It’s Not UAV, It’s Me: Demographic and Self-Other Effects in Public Acceptance of a Socially Assistive Aerial Manipulation System for Fatigue Management

IF 3.8 2区 计算机科学 Q2 ROBOTICS
Jamy Li, Mohsen Ensafjoo
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引用次数: 0

Abstract

Modern developments in speech-enabled drones and aerial manipulation systems (AMS) enable drones to have social interactions with people, which is important for therapeutic applications involving flight and above-eye-level monitoring in people’s homes, but not everyone will accept drones into their daily lives. Consistently assessing who would accept a socially assistive drone into their home is a challenge for roboticists. An animation-based Mechanical Turk survey (N = 176) found that acceptance of a voice-enabled AMS for fatigue – i.e., physical or mental tiredness in the participant’s life – was higher among younger adults with higher education and longer symptoms of fatigue, suggesting demographics and a need for the task performed by the drone are critical factors for drone acceptance. Participants rated the drone as more acceptable for others than for themselves, demonstrating a self-other effect. A second video-based YouGov survey (N = 404) found that younger adults rated an AMS for managing the symptom of day-to-day fatigue as more acceptable than older adults. The self-other effect was reduced among participants who read a situation with specific versus general phrasing of the AMS’s imagined use, suggesting that it may be caused by an attribution bias. These results demonstrate how analyzing demographics and specifying the wording of technology use can more consistently assess to whom drones for fatigue are acceptable, which is of interest to public opinion researchers and roboticists.

Abstract Image

这不是无人机,这是我:在公众接受疲劳管理的社会辅助空中操纵系统中的人口统计学和自我-他者效应
语音无人机和空中操纵系统(AMS)的现代发展使无人机能够与人进行社交互动,这对于在人们家中进行飞行和眼以上监测的治疗应用非常重要,但并不是每个人都会接受无人机进入他们的日常生活。对于机器人专家来说,持续评估谁会接受社交辅助无人机进入他们的家中是一个挑战。一项基于动画的Mechanical Turk调查(N = 176)发现,在受过高等教育、疲劳症状持续时间较长的年轻人中,接受语音支持的AMS治疗疲劳(即参与者生活中的身体或精神疲劳)的比例更高,这表明人口统计数据和对无人机执行任务的需求是接受无人机的关键因素。参与者认为别人比自己更容易接受无人机,这显示出一种自我-他人效应。YouGov的另一项基于视频的调查(N = 404)发现,年轻人比老年人更容易接受AMS来管理日常疲劳症状。在阅读AMS想象使用的具体措辞与一般措辞的情景时,自我-他人效应在参与者中有所降低,这表明它可能是由归因偏见引起的。这些结果表明,如何分析人口统计数据并指定技术使用的措辞,可以更一致地评估哪些人可以接受无人机疲劳,这是民意研究人员和机器人专家感兴趣的。
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来源期刊
CiteScore
9.80
自引率
8.50%
发文量
95
期刊介绍: Social Robotics is the study of robots that are able to interact and communicate among themselves, with humans, and with the environment, within the social and cultural structure attached to its role. The journal covers a broad spectrum of topics related to the latest technologies, new research results and developments in the area of social robotics on all levels, from developments in core enabling technologies to system integration, aesthetic design, applications and social implications. It provides a platform for like-minded researchers to present their findings and latest developments in social robotics, covering relevant advances in engineering, computing, arts and social sciences. The journal publishes original, peer reviewed articles and contributions on innovative ideas and concepts, new discoveries and improvements, as well as novel applications, by leading researchers and developers regarding the latest fundamental advances in the core technologies that form the backbone of social robotics, distinguished developmental projects in the area, as well as seminal works in aesthetic design, ethics and philosophy, studies on social impact and influence, pertaining to social robotics.
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