Monitoring information display method, monitoring system and related device

CN120077635BActive Publication Date: 2026-09-15SHENZHEN MINDRAY BIO MEDICAL ELECTRONICS CO LTD
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Patent Information

Application Number
CN202280101277.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Priority Date
2022-10-28
Filing Date
2022-11-28
Publication Date
2026-09-15
Estimated Expiration
2042-11-28

AI Technical Summary

Benefits of technology

[0065]This application provides a monitoring information display method, a monitoring system, and related equipment. The monitoring system includes a bedside monitoring device and a mobile monitoring device that can be attached to a human body. The bedside monitoring device has a display mode including a first display mode and a second display mode. The mobile monitoring device has a monitoring mode including a first monitoring mode and a second monitoring mode. The mobile monitoring device operates in the first monitoring mode at a frequency lower than it operates in the second monitoring mode. The lower frequency of the mobile monitoring device operating in the first monitoring mode compared to the second monitoring mode includes at least one of the following two situations: the signal acquisition frequency of the mobile monitoring device operating in the first monitoring mode is lower than the signal acquisition frequency of the mobile monitoring device operating in the second monitoring mode; or the data transmission frequency of the mobile monitoring device operating in the first monitoring mode is lower than the data transmission frequency of the mobile monitoring device operating in the second monitoring mode. When the bedside monitoring device is in the first display mode and the mobile monitoring device is operating in the first monitoring mode, the bedside monitoring... The device acquires first physiological parameter information and wearable activity information, and displays the first physiological parameter information and wearable activity information separately. When the display mode of the bedside monitoring device is the second display mode and the mobile monitoring device is working in the second monitoring mode, the bedside monitoring device acquires at least the second physiological parameter information and displays the second physiological parameter information. The first and second physiological parameter information are obtained by the bedside monitoring device receiving and processing the physiological parameter signals of the human body collected by the mobile monitoring device, or by the bedside monitoring device receiving the physiological parameter information of the human body generated by the mobile monitoring device. The wearable activity information is obtained by the bedside monitoring device receiving and processing at least the non-physiological parameter signals collected by the mobile monitoring device, or by the bedside monitoring device receiving the wearable activity information of the human body generated by the mobile monitoring device. The wearable activity information includes at least one of the following: human posture information, position information, movement time, and sleep time. The technical solution provided in this application embodiment allows the bedside monitoring device to display monitoring information in different display modes for different monitoring modes of the mobile monitoring device, supporting diverse monitoring displays and improving the monitoring display effect.

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Abstract

The embodiment of the application provides a kind of monitoring information display method, monitoring system, bedside monitoring device and mobile monitoring device, monitoring system includes: bedside monitoring device and the mobile monitoring device that can be attached to human body;When the display mode of bedside monitoring device is first display mode and mobile monitoring device works in the first monitoring mode, bedside monitoring device obtains first physiological parameter information and wearing activity information, and distinguishes and displays first physiological parameter information and wearing activity information;When the display mode of bedside monitoring device is second display mode and mobile monitoring device works in the second monitoring mode, bedside monitoring device at least obtains second physiological parameter information, and displays second physiological parameter information.
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Description

[0001] Cross-references to related applications

[0002] This application is based on and claims priority to International Patent Application No. PCT / CN2022 / 128414, filed on October 28, 2022, entitled “Information Display Method and Bedside Monitoring Device”, the entire contents of which are incorporated herein by reference. Technical Field

[0003] This invention relates to the field of medical device technology, and in particular to a monitoring information display method, monitoring system and related equipment. Background Technology

[0004] Bedside monitors can collect and display physiological parameters from the human body, allowing medical staff to view them promptly and determine the patient's condition.

[0005] Currently, mobile monitoring devices can collect physiological parameter signals of the human body as the patient moves. Bedside monitors usually display physiological parameter information determined by the physiological parameter signals collected by the mobile monitoring device or the bedside monitor in a fixed mode, resulting in a limited monitoring display effect. Summary of the Invention

[0006] This application aims to provide a method for displaying monitoring information, a monitoring system, and related equipment.

[0007] The technical solution of this application embodiment is implemented as follows:

[0008] This application provides a monitoring system, including: a bedside monitoring device and a mobile monitoring device that can be attached to a human body;

[0009] The display modes of the bedside monitoring device include a first display mode and a second display mode;

[0010] The mobile monitoring device includes a first monitoring mode and a second monitoring mode.

[0011] Wherein, the mobile monitoring device operates in the first monitoring mode at a frequency lower than it operates in the second monitoring mode; the frequency of the mobile monitoring device operating in the first monitoring mode being lower than its frequency of operating in the second monitoring mode includes at least one of the following two situations: the signal acquisition frequency of the mobile monitoring device operating in the first monitoring mode is lower than its signal acquisition frequency operating in the second monitoring mode, and the data transmission frequency of the mobile monitoring device operating in the first monitoring mode is lower than its data transmission frequency operating in the second monitoring mode.

[0012] When the display mode of the bedside monitoring device is the first display mode and the mobile monitoring device is working in the first monitoring mode, the bedside monitoring device acquires the first physiological parameter information and the wearable activity information, and displays the first physiological parameter information and the wearable activity information separately.

[0013] When the display mode of the bedside monitoring device is the second display mode and the mobile monitoring device is working in the second monitoring mode, the bedside monitoring device acquires at least the second physiological parameter information and displays the second physiological parameter information;

[0014] The first physiological parameter information and the second physiological parameter information are obtained by the bedside monitoring device receiving the physiological parameter signals of the human body collected by the mobile monitoring device and processing the physiological parameter signals of the human body, or by the bedside monitoring device receiving the physiological parameter information of the human body generated by the mobile monitoring device.

[0015] The wearable activity information is obtained by the bedside monitoring device receiving non-physiological parameter signals collected by the mobile monitoring device and at least processing the non-physiological parameter signals, or by the bedside monitoring device receiving wearable activity information of the human body generated by the mobile monitoring device.

[0016] The wearable activity information includes at least one of the following: the human body's posture information, location information, exercise time, and sleep time.

[0017] This application provides a monitoring system display method, applied to a monitoring system, the monitoring system including a bedside monitoring device and a mobile monitoring device that can be attached to a human body, the display mode of the bedside monitoring device including a first display mode and a second display mode, and the monitoring mode of the mobile monitoring device including a first monitoring mode and a second monitoring mode;

[0018] The method includes:

[0019] When the display mode of the bedside monitoring device is the first display mode and the mobile monitoring device is working in the first monitoring mode:

[0020] The bedside monitoring device receives the physiological parameter signals of the human body collected by the mobile monitoring device and processes the physiological parameter signals of the human body to obtain first physiological parameter information, or the bedside monitoring device receives the first physiological parameter information of the human body generated by the mobile monitoring device.

[0021] The bedside monitoring device receives non-physiological parameter signals collected by the mobile monitoring device and processes at least the non-physiological parameter signals to obtain wearable activity information, or the bedside monitoring device receives wearable activity information of the human body generated by the mobile monitoring device, wherein the wearable activity information includes at least one of the human body's posture information, position information, exercise time, and sleep time.

[0022] The bedside monitoring device distinguishes between the first physiological parameter information and the wearable activity information;

[0023] When the display mode of the bedside monitoring device is the second display mode and the mobile monitoring device is working in the second monitoring mode...

[0024] The bedside monitoring device receives the physiological parameter signals of the human body collected by the mobile monitoring device and processes the physiological parameter signals of the human body to obtain second physiological parameter information, or the bedside monitoring device receives the second physiological parameter information of the human body generated by the mobile monitoring device.

[0025] The bedside monitoring device displays the second physiological parameter information.

[0026] This application provides a bedside monitoring device, which includes: a communication unit, a processor, a memory, and a display;

[0027] The communication unit communicates wirelessly with a mobile monitoring device attached to the human body;

[0028] The communication unit is used to receive physiological parameter signals of the human body collected by the mobile monitoring device and process the physiological parameter signals of the human body by the processor to obtain physiological parameter information, or to receive physiological parameter information of the human body generated by the mobile monitoring device.

[0029] The communication unit is also used to receive non-physiological parameter signals collected by the mobile monitoring device and process the non-physiological parameter signals by the processor to obtain wear activity information, or to receive wear activity information of the human body generated by the mobile monitoring device.

[0030] The memory is used to store executable instructions, and the processor is used to execute the executable instructions, causing the processor to perform the following operations:

[0031] When the display mode of the bedside monitoring device is the first display mode, it acquires the first physiological parameter information and the wearable activity information, and controls the display to distinguish and display the first physiological parameter information and the wearable activity information.

[0032] When the display mode of the bedside monitoring device is the second display mode, at least the second physiological parameter information is acquired, and the display is controlled to show the second physiological parameter information;

[0033] The wearable activity information includes at least one of the following: the human body's posture information, location information, exercise time, and sleep time.

[0034] This application provides a mobile monitoring device, wherein the monitoring modes of the mobile monitoring device include a first monitoring mode and a second monitoring mode;

[0035] Wherein, the mobile monitoring device operates in the first monitoring mode at a frequency lower than it operates in the second monitoring mode; the frequency of the mobile monitoring device operating in the first monitoring mode being lower than its frequency of operating in the second monitoring mode includes at least one of the following two situations: the signal acquisition frequency of the mobile monitoring device operating in the first monitoring mode is lower than its signal acquisition frequency operating in the second monitoring mode, and the data transmission frequency of the mobile monitoring device operating in the first monitoring mode is lower than its data transmission frequency operating in the second monitoring mode.

[0036] The mobile monitoring device includes a first acquisition module, a second acquisition module, a processor, and a communication unit, wherein:

[0037] The first acquisition module is used to acquire physiological parameter signals of the human body or process the acquired physiological parameter signals to obtain physiological parameter information of the human body;

[0038] The second acquisition module is used to acquire non-physiological parameter signals or at least process the acquired non-physiological parameter signals to obtain the wearable activity information of the human body;

[0039] The communication unit is used to establish a communication connection with the bedside monitoring equipment;

[0040] The processor is used to perform the following operations:

[0041] When the monitoring mode of the mobile monitoring device is the first monitoring mode, the communication unit sends a first physiological parameter signal or first physiological parameter information to the bedside monitoring device, and sends a non-physiological parameter signal or the wearable activity information, so that the bedside monitoring device displays the first physiological parameter information and the wearable activity information; wherein, the wearable activity information includes at least one of the following: human posture information, location information, exercise time and sleep time;

[0042] When the monitoring mode of the mobile monitoring device is the second monitoring mode, the second physiological parameter signal or second physiological parameter information is sent to the bedside monitoring device through the communication unit so that the bedside monitoring device displays the second physiological parameter information.

[0043] This application provides a method for displaying monitoring information, applied to a bedside monitoring device, wherein the bedside monitoring device communicates with a mobile monitoring device that can be attached to the human body;

[0044] The method includes:

[0045] The bedside monitoring device receives the physiological parameter signals of the human body collected by the mobile monitoring device and processes the physiological parameter signals of the human body to obtain first physiological parameter information, or the bedside monitoring device receives the first physiological parameter information of the human body generated by the mobile monitoring device.

[0046] The bedside monitoring device receives non-physiological parameter signals collected by the mobile monitoring device and processes at least the non-physiological parameter signals to obtain wearable activity information, or the bedside monitoring device receives wearable activity information of the human body generated by the mobile monitoring device.

[0047] The bedside monitoring device distinguishes between the first physiological parameter information and the wearable activity information; wherein, the wearable activity information includes at least one of the following: human posture information, location information, exercise time, and sleep time.

[0048] A bedside monitoring device, the bedside monitoring device comprising: a communication unit, a processor, a memory, and a display;

[0049] The communication unit communicates wirelessly with a mobile monitoring device attached to the human body;

[0050] The communication unit is used to receive physiological parameter signals of the human body collected by the mobile monitoring device and process the physiological parameter signals of the human body by the processor to obtain physiological parameter information, or to receive physiological parameter information of the human body generated by the mobile monitoring device.

