WO2020133487A1 - Procédé d'exploitation d'interface appliqué à un dispositif de surveillance et dispositif de surveillance - Google Patents

Procédé d'exploitation d'interface appliqué à un dispositif de surveillance et dispositif de surveillance Download PDF

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Publication number
WO2020133487A1
WO2020133487A1 PCT/CN2018/125796 CN2018125796W WO2020133487A1 WO 2020133487 A1 WO2020133487 A1 WO 2020133487A1 CN 2018125796 W CN2018125796 W CN 2018125796W WO 2020133487 A1 WO2020133487 A1 WO 2020133487A1
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WIPO (PCT)
Prior art keywords
interface
switching
score
type
monitoring device
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PCT/CN2018/125796
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English (en)
Chinese (zh)
Inventor
蒋霞
陈钰
Original Assignee
深圳迈瑞生物医疗电子股份有限公司
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Application filed by 深圳迈瑞生物医疗电子股份有限公司 filed Critical 深圳迈瑞生物医疗电子股份有限公司
Priority to CN201880099382.4A priority Critical patent/CN112997136B/zh
Priority to PCT/CN2018/125796 priority patent/WO2020133487A1/fr
Publication of WO2020133487A1 publication Critical patent/WO2020133487A1/fr

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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/048Interaction techniques based on graphical user interfaces [GUI]
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/048Interaction techniques based on graphical user interfaces [GUI]
    • G06F3/0481Interaction techniques based on graphical user interfaces [GUI] based on specific properties of the displayed interaction object or a metaphor-based environment, e.g. interaction with desktop elements like windows or icons, or assisted by a cursor's changing behaviour or appearance
    • G06F3/0482Interaction with lists of selectable items, e.g. menus
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/048Interaction techniques based on graphical user interfaces [GUI]
    • G06F3/0487Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser
    • G06F3/0488Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser using a touch-screen or digitiser, e.g. input of commands through traced gestures

Definitions

  • the invention relates to the technical field of computers, and in particular to an interface operation method and monitoring equipment applied to monitoring equipment.
  • Embodiments of the present invention provide an interface operation method and a monitoring device applied to a monitoring device, which can realize rapid interface switching and improve the efficiency of users viewing patient monitoring data.
  • an embodiment of the present invention provides an interface operation method applied to a monitoring device.
  • the method includes:
  • the type of interface switching includes: a main interface switching type or a slave interface switching type;
  • the slave interface contains statistical analysis results based on the physiological data displayed on the master interface.
  • an embodiment of the present invention provides a monitoring device, including: a data interface, a processor, and a memory, where the data interface, processor, and memory are connected to each other, wherein,
  • the memory is used to store a computer program, the computer program includes program instructions, and the processor is configured to call the program instructions to perform the following steps:
  • the type of interface switching includes: a main interface switching type or a slave interface switching type;
  • the current display interface is switched according to the direction of the interface switching.
  • the slave interface includes a statistical analysis result based on the physiological data displayed on the master interface.
  • an embodiment of the present invention provides another interface operation method applied to a monitoring device.
  • the method includes:
  • the slave interface will be expanded and displayed on the display interface, where the slave interface contains the statistical analysis results based on the real-time waveform and/or real-time value.
  • an embodiment of the present invention provides another monitoring device.
  • the monitoring device includes:
  • a parameter measurement circuit the parameter measurement circuit is electrically connected to a sensor accessory provided on the patient's body to obtain at least one physiological parameter signal;
  • the slave interface will be expanded and displayed on the display interface, where the slave interface contains the statistical analysis results based on the real-time waveform and/or real-time value.
  • the monitoring device obtains at least one physiological parameter signal within a first time period through a sensor accessory connected to the patient, generates parameter data including at least one physiological parameter based on the at least one physiological parameter signal obtained previously, and Display parameter data of the at least one physiological parameter.
  • the monitoring device may receive a user's editing operation on the current display interface of the monitoring device, obtain an editing gesture corresponding to the editing operation, determine the type and direction of interface switching according to the editing gesture, and according to the type of interface switching, The current display interface is switched according to the direction of the interface switching, so that the interface of the monitoring device is quickly switched, and the efficiency of the user viewing the monitoring data is improved.
  • FIG. 1 is a schematic diagram of a large digital interface provided by an embodiment of the present invention.
  • FIG. 2 is a schematic diagram of a waveform interface provided by an embodiment of the present invention.
  • FIG. 3 is a schematic diagram of a status trend interface provided by an embodiment of the present invention.
  • FIG. 4 is a schematic diagram of another status trend interface provided by an embodiment of the present invention.
  • FIG. 5 is a schematic flowchart of an interface operation method provided by an embodiment of the present invention.
  • FIG. 6 is a schematic flowchart of another interface operation method provided by an embodiment of the present invention.
  • FIG. 7 is a schematic diagram of a scoring interface provided by an embodiment of the present invention.
  • FIG. 8 is a schematic diagram of a rating details interface provided by an embodiment of the present invention.
  • FIG. 9 is a schematic diagram of another rating details interface provided by an embodiment of the present invention.
  • FIG. 10 is a schematic structural diagram of a monitoring device according to an embodiment of the present invention.
  • FIG. 11 is a monitor networking system used in a hospital according to an embodiment of the present invention.
  • FIG. 12 is a system framework diagram of a multi-parameter monitor or module assembly provided by an embodiment of the present invention.
  • 13A is an interface diagram of waveforms and/or values corresponding to physiological parameters at different times according to an embodiment of the present invention
  • 13B is an interface diagram of waveforms and/or values corresponding to different physiological parameters at different times provided by an embodiment of the present invention
  • 13C is an interface diagram of waveforms and/or values corresponding to different physiological parameters at different times provided by an embodiment of the present invention.
  • 13D is an interface diagram of a scoring history provided by an embodiment of the present invention.
  • 13E is an interface diagram showing a status trend provided by an embodiment of the present invention.
  • FIG. 14 is a schematic flowchart of another interface operation method provided by an embodiment of the present invention.
  • FIG. 11 is a monitor networking system used in a hospital according to an embodiment of the present invention.
  • the monitor data can be stored as a whole, and the patient information and care information can be centrally managed, and the two are related. Storage, easy to save historical data and associated alarm.
  • a bedside monitor 212 can be provided for each bed, and the bedside monitor 212 can be a multi-parameter monitor or a module assembly.
  • each bedside monitor 212 can also be paired with a portable monitoring device 213.
  • the portable monitoring device 213 provides a simple and portable parameter processing module that can be worn on the patient's body for mobile monitoring of the patient. After wired or wireless communication between the monitoring device 213 and the bedside monitor 212, the physiological data generated by the mobile monitoring can be transmitted to the bedside monitor 212 for display, or transmitted to the central station 211 through the bedside monitor 212 for the doctor or The nurse can view it or transmit it to the data server 215 through the bedside monitor 212 for storage.
  • the portable monitoring device 213 can also directly transmit the physiological data generated by the mobile monitoring to the central station 211 through the wireless network node 214 installed in the hospital for storage and display, or can transmit the mobile monitoring through the wireless network node 214 installed in the hospital
  • the generated physiological data is transmitted to the data server 215 for storage.
  • the data corresponding to the physiological parameters displayed on the bedside monitor 212 may be derived from the sensor accessory directly connected to the monitor 212, or from the portable monitoring device 213, or from the data server 215.
  • the printing device 216 can also obtain corresponding command signals from the bedside monitor 212 or the central station 211 through the network shown in FIG. 11.
  • FIG. 12 is a system framework diagram of a multi-parameter monitor or module assembly provided by an embodiment of the present invention.
  • the multi-parameter monitor or module assembly includes at least a parameter measurement circuit 912.
  • the parameter measuring circuit 912 includes at least one parameter measuring circuit corresponding to physiological parameters.
  • the parameter measuring circuit 912 includes at least an electrocardiographic signal parameter measuring circuit, a respiratory parameter measuring circuit, a body temperature parameter measuring circuit, a blood oxygen parameter measuring circuit, a non-invasive blood pressure parameter measuring circuit, There is at least one parameter measurement circuit in the invasive blood pressure parameter measurement circuit and the like, and each parameter measurement circuit 912 is connected to an externally inserted sensor accessory 911 through a corresponding sensor interface.
  • the sensor accessory 911 includes a detection accessory corresponding to the detection of physiological parameters such as electrocardiographic respiration, blood oxygen, blood pressure, and body temperature.
  • the parameter measurement circuit 912 is mainly used to connect the sensor accessory 911 to obtain the collected physiological parameter signals, and may include at least two or more physiological parameter measurement circuits.
  • the parameter measurement circuit 912 may be, but not limited to, a physiological parameter measurement circuit (module), Human physiological parameter measurement circuit (module) or sensor collects human physiological parameters and so on.
  • the parameter measurement circuit 912 obtains an external physiological parameter sensor accessory through an extended interface to obtain physiological sampling signals about the patient, and obtains physiological data after processing for alarm and display.
  • the extended interface can also be used to output the control signal about how to collect physiological parameters output by the main control circuit to the external physiological parameter monitoring accessory through the corresponding interface to realize the monitoring and control of the patient's physiological parameters.
