵌入式移动语音识别的下一个大步骤将是允许完全自由输入,因为消息传递如短信或电子邮件所需。然而,无关紧要的听写仍然易于出错,特别是当环境嘈杂时。在本文中,我们比较了改进了用于改进给定的自由文本检测系统的不同方法,用于在嵌入式移动方案中输入基于文本的消息,其中分散注意力,交互成本和硬件限制来强制对传统方案的严格约束。我们介绍了基于语料库的评估,测量改善字错误率之间的权衡与各种参数下所需的交互步骤之间。结果表明,通过后处理“黑匣子”语音识别器(例如基于Web的语音识别服务),可以获得55%(10.3%ABS)的字错误率的减少。然而,为了进一步的误差减少。需要更丰富的原始假设(例如格子)表示。

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