[0051] The communication unit is also used to receive non-physiological parameter signals collected by the mobile monitoring device and process the non-physiological parameter signals by the processor to obtain wear activity information, or to receive wear activity information of the human body generated by the mobile monitoring device.

[0052] The memory is used to store executable instructions, and the processor is used to execute the executable instructions, causing the processor to perform the following operations:

[0053] The processor acquires the first physiological parameter information and the wearable activity information, and controls the display to distinguish between the first physiological parameter information and the wearable activity information;

[0054] The wearable activity information includes at least one of the following: human posture information, location information, exercise time, and sleep time.

[0055] This application provides a mobile monitoring device, which includes a first acquisition module, a second acquisition module, a processor, and a communication unit, wherein:

[0056] The first acquisition module is used to acquire physiological parameter signals of the human body or process the acquired physiological parameter signals to obtain physiological parameter information of the human body;

[0057] The second acquisition module is used to acquire non-physiological parameter signals or at least process the acquired non-physiological parameter signals to obtain the wearable activity information of the human body;

[0058] The communication unit is used to establish a communication connection with the bedside monitoring equipment;

[0059] The processor is used to perform the following operations:

[0060] The communication unit sends a first physiological parameter signal or first physiological parameter information to the bedside monitoring device; and sends a non-physiological parameter signal or the wearable activity information to the communication unit, so that the bedside monitoring device displays the first physiological parameter information and the wearable activity information.

[0061] The wearable activity information includes at least one of the following: human posture information, location information, exercise time, and sleep time.

[0062] This application provides a monitoring system, including: a bedside monitoring device and a mobile monitoring device that can be attached to a human body;

[0063] The bedside monitoring device establishes a communication connection with the mobile monitoring device;

[0064] The bedside monitoring device is the aforementioned bedside monitoring device.

[0065] This application provides a monitoring information display method, a monitoring system, and related equipment. The monitoring system includes a bedside monitoring device and a mobile monitoring device that can be attached to a human body. The bedside monitoring device has a display mode including a first display mode and a second display mode. The mobile monitoring device has a monitoring mode including a first monitoring mode and a second monitoring mode. The mobile monitoring device operates in the first monitoring mode at a frequency lower than it operates in the second monitoring mode. The lower frequency of the mobile monitoring device operating in the first monitoring mode compared to the second monitoring mode includes at least one of the following two situations: the signal acquisition frequency of the mobile monitoring device operating in the first monitoring mode is lower than the signal acquisition frequency of the mobile monitoring device operating in the second monitoring mode; or the data transmission frequency of the mobile monitoring device operating in the first monitoring mode is lower than the data transmission frequency of the mobile monitoring device operating in the second monitoring mode. When the bedside monitoring device is in the first display mode and the mobile monitoring device is operating in the first monitoring mode, the bedside monitoring... The device acquires first physiological parameter information and wearable activity information, and displays the first physiological parameter information and wearable activity information separately. When the display mode of the bedside monitoring device is the second display mode and the mobile monitoring device is working in the second monitoring mode, the bedside monitoring device acquires at least the second physiological parameter information and displays the second physiological parameter information. The first and second physiological parameter information are obtained by the bedside monitoring device receiving and processing the physiological parameter signals of the human body collected by the mobile monitoring device, or by the bedside monitoring device receiving the physiological parameter information of the human body generated by the mobile monitoring device. The wearable activity information is obtained by the bedside monitoring device receiving and processing at least the non-physiological parameter signals collected by the mobile monitoring device, or by the bedside monitoring device receiving the wearable activity information of the human body generated by the mobile monitoring device. The wearable activity information includes at least one of the following: human posture information, position information, movement time, and sleep time. The technical solution provided in this application embodiment allows the bedside monitoring device to display monitoring information in different display modes for different monitoring modes of the mobile monitoring device, supporting diverse monitoring displays and improving the monitoring display effect. Attached Figure Description

[0066] Figure 1 This is a schematic diagram of the structure of a monitoring system provided in an embodiment of this application;

[0067] Figure 2 This is a schematic diagram of the structure of a bedside monitoring device provided in an embodiment of this application;

[0068] Figure 3 This is a schematic diagram of the structure of a mobile monitoring device provided in an embodiment of this application;

[0069] Figure 4 An exemplary display interface provided for embodiments of this application. Figure 1 ;

[0070] Figure 5 A schematic diagram illustrating an exemplary display interface region division provided in this application embodiment;

[0071] Figure 6 An exemplary display interface provided for embodiments of this application. Figure 2 ;

[0072] Figure 7 An exemplary display interface provided for embodiments of this application. Figure 3 ;

[0073] Figure 8 An exemplary display interface provided for embodiments of this application. Figure 4 ;

[0074] Figure 9 An exemplary display interface provided for embodiments of this application. Figure 5 ;

[0075] Figure 10 An exemplary display interface provided for embodiments of this application. Figure 6 ;

[0076] Figure 11 An exemplary display interface provided for embodiments of this application. Figure 7 ;

[0077] Figure 12 An exemplary display interface provided for embodiments of this application. Figure 8 ;

[0078] Figure 13 An exemplary display interface provided for embodiments of this application. Figure 9 ;

[0079] Figure 14 An exemplary display interface provided for embodiments of this application. Figure 10 ;

[0080] Figure 15 A flowchart illustrating a monitoring information display method provided in this application embodiment. Figure 1 ;

[0081] Figure 16 A flowchart illustrating a monitoring information display method provided in this application embodiment. Figure 2 ;

[0082] Figure 17 A flowchart illustrating a monitoring information display method provided in this application embodiment. Figure 3 . Detailed Implementation

[0083] To make the objectives, technical solutions, and advantages of the embodiments of this disclosure clearer, the technical solutions of the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this disclosure, not all embodiments. The following embodiments are used to illustrate this disclosure, but are not intended to limit the scope of this disclosure. All other embodiments obtained by those skilled in the art based on the embodiments of this disclosure without creative effort are within the scope of protection of this disclosure.

[0084] In the following description, references are made to “some embodiments,” which describe a subset of all possible embodiments. However, it is understood that “some embodiments” may be the same subset or different subsets of all possible embodiments and may be combined with each other without conflict.

[0085] It should be noted that the terms "first, second, and third" used in the embodiments of this disclosure are merely to distinguish similar objects and do not represent a specific ordering of objects. It is understood that "first, second, and third" can be interchanged in a preset order or sequence where permitted, so that the embodiments of this disclosure described herein can be implemented in an order other than that illustrated or described herein.

[0086] This application provides a monitoring system. Figure 1 This is a schematic diagram of a monitoring system provided in an embodiment of this application. Figure 1 As shown in the embodiments of this application, the monitoring system includes: a bedside monitoring device 1 and a mobile monitoring device 2 that can be attached to the human body; the bedside monitoring device 1 and the mobile monitoring device 2 establish a communication connection.

[0087] It should be noted that, in the embodiments of this application, the bedside monitoring device 1 is typically placed in a fixed location, such as in a ward, and cannot move with the human body, while the mobile monitoring device 2 can be attached to the human body and can move with the human body. Both the bedside monitoring device 1 and the mobile monitoring device 2 can perform medical monitoring of the human body. The communication connection established between the bedside monitoring device 1 and the mobile monitoring device 2 can be a wireless communication connection, or it can be a wired communication connection.

[0088] It should be noted that, in the embodiments of this application, the mobile monitoring device 2 can collect physiological parameter signals of the human body, specifically including signals such as electrocardiogram (ECG) signals, respiratory signals, blood oxygen saturation signals, blood pressure signals, and body temperature signals. These signals, after signal processing, can be used to obtain physiological parameter information such as ECG parameters, respiratory parameters, blood oxygen saturation, blood pressure parameters, and body temperature parameters. The mobile monitoring device 2 includes at least one physiological parameter monitoring module, and the physiological parameter signals are determined by at least one physiological parameter monitoring module.

[0089] It should be noted that, in the embodiments of this application, the mobile monitoring device 2 can collect physiological and non-physiological parameter signals of the human body at different positions. The non-physiological parameter signals are determined by the mobile monitoring device 2 attached to the human body through monitoring its own sensor signals. For example, the mobile monitoring device 2 may also include devices such as a gyroscope and accelerometer, thereby monitoring its own sensor signals to determine wearable activity information such as position and posture information.

[0090] It should be noted that, in the embodiments of this application, the bedside monitoring device 1 can also collect physiological parameter signals of the human body, and the type of physiological parameter signals collected by it can be at least partially the same as that collected by the mobile monitoring device 2. Of course, they can also be completely different. The embodiments of this application do not limit this.

[0091] Figure 2 This is a schematic diagram of a bedside monitoring device provided in an embodiment of this application. Figure 2 As shown in the embodiments of this application, the bedside monitoring device 1 includes: a communication unit 11, a processor 12, a memory 13, and a display 14;

[0092] The communication unit 11 communicates wirelessly with the mobile monitoring device 2 attached to the human body;

[0093] The communication unit 11 is used to receive the physiological parameter signals of the human body collected by the mobile monitoring device 2 and process the physiological parameter signals of the human body by the processor 12 to obtain physiological parameter information, or to receive the physiological parameter information of the human body generated by the mobile monitoring device 2.

[0094] The communication unit 11 is also used to receive non-physiological parameter signals collected by the mobile monitoring device 2 and process the non-physiological parameter signals by the processor to obtain wearable activity information, or to receive wearable activity information of the human body generated by the mobile monitoring device 2.

[0095] Memory 13 is used to store executable instructions, and processor 12 is used to execute the executable instructions, causing processor 12 to perform the following operations:

[0096] The processor 12 acquires the first physiological parameter information and the wearable activity information, and controls the display 14 to distinguish and display the first physiological parameter information and the wearable activity information.

[0097] Wearable activity information includes at least one of the following: human posture information, location information, exercise time, and sleep time.

[0098] Figure 3 This is a schematic diagram of the structure of a mobile monitoring device provided in an embodiment of this application. Figure 3 As shown in the embodiments of this application, the mobile monitoring device 2 includes a first acquisition module 21, a second acquisition module 22, a processor 23, and a communication unit 24, wherein:

[0099] The first acquisition module 21 is used to acquire physiological parameter signals of the human body or to process the acquired physiological parameter signals to obtain physiological parameter information of the human body.

[0100] The second acquisition module 22 is used to acquire non-physiological parameter signals or at least process the acquired non-physiological parameter signals to obtain wearable activity information of the human body;

[0101] Communication unit 24 is used to establish a communication connection with bedside monitoring device 1;

[0102] Processor 23 is used to perform the following operations:

[0103] The communication unit 24 sends a first physiological parameter signal or first physiological parameter information to the bedside monitoring device 1; and sends a non-physiological parameter signal or wearable activity information to the communication unit 24, so that the bedside monitoring device 1 displays the first physiological parameter information and wearable activity information.

[0104] Wearable activity information includes at least one of the following: human posture information, location information, exercise time, and sleep time.

[0105] It should be noted that, in the embodiments of this application, referring to the above-mentioned bedside monitoring device 1 and mobile monitoring device 2, the bedside monitoring device 1 can determine the physiological parameter information and / or wearable activity information of the human body, or the mobile monitoring device 2 can determine the physiological parameter information and / or wearable activity information of the human body. The specific execution entity can be determined according to actual needs and application scenarios, and this application embodiment does not limit it.

[0106] For example, in the embodiments of this application, such as Figure 4As shown, the processor 12 in the bedside monitoring device 1 controls the display 14 to display the following first physiological parameters: electrocardiogram (ECG) parameters, respiration (Resp) parameters, blood oxygen saturation (SpO2) parameters, blood pressure (NIBP) parameters, and body temperature (Temp) parameters. These physiological parameters are displayed only in numerical form. Wearable activity information includes the body's posture information, location information, activity time, sleep time, and EWS score. Figure 4 As shown, in the wearable activity information, posture information is displayed as icons representing human posture, specifically a walking icon. Location information is displayed as text, specifically "2nd Floor, West Corridor of Hepatobiliary Surgery". Exercise time and sleep time are both displayed as numerical values ​​and time bars. The total length of the exercise time bar represents the day, and the filled portion of the time bar represents the period of human exercise. The numerical value of exercise time is the duration of human exercise. The total length of the sleep time bar represents the duration from 8 pm to 8 am, and the filled portion of the time bar represents the period of human sleep. The numerical value of sleep time is the total duration of human sleep. The EWS score is displayed as a numerical value, specifically the value "4" shown in the circular icon in the figure.

