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首页> 外文期刊>Journal of medical systems >Intelligent Emergency Department: Validation of Sociometers to Study Workload
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Intelligent Emergency Department: Validation of Sociometers to Study Workload

机译:智能急诊科:验证社会压力计以研究工作量

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Sociometers are wearable sensors that continuously measure body movements, interactions, and speech. The purpose of this study is to test sociometers in a smart environment in a live clinical setting, to assess their reliability in capturing and quantifying data. The long-term goal of this work is to create an intelligent emergency department that captures real-time human interactions using sociometers to sense current system dynamics, predict future state, and continuously learn to enable the highest levels of emergency care delivery. Ten actors wore the devices during five simulated scenarios in the emergency care wards at a large non-profit medical institution. For each scenario, actors recited prewritten or structured dialogue while independent variables, e.g., distance, angle, obstructions, speech behavior, were independently controlled. Data streams from the sociometers were compared to gold standard video and audio data captured by two ward and hallway cameras. Sociometers distinguished body movement differences in mean angular velocity between individuals sitting, standing, walking intermittently, and walking continuously. Face-to-face (F2F) interactions were not detected when individuals were offset by 30 degrees, 60 degrees, and 180 degrees angles. Under ideal F2F conditions, interactions were detected 50 % of the time (4/8 actor pairs). Proximity between individuals was detected for 13/15 actor pairs. Devices underestimated the mean duration of speech by 30-44 s, but were effective at distinguishing the dominant speaker. The results inform engineers to refine sociometers and provide health system researchers a tool for quantifying the dynamics and behaviors in complex and unpredictable healthcare environments such as emergency care.
机译:社交计是可穿戴式传感器,可连续测量人体运动,互动和言语。这项研究的目的是在现场临床环境中的智能环境中测试社交测量仪,以评估其在捕获和量化数据中的可靠性。这项工作的长期目标是创建一个智能的急诊部门,该部门使用社会计量仪捕获实时的人际互动,以感应当前的系统动态,预测未来状态并不断学习以实现最高水平的急诊服务。在一家大型非营利性医疗机构的急诊病房中,在五个模拟场景中,有十个演员戴着设备。对于每种情况,演员陈述了预先编写或结构化的对话,而独立变量(例如距离,角度,障碍物,言语行为)被独立控制。将来自社会计量器的数据流与通过两个病房和走廊摄像机捕获的黄金标准视频和音频数据进行比较。社交测量仪区分坐,站,间歇行走和连续行走的个体之间在平均角速度上的身体运动差异。当个体偏离30度,60度和180度角时,未检测到面对面(F2F)交互。在理想的F2F条件下,有50%的时间(4/8个演员对)检测到了互动。在13/15个演员对中检测到个体之间的接近度。装置低估了平均语音持续时间30-44 s,但可以有效区分主要讲话者。结果通知工程师,以完善社会计量仪,并为卫生系统研究人员提供一种工具,用于量化复杂且不可预测的医疗环境(如急诊护理)中的动态和行为。

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