A dichotomic approach to adaptive interaction for socially assistive robots.

IF 3 3区 计算机科学 Q2 COMPUTER SCIENCE, CYBERNETICS
Riccardo De Benedictis, Alessandro Umbrico, Francesca Fracasso, Gabriella Cortellessa, Andrea Orlandini, Amedeo Cesta
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引用次数: 3

Abstract

Socially assistive robotics (SAR) aims at designing robots capable of guaranteeing social interaction to human users in a variety of assistance scenarios that range, e.g., from giving reminders for medications to monitoring of Activity of Daily Living, from giving advices to promote an healthy lifestyle to psychological monitoring. Among possible users, frail older adults deserve a special focus as they present a rich variability in terms of both alternative possible assistive scenarios (e.g., hospital or domestic environments) and caring needs that could change over time according to their health conditions. In this perspective, robot behaviors should be customized according to properly designed user models. One of the long-term research goals for SAR is the realization of robots capable of, on the one hand, personalizing assistance according to different health-related conditions/states of users and, on the other, adapting behaviors according to heterogeneous contexts as well as changing/evolving needs of users. This work proposes a solution based on a user model grounded on the international classification of functioning, disability and health (ICF) and a novel control architecture inspired by the dual-process theory. The proposed approach is general and can be deployed in many different scenarios. In this paper, we focus on a social robot in charge of the synthesis of personalized training sessions for the cognitive stimulation of older adults, customizing the adaptive verbal behavior according to the characteristics of the users and to their dynamic reactions when interacting. Evaluations with a restricted number of users show good usability of the system, a general positive attitude of users and the ability of the system to capture users personality so as to adapt the content accordingly during the verbal interaction.

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社会辅助机器人自适应交互的二分类方法。
社会辅助机器人(SAR)旨在设计能够保证在各种辅助场景下与人类用户进行社会互动的机器人,例如,从提醒药物到监测日常生活活动,从提供建议以促进健康的生活方式到心理监测。在可能的使用者中,体弱多病的老年人值得特别关注,因为他们在其他可能的辅助情景(例如,医院或家庭环境)和根据其健康状况可能随时间改变的护理需求方面具有很大的可变性。从这个角度来看,机器人的行为应该根据适当设计的用户模型进行定制。SAR的长期研究目标之一是实现机器人一方面能够根据用户的不同健康状况/状态提供个性化帮助,另一方面能够根据异质环境以及用户不断变化/演变的需求调整行为。这项工作提出了一种基于国际功能、残疾和健康分类(ICF)的用户模型和受双进程理论启发的新型控制架构的解决方案。所建议的方法是通用的,可以部署在许多不同的场景中。在本文中,我们重点研究了一种社交机器人,它负责为老年人的认知刺激合成个性化训练课程,根据用户的特点和他们在互动时的动态反应定制适应性语言行为。有限数量的用户评价表明系统的可用性良好,用户的态度普遍积极,系统能够捕捉用户的个性,从而在言语交互过程中对内容进行相应的调整。
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来源期刊
User Modeling and User-Adapted Interaction
User Modeling and User-Adapted Interaction 工程技术-计算机:控制论
CiteScore
8.90
自引率
8.30%
发文量
35
审稿时长
>12 weeks
期刊介绍: User Modeling and User-Adapted Interaction provides an interdisciplinary forum for the dissemination of novel and significant original research results about interactive computer systems that can adapt themselves to their users, and on the design, use, and evaluation of user models for adaptation. The journal publishes high-quality original papers from, e.g., the following areas: acquisition and formal representation of user models; conceptual models and user stereotypes for personalization; student modeling and adaptive learning; models of groups of users; user model driven personalised information discovery and retrieval; recommender systems; adaptive user interfaces and agents; adaptation for accessibility and inclusion; generic user modeling systems and tools; interoperability of user models; personalization in areas such as; affective computing; ubiquitous and mobile computing; language based interactions; multi-modal interactions; virtual and augmented reality; social media and the Web; human-robot interaction; behaviour change interventions; personalized applications in specific domains; privacy, accountability, and security of information for personalization; responsible adaptation: fairness, accountability, explainability, transparency and control; methods for the design and evaluation of user models and adaptive systems
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