[0107] In embodiments of this application, the first physiological parameter information may include multiple first primary parameter data and at least one second primary parameter data. The first primary parameter data are numerical data. Additionally, it may include numerical first auxiliary parameter data and / or at least one waveform data. The font size of the multiple first primary parameter data included in the first physiological parameter information is larger than the font size of the at least one second primary parameter data included in the wearable activity information. Optionally, the importance and / or significance of the first primary parameter data in representing human physiological changes may be higher than that of the second primary parameter data; therefore, displaying the first primary parameter data in a larger font size facilitates viewing.

[0108] In embodiments of this application, the interface displayed on the display 14 can be divided into different display areas, see [link to relevant documentation]. Figure 5 The display area can be divided into: a wearable information area, a parameter area, a status bar, and a hotkey area. The wearable information area is the first display area, and the parameter area is the second display area. The specific area division, number of areas, size of each area, and information displayed can be set according to actual needs. The second display area includes multiple sub-display areas, at least some of which have the same area. Each sub-display area displays one first main parameter data, and the area occupied by the first main parameter data displayed in each sub-display area exceeds a preset threshold for the area of ​​its respective sub-display area. The specific preset threshold can be set according to actual needs and application scenarios; this embodiment does not limit it.

[0109] It should be noted that, in the embodiments of this application, the area occupied by the first primary parameter data displayed in each sub-display area can exceed 40%, 50%, or even a larger proportion of the area of ​​the sub-display area to which it belongs. In this way, the display of the first primary parameter data in each sub-display area is more obvious and prominent, making it easier to view.

[0110] In embodiments of this application, the processor 12 in the bedside monitoring device 1 controls the display 14 to distinguish between first physiological parameter information and wearable activity information, including: controlling the display 14 to use different colors and / or different markers to distinguish between the first physiological parameter information and wearable activity information. See also Figure 4 The primary physiological parameters and wearable activity information can be displayed using multiple colors and markers. Specifically, ECG parameters can be displayed as a green value "92", NIBP parameters as a blue value "98", Respiratory (Resp) parameters as a yellow value "18", and body temperature (Temp) parameters as a white value "36.8", making it easier for medical staff to distinguish different information and view it quickly. Optionally, the primary physiological parameters can be displayed in a primary color / tone, and the wearable activity information in a secondary color / tone, where the primary color and secondary color are different colors, and the primary tone and secondary tone are different tones. Optionally, the different parameters included in the primary physiological parameters can be distinguished by different colors / tones, and the different information included in the wearable activity information can also be distinguished by different colors / tones.

[0111] In the embodiments of this application, the processor 12 in the bedside monitoring device 1 controls the display 14 to distinguish between displaying first physiological parameter information and wearable activity information, including: controlling the display 14 to display wearable activity information in a first display area and display first physiological parameter information in a second display area.

[0112] It should be noted that, in the embodiments of this application, the first display area can be displayed at the top, bottom, left, and right of the interface, and can be collapsed and expanded; its position can be dragged at will, and users can customize it according to their own preferences; the display content of the first display area can be set to be combined at will; the detailed information displayed when clicking on the target information item in the first display area can unobstruct the first physiological parameter information displayed in the second display area.

[0113] It should be noted that, in the embodiments of this application, the first display area and the second display area are arranged vertically or horizontally. See also Figure 5 The first display area and the second display area are arranged side by side, with the first display area located to the left of the second display area.

[0114] In embodiments of this application, the bedside monitoring device adjusts the arrangement of the first display area and the second display area based on adjustment commands input by the user; wherein the adjustment commands include:

[0115] When the first display area and the second display area are arranged vertically, the instruction is used to indicate the vertical position adjustment between the first display area and the second display area, or to indicate that the first display area and the second display area are adjusted to be arranged horizontally.

[0116] When the first display area and the second display area are arranged horizontally, the instruction is used to indicate the horizontal adjustment between the first display area and the second display area, or to indicate that the first display area and the second display area are arranged vertically.

[0117] It is understood that, in the embodiments of this application, the arrangement of the first display area and the second display area can be adjusted independently according to actual needs. For example, the first display area and the second display area can be arranged side by side, with the first display area on the left and the second display area on the right, see [reference needed]. Figure 5 According to the instruction to adjust the first display area from the left to the right, on the interface displayed on the monitor 14, the first display area is adjusted from the left to the right, and correspondingly, the second display area is adjusted from the right to the left.

[0118] It should be noted that, in the embodiments of this application, the adjustment command can specifically be a movement operation, and the processor 12 in the bedside monitoring device 1 can adjust the arrangement position of the display area according to the movement trajectory of the movement operation. For example, see... Figure 5 Users can touch any position within the first display area on the display 14 and then drag it to the right, creating a left-to-right movement trajectory. The first display area will follow this trajectory from left to right, and correspondingly, the second display area can adaptively move from right to left. Furthermore, the adjustment command can also be a click operation, touch gesture, etc., and the specific adjustment command is not limited in this embodiment.

[0119] In the embodiments of this application, the processor 12 in the bedside monitoring device 1 can control the display 14 to display detailed information of the target information item in the third display area based on the user's input operation command for the target information item. The third display area partially or completely covers the first display area.

[0120] Alternatively, based on the user's input of an operation command for the target information item, the display 14 is controlled to display part of the wearable activity information in the first display area, and to display the detailed information of the target information item in the first display area;

[0121] Alternatively, based on the user's input of an operation command for the target information item, the display 14 is controlled to not display the wearable activity information in the first display area, and to display the detailed information of the target information item in the first display area;

[0122] The target information item is any one of the wearable activity information items.

[0123] It is understood that, in the embodiments of this application, when the processor 12 in the bedside monitoring device 1 receives an operation instruction for any item of wearable activity information, i.e., a target information item, such as selecting an operation, it can control the display 14 to display the details of the target information item in a third display area that covers part or all of the first display area. Optionally, the third display area has the same area as the first display area and completely covers the first display area, thus obscuring the wearable activity information. After the medical staff views the details of the target information item, the processor 12 can control the display 14 to stop displaying the third display area. At this time, the first display area will not be covered, so the medical staff can continue to view the wearable activity information displayed in the first display area. Optionally, the processor 12 can control the display 14 to stop displaying the third display area when the display time in the third display area reaches a certain duration, or it can control the display 14 to stop displaying the third display area according to the instruction to stop displaying the third display area when it receives an instruction to stop displaying the third display area. This embodiment of the application does not limit this.

[0124] It is understood that, in the embodiments of this application, when the processor 12 in the bedside monitoring device 1 receives an operation instruction for the target information item, it can also control the display 14 to display part of the wearable activity information in the first display area, and display the details of the target information item in the first display area. This allows medical personnel to view the details of the target information item while simultaneously viewing part of the wearable activity information and the first physiological parameter information, facilitating a more accurate assessment of the patient's physical condition. The part of the wearable activity information displayed in the first area can be set autonomously, or selected according to the importance of the information; for example, selecting the more important part of the wearable activity information for display. This embodiment of the application does not impose any limitations on this selection.

[0125] It is understood that, in the embodiments of this application, when the processor 12 in the bedside monitoring device 1 receives an operation instruction for the target information item, it can also control the display 14 not to display the wearable activity information in the first display area, and to display the details of the target information item in the first display area. At this time, the first physiological parameter information displayed in the second display area will not be obscured, and medical staff can view the first physiological parameter information at the same time while viewing the details of the target information item.

[0126] For example, in an embodiment of this application, see Figure 4 The wearable activity information displayed in the first display area includes the EWS score. Upon receiving an operation command regarding the EWS score, the processor 12 in the bedside monitoring device 1 controls the display 14 to not display the original information in the first display area and instead display detailed information about the EWS score. (See [link to relevant documentation]). Figure 6 Specifically, this includes parameters such as respiration (RR), blood oxygen saturation (SpO2), oxygen concentration (Supp.O2), body temperature (Temp), systolic blood pressure (BP-S), and level of consciousness (LOC) (AVPU). Each parameter corresponds to a sub-score. The LOC (AVPU) parameter is specifically labeled "Alert," indicating a high level of responsiveness. The sub-scores for each parameter are displayed as bar charts, with the bar length correlated to the sub-score value. Longer bars, and their orientation, reflect the trend of the sub-score relative to a baseline threshold. A scale indicating the sub-score's standard can also be displayed above the sub-parameters and sub-scores. Optionally, the displayed information can be closed based on user actions, allowing the information in the first area to continue displaying. See also... Figure 6 The first display area can also display a manual calculation icon (Calcuate), which can be clicked to start calculations related to EWS at any time. It can also display a setup icon, which can be clicked to enter the property settings window to select other functions, set page settings, and set modes. It can also display a reset icon, and can also display a trend chart of historical human body warning status scores, that is, the time axis displayed in the first display area and the different scores marked at different times on the time axis. It can also display the real-time status icon of the human body at the top, that is, the icon formed by the circle and the number "7" above the first display area.

[0127] For example, in an embodiment of this application, see Figure 4 The wearable activity information displayed in the first display area includes sleep time. Upon receiving an operation command regarding sleep time, the processor 12 in the bedside monitoring device 1 controls the display 14 to not display the original information in the first display area and instead display detailed sleep time information. See also... Figure 7 It can display a graph of sleep duration. Furthermore, the sleep duration control is associated with the exercise time and sleep duration details page, therefore... Figure 7 It can also display a bar chart of exercise time, and since the duration of human exercise and sleep can reflect the degree of pain, the displayed details also include the human pain score.

[0128] In the embodiments of this application, see Figure 4 When the first display area displays at least the human body's posture information and other information, the posture information and other information are arranged vertically; the other information includes at least one of location information, movement time, sleep time and warning status assessment, the warning status assessment is determined by the bedside monitoring device receiving physiological parameter signals collected by the mobile monitoring device and at least processing the physiological parameter signals, or by the bedside monitoring device receiving the human body warning status assessment generated by the mobile monitoring device.

[0129] It should be noted that, in the embodiments of this application, when the first display area displays at least the posture information and other information of the human body, the posture information and other information can also be arranged horizontally.

[0130] It should be noted that, in the embodiments of this application, the area occupied by the posture information is not less than a preset proportion of the area of ​​the first display area, such as 1 / 3, 2 / 5, etc.

[0131] In the embodiments of this application, in the above-mentioned monitoring system, the display scheme of the bedside monitoring device 1 is the display mode of the bedside monitoring device 1, which can correspond to the monitoring mode of the mobile monitoring device 2. Different display modes correspond to different monitoring modes, which will be described in detail below.

[0132] In the embodiments of this application, see Figure 1 The monitoring system includes: a bedside monitoring device 1 and a mobile monitoring device 2 that can be attached to the human body;

[0133] The display modes of the bedside monitoring device 1 include a first display mode and a second display mode;

[0134] The monitoring modes of the mobile monitoring device 2 include a first monitoring mode and a second monitoring mode;

[0135] Among them, the frequency at which the mobile monitoring device 2 operates in the first monitoring mode is lower than the frequency at which it operates in the second monitoring mode; the frequency at which the mobile monitoring device 2 operates in the first monitoring mode is lower than the frequency at which it operates in the second monitoring mode includes at least one of the following two situations: the signal acquisition frequency of the mobile monitoring device 2 operating in the first monitoring mode is lower than the signal acquisition frequency of the mobile monitoring device 2 operating in the second monitoring mode, or the data transmission frequency of the mobile monitoring device 2 operating in the first monitoring mode is lower than the data transmission frequency of the mobile monitoring device 2 operating in the second monitoring mode.

[0136] When the display mode of the bedside monitoring device 1 is the first display mode and the mobile monitoring device 2 is working in the first monitoring mode, the bedside monitoring device 1 acquires the first physiological parameter information and the wearable activity information, and displays the first physiological parameter information and the wearable activity information separately.

