USE OF MUSCLE OXYGEN SATURATION AND PH IN CLINICAL DECISION SUPPORT
    2.
    发明申请
    USE OF MUSCLE OXYGEN SATURATION AND PH IN CLINICAL DECISION SUPPORT 审中-公开
    使用肌肉氧饱和度和PH在临床决策支持

    公开(公告)号:US20140296675A1

    公开(公告)日:2014-10-02

    申请号:US14227785

    申请日:2014-03-27

    Abstract: Embodiments of the present invention include a system having at least one sensor configured to monitor a muscle oxygen saturation (SmO2) level of a patient who is undergoing cardiac arrest and to generate a signal representing SmO2 level; a user interface device; a processor communicably coupled to the user interface device, the processor configured to cause the user interface device to present an array of two or more possible nodes of a clinical decision support tree, wherein at least one of the nodes indicates cardiopulmonary resuscitation (CPR) treatment of the patient with no ventilation, and wherein at least another of the nodes indicates CPR treatment of the patient with active ventilation; determine which of the two or more possible nodes should be emphasized based on the SmO2 level; and update the array of the two or more possible nodes based on the determination.

    Abstract translation: 本发明的实施例包括具有至少一个传感器的系统,该传感器被配置为监测正在经历心跳骤停的患者的肌肉氧饱和度(SmO 2)水平并产生表示SmO2水平的信号; 用户界面设备; 处理器,其可通信地耦合到所述用户界面设备,所述处理器被配置为使所述用户界面设备呈现临床决策支持树的两个或多个可能节点的阵列,其中所述节点中的至少一个指示心肺复苏(CPR)治疗 的患者,其中至少另一个节点指示患有主动通气的患者的CPR治疗; 根据SmO2水平确定两个或多个可能的节点中哪一个应该被强调; 并且基于确定来更新两个或多个可能节点的阵列。

    MONITORING PHYSIOLOGICAL STATUS BASED ON BIO-VIBRATIONAL AND RADIO FREQUENCY DATA ANALYSIS

    公开(公告)号:US20190282178A1

    公开(公告)日:2019-09-19

    申请号:US16355171

    申请日:2019-03-15

    Abstract: A patient monitoring device includes an ECG sensor coupled to a patient, a sensor coupled to the patient and configured to bio-vibrational signals, and a radio frequency monitoring device configured to produce information responsive to electromagnetic energy reflected from the patient's thoracic cavity. A processor processes the ECG signals, the bio-vibrational signals, and the radio frequency information to generate a plurality of physiological parameters of the patient. The processor also performs at least one of a predictive analysis and a trend analysis of the plurality of physiological to determine a current clinical condition of the patient. The trend analysis includes determining a substantial relationship between changes in the plurality of physiological parameters. The processor can also compare the current clinical condition of the patient to predetermined clinically actionable criteria to determine one or more clinically actionable events and provide an output relating to one or more clinically actionable events.

    MEASURING MYOCARDIAL PHYSIOLOGIC PARAMETERS
    4.
    发明申请
    MEASURING MYOCARDIAL PHYSIOLOGIC PARAMETERS 审中-公开
    测量心肌生理参数

    公开(公告)号:US20160120469A1

    公开(公告)日:2016-05-05

    申请号:US14926473

    申请日:2015-10-29

    Abstract: A method for measuring a myocardial physiologic parameter according to an embodiment includes placing an at least partially convex portion of a spectral sensor against an intercostal space of a human over a heart of the human and measuring the physiologic parameter of a myocardium of the heart with the spectral sensor over time during an emergency medical event. The spectral sensor may be configured to determine and visually display a suggested position adjustment for directing the spectral radiation more directly toward the tissue of interest (e.g. the myocardium), and/or for placing the operative elements of the spectral sensor closer to the tissue of interest (e.g. the myocardium).

    Abstract translation: 根据实施例的用于测量心肌生理参数的方法包括将光谱传感器的至少部分凸起的部分放置在人的心脏上的肋间空间上,并且测量心脏的心肌的生理参数, 频谱传感器随着时间的推移在紧急医疗事件。 光谱传感器可以被配置为确定并可视地显示建议的位置调整,用于更直接地将光谱辐射引导到感兴趣的组织(例如,心肌),和/或用于将光谱传感器的操作元件更靠近组织 兴趣(如心肌)。

    SYSTEMS AND METHODS FOR EMS DEVICE COMMUNICATION INTERFACE
    5.
    发明申请
    SYSTEMS AND METHODS FOR EMS DEVICE COMMUNICATION INTERFACE 审中-公开
    EMS设备通信接口的系统和方法

    公开(公告)号:US20130096649A1

    公开(公告)日:2013-04-18

    申请号:US13647744

    申请日:2012-10-09

    Abstract: A system for supplementing communications capabilities of a patient monitoring device, the system including an interface device configured to communicably couple with and to receive the patient monitoring information from the patient monitoring device, a memory device hosted by the interface device and configured to store at least a portion of the patient monitoring information, a wireless transceiver hosted by the interface device, a database hosted by the interface device; and a processor communicably coupled to the wireless transceiver and the asset management database, the processor configured to format the patient monitoring information into one or more data objects, each of the one or more data objects associated with an EMS incident during which the patient monitoring information was gathered, the processor further configured to store the one or more data objects to the database and to transmit the one or more data objects with the wireless transceiver.

    Abstract translation: 一种用于补充患者监视装置的通信能力的系统,所述系统包括被配置为与患者监视装置可通信地耦合并接收患者监视信息的接口装置,由所述接口装置托管并被配置为至少存储 所述患者监视信息的一部分,由所述接口设备托管的无线收发器,由所述接口设备托管的数据库; 以及处理器,其可通信地耦合到所述无线收发器和所述资产管理数据库,所述处理器被配置为将所述患者监视信息格式化为一个或多个数据对象,所述一个或多个数据对象中的每一个与EMS事件相关联,在所述事件期间,所述患者监视信息 被收集,处理器还被配置为将一个或多个数据对象存储到数据库并且用无线收发器发送一个或多个数据对象。

    TELEMETRY OF WEARABLE MEDICAL DEVICE INFORMATION TO SECONDARY MEDICAL DEVICE OR SYSTEM

    公开(公告)号:US20190282115A1

    公开(公告)日:2019-09-19

    申请号:US15920142

    申请日:2018-03-13

    Abstract: A physiological signal monitoring system includes a single set of sensing electrodes to provide conditioned physiological signals to a primary monitoring device and a secondary monitoring device. The monitoring system includes pre-processing circuitry configured to receive a raw physiological signal. The pre-processing circuitry is configured to produce a primary physiological signal and a secondary physiological signal. Each of the primary and secondary physiological signals are conditioned. The primary conditioned physiological signal is directed to a primary monitoring device such as a hospital wearable defibrillator device. The secondary conditioned physiological signal is directed to telemetry modeling circuitry where it is further processed to output one or more telemetry signals. The one or more telemetry signals are output to a secondary monitoring device such as a three lead ECG monitoring device. Thus, a single set of sensing electrodes can provide physiological signals to multiple monitoring devices.

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