  • the multi-parameter monitor or module assembly may further include a main control circuit 913, which needs to include at least one processor and at least one memory.
  • the main control circuit 913 may also include a power management module, a power IP module, and an interface conversion circuit At least one of.
  • the power management module is used to control the power on/off of the whole machine, the power-on sequence of each power domain inside the board, and battery charging and discharging.
  • the power supply IP module refers to associating the schematic diagram of the power circuit unit that is frequently called repeatedly and the PCB layout, and curing into a separate power supply module, that is, converting an input voltage into an output voltage through a predetermined circuit, wherein the input voltage and the output voltage different.
  • the power IP module may be single-channel or multi-channel.
  • the power IP module can convert an input voltage to an output voltage.
  • the power IP module can convert one input voltage to multiple output voltages, and the voltage values of the multiple output voltages can be the same or different, so as to meet the needs of multiple electronic components at the same time. Voltage demand, and the module has few external interfaces, working in the system is a black box decoupled from the external hardware system, improving the reliability of the entire power system.
  • the interface conversion circuit is used to convert the signal output by the main control minimum system module (that is, at least one processor and at least one memory in the main control circuit) into the input standard signal required by the actual external device, for example, supporting external VGA display
  • the function is to convert the RGB digital signal output from the main control CPU to a VGA analog signal, support external network functions, and convert the RMII signal to a standard network differential signal.
  • the multi-parameter monitor or module assembly may also include one or more of a local display 914, an alarm circuit 916, an input interface circuit 917, an external communication, and a power interface 915.
  • the main control circuit is used to coordinate and control each board, circuit and equipment in the multi-parameter monitor or module assembly.
  • the main control circuit is used to control the data interaction between the parameter measurement circuit 912 and the communication interface circuit, as well as the transmission of control signals, and send the physiological data to the display 914 for display, or it can be received from the touch screen or User control commands input by physical input interface circuits such as keyboards and keys can of course also output control signals on how to collect physiological parameters.
  • the alarm circuit 916 may be an audible and visual alarm circuit.
  • the main control circuit completes the calculation of physiological parameters, and can send the calculation results and waveforms of the parameters to the host (such as the host with a display, PC, central station, etc.) through external communication and power interface 915, external communication and power interface 915
  • the host such as the host with a display, PC, central station, etc.
  • external communication and power interface 915 It can be one or a combination of LAN interfaces composed of Ethernet (Token), Token Ring (Token Ring), Token Bus (Token Bus), and the Backbone Network Fiber Distributed Data Interface (FDDI) as the three networks.
  • FDDI Backbone Network Fiber Distributed Data Interface
  • It can also be one or a combination of wireless interfaces such as infrared, Bluetooth, wifi, and WMTS communication, or one or a combination of wired data connection interfaces such as RS232 and USB.
  • the external communication and power interface 915 may also be one or a combination of a wireless data transmission interface and a wired data transmission interface.
  • the host computer can be any computer equipment such as the host computer of the monitor, the electrocardiograph, the ultrasound diagnostic apparatus, and the computer. By installing the matched software, a monitor device can be formed.
  • the host can also be a communication device, such as a mobile phone, a multi-parameter monitor, or a module component, which sends data to a mobile phone that supports Bluetooth communication through a Bluetooth interface, so as to realize remote transmission of data.
  • the multi-parameter monitoring module component can be set outside the monitor casing.
  • an independent external parameter module it can be inserted into the monitor host (including the main control board) to form a plug-in monitor as part of the monitor, or It can be connected to the host of the monitor (including the main control board) through a cable, and the external parameter module is used as an external accessory of the monitor.
  • parameter processing can also be built into the housing, integrated with the main control module, or physically separated within the housing to form an integrated monitor.
  • the interface operation method provided on the monitoring device (monitor 212 or central station 211) provided by this solution is mainly applied to the monitoring device in the medical field.
  • the sensor accessory connected to the patient obtains at least one physiological parameter signal within a first time period, and generates parameter data including at least one physiological parameter based on the at least one physiological parameter signal obtained previously. Display the parameter data of the at least one physiological parameter to obtain the current display interface of the monitoring device.
  • the monitoring device obtains an editing gesture corresponding to the editing operation by receiving a user's editing operation on the current display interface of the monitoring device, and determines the type and direction of interface switching according to the editing gesture, where the type of interface switching includes: main interface switching Type or type of switching from the interface, the monitoring device switches the current display interface according to the type of the interface switching, according to the direction of the interface switching, so as to realize fast and effective switching of the interface of the monitoring device and improve monitoring Data viewing efficiency.
  • the recognition of the editing gesture obtained on the display interface depends on obtaining the data source through the input interface circuit 917 or the touch screen superimposed on the display 914, and then the processor performs the processing.
  • the interface of the monitoring device may include a master interface and a slave interface
  • the master interface may include a large number interface and/or a waveform interface
  • the slave interface is subordinate to the master interface
  • the slave interface may include a status trend interface and a score Any one or more of the interface and the score details interface.
  • the large digital interface displays patient-related data
  • the waveform interface displays the waveform data of the patient's status
  • the status trend interface displays the specific status or trend information of each patient
  • the scoring interface displays The score of the patient's status.
  • the score details interface displays detailed score information such as the patient's historical score. For the structure of the slave interface mainly based on the score interface, the score details interface, etc., refer to FIG.
  • the slave interface has more statistical analysis details than the master interface.
  • the main interface mainly displays real-time waveforms and/or real-time values, and the slave interface contains statistical analysis results of real-time waveforms and/or real-time values at different times. That is to say, in one embodiment, the slave interface includes Statistical analysis results of physiological data.
  • the editing gesture of the editing operation acquired by the monitoring device may include a touch point and a touch direction.
  • the monitoring device determines the type and direction of the interface switching according to the editing gesture, it may acquire all of the editing gestures.
  • the monitoring device may determine the type of interface switching by detecting the number of touch points. If the number of touch points is greater than a preset threshold, the monitoring device may determine that the type of interface switching is the main interface switching type, and The touch direction is determined as the main interface switching direction. If the number of touch points is less than or equal to a preset threshold, the monitoring device may determine that the type of interface switching is the type of switching from the interface, and determine the touch direction as the direction of switching from the interface.
  • the editing operation acquired by the monitoring device may be a click operation, or other operations such as a sliding operation.
  • the embodiment of the present invention is not limited, and only needs to determine the touch point and the touch direction according to the editing operation.
  • the preset threshold of the number of touch points in the embodiment of the present invention may be any value, which is not limited in the embodiment of the present invention.
  • the embodiment of the present invention does not limit the relationship between the touch points and touch directions included in the edit gesture of the edit operation and the interface switching type and direction, and only needs to determine the interface switching type according to the touch points and/or touch directions And direction.
  • the monitoring device may determine that the current display interface is the corresponding first main interface, obtain the second main interface according to the direction of the main interface switching, and display the current display The interface switches to the second main interface.
  • FIG. 1 and FIG. 2 can be used as examples for illustration.
  • FIG. 1 is a schematic diagram of a large-number interface provided by an embodiment of the present invention.
  • the large-number interface shown in FIG. 1 includes a sliding operation 11, and the sliding operation of the large-number interface 11
  • the number of touch points included in the corresponding sliding gesture is 2, and the touch direction is the horizontal direction of the interface to the right.
  • 2 is a schematic diagram of a waveform interface provided by an embodiment of the present invention.
  • the waveform interface shown in FIG. 2 includes a first sliding operation 21, a second sliding operation 22, a first shortcut control 23, and a second shortcut control 24. It should be noted that the large number interface shown in FIG. 1 and the waveform interface shown in FIG. 2 belong to different types of main interfaces.
  • the monitoring device receives a user's editing operation on the large digital interface, and the editing operation is a sliding operation 11. If the monitoring device obtains The number of touch points included in the slide gesture corresponding to the slide operation 11 is 2 and the touch direction is the horizontal direction of the interface. It is assumed that the preset threshold of the number of touch points is 1 because 2>1 Therefore, the monitoring device can determine the type of interface switching as the main interface switching type, determine the acquired horizontal right touch direction as the main interface switching direction, and determine that the large digital interface is the first main interface.
  • the monitoring device may switch the direction of the main interface horizontally to the right obtained on the large digital interface, and obtain that the second main interface is a waveform interface as shown in FIG. 2. Therefore, when the monitoring device obtains a sliding operation with two touch points on the large digital interface shown in FIG. 1 and the touch direction is horizontal to the right, the monitoring device can switch the large digital interface to the one shown in FIG. 2 The waveform interface shown.
  • the current display interface of the monitoring device is a waveform interface as shown in FIG. 2, and it is assumed that the monitoring device receives the user's editing operation on the waveform interface as the first sliding operation 21, and the touch corresponding to the first sliding operation 21 There are 2 points and the sliding direction is horizontal to the left.
  • the preset threshold of the number of touch points is 1, since 2>1, it can be determined that the interface switching type is the main interface switching type, and the current waveform can be determined
  • the interface is the first main interface, and the second main interface is the large digital interface.
