DualVoice: Speech Interaction that Discriminates between Normal and Whispered Voice Input

J. Rekimoto
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引用次数: 2

Abstract

Interactions based on automatic speech recognition (ASR) have become widely used, with speech input being increasingly utilized to create documents. However, as there is no easy way to distinguish between commands being issued and text required to be input in speech, misrecognitions are difficult to identify and correct, meaning that documents need to be manually edited and corrected. The input of symbols and commands is also challenging because these may be misrecognized as text letters. To address these problems, this study proposes a speech interaction method called DualVoice, by which commands can be input in a whispered voice and letters in a normal voice. The proposed method does not require any specialized hardware other than a regular microphone, enabling a complete hands-free interaction. The method can be used in a wide range of situations where speech recognition is already available, ranging from text input to mobile/wearable computing. Two neural networks were designed in this study, one for discriminating normal speech from whispered speech, and the second for recognizing whisper speech. A prototype of a text input system was then developed to show how normal and whispered voice can be used in speech text input. Other potential applications using DualVoice are also discussed.
DualVoice:区分正常和低语语音输入的语音交互
基于自动语音识别(ASR)的交互已经得到了广泛的应用,语音输入越来越多地用于创建文档。然而,由于没有简单的方法来区分发出的命令和需要以语音形式输入的文本,因此很难识别和纠正错误,这意味着需要手动编辑和纠正文档。符号和命令的输入也具有挑战性,因为它们可能被误认为是文本字母。为了解决这些问题,本研究提出了一种名为DualVoice的语音交互方法,通过该方法可以以耳语的方式输入命令,并以正常的声音输入字母。所提出的方法不需要任何专门的硬件,除了一个普通的麦克风,使一个完全免提的交互。该方法可用于语音识别已经可用的各种情况,从文本输入到移动/可穿戴计算。本研究设计了两个神经网络,一个用于区分正常语音和耳语语音,另一个用于识别耳语语音。然后开发了一个文本输入系统的原型,以展示如何将正常和耳语的声音用于语音文本输入。本文还讨论了使用DualVoice的其他潜在应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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