[0137] When the display mode of the bedside monitoring device 1 is the second display mode and the mobile monitoring device 2 is working in the second monitoring mode, the bedside monitoring device 1 shall at least acquire and display the second physiological parameter information.

[0138] The first physiological parameter information and the second physiological parameter information are obtained by the bedside monitoring device 1 receiving the physiological parameter signals of the human body collected by the mobile monitoring device 2 and processing the physiological parameter signals of the human body, or by the bedside monitoring device 1 receiving the physiological parameter information of the human body generated by the mobile monitoring device 2.

[0139] Wearable activity information is obtained by receiving non-physiological parameter signals collected by mobile monitoring device 2 from bedside monitoring device 1 and at least processing the non-physiological parameter signals, or by receiving wearable activity information of the human body generated by mobile monitoring device 2 from bedside monitoring device 1.

[0140] Wearable activity information includes at least one of the following: body posture information, location information, exercise time, and sleep time.

[0141] It should be noted that, in the embodiments of this application, the first monitoring mode of the mobile monitoring device 2 is actually the wearable mode in which the mobile monitoring device 2 monitors the human body when it moves with the human body over a large range, and the second monitoring mode is actually the continuous mode in which the human body is basically in a specific area, such as in a ward, and the mobile monitoring device 2 monitors the human body when it moves with the human body over a small range.

[0142] It should be noted that, in the embodiments of this application, the first display mode of the bedside monitoring device 1 corresponds to the mobile monitoring device 2 operating in the first monitoring mode; the second display mode of the bedside monitoring device 1 corresponds to the mobile monitoring device 2 operating in the second monitoring mode. The mobile monitoring device 2 can determine the monitoring mode and then notify the bedside monitoring device 1; when the mobile monitoring device 2 operates in the first monitoring mode, the bedside monitoring device 1 displays using the first display mode; when the mobile monitoring device 2 operates in the second monitoring mode, the bedside monitoring device 1 displays using the second display mode. Alternatively, when the bedside monitoring device 1 determines that the mobile monitoring device 2 needs to operate in the first / second monitoring mode, the bedside monitoring device 1 notifies / controls the mobile monitoring device 2 to operate in the corresponding monitoring mode. Optionally, after notification or control, the bedside monitoring device 1 can adjust its own display mode to correspond to the monitoring mode of the mobile monitoring device 2. For example, a user controls the desired display mode on the bedside monitoring device 1 and then notifies the mobile monitoring device 2 of the monitoring mode to be used; when the bedside monitoring device 1 is controlled to display in the first display mode, the mobile monitoring device 2 is notified to operate in the first monitoring mode; when the bedside monitoring device 1 is controlled to display in the second display mode, the mobile monitoring device 2 is notified to operate in the second monitoring mode.

[0143] It is understood that, in the embodiments of this application, see Figure 2 and Figure 3 The bedside monitoring device 1 includes a communication unit 11, and the mobile monitoring device 2 includes a communication unit 24. When the mobile monitoring device 2 is working in the first monitoring mode and the second monitoring mode, it sends information to the communication unit 11 of the bedside monitoring device 1 through the communication unit 24.

[0144] In the embodiments of this application, the first physiological parameter information includes at least numerical physiological parameter information, and the second physiological parameter information includes both numerical and waveform physiological parameter information.

[0145] For example, in the embodiments of this application, such as Figure 4 As shown, when the display mode of the bedside monitoring device 1 is the first display mode, the displayed first physiological parameters include: electrocardiogram (ECG) parameters, respiration (Resp) parameters, blood oxygen saturation (SpO2) parameters, blood pressure (NIBP) parameters, and body temperature (Temp) parameters. These physiological parameters are displayed only in numerical form. Optionally, when the display mode of the bedside monitoring device 1 is the first display mode, it also includes human body early warning assessment, such as the EWS score.

[0146] For example, in the embodiments of this application, such as Figure 8 As shown, when the display mode of the bedside monitoring device 1 is the second display mode, the displayed second physiological parameter information may include: electrocardiogram (ECG) parameters, respiration (Resp) parameters, blood oxygen saturation (SpO2) parameters, blood pressure (NIBP) parameters, body temperature (Temp) parameters, and pulse volume (Pleth) parameters, wherein these parameters are displayed in numerical form and / or waveform form. For example, Figure 8 The ECG parameters are displayed as ECG waveforms and numerical values, while the body temperature (Temp) parameter is displayed numerically, specifically as "36.8". Additionally, as... Figure 8 As shown, other relevant information for these parameters is also displayed, which can be set according to actual needs; this application embodiment does not impose limitations. For example, above the body temperature (Temp) parameter "36.8", the time information "14:30" for this body temperature (Temp) parameter is displayed. Figure 8 As shown, the display 14 can also display historical trend information of the second physiological parameters in numerical form, specifically displaying heart rate (HR), blood oxygen saturation (SpO2), respiratory rate (RR), and blood pressure (NIBP) parameters obtained every 30 minutes from 13:30 to 15:30.

[0147] In embodiments of this application, the wearable activity information may include posture information, which includes at least one of sleep state information, lying down state information, movement state information, fall state information, and standing state information; the bedside monitoring device 1 displays different posture information in different icon and / or text formats. For specific display formats of different posture information, please refer to... Figure 4 , Figures 9 to 11 .

[0148] In the embodiments of this application, the posture information includes normal posture information and abnormal posture information; the bedside monitoring device 1 displays a higher alert intensity corresponding to the abnormal posture information than it displays a higher alert intensity corresponding to the normal posture information.

[0149] It should be noted that the normal posture information and abnormal posture information may be different for different human bodies. For example, for a certain human body, the abnormal posture information may be fall status information, and the normal posture information may be lying down status information, sleeping status information, moving status information, etc. This application embodiment does not limit this. The abnormal posture information may be displayed with a higher prompt intensity than the normal posture information, including but not limited to larger font, more obvious icon main color, or animation.

[0150] In the embodiments of this application, when the display mode of the bedside monitoring device 1 is the first display mode and the mobile monitoring device 2 is working in the first monitoring mode, if the human body's posture information is fall status information, the bedside monitoring device 1 displays the first prompt information corresponding to the fall status information. The first prompt information includes the icon and / or text corresponding to the fall status information, as well as the real-time location information of the human body.

[0151] It should be noted that, in the embodiments of this application, see... Figure 11 Icons used to indicate a human fall can be flashing, animated, or displayed in special colors, and also show the real-time location of the person, allowing medical personnel to see the fall more quickly and provide timely assistance. See also... Figure 11 The notification information corresponding to the fall status may also include a "confirm" icon, which medical staff can click to confirm that the person has fallen. If the icon is not clicked, it can remain displayed or be removed after a certain period of time, with other forms of reminders provided, such as playing an alarm sound. This application embodiment does not limit this.

[0152] It should be noted that, in the embodiments of this application, see... Figure 12When the display mode of the bedside monitoring device 1 is the second display mode and the mobile monitoring device 2 is working in the second monitoring mode, if the posture information of the human body is fall information during the display of the second physiological parameter information, the bedside monitoring device 1 can also display the first prompt information corresponding to the fall state.

[0153] In the embodiments of this application, when the display mode of the bedside monitoring device 1 is the first display mode and the mobile monitoring device 2 is working in the first monitoring mode, the bedside monitoring device 1 acquires the warning status assessment of the human body and displays the warning status assessment; the warning status assessment is determined by the bedside monitoring device 1 receiving the physiological parameter signals collected by the mobile monitoring device 2 and at least processing the physiological parameter signals, or by the bedside monitoring device 1 receiving the warning status assessment of the human body generated by the mobile monitoring device 2.

[0154] In embodiments of this application, the early warning status assessment includes, but is not limited to, EWS statistical information. The EWS statistical information includes at least one of the following: the current EWS score, sub-scores and measurements of N parameters corresponding to the EWS score, and the EWS score change trend, where N is a natural number greater than or equal to 1. See also Figure 4 As shown, the number "4" displayed in the circular icon on the left is the EWS score.

[0155] It should be noted that, in the embodiments of this application, the EWS score mainly assigns corresponding scores to some physiological parameters, and then uses the statistical values ​​of the scores to assess the score characterizing the patient's clinical status or potential risk. For different EWS scores, medical staff can take different measures for the patient. For example, a score of 0-5 indicates that the patient's condition is stable, with no potential risk of critical illness, and can be treated according to general procedures; a score of 5-8 indicates that the patient's condition is unstable, highly variable, and has potential critical illness, requiring priority treatment, timely notification of the patient's situation, and timely arrangement for admission to a specialized ward or even the intensive care unit; a score greater than 9 indicates that the patient's condition is critical, with a significantly increased risk of death, and should be immediately transferred to the intensive care unit or specialized ward for treatment if conditions permit.

[0156] In the embodiments of this application, the measured values ​​of the above N parameters can be values ​​obtained through human physiological parameter information. The monitoring device can store scoring rules corresponding to each parameter. For example, if the heart rate parameter is 51–100, the corresponding score can be 0; if it is 41–50 or 101–110, the corresponding score is 1. The EWS score is determined by the scores of the N parameters, such as the EWS score being determined by five scores corresponding to five parameters. The specific number and type of parameters are not limited in the embodiments of this application.

[0157] It should be noted that in the embodiments of this application, the warning status assessment can be displayed in the first display area. Of course, it is also possible to determine whether to display the warning status assessment based on actual needs and the interface size of the display 14; see [link to relevant documentation]. Figure 13 The EWS score was not displayed.

[0158] In the embodiments of this application, the bedside monitoring device 1 described above distinguishes between displaying the first physiological parameter information and the wearable activity information. Specifically, this is performed when the display mode of the bedside monitoring device 1 is the first display mode and the mobile monitoring device 2 is operating in the first monitoring mode. The specific method of distinguishing the display can be, as described above, displaying the wearable activity information in the first display area and the first physiological parameter information in the second display area, or it can be, as described above, distinguishing the display with different colors and / or different markings, which will not be elaborated further here.

[0159] In the embodiments of this application, the area displaying the second physiological parameter information in the second display mode is the fourth display area;

[0160] In the first display mode, the second display area and the fourth display area in the second display mode occupy at least partially the same area in the display 14; and / or,

[0161] In the first display mode, the area occupied by the first display area is smaller than the area occupied by the second display area; and / or,

[0162] In the first display mode, the total area occupied by the first display area and the second display area on the display 14 is the same as the area occupied by the fourth display area on the display 14 in the second display mode.

[0163] For example, in an embodiment of this application, see Figure 4 In the first display mode, the area of ​​the first display area is smaller than the area of ​​the second display area. For example, see... Figure 4 and Figure 8 The fourth display area in the second display mode, which displays the second physiological parameter information, occupies the same total area as the first display area and the second display area in the first display mode.

[0164] In the embodiments of this application, the bedside monitoring device 1 can determine its display mode based on specific conditions, which will be described in detail below.

[0165] In the embodiments of this application, when a first preset condition is met, the bedside monitoring device 1 determines its display mode to be the first display mode; the first preset condition includes at least one of the following:

[0166] The system receives a first instruction input by the user at the bedside monitoring device 1, which is displayed in a first display mode; it receives a second instruction sent by the mobile monitoring device 2, which instructs the bedside monitoring device to display in the first display mode; the indicator reflecting the communication status between the mobile monitoring device 2 and the bedside monitoring device 1 meets the first indicator condition; and the indicator reflecting the health status of the human body meets the second indicator condition.

[0167] Specifically, if the mobile monitoring device 2 notifies the bedside monitoring device 1 that it is operating in the first monitoring mode, it can serve as a second instruction to instruct the bedside monitoring device 1 to display in the first display mode; or, if the mobile monitoring device 2 transmits data to the bedside monitoring device 1 at a higher frequency to send physiological parameter signals and / or non-physiological parameter signals, it can serve as a second instruction to instruct the bedside monitoring device 1 to display in the first display mode.