  • the monitoring device receives the first sliding operation 21 with two touch points as shown in FIG. 2 and the sliding direction is horizontal to the left, it can switch the currently displayed waveform interface shown in FIG. 2 to that shown in FIG. 1 Big digital interface.
  • the monitoring device may acquire the target slave interface according to the acquired direction of switching from the interface.
  • FIG. 3 is a schematic diagram of a status trend interface provided by an embodiment of the present invention.
  • the status trend interface shown in FIG. 3 includes a first sliding operation 31, a second sliding operation 32, a first shortcut control 33, and a second shortcut control 34. It should be noted that the status trend interface shown in FIG. 3 is a slave interface and belongs to the waveform interface shown in FIG. 2.
  • the current display interface of the monitoring device is a waveform interface as shown in FIG. 2, and it is assumed that the monitoring device receives the user's editing operation on the waveform interface as the second sliding operation 22, and the touch point corresponding to the second sliding operation 22 Is 1, and the sliding direction is horizontal to the right.
  • the monitoring device can determine that the interface switching type is the interface switching type, and can slide to the right according to the horizontal
  • the direction determines that the target slave interface is the state trend interface as shown in FIG. 3.
  • the monitoring device can switch the currently displayed waveform interface as shown in FIG. 2 to The status trend interface shown in FIG. 3 is convenient for the user to view the status trend information of the patient.
  • the current display interface of the monitoring device is a status trend interface as shown in FIG. 3. If the monitoring device receives the user's editing operation on the status trend interface as the first sliding operation 31, and the first sliding operation is acquired 31 is one touch point, and the sliding direction is horizontal to the left, it can be determined that the interface switching type is from the interface switching type, and is determined according to the number of touch points and the sliding direction of the first sliding operation 31
  • the target slave interface is the waveform interface shown in Figure 2. Therefore, when the monitoring device receives the first sliding operation 31 with one touch point and a horizontal sliding direction on the status trend interface shown in FIG. 3, it can switch the status trend interface currently displayed to The waveform interface shown in Figure 2.
  • FIG. 3 and FIG. 4 can be specifically used as an example for illustration, where FIG. 4 is a schematic diagram of another status trend interface provided by an embodiment of the present invention.
  • the status trend interface shown in FIG. 4 includes a sliding operation 41, a first shortcut control 42, and a second shortcut control 43.
  • the state trend interface shown in FIG. 4 is a slave interface, and the slave interface is associated with the state trend interface shown in FIG. 3.
  • the current display interface of the monitoring device is the status trend interface shown in FIG. 3.
  • the monitoring device receives the user’s editing operation of the status trend interface shown in FIG. 3 as the second sliding operation 32, and the If there are one touch point in the second sliding operation 32 and the sliding direction is horizontal to the right, it can be determined that the interface switching type is the switching type from the interface, and according to the touch direction and the touch point of the second sliding operation 32
  • the number determines that the target slave interface is the state trend interface as shown in FIG. 4. Therefore, when the monitoring device receives the second sliding operation 32 with one touch point and a horizontal sliding direction on the status trend interface shown in FIG. 3, it can switch the status trend interface currently displayed to Figure 4 shows the status trend interface.
  • the current display interface of the monitoring device is a status trend interface as shown in FIG. 4. If the monitoring device receives the user's editing operation on the status trend interface as the sliding operation 41, and the touch of the sliding operation 41 is acquired If the number of points is 1 and the sliding direction is horizontal to the left, you can determine that the interface switching type is from the interface switching type, and the target slave interface is obtained according to the number of touch points and the touch direction obtained as shown in the figure. 3 shows the status trend interface. Therefore, when the monitoring device receives a sliding operation 41 with one touch point and a horizontal sliding direction on the status trend interface as shown in FIG. 4, it can switch the status trend interface currently displayed as shown in FIG. 3 shows the status trend interface.
  • the interface operation method provided by the embodiment of the present invention needs to be implemented by a monitoring device.
  • the following describes the interface operation method applied to the monitoring device in detail with reference to the drawings.
  • FIG. 5 is a schematic flowchart of an interface operation method provided by an embodiment of the present invention.
  • the method may be executed by a monitoring device, and the monitoring device may be a monitoring device such as a monitor.
  • the method of the embodiment of the present invention includes the following steps.
  • S501 Obtain at least one physiological parameter signal within a first time period through a sensor accessory connected to a patient, and generate parameter data including at least one physiological parameter according to the at least one physiological parameter signal obtained previously.
  • the monitoring device may obtain at least one physiological parameter signal within a first time period through a sensor accessory connected to the patient, and generate parameter data including at least one physiological parameter based on the at least one physiological parameter signal obtained previously .
  • S502 Display parameter data of the at least one physiological parameter.
  • the monitoring device may display the parameter data of the at least one physiological parameter.
  • S503 Receive the user's editing operation on the current display interface of the monitoring device.
  • the monitoring device may receive a user's editing operation on the current display interface of the monitoring device.
  • the editing operation may include but is not limited to a sliding operation or a click operation.
  • the current display interface of the monitoring device may include a master interface or a slave interface, the master interface may include a large number interface and/or a waveform interface; the slave interface is subordinate to the master interface, and the slave interface may include a status Any one or more of the trend interface, score interface, score details interface, and score history interface.
  • the monitoring device can receive a sliding operation on the currently displayed interface.
  • the monitoring device may obtain the editing gesture corresponding to the editing operation according to the received user's editing operation on the current display interface of the monitoring device.
  • the editing gesture includes a touch point and/or a touch direction.
  • S505 Determine the type and direction of interface switching according to the editing gesture.
  • the monitoring device may determine the type and direction of interface switching according to the obtained editing gesture, where the type of interface switching includes: a main interface switching type or a slave interface switching type.
  • the main interface switching type is the mutual switching between the main interfaces
  • the slave interface switching is the mutual switching between the slave interfaces, or the switching between the master interface and the slave interface.
  • the slave interface in this article may contain the statistical analysis results based on the physiological data displayed on the main interface, and the statistical analysis results are presented as any one or more of the status trend interface, the score interface, the score details interface, and the score history interface.
  • the monitoring device may obtain the number of touch points included in the edit gesture according to the obtained edit gesture, and if the number of touch points is greater than a preset threshold, the interface switching may be determined
  • the type is the main interface switching type, and the touch direction included in the editing gesture is determined as the main interface switching direction. If the number of touch points is less than or equal to a preset threshold, it can be determined that the type of interface switching is the type of switching from the interface, and the touch direction is determined as the direction of switching from the interface.
  • FIG. 1 and FIG. 2 can be used as an example for illustration.
  • the current display interface of the monitoring device is a large digital interface as shown in FIG. 1.
  • the monitoring device receives the editing operation of the large digital interface as shown in FIG. In the sliding operation 11, the monitoring device can obtain that the number of touch points included in the sliding gesture corresponding to the sliding operation 11 is 2, and the touch direction is the direction from the horizontal to the right.
  • the preset threshold of the number of touch points preset by the monitoring device is 1, the number of touch points is greater than the preset threshold, ie 2>1
  • the monitoring device can determine that the type of interface switching is the main interface switching Type, and determine the horizontal right touch direction as the main interface switching direction.
  • the monitoring device may It is obtained that the number of touch points included in the slide gesture corresponding to the second slide operation 22 is one, and the touch direction is the direction from the horizontal to the right.
  • the preset threshold of the number of touch points preset by the monitoring device is 1, the number of touch points is equal to the preset threshold, the monitoring device can determine that the type of interface switching is the type of switching from the interface, and will The horizontal right touch direction is determined as the direction to switch from the interface.
  • the monitoring device may perform switching processing on the current display interface according to the interface switching direction according to the type of interface switching, where the slave interface contains statistical analysis results based on the physiological data displayed on the master interface.
  • the monitoring device may determine the first main interface corresponding to the currently displayed interface and obtain the second main interface according to the direction of the main interface switching, And switch the current display interface to the second main interface.
  • FIG. 1 and FIG. 2 can be used as an example for description. It is assumed that the current display interface of the monitoring device is a large digital interface. If the monitoring device determines the touch point and the touch direction of the sliding operation 11 received on the large digital interface, it is determined If the type of interface switching is the main interface switching type, the monitoring device may determine the large digital interface as the first main interface, and obtain the second main interface as shown in FIG. 2 according to the horizontal touch direction to the right Waveform interface, and switch the current display interface big digital interface to the waveform interface shown in Figure 2.
  • the monitoring device may obtain the target slave interface according to the direction of the slave interface switching, and switch the current display interface to the target slave interface.
  • FIG. 2 and FIG. 3 can be used as an example for description. It is assumed that the current display interface of the monitoring device is a waveform interface as shown in FIG. 2. If the monitoring device receives the user's editing operation on the waveform interface as the second sliding operation 22, and The second sliding operation 22 corresponds to one touch point, and the sliding direction is horizontal to the right. Assuming that the preset threshold of the number of touch points is 1, the monitoring device can determine that the interface switching type is the interface switching type, and can determine the status trend as shown in FIG.
