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Evolution of the Web of Social Machines: A Systematic Review and Research Challenges

机译:社会机器网络的演变:系统审查和研究挑战

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摘要

Social machines (SMs) are the term used to define processes in which the people do the creative work and the machine does the administration. The concept was scarcely studied until 2013, when the series of workshops on SMs was created, and the topic began to receive more attention. However, it is not clear how research has evolved since then. This article aims to investigate and summarize how the research field of SM has evolved since 2013, to outline the state of the art and practice, and identify research opportunities within this field. We performed a systematic literature review analyzing the quantity and quality of publications, the main topics addressed, the current classifications of SMs, the context in which the concepts are used, and the main perceived challenges. We identified and analyzed 56 relevant studies addressing 12 topics, representing the current practical landscape of research regarding SM. Our findings suggest that: 1) research interest in SM is increasing, but is still concentrated into two research clusters; 2) topics are grouped under two main headings: a) human behavior and b) software development; 3) there is still a need for a common taxonomy to define and classify SM; 4) the main contexts are crowdsourcing and social networks, and the majority of studies are small-scale studies in an academic setup; and 5) more empirical rigor and evidence is needed regarding their use, benefits and challenges, despite some evidence regarding challenges related to user engagement, trust, scalability, and a better human–machine collaboration. Finally, a vision of the future of SMs, with the integration of web of people, artificial intelligence, and things, is also presented and discussed.
机译:社会机器(SMS)是用于定义人们创造性工作和机器的过程的过程的术语。这一概念几乎已经研究到2013年,当时正在创建的SMS系列研讨会时,主题开始受到更多关注。但是,目前尚不清楚研究以来的发展。本文旨在调查和总结自2013年以来SM的研究领域如何发展,概述艺术和实践的国家,并确定该领域的研究机会。我们进行了系统的文献综述,分析了出版物的数量和质量,主题解决了,目前的短信分类,使用了概念的上下文,以及主要的感知挑战。我们确定并分析了解决12个主题的56项相关研究,代表了目前关于SM的实际研究景观。我们的研究结果表明:1)SM的研究兴趣正在增加,但仍然集中在两个研究集群中; 2)主题在两个主要标题下分组:a)人类行为和b)软件开发; 3)仍然需要常见的分类法来定义和分类SM; 4)主要背景是众群和社交网络,大多数研究是学术设置中的小型研究; 5)尽管有一些关于与用户参与,信任,可扩展性以及更好的人机合作有关的挑战,但仍需要多实证严谨和证据。最后,还提出并讨论了SMS未来的愿景,并讨论了人工智能和事物的融合。

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