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Steering the conversation: a linguistic exploration of natural language interactions with a digital assistant during simulated driving

机译:引导对话:在模拟驾驶过程中与数字助手进行自然语言交互的语言学探索

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摘要

Given the proliferation of ‘intelligent’ and ‘socially-aware’ digital assistants embodying everyday mobile technology – and the undeniable logic that utilising voice-activated controls and interfaces in cars reduces the visual and manual distraction of interacting with in-vehicle devices – it appears inevitable that next generation vehicles will be embodied by digital assistants and utilise spoken language as a method of interaction. From a design perspective, defining the language and interaction style that a digital driving assistant should adopt is contingent on the role that they play within the social fabric and context in which they are situated. We therefore conducted a qualitative, Wizard-of-Oz study to explore how drivers might interact linguistically with a natural language digital driving assistant. Twenty-five participants drove for 10 min in a medium-fidelity driving simulator while interacting with a state-of-the-art, high-functioning, conversational digital driving assistant. All exchanges were transcribed and analysed using recognised linguistic techniques, such as discourse and conversation analysis, normally reserved for interpersonal investigation. Language usage patterns demonstrate that interactions with the digital assistant were fundamentally social in nature, with participants affording the assistant equal social status and high-level cognitive processing capability. For example, participants were polite, actively controlled turn-taking during the conversation, and used back-channelling, fillers and hesitation, as they might in human communication. Furthermore, participants expected the digital assistant to understand and process complex requests mitigated with hedging words and expressions, and peppered with vague language and deictic references requiring shared contextual information and mutual understanding. Findings are presented in six themes which emerged during the analysis – formulating responses; turn-taking; back-channelling, fillers and hesitation; vague language; mitigating requests and politeness and praise. The results can be used to inform the design of future in-vehicle natural language systems, in particular to help manage the tension between designing for an engaging dialogue (important for technology acceptance) and designing for an effective dialogue (important to minimise distraction in a driving context).
机译:伴随着体现日常移动技术的“智能”和“社交意识”数字助理的泛滥,以及不可否认的逻辑,即利用汽车中的语音激活控件和界面减少了与车载设备交互的视觉和手动干扰,这似乎已经出现不可避免的是,下一代车辆将由数字助理实现,并将口语作为一种交互方法。从设计的角度来看,定义数字驾驶助手应采用的语言和交互样式取决于他们在所处的社交结构和环境中所扮演的角色。因此,我们进行了定性的“绿野仙踪”研究,以探索驾驶员如何与自然语言数字驾驶助手进行语言交互。 25位参与者在中等逼真的驾驶模拟器中开车10分钟,同时与最先进的,功能强大的对话式数字驾驶助手互动。所有交流都使用公认的语言技术进行转录和分析,例如话语和对话分析,通常保留给人际调查。语言使用模式表明,与数字助理的交互本质上本质上是社交性的,参与者为助理提供了同等的社会地位和高水平的认知处理能力。例如,参与者礼貌,在对话中主动控制转弯,并像在人际交流中一样使用反向引导,填充和犹豫。此外,与会人员期望数字助理能够理解和处理通过套期保值的单词和表达减轻的复杂请求,并且充斥着模糊的语言和需要共享上下文信息和相互理解的忠实引用。在分析过程中出现的六个主题中提出了调查结果–制定回应;转弯反向传播,填充和犹豫;语言模糊;减轻要求,礼貌和赞美。结果可用于通知未来车载自然语言系统的设计,特别是有助于管理设计引人入胜的对话(对于技术接受很重要)与设计有效对话(对最大程度地减少干扰)的紧张关系。驾驶环境)。

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