  • the interface is the target from the interface.
  • the monitoring device receives the second sliding operation 22 with one touch point as shown in FIG. 2 and the sliding direction is horizontal to the right, the monitoring device can switch the currently displayed waveform interface as shown in FIG. 2 to The status trend interface shown in Figure 3.
  • the monitoring device may expand the status trend interface from the edge of the main interface according to the editing gesture when switching the current display interface according to the switching direction according to the type of interface switching , Any one or more of the scoring interface, the scoring details interface, and the scoring history interface; or, expand or gradually expand the scoring interface along the first direction from the edge of the main interface according to the editing gesture; or, according to the Editing gestures expand or gradually expand the scoring details interface from the scoring interface in the second direction; or, expand or gradually expand the status trend interface from the scoring interface in the third direction according to the editing gesture; or, according to the editing gestures Expand or gradually expand the scoring history interface from the scoring details interface in the second direction; or, as the editing gesture slides on the display interface, sequentially expand the short-term trend change graph and the long time in the status trend interface in the third direction Time trend chart.
  • the third direction and the second direction are different. Specific embodiments and examples are as described above, and are not repeated here.
  • the monitoring device obtains at least one physiological parameter signal within a first time period through a sensor accessory connected to the patient, generates parameter data including at least one physiological parameter based on the at least one physiological parameter signal obtained, and displays Parameter data of the at least one physiological parameter.
  • the monitoring device may receive the user's editing operation on the current display interface of the monitoring device, obtain the editing gesture corresponding to the editing operation, and determine the type and direction of interface switching according to the editing gesture, so that according to the type of interface switching, the The direction of the interface switching processes the current display interface. In this way, the present invention realizes a fast switching operation of the monitoring device interface, and improves the efficiency of the user viewing the monitoring data.
  • FIG. 6 is a schematic flowchart of another interface operation method provided by an embodiment of the present invention.
  • the difference between the method and the method embodiment of FIG. 5 is that the method of the embodiment of the present invention can Click operation of the shortcut control on the user interface to obtain control instructions to control the current display interface to switch to the interface corresponding to the shortcut control.
  • the method of the embodiment of the present invention includes the following steps.
  • S601 Receive the user's editing operation on the current display interface of the monitoring device.
  • the monitoring device may receive a user's editing operation on the current display interface of the monitoring device.
  • the editing operation may be, but not limited to, a sliding operation or a click operation.
  • the monitoring device may obtain an interface switching instruction.
  • FIG. 2 can be used as an example for illustration.
  • the monitoring device obtains a click operation on the first shortcut control 23 on the waveform interface shown in FIG. 2
  • the monitoring device can obtain an interface switch. Instruction, wherein the switching interface corresponding to the first shortcut control 23 is a state trend interface as shown in FIG. 3.
  • the monitoring device obtains a click operation on the second shortcut control 24 on the waveform interface as shown in FIG.
  • the monitoring device may obtain an interface switching instruction, where the second shortcut
  • the switching interface corresponding to the control 24 is a scoring interface as shown in FIG. 7.
  • 7 is a schematic diagram of a scoring interface provided by an embodiment of the present invention. As shown in FIG. 7, the scoring interface includes a sliding operation 71 and a shortcut control 72.
  • the monitoring device may respond to the interface switching instruction and switch the current display interface to the interface corresponding to the shortcut control.
  • FIG. 2 and FIG. 3 may be used as an example for description. Assume that the monitoring device obtains a click operation on the first shortcut control 23 on the waveform interface shown in FIG. An interface switching instruction can be obtained, wherein the switching interface corresponding to the first shortcut control 23 is a state trend interface as shown in FIG. 3, so that the monitoring device can respond to the interface switching instruction and display the current display as shown in FIG. 2. The waveform interface shown switches to the status trend interface shown in FIG. 3 corresponding to the first shortcut control 23.
  • FIG. 2 and FIG. 7 can be used as an example to explain, assuming that the monitoring device obtains a click operation on the second shortcut control 24 on the waveform interface, which is the current display interface shown in FIG. 2, then The monitoring device can obtain an interface switching instruction, wherein the switching interface corresponding to the second shortcut control 24 is a grading interface as shown in FIG. 7, therefore, the monitoring device can respond to the interface switching instruction and change the currently displayed The waveform interface shown in Fig. 2 is switched to the scoring interface shown in Fig. 7.
  • the monitoring device may receive a user's editing operation on the scoring interface, where the editing operation includes but is not limited to a sliding operation or a click operation.
  • the embodiment of the present invention does not limit the type and direction of interface switching corresponding to the touch point and touch direction corresponding to the editing operation, and only needs to determine the type and direction of interface switching according to the touch point and/or the touch direction.
  • FIG. 7 and FIG. 8 can be used as examples for illustration, where FIG. 8 is a schematic diagram of a rating detail interface provided by an embodiment of the present invention.
  • the rating detail interface shown in FIG. 8 includes a first sliding operation 81 and a second sliding Operation 82, shortcut control 83.
  • the current display interface of the monitoring device is a grading interface as shown in FIG. 7, if the monitoring device receives the first sliding operation 81 of the user as shown in FIG. 7, the monitoring device may determine the first sliding There is one touch point in operation 81, and the touch direction is vertically upward.
  • the monitoring device can determine that the type of interface switching is switching from the interface, and determine that the target slave interface is the scoring details as shown in FIG. 8 according to the touch direction Interface, therefore, the monitoring device can switch the currently displayed rating interface shown in FIG. 7 to the rating details interface shown in FIG. 8. For another example, if the monitoring device receives a user's click operation on the shortcut control 72 shown in FIG. 7, it may switch the currently displayed rating interface shown in FIG. 7 to the rating details interface shown in FIG. 8.
  • FIG. 7, FIG. 8, and FIG. 9 are used as examples for illustration, where FIG. 9 is a schematic diagram of another rating detail interface provided by an embodiment of the present invention.
  • the rating detail interface shown in FIG. 9 includes Slide operation 91, shortcut control 92.
  • the monitoring device may determine the second The sliding operation 82 has one touch point and the touch direction is vertically downward.
  • the preset threshold value of the number of touch points is 1, the monitoring device can determine that the type of interface switching is switching from the interface, and determine that the target slave interface is the scoring interface as shown in FIG. 7 according to the touch direction Therefore, the monitoring device can switch the currently displayed rating details interface shown in FIG. 8 to the rating interface shown in FIG. 7.
  • the monitoring device may determine that the first sliding operation 81 has one touch point and the touch direction is horizontal to the right . Assuming that the preset threshold of the number of touch points is 1, then 2>1, the monitoring device can determine the type of interface switching as interface switching, and determine the target slave interface as shown in FIG. 9 according to the touch direction Therefore, the monitoring device can switch the currently displayed rating detail interface shown in FIG. 8 to another rating detail interface shown in FIG. 9. For another example, suppose that the monitoring device receives a user's click operation on the shortcut control 83 shown in FIG. 8, and can obtain an interface switching instruction. According to the interface switching instruction, the currently displayed rating details shown in FIG. 8 are displayed. The interface switches to another score detail interface as shown in FIG. 9 corresponding to the shortcut control.
  • FIG. 9 and FIG. 8 can be used as an example to illustrate, for example, assuming that the current display interface of the monitoring device is the rating detail interface shown in FIG. 9, if the monitoring device receives the user’s rating shown in FIG. With the sliding operation 91 on the detail interface, the monitoring device can obtain that the number of touch points corresponding to the sliding operation 91 is 1, and the touch direction is horizontal to the right. The monitoring device can determine that the interface switching type is switching from the interface, and the target slave interface is obtained according to the switching direction from the interface as the score detail interface as shown in FIG. 8, so that the monitoring device can display the current display as The score detail interface shown in FIG. 9 is switched to the score detail interface shown in FIG. 8.
  • the monitoring device can obtain an interface switching instruction, and the monitoring device can respond to the interface switching instruction and display the currently displayed image as shown in FIG. 9.
  • the rating detail interface shown in 9 is switched to the rating detail interface shown in FIG. 8 corresponding to the shortcut control 92.
  • the monitoring device may obtain a corresponding interface switching instruction by receiving a user's click operation on the shortcut control on the user interface, and respond to the interface switching instruction to switch the current display interface to the interface corresponding to the shortcut control.
  • the present invention realizes a fast switching operation of the monitoring device interface, and improves the efficiency of the user viewing the monitoring data.
  • At least one physiological parameter signal can be obtained within a first period of time through a sensor accessory connected to the patient, and based on the at least one physiological parameter signal obtained above, at least one physiological parameter can be generated.
  • Parameter data Display parameter data of the at least one physiological parameter to obtain a display interface.
  • the aforementioned at least one physiological parameter signal may be temperature (Temp), diastolic blood pressure, systolic blood pressure (BP-S), heart rate (HR), respiration rate (RR, Respiration) rate collected through the sensor attachment, consciousness level, At least one of blood oxygen (SpO2), oxygen concentration (Supp. O2), electroencephalogram and other physiological parameter signals.