[0168] In the embodiments of this application, the indicators reflecting the communication status between the mobile monitoring device 2 and the bedside monitoring device 1 meet the first indicator conditions, including at least one of the following: the communication connection between the mobile monitoring device 2 and the bedside monitoring device 1 is a non-point-to-point wireless communication connection; when the bedside monitoring device 1 is located in the ward, the mobile monitoring device 2 is located outside the ward; the communication distance between the mobile monitoring device 2 and the bedside monitoring device 1 is greater than a first preset distance threshold.

[0169] It should be noted that, in the embodiments of this application, the non-point-to-point wireless communication connection may include a wireless communication connection via an access point (AP) network. Since non-point-to-point communication connections consume a large amount of power, a first monitoring mode with a lower transmission / acquisition frequency can be used in this case to save power, and the corresponding bedside monitoring device 1 can display in a first display mode.

[0170] It is understood that in the embodiments of this application, when the bedside monitoring device 1 is a monitor located in the ward and the mobile monitoring device 2 is located outside the ward, the communication distance between the two is relatively long, and a high transmission frequency / acquisition frequency would result in excessive power consumption. Therefore, in this case, a first monitoring mode with a lower transmission frequency / acquisition frequency can be used to save power consumption, and the corresponding bedside monitoring device 1 can be displayed in the first display mode. Furthermore, when the mobile monitoring device 2 is located outside the ward, meaning the patient wearing it has left the ward, this may indicate an improvement in the patient's condition. In this case, there is no need to use a second monitoring mode with a higher transmission frequency / acquisition frequency; the first monitoring mode with a lower transmission frequency / acquisition frequency can be used, and the corresponding bedside monitoring device 1 can be displayed in the first display mode.

[0171] If the distance between the mobile monitoring device 2 and the bedside monitoring device 1 is greater than a first preset distance threshold, similar to the situation where the bedside monitoring device 1 is inside the ward and the mobile monitoring device 2 is outside the ward, the large distance between them results in a long communication distance and excessive power consumption due to the high transmission / acquisition frequency. Therefore, in this case, a first monitoring mode with a lower transmission / acquisition frequency can be used to save power, and the corresponding bedside monitoring device 1 can be displayed in the first display mode. Furthermore, if the distance between the mobile monitoring device 2 and the bedside monitoring device 1 is large, and the bedside monitoring device 1 is a monitor inside the ward, it also means that the mobile monitoring device 2 may be located outside the ward, i.e., the patient wearing it has left the ward. This may indicate that the patient's condition has improved. In this case, there is no need to use a second monitoring mode with a higher transmission / acquisition frequency; the first monitoring mode with a lower transmission / acquisition frequency can be used, and the corresponding bedside monitoring device 1 can be displayed in the first display mode.

[0172] In the embodiments of this application, the indicators reflecting the health status of the human body meet the second indicator conditions, including at least one of the following: the mobile monitoring device 2 monitors the human body in the second monitoring mode for a period of time reaching a first time threshold; the warning state assessment of the human body is higher than a first assessment threshold, and the warning state assessment is determined at least based on the received physiological parameter signals, or the warning state assessment is sent by the mobile monitoring device 2 and obtained by the mobile monitoring device 2 at least based on the physiological parameter signals; at least one of the physiological parameter information of the human body is normal at the current time and / or in a preset historical time period; and the posture information of the human body is normal state information.

[0173] In this embodiment, at least one of the following is used as an indicator reflecting the patient's health status: monitoring time, EWS score based on monitoring data, the monitoring data itself, and other unexpected events. For monitoring time, the first 8 hours post-surgery are considered crucial, requiring close monitoring of the patient to ensure potential post-operative risks are detected. After this time, the patient's condition generally stabilizes. Therefore, after the mobile monitoring device 2 has monitored the patient for 8 hours, a first monitoring mode with a lower transmission / acquisition frequency can be used. Of course, this is merely an example; in other cases, other time thresholds (collectively referred to as the first time threshold) can be used for judgment.

[0174] In addition, the EWS score based on monitoring data can reflect the patient's overall condition. When the EWS score is higher than the assessment threshold, the patient's overall condition can be considered stable or good. Therefore, the first monitoring mode with a lower transmission frequency / acquisition frequency should be used at this time.

[0175] Furthermore, if the monitoring data is normal, it generally indicates that the patient's overall condition is stable or good. Therefore, the first monitoring mode with a lower transmission / acquisition frequency should be used in this case. Similarly, if the patient does not experience any motor injury, the second monitoring mode with a higher transmission / acquisition frequency is not necessary; the first monitoring mode with a lower transmission / acquisition frequency is sufficient.

[0176] In the embodiments of this application, when the second preset condition is met, the bedside monitoring device 1 determines its display mode as the second display mode; the second preset condition includes at least one of the following: receiving a third instruction input by the user on the bedside monitoring device 1 to display in the second display mode; receiving a fourth instruction sent by the mobile monitoring device 2 to instruct the bedside monitoring device to display in the second display mode; an indicator reflecting the communication status between the mobile monitoring device 2 and the bedside monitoring device 1 meeting the third indicator condition; and an indicator reflecting the health status of the human body meeting the fourth indicator condition.

[0177] Specifically, if the mobile monitoring device 2 notifies the bedside monitoring device 1 that it is operating in the second monitoring mode, it can serve as a third instruction to instruct the bedside monitoring device 1 to display in the second display mode; or, if the mobile monitoring device 2 transmits data to the bedside monitoring device 1 at a lower frequency to send physiological parameter signals and / or non-physiological parameter signals, it can serve as a third instruction to instruct the bedside monitoring device 1 to display in the second display mode.

[0178] In the embodiments of this application, the bedside monitoring device 1 can display a switching operation control; when an operation on the switching operation control is detected, it is determined that a third instruction input by the user on the bedside monitoring device 1 and displayed in a second display mode has been received.

[0179] It should be noted that, in the embodiments of this application, see... Figure 4 The switching operation control is specifically the "Enter 2-minute continuous mode" control shown in the figure. When the bedside monitoring device 1 detects an operation on it, it receives a third instruction, thus switching from... Figure 4 The content displayed in the first display mode shown is switched to... Figure 14 The content displayed in the second display mode is shown.

[0180] It should be noted that, in the embodiments of this application, if the time elapsed after the display mode of the bedside monitoring device 1 switches from the first display mode to the second display mode reaches a first preset time threshold and the second preset condition is not met, the display mode of the bedside monitoring device 1 switches back to the first display mode. For example, if 120 seconds have elapsed after the display mode of the bedside monitoring device 1 switches from the first display mode to the second display mode and the second preset condition is not met, then it switches back to the first display mode. Furthermore, a countdown indicator for switching back to the first display mode can be displayed in the second display mode. Figure 14 The “Wear 120s” shown.

[0181] In the embodiments of this application, the indicator reflecting the communication status between the mobile monitoring device 2 and the bedside monitoring device 1 meets the third indicator condition, including at least one of the following: the communication connection between the mobile monitoring device 2 and the bedside monitoring device 1 is a point-to-point wireless communication connection; the bedside monitoring device 1 is located in the ward, and the mobile monitoring device 2 is located in the ward; the communication distance between the mobile monitoring device 2 and the bedside monitoring device 1 is not greater than the second preset distance threshold.

[0182] The point-to-point wireless communication connections involved in the embodiments of this application may include Bluetooth connections, Wireless Fidelity (WIFI) direct connections, Wireless Medical Telemetry Services (WMTS) direct connections, etc. Because point-to-point communication connections have low power consumption, even with high transmission / acquisition frequencies, the mobile monitoring device will not consume much power. Therefore, the mobile monitoring device 2 can operate in a second monitoring mode, and in this case, the bedside monitoring device 1 can correspondingly use a second display mode.

[0183] It is understood that in the embodiments of this application, when the bedside monitoring device 1 is a monitor located in the ward, and the mobile monitoring device 2 is also located in the ward, since both the mobile monitoring device 2 and the bedside monitoring device 1 are in the same ward, the communication distance between them is short. Even with a high transmission frequency / acquisition frequency, there will not be much power consumption. Therefore, in this case, the mobile monitoring device 2 can operate in the second monitoring mode, and the bedside monitoring device 1 can correspondingly use the second display mode. Furthermore, since the mobile monitoring device 2 is located in the ward, meaning the patient wearing it has not left the ward, this may indicate that the patient's condition is not yet suitable for getting out of bed. In this case, it is even more necessary to use the second monitoring mode with a higher transmission frequency / acquisition frequency to ensure monitoring safety.

[0184] The distance between the mobile monitoring device 2 and the bedside monitoring device 1 is no greater than the second preset distance threshold, similar to the situation where both are in the same ward. Due to the small distance and short communication distance, even with a high transmission / sampling frequency, there will not be much power consumption. Therefore, in this case, the mobile monitoring device 2 can operate in the second monitoring mode, and the bedside monitoring device 1 can correspondingly use the second display mode. Furthermore, the small distance between the mobile monitoring device 2 and the bedside monitoring device 1 means that if the bedside monitoring device 1 is a monitor in the ward, it also means that the mobile monitoring device 2 is also located in the ward, i.e., the patient wearing it has not left the ward. This may indicate that the patient's condition is not yet suitable for getting out of bed. In this case, it is even more necessary to use the second monitoring mode with a higher transmission / sampling frequency to ensure monitoring safety.

[0185] In the embodiments of this application, the indicators reflecting the health status of the human body meet the fourth indicator condition, including at least one of the following: the time for which the mobile monitoring device monitors the human body in the first monitoring mode reaches a second time threshold; the warning state assessment of the human body is lower than a second assessment threshold, and the warning state assessment is determined at least based on the received physiological parameter signals, or the warning state assessment is sent by the mobile monitoring device and obtained by the mobile monitoring device at least based on the physiological parameter signals; at least one of the physiological parameter information of the human body is abnormal at the current time and / or in a preset historical time period; the posture information of the human body is abnormal state information.

[0186] In this embodiment, at least one of the following is used as an indicator reflecting the patient's health status: monitoring time, EWS score based on monitoring data, the monitoring data itself, and other unexpected events. Among these, monitoring time, for example, the first 8 hours post-surgery, is a crucial monitoring period, requiring close monitoring of the patient to ensure potential post-operative risks are detected. Therefore, if the mobile monitoring data monitoring time is less than 8 hours, a second monitoring mode with a higher transmission / sampling frequency should be used. Of course, this is merely an example; in other cases, other time thresholds (collectively referred to as the second time threshold) can be used for judgment.

[0187] In addition, the EWS score based on monitoring data can reflect the patient's overall condition. When the EWS score is lower than the second assessment threshold, it can be considered that the patient's overall condition still requires more monitoring data to ensure safety. Therefore, a second monitoring mode with a higher transmission frequency / sampling frequency should be used at this time.

[0188] In addition, for some important physiological parameters that may reflect changes in the condition if abnormal (such as heart rate, blood oxygen saturation, etc.), once an abnormality occurs, close monitoring should be carried out immediately. In such cases, a second monitoring mode with a higher transmission frequency / sampling frequency should be adopted.

[0189] Furthermore, even if the abnormality of such physiological parameters disappears after a period of monitoring or treatment, close monitoring can continue for a period to ensure that the absence of abnormalities persists before the condition is considered stable and no longer requires close monitoring. This further improves monitoring safety. In such cases, where at least one physiological parameter is currently normal but there was an abnormality within a preset time period prior to the current moment, a second monitoring mode with a higher transmission / sampling frequency is still required. That is, after the abnormality disappears, the transmission mode is not switched immediately, but data continues to be transmitted in the second monitoring mode with a higher transmission / sampling frequency for a preset time period. After the preset time period ends, the system switches back to the first monitoring mode.

[0190] Furthermore, in the event of a patient's movement accident, such as a fall, it may be due to an abnormality in the patient that caused the fall, or an abnormality may occur due to the fall. Therefore, in such cases, a second monitoring mode with a higher transmission / sampling frequency should be used to ensure monitoring safety. After transmitting monitoring data in the second monitoring mode for a period of time, if no abnormalities are detected or if there were abnormalities but they have disappeared, the system can be switched to the first monitoring mode.

