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Discovering Expected Activities in Medical Context Scientific Databases

机译:发现医学环境科学数据库中的预期活动

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Reasoning with temporal data has attracted the attention of many researchers from different backgrounds including artificial intelligence, database management, computational linguistics and biomedical informatics. More specifically, activity detection is a very important problem in a wide variety of application domains such as video surveillance, cyber security, fault detection, but also clinical research. Thus, in this paper we present a prototype architecture designed and developed for activity detection in the medical context. In more detail, we first acquire data in real time from a cricothyrotomy simulator, when used by medical doctors, then we store the acquired data into a scientific database and finally we use an Activity Detection Engine for finding expected activities, corresponding to specific performances obtained by the medical doctors when using the simulator. Some preliminary experiments using real data show the approach efficiency and effectiveness. Eventually, we also received positive feedbacks by the medical personnel who used our prototype.
机译:随着时间数据的推理引起了来自不同背景的许多研究人员的关注,包括人工智能,数据库管理,计算语言学和生物医学信息学。更具体地说,活动检测是各种应用领域中的一个非常重要的问题,如视频监控,网络安全,故障检测,也是临床研究。因此,在本文中,我们介绍了一种设计和开发的原型架构,用于在医学环境中进行活动检测。更详细地,我们首先从Cricothytomy模拟器实时获取数据,当医生使用时,我们将所获取的数据存储到科学数据库中,最后我们使用活动检测引擎来查找预期活动,对应于获得的特定性能使用模拟器时由医生。使用真实数据的一些初步实验表明了方法效率和有效性。最终,我们还获得了使用我们原型的医务人员获得了积极的反馈。

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