  • body temperature (Temp) diastolic blood pressure, systolic blood pressure (BP-S), heart rate (HR), respiratory rate (RR, Respiration), awareness level, blood oxygen (SpO2) can be obtained ), and waveforms and/or values corresponding to various physiological parameters such as oxygen concentration (Supp. O2), EEG, etc.
  • generating parameter data including at least one physiological parameter according to at least one physiological parameter signal obtained within a period of time can be understood as calculating based on the at least one physiological parameter signal obtained within a period of time Obtained such as body temperature (Temp), diastolic blood pressure, systolic blood pressure (BP-S), heart rate (HR), respiration rate (RR, Respiration), consciousness level, blood oxygen (SpO2), and oxygen concentration (Supp.O2 ), EEG, and other waveforms and/or values corresponding to various physiological parameters, thereby generating parameter data containing at least one physiological parameter.
  • Temp body temperature
  • BP-S systolic blood pressure
  • HR heart rate
  • RR respiration rate
  • Supp.O2 oxygen concentration
  • the parameter data may include: such as body temperature (Temp), diastolic blood pressure, systolic blood pressure (BP-S), heart rate (HR), respiratory rate (RR, Respiration), consciousness level, blood oxygen (SpO2), and oxygen Waveforms and/or values corresponding to one or more physiological parameters, such as concentration (Supp. O2) and electroencephalogram, respectively.
  • Temp body temperature
  • BP-S systolic blood pressure
  • HR heart rate
  • RR respiratory rate
  • Respiration consciousness level
  • SpO2 blood oxygen
  • concentration Upp. O2
  • electroencephalogram oxygen Waveforms and/or values corresponding to one or more physiological parameters, such as concentration (Supp. O2) and electroencephalogram, respectively.
  • FIG. 13A is an interface diagram of waveforms and/or values corresponding to physiological parameters at different times according to an embodiment of the present invention.
  • at least one physiological parameter signal obtained within a period of time at least one physiological parameter signal can be obtained.
  • a waveform 511 and/or value 512 corresponding to a physiological parameter at different times is refreshed and displayed in the first area 51 of the display interface in real time to display the waveform 511 and/or value 512 at different times for real-time monitoring of the patient.
  • the patient's value 512 information is focused on or displayed on the display interface, it can be considered to be presented on the large number interface.
  • the waveform 511 and the value 512 of the patient are followed or displayed on the display interface at the same time, it can be regarded as being presented on the waveform interface.
  • the waveform 511 and the value 512 of the patient are followed or displayed on the display interface at the same time, it can be regarded as being presented on the waveform interface.
  • FIG. 13B is another interface diagram of waveforms and/or values corresponding to different physiological parameters at different times provided by an embodiment of the present invention.
  • at least one physiological parameter signal obtained within a period of time at least one physiological parameter signal can be obtained.
  • short-term or long-term statistics can form a short-term trend change graph or a long-term trend change
  • a short-term trend change graph or a long-term trend change graph is displayed at the main position on the display interface of the monitoring device, and a status trend interface can be formed. As shown in FIG.
  • the window 55 may provide, for example, temperature (Temp), diastolic blood pressure, systolic blood pressure (BP-S), heart rate (HR), respiration rate (RR, Respiration), awareness level, blood oxygen (SpO2) ), and oxygen concentration (Supp.O2), EEG and other physiological parameters corresponding to the short-term trend change chart or long-term trend change chart (542).
  • Temp temperature
  • BP-S systolic blood pressure
  • HR heart rate
  • RR respiration rate
  • Respiration awareness level
  • blood oxygen (SpO2) ), and oxygen concentration (Supp.O2) oxygen concentration
  • EEG oxygen concentration
  • scoring interface The following is a detailed description of the scoring interface, scoring details interface, and scoring history interface.
  • the physiological data corresponding to multiple physiological parameters is obtained through a sensor accessory connected to the patient's body. Based on the physiological data corresponding to the multiple physiological parameters within the same period of time, multiple sub-statistic scores corresponding to the multiple physiological parameters are generated; based on the multiple sub-statistic scores, a patient warning status score is generated.
  • the patient early warning status score can be obtained through various scoring criteria such as EWS (early warning score), Modified Early Warning Score (MEWS), and so on.
  • EWS early warning score
  • MEWS Modified Early Warning Score
  • MEWS modified Early Warning Score
  • Temp temperature
  • BP-S systolic blood pressure
  • HR heart rate
  • RR respiratory rate
  • Supp.O2 oxygen concentration
  • many other common physiological indicators are assigned corresponding sub-statistic scores, and then the statistical values of the sub-statistic scores are used to evaluate the patient’s clinical Status or potential risk, generate patient warning status score.
  • the EWS in the embodiment of the present application may also refer to a Pediatric Early Warning Score (PEWS), etc.
  • PEWS Pediatric Early Warning Score
  • the embodiment of the present application does not uniquely define the type or suitable population of the EWS.
  • the level of consciousness here, for example, is based on the LOC (AVPU) score, that is, the commonly used method for judging the state of consciousness is the "AVPU" score, the scoring system divides the state of consciousness into four levels: alert, verbal stimulus Responsive, reactive and unresponsive to pain stimuli.
  • AVPU LOC
  • the scoring rules as an example to explain.
  • the MEWS score has the characteristics of simple application, easy to master, fast and convenient access to clinical information, and is not restricted by the hardware equipment of the hospital or emergency department.
  • the sub-statistic score corresponding to each physiological parameter is obtained according to an early warning scoring rule.
  • generating the patient early warning state score according to the multiple sub-statistic scores includes: obtaining the patient early warning state score through weighted sum calculation according to the multiple sub-statistic scores.
  • the patient warning state score is refreshed and displayed on the display interface according to the first measurement frequency, and a score interface is generated. Refresh and display the multiple sub-statistic scores according to the second measurement frequency on the display interface to generate a score detail interface.
  • the patient warning status score (see icon 522 in FIG. 13A) in the first area 52 on the display interface is refreshed and displayed in real time according to the first measurement frequency to obtain the score interface.
  • the above-mentioned multiple sub-statistic scores are refreshed and displayed according to the second measurement frequency in the first area 52 on the display interface to obtain the score details interface.
  • the first measurement frequency may be equal to the second measurement frequency, that is, the patient warning status score and the related multiple sub-statistic scores are synchronously refreshed and displayed at the same frequency in the first area 52 .
  • the first measurement frequency is different from the second measurement frequency, and the second measurement frequency is greater than the first measurement frequency. That is to say, in some embodiments, the refresh display frequency of the multiple sub-statistic scores is greater than the refresh display frequency of the patient warning status scores.
  • multiple physiological parameters corresponding to the multiple sub-statistic scores are obtained at different times, and the multiple sub-statistic scores cannot be obtained at the same time according to the difference in the acquisition time. Therefore, the generation time of the patient early warning status score will be late
  • a display example in the scoring interface is given.
  • the processor of the monitor uses the following steps to refresh and display the above-mentioned patient warning status in the first area 52 on the display interface according to the first measurement frequency score:
  • the real-time status icon 522 is displayed, and the display result of the real-time status icon 522 is sequentially assigned to the value corresponding to the patient early warning status score according to the first measurement frequency, so that the first measurement frequency is displayed in the first area 52 on the display interface Refresh the score of the patient's warning status.
  • the waveform 511 and the value 512 of the relevant physiological parameters can be refreshed and displayed in real time in the second area 51.
  • the display result of the above-mentioned real-time status icon 522 is assigned a patient warning status score of "7".
  • multiple patient warning status scores will be obtained one by one, for example, the patient warning status score "1" at 7:00, the patient warning status score “1” at 9:00, and the patient warning status at 11:00 Score "1”, get patient warning status score "4" at 13:00, get patient warning status score "4" at 14:00, get patient warning status score "7” at 15:00, so, on the display interface
  • the display result of the real-time status icon 522 is sequentially displayed as "1” at 7:00 and "1" at 9:00. It is displayed as "1” at 11:00, "4" at 13:00, "4" at 14:00, and "7” at 15:00.
  • the real-time status icon is highlighted and rendered.
  • the real-time status icon 522 at the corresponding moment is highlighted, and the real-time status icon 522 can be highlighted by changing the size attribute value, color attribute value, and the like.
  • the above method further includes the following steps:
  • the processor determines that there is at least one sub-statistic score in the patient early warning status score that exceeds the sub-score threshold; and outputs prompt information that at least one sub-statistic score in the patient early warning status score exceeds the sub-score threshold.
  • the prompt information is output.
  • the attribute page 523 is provided in FIGS. 13A to 13E.
  • the prompt information that at least one sub-statistic score exceeds the sub-score threshold in the patient early warning status score will be written in the attribute page 523 for reminding.
  • the prompt information is also updated accordingly.
  • the real-time refresh display prompts that there is at least one sub-statistic score exceeding the sub-score threshold in the patient early warning status score.
  • the sub-score threshold mentioned in this embodiment may be 0, 1, 3, and so on.
  • the prompt information associated with the pictogram icon not only the relevant physiological parameters and corresponding sub-statistic scores of the above-mentioned patient warning status score neutron statistic score exceeding the sub-score threshold, but also the user’s special attention may be displayed.