[0191] In the embodiments of this application, when the display mode of the bedside monitoring device 1 is the first display mode and the mobile monitoring device 2 is working in the first monitoring mode and the second preset condition is met, the bedside monitoring device 1 displays a second prompt message; the second prompt message is used to indicate that the device will switch from the first display mode to the second display mode after a preset time period.

[0192] For example, in an embodiment of this application, the first prompt information can be a countdown indicator that does not obscure the display of any other information. The countdown indicator includes at least a countdown value. Of course, the countdown indicator may also include a specific marker. The starting value of the countdown value can be a value of a certain duration.

[0193] It is understood that in the embodiments of this application, the second preset condition must be continuously met within a preset time period before the display mode can be switched from the first display mode to the second display mode after the preset time period ends. If the second preset condition is not met within the preset time period, the timer stops at the moment the second preset condition is not met, and the display mode switch from the first display mode to the second display mode will not be performed again. This ensures the accuracy of the display mode switch. For example, the bedside monitoring device 1 is located in the ward, and the communication connection between the mobile monitoring device 2 and the bedside monitoring device 1 is a non-point-to-point wireless communication connection. In reality, this represents the possibility of a human body moving from inside the ward to outside the ward. In actual application scenarios, if the human body only briefly returns to the ward from outside the ward and then moves back outside the ward, there is actually no need to switch from the first display mode to the second display mode during this period. The setting of the preset time period and the detection of whether the second preset condition is continuously met within the preset time period can avoid frequent switching of the display mode.

[0194] In embodiments of this application, the bedside monitoring device 1 may also display a countdown indicator until the next refresh; the countdown indicator includes at least a countdown value.

[0195] For example, in an embodiment of this application, see Figure 4 , Figures 9 to 11 ,as well as Figure 13 The countdown timer for refreshing is displayed in the first display area as "Wear 120s refresh", which does not obscure any information and is displayed in a blank display area.

[0196] It should be noted that, in the embodiments of this application, the bedside monitoring device 1 can also transmit the acquired wearable activity information, first physiological parameter information, or second physiological parameter information to a mobile terminal for display on the mobile terminal.

[0197] The bedside monitoring device 1 provided in this application embodiment can display monitoring information in different display modes according to different monitoring modes of the mobile monitoring device 2, supporting diverse monitoring displays and improving the monitoring display effect.

[0198] This application provides a bedside monitoring device 1, see [link to relevant documentation]. Figure 2 The structure of the bedside monitoring device 1 shown is as follows: the bedside monitoring device 1 includes: a communication unit 11, a processor 12, a memory 13 and a display 14;

[0199] The communication unit 11 communicates wirelessly with the mobile monitoring device 2 attached to the human body;

[0200] The communication unit 11 is used to receive the physiological parameter signals of the human body collected by the mobile monitoring device 2 and process the physiological parameter signals of the human body by the processor 12 to obtain physiological parameter information, or to receive the physiological parameter information of the human body generated by the mobile monitoring device 2.

[0201] The communication unit 11 is also used to receive non-physiological parameter signals collected by the mobile monitoring device 2 and process the non-physiological parameter signals by the processor to obtain wearable activity information, or to receive wearable activity information of the human body generated by the mobile monitoring device 2.

[0202] Memory 13 is used to store executable instructions, and processor 12 is used to execute the executable instructions, causing processor 12 to perform the following operations:

[0203] When the display mode of the bedside monitoring device 1 is the first display mode, it acquires the first physiological parameter information and the wearable activity information, and controls the display 14 to distinguish and display the first physiological parameter information and the wearable activity information.

[0204] When the display mode of the bedside monitoring device 1 is the second display mode, at least the second physiological parameter information is acquired, and the display 14 is controlled to display the second physiological parameter information;

[0205] Wearable activity information includes at least one of the following: human posture information, location information, exercise time, and sleep time.

[0206] In embodiments of this application, the processor 12 controls the display 14 to distinguish between first physiological parameter information and wearable activity information using different colors and / or different markers.

[0207] In an embodiment of this application, the processor 12 controls the display 14 to distinguish between displaying first physiological parameter information and wearable activity information, including: controlling the display 14 to display wearable activity information in a first display area and display first physiological parameter information in a second display area.

[0208] In the embodiments of this application, if any item in the wearable activity information is a target information item, the processor 12 further performs the following operations:

[0209] Based on the user's input of an operation command for the target information item, the control display 14 displays the detailed information of the target information item in the third display area, and the third display area partially or completely covers the first display area;

[0210] Alternatively, based on user-inputted operation commands for the target information item, the control display 14 may display partial information from the wearable activity information in the first display area, and also display detailed information about the target information item in the first display area; or...

[0211] Based on the user's input of an operation command for the target information item, the control display 14 does not display the wearable activity information in the first display area, but displays the details of the target information item in the first display area.

[0212] In the embodiments of this application, when the display mode of the bedside monitoring device 1 is the first display mode, the warning status assessment of the human body is obtained, and the display 14 is controlled to display the warning status assessment; wherein, the warning status assessment is obtained by the processor 12 processing the physiological parameter signal of the human body, or the warning status assessment is received by the communication unit from the warning status assessment generated by the mobile monitoring device 2.

[0213] In embodiments of this application, processor 12 also performs the following operations:

[0214] Under the condition that the first preset condition is met, the display mode of the bedside monitoring device 1 is determined to be the first display mode; the first preset condition includes at least one of the following: receiving a first instruction input by the user on the bedside monitoring device 1 to display in the first display mode; receiving a second instruction sent by the mobile monitoring device 2 to instruct the bedside monitoring device 1 to display in the first display mode; the indicator reflecting the communication status between the mobile monitoring device 2 and the bedside monitoring device 1 meets the first indicator condition; and the indicator reflecting the health status of the human body meets the second indicator condition.

[0215] Under the condition that the second preset condition is met, the display mode of the bedside monitoring device 1 is determined to be the second display mode; the second preset condition includes at least one of the following: receiving a third instruction input by the user on the bedside monitoring device 1 to display in the second display mode, receiving a fourth instruction sent by the mobile monitoring device 2 to instruct the bedside monitoring device 1 to display in the second display mode, the indicator reflecting the communication status between the mobile monitoring device 2 and the bedside monitoring device 1 meeting the third indicator condition, and the indicator reflecting the health status of the human body meeting the fourth indicator condition.

[0216] This application provides a mobile monitoring device 2, which includes a first monitoring mode and a second monitoring mode.

[0217] Among them, the frequency at which the mobile monitoring device 2 operates in the first monitoring mode is lower than the frequency at which it operates in the second monitoring mode; the frequency at which the mobile monitoring device 2 operates in the first monitoring mode is lower than the frequency at which it operates in the second monitoring mode includes at least one of the following two situations: the signal acquisition frequency of the mobile monitoring device 2 operating in the first monitoring mode is lower than the signal acquisition frequency of the mobile monitoring device 2 operating in the second monitoring mode, or the data transmission frequency of the mobile monitoring device 2 operating in the first monitoring mode is lower than the data transmission frequency of the mobile monitoring device 2 operating in the second monitoring mode.

[0218] See Figure 3The structure of the mobile monitoring device 2 shown includes a first acquisition module 21, a second acquisition module 22, a processor 23, and a communication unit 24, wherein:

[0219] The first acquisition module 21 is used to acquire physiological parameter signals of the human body or to process the acquired physiological parameter signals to obtain physiological parameter information of the human body.

[0220] The second acquisition module 22 is used to acquire non-physiological parameter signals or at least process the acquired non-physiological parameter signals to obtain wearable activity information of the human body;

[0221] Communication unit 24 is used to establish a communication connection with bedside monitoring equipment;

[0222] Processor 23 is used to perform the following operations:

[0223] When the monitoring mode of the mobile monitoring device 2 is the first monitoring mode, the communication unit 24 sends a first physiological parameter signal or first physiological parameter information to the bedside monitoring device 1, and sends a non-physiological parameter signal or wearable activity information, so that the bedside monitoring device 1 displays the first physiological parameter information and wearable activity information; wherein, the wearable activity information includes at least one of the following: human posture information, position information, movement time and sleep time;

[0224] When the monitoring mode of the mobile monitoring device 2 is the second monitoring mode, the second physiological parameter signal or second physiological parameter information is sent to the bedside monitoring device 1 through the communication unit 24 so that the bedside monitoring device 1 can display the second physiological parameter information.

[0225] In the embodiments of this application, when a third preset condition is met, the processor 23 determines its monitoring mode as the first monitoring mode; the third preset condition includes at least one of the following: receiving a fifth instruction input by the user on the mobile monitoring device 2 to operate in the first monitoring mode; receiving a sixth instruction sent by the bedside monitoring device 1 to instruct the mobile monitoring device 2 to operate in the first monitoring mode; an indicator reflecting the communication status between the mobile monitoring device 2 and the bedside monitoring device 1 meeting a first indicator condition; and an indicator reflecting the health status of the human body meeting a second indicator condition.

[0226] If the fourth preset condition is met, the processor 23 determines its monitoring mode as the second monitoring mode; the fourth preset condition includes at least one of the following: receiving a seventh instruction input by the user on the mobile monitoring device 2 to operate in the second monitoring mode; receiving an eighth instruction sent by the bedside monitoring device 1 to instruct the mobile monitoring device 2 to display in the second monitoring mode; the indicator reflecting the communication status between the mobile monitoring device 2 and the bedside monitoring device 1 meets the third indicator condition; and the indicator reflecting the health status of the human body meets the fourth indicator condition.

[0227] This application provides a method for displaying monitoring information, applied to a monitoring system. The monitoring system includes a bedside monitoring device and a mobile monitoring device that can be attached to the human body. The bedside monitoring device has a first display mode and a second display mode, and the mobile monitoring device has a first monitoring mode and a second monitoring mode. The method mainly includes the following steps:

[0228] Figure 15 A flowchart illustrating a monitoring information display method provided in this application embodiment. Figure 1 .like Figure 15 As shown, when the display mode of the bedside monitoring device is the first display mode and the mobile monitoring device is working in the first monitoring mode, it includes:

[0229] S101. The bedside monitoring device receives the physiological parameter signals of the human body collected by the mobile monitoring device and processes the physiological parameter signals of the human body to obtain the first physiological parameter information, or the bedside monitoring device receives the first physiological parameter information of the human body generated by the mobile monitoring device.

[0230] S102. The bedside monitoring device receives non-physiological parameter signals collected by the mobile monitoring device and processes at least the non-physiological parameter signals to obtain wearable activity information, or the bedside monitoring device receives wearable activity information of the human body generated by the mobile monitoring device, wherein the wearable activity information includes at least one of the human body's posture information, position information, movement time and sleep time.

[0231] S103, Bedside monitoring equipment distinguishes between primary physiological parameter information and wearable activity information;

[0232] Figure 16 A flowchart illustrating a monitoring information display method provided in this application embodiment. Figure 2 .like Figure 16 As shown, when the display mode of the bedside monitoring device is the second display mode and the mobile monitoring device is working in the second monitoring mode, it includes:

[0233] S201. The bedside monitoring device receives the physiological parameter signals of the human body collected by the mobile monitoring device and processes the physiological parameter signals of the human body to obtain the second physiological parameter information, or the bedside monitoring device receives the second physiological parameter information of the human body generated by the mobile monitoring device.

[0234] S202, Bedside monitoring equipment displays second physiological parameter information.

[0235] In the embodiments of this application, the mobile monitoring device operates at a frequency lower than the frequency of its operation in the first monitoring mode; the frequency of the mobile monitoring device operating at a frequency lower than the frequency of its operation in the second monitoring mode includes at least one of the following two situations: the signal acquisition frequency of the mobile monitoring device operating in the first monitoring mode is lower than the signal acquisition frequency of its operation in the second monitoring mode, and the data transmission frequency of the mobile monitoring device operating in the first monitoring mode is lower than the data transmission frequency of its operation in the second monitoring mode.

[0236] This application provides a method for displaying monitoring information, applied to bedside monitoring devices, which communicate with mobile monitoring devices that can be attached to the human body. Figure 17 A flowchart illustrating a monitoring information display method provided in this application embodiment. Figure 3 .like Figure 17 As shown, the main steps include:

[0237] S301. The bedside monitoring device receives the physiological parameter signals of the human body collected by the mobile monitoring device and processes the physiological parameter signals of the human body to obtain the first physiological parameter information, or the bedside monitoring device receives the first physiological parameter information of the human body generated by the mobile monitoring device.

