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A Pervasive Computing System for the Operating Room of the Future

机译:面向未来手术室的普适计算系统

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We describe a prototype context aware perioperative information system to capture and interpret data in an operating room of the future. The captured data is used to construct the context of the surgical procedure and detect medically significant events. Such events, and other state information, are used to automatically construct an electronic medical encounter record (EMR). The EMR records and correlates significant medical data and video streams with an inferred higher-level event model of the surgery. Information from sensors such as Radio Frequency Identification (RFID) tags provides basic context information including the presence of medical staff, devices, instruments and medication in the operating room (OR).Patient monitoring systems and sensors such as pulse oximeters and anesthesia machines provide continuous streams of physiological data. These low level data streams are processed to generate higher-level primitive events, such as a nurse entering the OR. A hierarchical knowledge-based event detection system correlates primitive events, patient data and workflow data to infer high-level events, such as the onset of anesthesia. The resulting EMR provides medical staff with a permanent record of the surgery that can be used for subsequent evaluation and training. The system can also be used to detect potentially significant errors. It seeks to automate some of the tasks done by nursing staff today that detracts from their ability to attend to the patient.
机译:我们描述了一个原型上下文感知围手术期信息系统,以捕获和解释未来手术室中的数据。捕获的数据用于构建手术过程的上下文并检测具有医学意义的事件。此类事件和其他状态信息用于自动构建电子医疗遭遇记录(EMR)。 EMR会记录重要的医学数据和视频流,并将它们与所推断的手术高级事件模型相关联。诸如射频识别(RFID)标签之类的传感器信息提供了基本的环境信息,包括手术室(OR)中医务人员,设备,仪器和药物的存在;患者监测系统以及诸如脉搏血氧仪和麻醉机之类的传感器提供了连续性生理数据流。处理这些低级别的数据流以生成更高级别的原始事件,例如护士进入“或”状态。基于知识的分层事件检测系统将原始事件,患者数据和工作流程数据相关联,以推断出高级别事件,例如麻醉的发作。由此产生的EMR为医务人员提供了手术的永久记录,可用于后续评估和培训。该系统还可用于检测潜在的重大错误。它试图使当今护理人员完成的某些任务自动化,这降低了他们照顾病人的能力。

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