  • Related physiological parameters and their corresponding sub-statistical scores may be displayed in FIG. 13B.
  • the prompt information displayed with the update of the real-time status icon 522 may be the correspondence of HR, respiration rate (RR, Respiration), blood oxygen (SpO2), and oxygen concentration (Supp. O2) that are of particular interest. Real-time values and their corresponding sub-statistic scores.
  • the step of refreshing and displaying the above multiple sub-statistic score generation score detail interface includes:
  • each sub-score display icon is associated with a physiological parameter
  • each sub-score display icon 533 is associated with a physiological parameter, such as HR, respiration frequency (RR, Respiration, Rate) in the figure ), blood oxygen (SpO2), oxygen concentration (Supp. O2), body temperature, BP-S, LOC (AVPU) respectively correspond to a sub-score display icon 526.
  • a physiological parameter such as HR, respiration frequency (RR, Respiration, Rate) in the figure ), blood oxygen (SpO2), oxygen concentration (Supp. O2), body temperature, BP-S, LOC (AVPU) respectively correspond to a sub-score display icon 526.
  • Each sub-score display icon 526 includes a bar 532 and a numeric display area 533, and the numeric display area 533 is refreshed in association with the score of the sub-statistic score.
  • the display result of the sub-score display icon 526 can also be displayed using the bar 532, the above bar
  • the length of 532 is related to the value of the correlation sub-statistical score, and the orientation of the above-mentioned bar reflects the change trend of the correlation sub-statistical score relative to the reference threshold.
  • the display result of the sub-score display icon 526 is displayed by a bar, the length of the bar is related to the value of the related sub-score, and the direction of the bar reflects the change trend of the related sub-score relative to the reference threshold ,
  • a single physiological parameter has 7 segments of high 3 points, 0 points, and low 3 points, which are low 3 points (red), low 2 points (orange), low 1 point (yellow), zero points (white), high 1 point (yellow), 2 points high (orange), 3 points high (red), different values of each physiological parameter correspond to different score segments, the length of the bar corresponds to different score segments, the color of the bar corresponds to different The color of the score segment.
  • the horizontal bar in the interface indicates the score segment where a single physiological parameter is located. The longer the bar, the higher the score. For example, if the heart rate HR is less than or equal to 40, it is 2 points lower.
  • the direction of the bar is left, and the heart rate HR Between 111 and 129 is 2 points high, the direction of the histogram is to the right, and the score of each physiological parameter is displayed in the center.
  • the orientation of the bar reflects whether the correlation sub-score becomes higher or lower than the reference threshold 0.
  • the real-time values corresponding to the relevant physiological parameters are also displayed correspondingly in the display area of the sub-score display icon 526.
  • the real-time value corresponding to the relevant physiological parameter displayed in the display area of the sub-score display icon 526 is the real-time collected value corresponding to the moment when the sub-statistic score is calculated.
  • the display area of the sub-score display icon 526 also includes an edit icon 534.
  • the above method further includes:
  • the prompt information of the above-mentioned state is output and displayed on the prompt information property page.
  • the status attention information here includes one of the reminder attention items, the scoring range where the indication score is located, the reminder event, the attention information, etc. within the scoring range where the corresponding total warning score is located.
  • the above method further includes:
  • the display effect of the above prompt information property page is adjusted.
  • the prompt information attribute page 523 is drawn in the first area 52, and the related state attention prompt information is determined according to the scoring range of the patient’s early warning status score, such as the patient’s early warning status score displayed at the current time Is 7, and the scoring range is 7-14, therefore, the determined associated status prompt information includes prompt information about the presence of at least one sub-statistic score exceeding the sub-score threshold in the patient early warning status score, where the current patient early warning status score is The rating range of, and the information that should be paid attention to within the current rating range, and the reminder event that prompts the user to know, and so on.
  • the associated rendering attributes can also be determined.
  • the 4 scoring ranges provided in the embodiment are 0-4, 4-7, 7-14, >14
  • a progress bar 521 is also included in the first area 52 for prompting the progress of calculating the patient's warning status score next time.
  • the first area 52 further includes a manual calculation button 531, and the user can click any manual calculation button 331 to initiate statistical calculation of the patient's warning status score at any time.
  • the first area 52 further includes a setting button 527, and the user can enter the property setting window by clicking the setting button 527 to select other functions, or page setting, mode setting and other functions.
  • the multiple sub-score display icons 526 correspond to partial parameters used to determine multiple physiological parameters in the patient early warning status score, and the sub-scores corresponding to the partial parameters respectively exceed the sub-score threshold. In other words, in order to reduce the screen occupation, it may be used to determine only some of the parameters of the plurality of physiological parameters in the patient's early warning status score, then only the sub-score display icon 526 associated with the partial parameters is displayed in the first area 52.
  • the waveform and value of physiological parameters can be obtained in real time, and the state of the patient can be statistically scored based on the rules of early warning, so that the user can be drawn from the situation of reading the waveform and value of complex physiological parameters in real time.
  • the critical level requirements it can also provide corresponding reminder events and prompts for attention information, which greatly improves the utilization rate of the monitor, increases the attention to ordinary patients, and simplifies the use of the monitor.
  • a trend graph of historical patient warning status scores is also displayed to form a score history interface.
  • the score history interface may be gradually expanded from below the display interface to the position shown in FIGS. 13A to 13E.
  • a time axis 528 is drawn on the trend graph area on the display interface; the patient warning status score corresponding to the time period is displayed at the corresponding position on the time axis 528, and multiple icons are obtained, and multiple icons are on the time axis 528
  • the change trend graph of historical patient early warning status scores is arranged in sequence to form a score history interface.
  • the distance between the corresponding positions on the time axis displaying the patient's warning status score is inversely related to the first measurement frequency.
  • the first measurement frequency and/or the second measurement frequency are adjusted according to the relationship between the patient early warning status score and the total score threshold. In particular, when the first measurement frequency is equal to the second measurement frequency, when the patient warning state score is greater than or equal to the total score threshold, the first measurement frequency and the second measurement frequency are simultaneously increased.
  • the processor receives a plurality of physiological parameters collected from the real-time monitored object within a first period of time to obtain a first set of physiological data; based on the first set of physiological data, at least one is acquired at a first frequency The first patient's early warning status score; receiving a plurality of physiological parameters collected from the real-time monitored object in the second time period to obtain a second set of physiological data; obtaining at least one first based on the second set of physiological data at a second frequency Two patient early warning state scores; and, outputting the at least one first patient early warning state score and the at least one second patient early warning state score in sequence over time.
  • the first frequency is adjusted to a second frequency, where the greater the first patient early warning status score, the The higher the second frequency.
  • the above-mentioned first time period and the second time are different and do not overlap, but have time continuity.
  • the time periods mentioned in this article include at least one moment.
  • At least one first patient early warning state score is correspondingly output at at least one first position on the time axis 528, and at least one first icon 529.1 is obtained;
  • the first icon 529.1 and the second icon 529-2 are arranged in sequence along the time axis along the time change , Forming a trend chart of historical patient warning status scores.
  • the first icon or the second icon may use a specific graphic icon (such as a circled number in FIGS. 13A to 13E), a straight line, a dot, or a text. .
  • a specific graphic icon such as a circled number in FIGS. 13A to 13E
  • a straight line such as a straight line
  • a dot such as a text.
  • a corresponding trend change graph of the historical total score of the early warning can be obtained.
  • the distance interval between two adjacent first positions on the time axis 528 is related to the first frequency
  • the phase interval on the time axis The distance between two adjacent second positions is related to the second frequency.
  • the first warning total scores 1, 1, 2, and 4 are sequentially marked;
  • the second warning total scores 4 and 7 are sequentially marked.
  • the time interval corresponding to the first patient warning state score is two hours (ie, the first frequency)
  • the time interval of the second patient's early warning status score is one hour (ie, the second frequency). Therefore, the adjacent interval on the time axis of the first position (ie, 521-1) is related to the first frequency, while the second position (ie 529-2) The adjacent intervals on the time axis are related to the second frequency.
  • the corresponding first icon or second icon is highlighted.
  • the first icon and the second icon drawn at the first position corresponding to 13:00 and the second position corresponding to 14:00 and 15:00 are distinguished and highlighted.
  • the method can be obtained by modifying the attribute values such as the rendering color of the icon and the shape and size of the icon.
  • each patient's early warning state score is derived from sub-scores corresponding to multiple physiological parameters, for example, the sub-score corresponding to multiple physiological parameters may be summed or weighted to obtain the patient's early warning state score. Therefore, in some of these embodiments, the first patient early warning status score or the second patient early warning status score is determined by sub-scores of multiple physiological parameters.
  • the above prompt information can also be highlighted on the trend graph of the historical patient warning status score.
  • corresponding prompt information is displayed at a position (ie, 529-2) related to the second patient early warning status score, and the prompt information includes the second patient early warning status score neutron
  • the prompt information 530 whose statistical score exceeds (greater than or equal to) the sub-score threshold 3 is shown in FIGS. 13A to 13E by highlighting the sub-score threshold 3, or by marking the first warning total score or the second warning
  • the total score neutron score exceeds (greater than or equal to) the number of parameters of the sub-score threshold 3 to highlight the prompt.