[0238] S302. The bedside monitoring device receives non-physiological parameter signals collected by the mobile monitoring device and at least processes the non-physiological parameter signals to obtain wearable activity information, or the bedside monitoring device receives wearable activity information of the human body generated by the mobile monitoring device.

[0239] S303, The bedside monitoring device distinguishes between displaying primary physiological parameter information and wearable activity information; wherein, wearable activity information includes at least one of the following: human posture information, location information, exercise time, and sleep time.

[0240] In embodiments of this application, the font size of the multiple first master parameter data included in the first physiological parameter information is larger than the font size of at least one second master parameter data included in the wearable activity information.

[0241] In embodiments of this application, the bedside monitoring device distinguishes between displaying first physiological parameter information and wearable activity information, including: displaying wearable activity information in a first display area and displaying first physiological parameter information in a second display area.

[0242] In the embodiments of this application, based on the user's input of an operation instruction for the target information item, the detailed information of the target information item is displayed in the third display area, and the third display area partially or completely covers the first display area;

[0243] Alternatively, based on user input of an operation command for the target information item, partial information from the wearable activity information is displayed in the first display area, and detailed information of the target information item is also displayed in the first display area;

[0244] Alternatively, based on user input of an operation command for the target information item, the wearable activity information is not displayed in the first display area, but the detailed information of the target information item is displayed in the first display area;

[0245] The target information item is any one of the wearable activity information items.

[0246] Those skilled in the art will understand that embodiments of this application can be provided as methods, systems, or computer program products. Therefore, this application can take the form of hardware embodiments, software embodiments, or embodiments combining software and hardware aspects. Furthermore, this application can take the form of a computer program product implemented on one or more computer-usable storage media (including, but not limited to, disk storage and optical storage) containing computer-usable program code.

[0247] This application is described with reference to flowchart illustrations and / or block diagrams of methods, apparatus (systems), and computer program products according to embodiments of this application. It will be understood that each block of the flowchart illustrations and / or block diagrams, and combinations of blocks in the flowchart illustrations and / or block diagrams, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer, special-purpose computer, embedded processor, or other programmable signal processing apparatus to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable signal processing apparatus, generate instructions for implementing the flowchart... Figure 1 One or more processes and / or boxes Figure 1 A device that provides the functions specified in one or more boxes.

[0248] These computer program instructions may also be stored in a computer-readable storage medium that can direct a computer or other programmable signal processing device to operate in a particular manner, such that the instructions stored in the computer-readable storage medium produce an article of manufacture including instruction means, which are implemented in a process Figure 1 One or more processes and / or boxes Figure 1 The function specified in one or more boxes.

[0249] These computer program instructions can also be loaded onto a computer or other programmable signal processing device to cause a series of operational steps to be performed on the computer or other programmable device to produce a computer-implemented process, thereby providing instructions that execute on the computer or other programmable device for implementing the process. Figure 1 One or more processes and / or boxes Figure 1The steps of the function specified in one or more boxes.

[0250] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.

[0251] Industrial applicability

[0252] This application provides a monitoring information display method, a monitoring system, and related equipment. The monitoring system includes a bedside monitoring device and a mobile monitoring device that can be attached to a human body. The bedside monitoring device has a display mode including a first display mode and a second display mode. The mobile monitoring device has a monitoring mode including a first monitoring mode and a second monitoring mode. The mobile monitoring device operates in the first monitoring mode at a frequency lower than it operates in the second monitoring mode. The lower frequency of the mobile monitoring device operating in the first monitoring mode compared to the second monitoring mode includes at least one of the following two situations: the signal acquisition frequency of the mobile monitoring device operating in the first monitoring mode is lower than the signal acquisition frequency of the mobile monitoring device operating in the second monitoring mode; or the data transmission frequency of the mobile monitoring device operating in the first monitoring mode is lower than the data transmission frequency of the mobile monitoring device operating in the second monitoring mode. When the bedside monitoring device is in the first display mode and the mobile monitoring device is operating in the first monitoring mode, the bedside monitoring... The device acquires first physiological parameter information and wearable activity information, and displays the first physiological parameter information and wearable activity information separately. When the display mode of the bedside monitoring device is the second display mode and the mobile monitoring device is working in the second monitoring mode, the bedside monitoring device acquires at least the second physiological parameter information and displays the second physiological parameter information. The first and second physiological parameter information are obtained by the bedside monitoring device receiving and processing the physiological parameter signals of the human body collected by the mobile monitoring device, or by the bedside monitoring device receiving the physiological parameter information of the human body generated by the mobile monitoring device. The wearable activity information is obtained by the bedside monitoring device receiving and processing at least the non-physiological parameter signals collected by the mobile monitoring device, or by the bedside monitoring device receiving the wearable activity information of the human body generated by the mobile monitoring device. The wearable activity information includes at least one of the following: human posture information, position information, movement time, and sleep time. The technical solution provided in this application embodiment allows the bedside monitoring device to display monitoring information in different display modes for different monitoring modes of the mobile monitoring device, supporting diverse monitoring displays and improving the monitoring display effect.

Claims

1. A monitoring system comprising: Bedside monitoring devices and mobile monitoring devices that can be attached to the human body; The display modes of the bedside monitoring device include a first display mode and a second display mode; The mobile monitoring device includes a first monitoring mode and a second monitoring mode. The first display mode of the bedside monitoring device corresponds to the mobile monitoring device operating in the first monitoring mode; the second display mode of the bedside monitoring device corresponds to the mobile monitoring device operating in the second monitoring mode. Wherein, the mobile monitoring device operates in the first monitoring mode at a frequency lower than it operates in the second monitoring mode; the frequency of the mobile monitoring device operating in the first monitoring mode being lower than its frequency of operating in the second monitoring mode includes at least one of the following two situations: the signal acquisition frequency of the mobile monitoring device operating in the first monitoring mode is lower than its signal acquisition frequency operating in the second monitoring mode, and the data transmission frequency of the mobile monitoring device operating in the first monitoring mode is lower than its data transmission frequency operating in the second monitoring mode. When the display mode of the bedside monitoring device is the first display mode and the mobile monitoring device is working in the first monitoring mode, the bedside monitoring device acquires the first physiological parameter information and the wearable activity information, and displays the first physiological parameter information and the wearable activity information separately. When the display mode of the bedside monitoring device is the second display mode and the mobile monitoring device is working in the second monitoring mode, the bedside monitoring device acquires at least the second physiological parameter information and displays the second physiological parameter information; The first physiological parameter information and the second physiological parameter information are obtained by the bedside monitoring device receiving the physiological parameter signals of the human body collected by the mobile monitoring device and processing the physiological parameter signals of the human body, or by the bedside monitoring device receiving the physiological parameter information of the human body generated by the mobile monitoring device. The wearable activity information is obtained by the bedside monitoring device receiving non-physiological parameter signals collected by the mobile monitoring device and at least processing the non-physiological parameter signals, or by the bedside monitoring device receiving wearable activity information of the human body generated by the mobile monitoring device. The wearable activity information includes at least one of the following: the human body's posture information, location information, exercise time, and sleep time.

2. The monitoring system of claim 1, wherein, The first physiological parameter information includes at least numerical physiological parameter information; The second physiological parameter information includes numerical physiological parameter information and waveform physiological parameter information.

3. The monitoring system of claim 1, wherein, The bedside monitoring device distinguishes between the first physiological parameter information and the wearable activity information, including: The first physiological parameter information and the wearable activity information are displayed separately using different colors and / or different markers.

4. The monitoring system according to claim 1, wherein, The bedside monitoring device distinguishes between the first physiological parameter information and the wearable activity information, including: The wearable activity information is displayed in the first display area, and the first physiological parameter information is displayed in the second display area.

5. The monitoring system according to claim 4, wherein, The first display area and the second display area are arranged vertically or horizontally.

6. The monitoring system according to claim 5, wherein, The bedside monitoring device adjusts the arrangement of the first display area and the second display area based on the adjustment commands input by the user; The adjustment instructions include: When the first display area and the second display area are arranged vertically, the instruction is used to indicate the vertical position adjustment between the first display area and the second display area, or to indicate the adjustment of the first display area and the second display area to a horizontal arrangement. When the first display area and the second display area are arranged horizontally, the instruction is used to indicate the horizontal position adjustment between the first display area and the second display area, or to indicate the first display area and the second display area to be arranged vertically.

7. The monitoring system according to claim 4, wherein, Any one of the wearable activity information items is a target information item. Based on the user's input operation command for the target information item, the bedside monitoring device displays detailed information of the target information item in a third display area, which partially or completely covers the first display area; or, Based on the user's input operation command for the target information item, the bedside monitoring device displays part of the wearable activity information in the first display area, and displays detailed information of the target information item in the first display area; or, Based on the user's input operation command for the target information item, the bedside monitoring device does not display the wearable activity information in the first display area, but displays the detailed information of the target information item in the first display area.

8. The monitoring system according to claim 4, wherein, The area displaying the second physiological parameter information in the second display mode is the fourth display area; In the first display mode, the second display area and the fourth display area in the second display mode share at least partially identical occupied areas on the display. And / or, In the first display mode, the area occupied by the first display area is smaller than the area occupied by the second display area; And / or, In the first display mode, the total area occupied by the first display area and the second display area on the display is the same as the area occupied by the fourth display area on the display in the second display mode.

9. The monitoring system according to claim 1, wherein, When the display mode of the bedside monitoring device is the first display mode and the mobile monitoring device is working in the first monitoring mode, the bedside monitoring device acquires the warning status assessment of the human body and displays the warning status assessment; the warning status assessment is determined by the bedside monitoring device receiving physiological parameter signals collected by the mobile monitoring device and at least processing the physiological parameter signals, or by the bedside monitoring device receiving the warning status assessment of the human body generated by the mobile monitoring device.

10. The monitoring system according to claim 1, wherein, The posture information includes at least one of the following: sleep state information, lying flat state information, movement state information, fall state information, and standing state information; The bedside monitoring device displays different posture information using different icons and / or text.

11. The monitoring system according to claim 1, wherein, The attitude information includes normal attitude information and abnormal attitude information; The bedside monitoring device displays a higher alert intensity for abnormal posture information than it displays for normal posture information.

12. The monitoring system according to claim 1, wherein, The wearable activity information includes the posture information of the human body. When the display mode of the bedside monitoring device is the first display mode and the mobile monitoring device is working in the first monitoring mode, if the posture information of the human body is fall status information, the bedside monitoring device displays the first prompt information corresponding to the fall status information. The first prompt information includes the icon and / or text corresponding to the fall status information, as well as the real-time location information of the human body.

13. The monitoring system according to claim 1, wherein, Under the condition that the first preset condition is met, the bedside monitoring device determines its display mode to be the first display mode; The first preset condition includes at least one of the following: The system receives a first instruction input by the user into the bedside monitoring device, which is displayed in the first display mode; receives a second instruction sent by the mobile monitoring device, which instructs the bedside monitoring device to display in the first display mode; an indicator reflecting the communication status between the mobile monitoring device and the bedside monitoring device satisfies a first indicator condition; and an indicator reflecting the health status of the human body satisfies a second indicator condition.

14. The monitoring system according to claim 13, wherein, The indicator reflecting the communication status between the mobile monitoring device and the bedside monitoring device satisfies the first indicator condition, including at least one of the following: The communication connection between the mobile monitoring device and the bedside monitoring device is a non-point-to-point wireless communication connection. When the bedside monitoring device is located inside the ward, the mobile monitoring device is located outside the ward; The communication distance between the mobile monitoring device and the bedside monitoring device is greater than a first preset distance threshold.

