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Designing a robust speech and gaze multimodal system for diverse users

机译:为不同的用户设计一个健壮的语音和注视多模式系统

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The recognition errors make recognition-based systems brittle, and lead to usability problems. Multimodal system is generally believed as an effective means of being able to contribute to error avoidance and recovery. This work explores how to combine gaze and speech, which are two error-prone modes, in order to get a robust multimodal architecture. Combining the two overcomes imperfections of recognition techniques, compensates for drawbacks of a single mode, resolves the language ambiguity, and leads to a much more effective system. In addition, we try to employ a new performance criterion about the error-handling ability to analyze and assess the multimodal integration strategies. With this new measure approach, not only the benefits of mutual disambiguation of individual input signals within the multimodal architecture are demonstrated, but also the condition under which the multimodal system becomes the most effective is identified.
机译:识别错误使基于识别的系统变得脆弱,并导致可用性问题。通常认为多模式系统是能够有助于避免和恢复错误的有效手段。这项工作探索了如何将凝视和语音结合在一起,这是两个容易出错的模式,以便获得鲁棒的多峰架构。两者的结合克服了识别技术的缺陷,弥补了单一模式的缺陷,解决了语言的歧义,并导致了更为有效的系统。此外,我们尝试采用有关错误处理能力的新性能标准来分析和评估多模式集成策略。通过这种新的测量方法,不仅展示了多模式体系结构中各个输入信号相互消除歧义的好处,而且还确定了多模式系统变得最有效的条件。

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