  • the frequencies in the embodiments of the present application can be understood as the patient warning status acquired within a predetermined time period (such as every hour)
  • the number of scores may be understood as the number of patient warning status scores obtained within a predetermined time period (such as every hour), or the number of patient warning status scores obtained within a predetermined time period (such as every hour), and so on.
  • the first frequency in the embodiment of the present application may be to obtain the EWS total score (that is, the first early warning total score) every two hours.
  • the patient early warning status score in this article may be the aforementioned EWS total score.
  • both the first patient early warning status score acquired at the first frequency and the second patient early warning status score acquired at the second frequency and the second frequency acquired at the second frequency can be displayed
  • the patient's early warning status score is greater than the first early warning total score obtained at the first frequency, which can clearly prompt the medical staff to change the patient's body within a preset period of time, effectively avoiding the medical staff's urgent need for relevant values (such as EWS total score)
  • relevant values such as EWS total score
  • the first area 52 further includes a setting button 527, and the user can enter the property setting window by clicking the setting button 527 to select other functions, or page setting, mode setting and other functions.
  • FIGS. 13A to 13B many shortcut controls 538, 535, and 536 are provided.
  • the score detail interface including at least one icon 526) can be gradually expanded in the score interface to be displayed on the display interface, thereby displaying the score detail interface as shown in FIG. 13B.
  • FIG. 13C is another interface diagram of waveforms and/or values corresponding to different physiological parameters at different times according to an embodiment of the present invention. As shown in FIG. 13C, continue to pull the shortcut control 538 in the direction 539 or pull the shortcut at the bottom of the score details interface The control 536 may also continue to output the score history interface to display it on the display interface, as shown in FIG.
  • FIG. 13D which displays the score history interface.
  • FIG. 13D is an interface diagram of a score history provided by an embodiment of the present invention.
  • the status trend interface can be gradually expanded in the scoring interface to be displayed on the display interface, so that the status trend interface is displayed as shown in FIG. 13E
  • FIG. 13E is an interface for displaying the status trend provided by an embodiment of the present invention.
  • Figure based on different gestures for pulling the shortcut control 535 in the direction 540 (for example, different sliding distances along the display interface), a short-term trend change graph or a long-term trend change graph can be developed to present a status trend interface.
  • a short-term trend change graph or a long-term trend change graph may be sequentially developed according to the change of the sliding distance of the gesture along the display interface to present the status trend interface.
  • the foregoing determining the type and direction of interface switching according to the editing gesture, and performing the switching process on the current display interface according to the direction of the interface switching according to the type of interface switching at least includes One of the following steps:
  • the editing gesture expand any one or more of the status trend interface, the score interface, the score details interface, and the score history interface from the edge of the main interface;
  • the short-term trend change graph and the long-term trend change graph in the status trend interface are expanded in the third direction in sequence.
  • the first direction, the second direction, and the third direction may be the same or different.
  • the above-mentioned first direction, second direction, and third direction determine the sliding direction of the editing gesture on the display interface.
  • the third direction is different from the second direction and the first direction. That is to say, the status trend interface is horizontally expanded from the display interface, and at least one of the grading interface, the scoring detail interface, and the grading history interface can be vertically expanded from the display interface.
  • the first direction may be different from the second direction, that is, the first direction may be longitudinally from top to bottom on the display interface, and the second direction may be vertically from bottom to top on the display interface.
  • the aforementioned patient early warning status score may be an EWS score.
  • EWS scoring details section swipe up to view the detailed scoring history information of each parameter of the patient, realize the practical ideas of medical staff in the most simple and easy to learn way, more efficiently cooperate with the work of medical staff, save medical staff The learning cost of the product; on the scoring history interface (such as the patient's EWS scoring history details page), one finger slides back to the scoring interface (EWS comprehensive scoring opinion page) to facilitate medical staff to view the relevant information such as processing suggestions in the fastest way.
  • the scoring history interface such as the patient's EWS scoring history details page
  • one finger continues to slide to the right to view more details of the patient status single parameter (such as the status trend interface), fully considering the actual clinical scenario in product interaction gestures.
  • FIG. 10 is a schematic structural diagram of a monitoring device according to an embodiment of the present invention.
  • the monitoring device in this embodiment may include: one or more data interfaces 1001, one or more processors 1002, a memory 1003, a user interface 1004, the data interface 1001, the processor 1002, and the memory 1003 are connected to each other Among them, the memory 1003 is used to store instructions, and the processor 1002 is used to execute the instructions stored in the memory 1003.
  • the memory 1003 is used to store a computer program.
  • the computer program includes program instructions.
  • the processor 1002 is configured to call the program instructions and perform the following steps:
  • the type of interface switching includes: a main interface switching type or a slave interface switching type;
  • the current display interface is switched according to the direction of the interface switching.
  • the slave interface includes a statistical analysis result based on the physiological data displayed on the master interface.
  • the monitoring device may also adopt the structure described in the foregoing, for details, please refer to the foregoing.
  • processor 1002 of the monitoring device is also configured to call program instructions and perform the following steps:
  • the type of interface switching is the type of switching from the interface
  • the touch direction is determined as the direction of switching from the interface.
  • processor 1002 of the monitoring device is also configured to call program instructions and perform the following steps:
  • processor 1002 of the monitoring device is also configured to call program instructions and perform the following steps:
  • If the type of interface switching is the type of switching from the interface, obtain the target slave interface according to the direction of switching from the interface;
  • the master interface includes: a large number interface and/or a waveform interface; the slave interface is subordinate to the master interface, and the slave interface includes a status trend interface, a score interface, a score details interface, and a score history interface Any one or more.
  • processor 1002 of the monitoring device is also configured to call program instructions and perform the following steps:
  • the current display interface is switched to the interface corresponding to the shortcut control.
  • processor 1002 of the monitoring device determines the type and direction of interface switching according to the editing gesture, and according to the type of interface switching, the current display interface is switched according to the direction of the interface switching, It is also configured to invoke program instructions and perform one of the following steps:
  • the editing gesture expand any one or more of the status trend interface, the score interface, the score details interface, and the score history interface from the edge of the main interface;
  • the short-term trend change graph and the long-term trend change graph in the status trend interface are expanded in the third direction in sequence.
  • the third direction and the second direction are different.
  • the so-called processor 1002 may be a central processing unit (Central Processing Unit, CPU), and the processor may also be other general-purpose processors, digital signal processors (Digital Signal Processor, DSP) , Application Specific Integrated Circuit (Application Specific Integrated Circuit, ASIC), ready-made programmable gate array (Field-Programmable Gate Array, FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc.
  • the general-purpose processor may be a microprocessor or the processor may be any conventional processor or the like.
  • the data interface 1001 may include a touch panel, a microphone, and the like, and the user interface 1004 may include a display (LCD, etc.), a speaker, and the like.
  • the memory 1003 may include a read-only memory and a random access memory, and provide instructions and data to the processor 1002. A portion of the memory 1003 may also include non-volatile random access memory. For example, the memory 1003 may also store device type information.
  • the data interface 1001, the processor 1002, and the memory 1003 described in the embodiments of the present invention may execute the interface operation method applied to the monitoring device provided in the embodiments of the present invention in the embodiment of FIG. 5 or FIG. 6
  • the described implementation may also implement the implementation of the monitoring device described in the embodiments of the present invention, and details are not described herein again.
  • the monitoring device obtains at least one physiological parameter signal within a first time period through a sensor accessory connected to the patient, generates parameter data including at least one physiological parameter based on the at least one physiological parameter signal obtained, and displays Parameter data of the at least one physiological parameter.
  • the monitoring device may receive the user's editing operation on the current display interface of the monitoring device, obtain the editing gesture corresponding to the editing operation, and determine the type and direction of interface switching according to the editing gesture, so that according to the type of interface switching, the The direction of the interface switching processes the current display interface. In this way, the present invention realizes a fast switching operation of the monitoring device interface, and improves the efficiency of the user viewing the monitoring data.
  • an interface operation method applied to a monitoring device is also provided in the embodiments, as shown in FIG. 14, it may include the following steps:
  • Step S141 Obtain at least one physiological parameter signal within a first time period through a sensor accessory connected to the patient, and generate a real-time waveform and/or real-time value including at least one physiological parameter based on the at least one physiological parameter signal obtained previously.
  • Step S142 displaying the real-time waveform and/or real-time value of the at least one physiological parameter on the display interface.
  • the aforementioned at least one physiological parameter signal may be temperature (Temp), diastolic blood pressure, systolic blood pressure (BP-S), heart rate (HR), respiration rate (RR, Respiration) rate collected through the sensor attachment, consciousness level, At least one of blood oxygen (SpO2), oxygen concentration (Supp. O2), electroencephalogram and other physiological parameter signals.