15. The monitoring system according to claim 13, wherein, The indicator reflecting the health status of the human body meets the second indicator condition, including at least one of the following: The mobile monitoring device monitors the human body in the second monitoring mode for a time that reaches a first time threshold. The warning state assessment of the human body is higher than the first assessment threshold. The warning state assessment is determined at least based on the received physiological parameter signal, or the warning state assessment is sent by the mobile monitoring device and obtained by the mobile monitoring device through processing at least based on the physiological parameter signal. At least one of the physiological parameters of the human body is normal at the current moment and / or in a preset historical time period; The posture information of the human body is normal state information.

16. The monitoring system according to claim 1, wherein, Under the condition that the second preset condition is met, the bedside monitoring device determines its display mode to be the second display mode; The second preset condition includes at least one of the following: receiving a third instruction input by the user on the bedside monitoring device and displayed in the second display mode; receiving a fourth instruction sent by the mobile monitoring device to instruct the bedside monitoring device to display in the second display mode; the indicator reflecting the communication status between the mobile monitoring device and the bedside monitoring device meeting the third indicator condition; and the indicator reflecting the health status of the human body meeting the fourth indicator condition.

17. The monitoring system according to claim 16, wherein, The indicator reflecting the communication status between the mobile monitoring device and the bedside monitoring device meets the third indicator condition, including at least one of the following: The communication connection between the mobile monitoring device and the bedside monitoring device is a point-to-point wireless communication connection. When the bedside monitoring device is located in the ward, the mobile monitoring device is located within the ward; The communication distance between the mobile monitoring device and the bedside monitoring device is no greater than a second preset distance threshold.

18. The monitoring system according to claim 16, wherein, The indicator reflecting the health status of the human body meets the fourth indicator condition, including at least one of the following: The mobile monitoring device monitors the human body in the first monitoring mode for a period of time that reaches a second time threshold. The warning state assessment of the human body is lower than the second assessment threshold. The warning state assessment is determined at least based on the received physiological parameter signal, or the warning state assessment is sent by the mobile monitoring device and obtained by the mobile monitoring device through processing at least based on the physiological parameter signal. At least one of the physiological parameters of the human body is abnormal at the current moment and / or in a preset historical time period; The posture information of the human body is abnormal state information.

19. The monitoring system according to claim 16, wherein, When the display mode of the bedside monitoring device is the first display mode and the mobile monitoring device is working in the first monitoring mode and meets the second preset conditions, the bedside monitoring device displays a second prompt message; the second prompt message is used to indicate that the device will switch from the first display mode to the second display mode after a preset time period.

20. The monitoring system according to claim 1, wherein, The bedside monitoring device displays a countdown indicator until the next refresh; the countdown indicator includes at least the countdown value.

21. The monitoring system according to claim 4, wherein, When the first display area displays at least the posture information and other information of the human body, the posture information and the other information are arranged vertically. The other information includes at least one of location information, exercise time, sleep time, and warning status assessment. The warning status assessment is determined by the bedside monitoring device receiving physiological parameter signals collected by the mobile monitoring device and at least processing the physiological parameter signals, or by the bedside monitoring device receiving the warning status assessment of the human body generated by the mobile monitoring device.

22. A method for displaying monitoring information, applied to a monitoring system, the monitoring system including a bedside monitoring device and a mobile monitoring device attachable to a human body, the bedside monitoring device having a display mode including a first display mode and a second display mode, the mobile monitoring device having a monitoring mode including a first monitoring mode and a second monitoring mode; the first display mode of the bedside monitoring device corresponding to the mobile monitoring device operating in the first monitoring mode; the second display mode of the bedside monitoring device corresponding to the mobile monitoring device operating in the second monitoring mode; The method includes: When the display mode of the bedside monitoring device is the first display mode and the mobile monitoring device is working in the first monitoring mode: The bedside monitoring device receives the physiological parameter signals of the human body collected by the mobile monitoring device and processes the physiological parameter signals of the human body to obtain first physiological parameter information, or the bedside monitoring device receives the first physiological parameter information of the human body generated by the mobile monitoring device. The bedside monitoring device receives non-physiological parameter signals collected by the mobile monitoring device and processes at least the non-physiological parameter signals to obtain wearable activity information, or the bedside monitoring device receives wearable activity information of the human body generated by the mobile monitoring device, wherein the wearable activity information includes at least one of the human body's posture information, position information, exercise time, and sleep time. The bedside monitoring device distinguishes between the first physiological parameter information and the wearable activity information; When the display mode of the bedside monitoring device is the second display mode and the mobile monitoring device is working in the second monitoring mode... The bedside monitoring device receives the physiological parameter signals of the human body collected by the mobile monitoring device and processes the physiological parameter signals of the human body to obtain second physiological parameter information, or the bedside monitoring device receives the second physiological parameter information of the human body generated by the mobile monitoring device. The bedside monitoring device displays the second physiological parameter information.

23. The method according to claim 22, wherein, The mobile monitoring device operates at a lower frequency in the first monitoring mode than it operates at the lower frequency in the second monitoring mode; the lower frequency of the mobile monitoring device operating in the first monitoring mode than it operates at the lower frequency in the second monitoring mode includes at least one of the following two situations: the signal acquisition frequency of the mobile monitoring device operating in the first monitoring mode is lower than the signal acquisition frequency of it operating in the second monitoring mode, and the data transmission frequency of the mobile monitoring device operating in the first monitoring mode is lower than the data transmission frequency of it operating in the second monitoring mode.

24. A bedside monitoring device, the bedside monitoring device comprising: Communication unit, processor, memory, and display; The communication unit communicates wirelessly with a mobile monitoring device attached to the human body; The communication unit is used to receive physiological parameter signals of the human body collected by the mobile monitoring device and process the physiological parameter signals of the human body by the processor to obtain physiological parameter information, or to receive physiological parameter information of the human body generated by the mobile monitoring device. The communication unit is also used to receive non-physiological parameter signals collected by the mobile monitoring device and process the non-physiological parameter signals by the processor to obtain wear activity information, or to receive wear activity information of the human body generated by the mobile monitoring device. The memory is used to store executable instructions, and the processor is used to execute the executable instructions, causing the processor to perform the following operations: When the display mode of the bedside monitoring device is the first display mode, it acquires the first physiological parameter information and the wearable activity information, and controls the display to distinguish and display the first physiological parameter information and the wearable activity information. When the display mode of the bedside monitoring device is the second display mode, at least the second physiological parameter information is acquired, and the display is controlled to show the second physiological parameter information; Wherein, the first display mode of the bedside monitoring device corresponds to the mobile monitoring device operating in the first monitoring mode; the second display mode of the bedside monitoring device corresponds to the mobile monitoring device operating in the second monitoring mode; the wearable activity information includes at least one of the human body's posture information, location information, exercise time, and sleep time.

25. The bedside monitoring device according to claim 24, wherein, The control of the display to distinguish between the first physiological parameter information and the wearable activity information includes: The display is controlled to use different colors and / or different markers to distinguish between the first physiological parameter information and the wearable activity information.

26. The bedside monitoring device according to claim 24, wherein, The control of the display to distinguish between the first physiological parameter information and the wearable activity information includes: The display is controlled to show the wearable activity information in the first display area and the first physiological parameter information in the second display area.

27. The bedside monitoring device according to claim 26, wherein, If any one of the wearable activity information items is a target information item, the processor further performs the following operations: Based on the user's input operation command for the target information item, the display is controlled to display the detailed information of the target information item in a third display area, wherein the third display area partially or completely covers the first display area; Alternatively, based on user input of an operation command for the target information item, the display is controlled to show a portion of the wearable activity information in the first display area, and detailed information of the target information item is also shown in the first display area; or, Based on the user's input operation command for the target information item, the display is controlled to not display the wearable activity information in the first display area, and to display the detailed information of the target information item in the first display area.

28. The bedside monitoring device according to claim 24, wherein, The processor also performs the following operations: When the display mode of the bedside monitoring device is the first display mode, the device acquires the warning status assessment of the human body and controls the display to show the warning status assessment. The warning status assessment is obtained by the processor processing the physiological parameter signals of the human body, or the warning status assessment is obtained by the communication unit receiving the warning status assessment generated by the mobile monitoring device.

29. The bedside monitoring device according to claim 24, wherein, The processor also performs the following operations: Under the condition that the first preset condition is met, the display mode of the bedside monitoring device is determined to be the first display mode; The first preset condition includes at least one of the following: receiving a first instruction input by the user on the bedside monitoring device and displayed in the first display mode; receiving a second instruction sent by the mobile monitoring device to instruct the bedside monitoring device to display in the first display mode; an indicator reflecting the communication status between the mobile monitoring device and the bedside monitoring device meeting the first indicator condition; and an indicator reflecting the health status of the human body meeting the second indicator condition. Under the condition that the second preset condition is met, the display mode of the bedside monitoring device is determined to be the second display mode; The second preset condition includes at least one of the following: receiving a third instruction input by the user on the bedside monitoring device and displayed in the second display mode; receiving a fourth instruction sent by the mobile monitoring device to instruct the bedside monitoring device to display in the second display mode; the indicator reflecting the communication status between the mobile monitoring device and the bedside monitoring device meeting the third indicator condition; and the indicator reflecting the health status of the human body meeting the fourth indicator condition.

30. A mobile monitoring device, wherein the monitoring modes of the mobile monitoring device include a first monitoring mode and a second monitoring mode; in, The mobile monitoring device operates at a lower frequency in the first monitoring mode than it operates at the lower frequency in the second monitoring mode; the lower frequency of the mobile monitoring device operating in the first monitoring mode than it operates at the lower frequency in the second monitoring mode includes at least one of the following two situations: the signal acquisition frequency of the mobile monitoring device operating in the first monitoring mode is lower than the signal acquisition frequency of it operating in the second monitoring mode, and the data transmission frequency of the mobile monitoring device operating in the first monitoring mode is lower than the data transmission frequency of it operating in the second monitoring mode. The mobile monitoring device includes a first acquisition module, a second acquisition module, a processor, and a communication unit, wherein: The first acquisition module is used to acquire physiological parameter signals of the human body or process the acquired physiological parameter signals to obtain physiological parameter information of the human body; The second acquisition module is used to acquire non-physiological parameter signals or at least process the acquired non-physiological parameter signals to obtain the wearable activity information of the human body; The communication unit is used to establish a communication connection with the bedside monitoring equipment; The processor is used to perform the following operations: When the monitoring mode of the mobile monitoring device is the first monitoring mode, the communication unit sends a first physiological parameter signal or first physiological parameter information to the bedside monitoring device, and sends a non-physiological parameter signal or the wearable activity information, so that the bedside monitoring device displays the first physiological parameter information and the wearable activity information; wherein, the wearable activity information includes at least one of the following: human posture information, location information, exercise time and sleep time; When the monitoring mode of the mobile monitoring device is the second monitoring mode, the second physiological parameter signal or second physiological parameter information is sent to the bedside monitoring device through the communication unit so that the bedside monitoring device displays the second physiological parameter information. The first display mode of the bedside monitoring device corresponds to the mobile monitoring device operating in the first monitoring mode; the second display mode of the bedside monitoring device corresponds to the mobile monitoring device operating in the second monitoring mode.

31. The mobile monitoring device according to claim 30, wherein, Under the condition that the third preset condition is met, the processor determines its monitoring mode to be the first monitoring mode; The third preset condition includes at least one of the following: The system receives a fifth instruction from the user inputting a command to operate in the first monitoring mode on the mobile monitoring device; receives a sixth instruction from the bedside monitoring device to instruct the mobile monitoring device to operate in the first monitoring mode; the indicator reflecting the communication status between the mobile monitoring device and the bedside monitoring device meets the first indicator condition; and the indicator reflecting the health status of the human body meets the second indicator condition. Under the condition that the fourth preset condition is met, the processor determines its monitoring mode to be the second monitoring mode; The fourth preset condition includes at least one of the following: receiving a seventh instruction input by the user into the mobile monitoring device to operate in the second monitoring mode; receiving an eighth instruction sent by the bedside monitoring device to instruct the mobile monitoring device to display in the second monitoring mode; the indicator reflecting the communication status between the mobile monitoring device and the bedside monitoring device meeting the third indicator condition; and the indicator reflecting the health status of the human body meeting the fourth indicator condition.

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