2018
DOI: 10.1145/3214261
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A Survey of Attention Management Systems in Ubiquitous Computing Environments

Abstract: Today's information and communication devices provide always-on connectivity, instant access to an endless repository of information, and represent the most direct point of contact to almost any person in the world. Despite these advantages, devices such as smartphones or personal computers lead to the phenomenon of attention fragmentation, continuously interrupting individuals' activities and tasks with notifications. Attention management systems aim to provide active support in such scenarios, managing inter… Show more

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Cited by 65 publications
(26 citation statements)
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“…The underlying causes for such disruptive effects stem from the limitations of human cognitive processing capacities, in particular, procedural memory resources. Interaction initiated by a computing device at moments when a user is engaged in another (primary) task requires, in the best case, the conclusion of the primary task, while in the worst case it requires that the primary task's problem state is stored in the declarative memory, before the new interaction is handled (Anderson et al, 2018;Borst et al, 2010). The latter case is especially evident when the primary task is complex.…”
Section: Background and Related Workmentioning
confidence: 99%
“…The underlying causes for such disruptive effects stem from the limitations of human cognitive processing capacities, in particular, procedural memory resources. Interaction initiated by a computing device at moments when a user is engaged in another (primary) task requires, in the best case, the conclusion of the primary task, while in the worst case it requires that the primary task's problem state is stored in the declarative memory, before the new interaction is handled (Anderson et al, 2018;Borst et al, 2010). The latter case is especially evident when the primary task is complex.…”
Section: Background and Related Workmentioning
confidence: 99%
“…Others focused on mining behavioral rules from smartphones in order to manage incoming calls [25]. Sensor data and machine learning have been exploited to construct attention management systems [2] so as to predict when a notification should be sent and to which device [17] in order to improve the user experience. Recently, Ren et al investigated how to predict users' demographics by considering their CPS behaviors [23].…”
Section: Related Workmentioning
confidence: 99%
“…Maintaining one’s attention for a period of time, and selectively concentrating on a stimulus or task while ignoring others require effort, and vary based on the individual’s ability to withstand cognitive load [ 2 ]. With the rising scale of distractions presented as part of modern living, several research works dived into building interfaces or systems to facilitate attention processes, e.g., attentional user interface [ 3 ], attention-aware systems [ 4 ] and attention management systems [ 5 ]. The fundamental step in building these systems is measuring users’ attention states.…”
Section: Introductionmentioning
confidence: 99%