  • At least one physiological parameter signal body temperature (Temp), diastolic blood pressure, systolic blood pressure (BP-S), heart rate (HR), respiratory rate (RR, Respiration), awareness level, blood oxygen (SpO2) can be obtained ), and real-time waveforms and/or real-time values corresponding to various physiological parameters such as oxygen concentration (Supp. O2) and EEG.
  • Temp body temperature
  • BP-S systolic blood pressure
  • HR heart rate
  • RR respiratory rate
  • SpO2 blood oxygen
  • real-time waveforms and/or real-time values corresponding to various physiological parameters such as oxygen concentration (Supp. O2) and EEG.
  • generating parameter data including at least one physiological parameter according to at least one physiological parameter signal obtained within a period of time can be understood as calculating based on the at least one physiological parameter signal obtained within a period of time Obtained such as body temperature (Temp), diastolic blood pressure, systolic blood pressure (BP-S), heart rate (HR), respiration rate (RR, Respiration), consciousness level, blood oxygen (SpO2), and oxygen concentration (Supp.O2 ), EEG and other real-time waveforms and/or real-time values corresponding to various physiological parameters, thereby generating parameter data containing at least one physiological parameter.
  • Temp body temperature
  • BP-S systolic blood pressure
  • HR heart rate
  • RR respiration rate
  • Supp.O2 oxygen concentration
  • the waveform 511 and/or the value 512 at different times are refreshed and displayed in the first area 51 of the display interface in real time, and the waveform 511 and/or the value 512 are the real-time waveform and/or the real-time value.
  • Step S143 Receive the user's editing operation on the current display interface of the monitoring device. Please refer to the relevant description of steps S601 and S503 in the foregoing.
  • Step S144 Obtain the editing gesture corresponding to the editing operation.
  • the editing gesture is a sliding operation.
  • Step S145 Determine the switching direction according to the editing gesture.
  • the monitoring device may determine the direction of interface switching according to the obtained editing gesture.
  • the slave interface in this article may include statistical analysis results based on the physiological data displayed on the main interface, and the statistical analysis results are presented as any one or more of a status trend interface, a score interface, a score details interface, and a score history interface.
  • Types of interface switching include: main interface switching type or slave interface switching type. It should be noted that the master interface switching type is mutual switching between master interfaces, and the slave interface switching type is mutual switching between slave interfaces, or switching between the master interface and the slave interface.
  • the monitoring device may obtain the number of touch points included in the edit gesture according to the obtained edit gesture, and if the number of touch points is greater than a preset threshold, the interface switching may be determined The type is the main interface switching type, and the touch direction included in the editing gesture is determined as the main interface switching direction. If the number of touch points is less than or equal to a preset threshold, it can be determined that the type of interface switching is the type of switching from the interface, and the touch direction is determined as the direction of switching from the interface.
  • the editing gesture may be a sliding operation, then the switching direction is the sliding direction of the gesture on the display interface.
  • step S146 the slave interface is expanded and displayed on the display interface along the switching direction, wherein the slave interface contains the statistical analysis result based on the real-time waveform and/or real-time value.
  • the slave interface includes any one or more of a status trend interface, a score interface, a score details interface, and a score history interface.
  • the unfolding and displaying from the interface on the display interface along the switching direction includes at least one of the following ways:
  • the scoring interface is developed along the first direction from the edge of the display interface.
  • the first direction may be from the edge of the display interface from top to bottom, or from bottom to top, or from left to right, or from right to left.
  • the second way is to expand the score details interface in the second direction.
  • the second direction mentioned herein may be the same as the first direction.
  • the scoring details interface can be developed from the edge of the display interface from bottom to top in the direction 539.
  • the secondary interface (such as the rating details interface) gradually expands and displays on the display interface.
  • the gradual expansion mentioned in this article refers to the sliding on the display interface with the swipe gesture, and the statistical results from the interface will be gradually displayed on the display interface.
  • the scoring details interface may also expand on the display interface along the direction 540 from the edge of the display interface from left to right.
  • the second direction can also be from bottom to top from the edge of the display interface, or from right to left.
  • the score detail interface is expanded from the edge of the score interface along the second direction.
  • the second way is to expand the status trend interface along the third direction.
  • the third direction mentioned herein may also be the same as the first direction and the second direction, and may also be different from the first direction and the second direction.
  • the status trend interface may be expanded from the edge of the display interface from bottom to top in direction 539.
  • the slave interface (such as the status trend interface) is gradually expanded and displayed on the display interface.
  • the status trend interface may also be expanded on the display interface from left to right along the direction 540 from the edge of the display interface, and the result is shown in FIG. 13E.
  • the third direction can also be from the edge of the display interface from bottom to top, or from right to left.
  • the score detail interface is expanded from the edge of the score interface along the third direction.
  • the third direction is perpendicular to the first direction or the second direction.
  • the third way is to expand the scoring history interface in the second direction.
  • the scoring history interface can be expanded from the bottom to the top of the display interface in the direction (as shown by the small arrow above 536 in FIG. 13C).
  • the secondary interface (such as the score history interface) is gradually expanded and displayed on the display interface.
  • the scoring history interface may also expand on the display interface along the direction 540 from the edge of the display interface from left to right.
  • the second direction can also be from bottom to top from the edge of the display interface, or from right to left.
  • the score history interface is expanded along the second direction from the edge of the score interface or the score details interface.
  • the monitoring device may obtain at least one physiological parameter signal within a first time period through a sensor accessory connected to the patient, and generate a real-time waveform containing at least one physiological parameter based on the at least one physiological parameter signal obtained previously and /Real-time value, and display the real-time waveform and/or real-time value of the at least one physiological parameter on the display interface.
  • the monitoring device may receive a user's editing operation on the current display interface of the monitoring device, obtain an editing gesture corresponding to the editing operation, and determine a switching direction according to the editing gesture, and expand and display the interface from the interface in the switching direction
  • the slave interface contains the statistical analysis results based on the real-time waveform and/or real-time value. In this way, the fast switching operation of the monitoring device interface is realized, and the efficiency of the user viewing the monitoring data is improved.
  • a monitoring device which includes:
  • a parameter measurement circuit the parameter measurement circuit is electrically connected to a sensor accessory provided on the patient's body to obtain at least one physiological parameter signal;
  • the slave interface will be expanded and displayed on the display interface, where the slave interface contains the statistical analysis results based on the real-time waveform and/or real-time value.
  • the slave interface includes any one or more of a status trend interface, a score interface, a score details interface, and a score history interface.
  • the processor realizes that the expansion from the interface is displayed on the display interface along the switching direction in at least one of the following ways:
  • the short-term trend change graph and the long-term trend change graph in the status trend interface are expanded in the third direction in sequence.
  • the editing gesture is a sliding operation.
  • the third direction is perpendicular to the second direction or the first direction.
  • the monitoring device obtains at least one physiological parameter signal within a first time period through a sensor accessory connected to the patient, and generates a real-time waveform and/or real-time waveform containing at least one physiological parameter based on the at least one physiological parameter signal obtained previously Value, and display the real-time waveform and/or real-time value of the at least one physiological parameter on the display interface.
  • the monitoring device may receive a user's editing operation on the current display interface of the monitoring device, obtain an editing gesture corresponding to the editing operation, and determine a switching direction according to the editing gesture, and expand and display the interface from the interface in the switching direction
  • the slave interface contains the statistical analysis results based on the real-time waveform and/or real-time value. In this way, the fast switching operation of the monitoring device interface is realized, and the efficiency of the user viewing the monitoring data is improved.
  • the storage medium may be a magnetic disk, an optical disk, a read-only memory (Read-Only Memory, ROM) or a random access memory (Random Access Memory, RAM), etc.

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Theoretical Computer Science (AREA)
  • Human Computer Interaction (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Measuring And Recording Apparatus For Diagnosis (AREA)
  • User Interface Of Digital Computer (AREA)

Abstract

Procédé pour faire fonctionner une interface qui est appliquée à un dispositif de surveillance et dispositif de surveillance, le procédé consistant à : obtenir au moins un signal de paramètre physiologique dans une première période de temps à l'aide d'un accessoire capteur connecté à un patient, et générer des données de paramètre contenant au moins un paramètre physiologique selon le ou les signaux de paramètre physiologique obtenus (S501) ; afficher les données de paramètre du ou des paramètres physiologiques (S502) ; recevoir une opération d'édition d'un utilisateur pour l'interface d'affichage actuelle d'un dispositif de surveillance (S503) ; acquérir un geste d'édition correspondant à l'opération d'édition (S504) ; déterminer le type et la direction de commutation d'interface selon le geste d'édition (S505), les types de commutation d'interface comprenant : un type de commutation d'interface maîtresse ou un type de commutation de sous-interface ; et commuter l'interface d'affichage actuelle en fonction de la direction de commutation d'interface sur la base du type de commutation d'interface (S506). Une opération de commutation rapide pour une interface d'un dispositif de surveillance est mise en oeuvre de la manière décrite de façon à améliorer l'efficacité la visualisation de données de surveillance par l'utilisateur.
PCT/CN2018/125796 2018-12-29 2018-12-29 Procédé d'exploitation d'interface appliqué à un dispositif de surveillance et dispositif de surveillance WO2020133487A1 (fr)

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