Wearable mobile monitoring device, monitoring system and data transmission method

CN119997867APending Publication Date: 2025-05-13SHENZHEN MINDRAY BIO MEDICAL ELECTRONICS CO LTD
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Patent Information

Application Number
CN202280100817.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2022-10-28
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

When taking into account the device life and continuous real-time monitoring, the existing wireless monitoring equipment is large in size, resulting in poor wearing comfort, and cannot effectively monitor the risk of disease changes during the patient's activities during the postoperative recovery period.

Method used

Provide a wearable mobile monitoring device, including sensors, processors and wireless communication units, that dynamically adjusts the transmission method of monitoring data according to preset conditions through different transmission modes and frequency switching to meet high monitoring needs and low power consumption requirements to achieve flexible communication between monitoring equipment and mobile monitoring equipment.

Benefits of technology

While reducing power consumption as much as possible, it meets the monitoring needs of various complex scenarios, improves the device's small size and wearing comfort, and ensures effective monitoring of patients in the postoperative recovery period.

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Abstract

A wearable mobile monitoring device (100), a monitoring system (20) and a data transmission method (600), the device (100) comprising a sensor (110), a processor (120) and a wireless communication unit (130), the sensor (110) being configured to acquire a signal characterizing at least one physical sign parameter of a human body; the processor (120) is used for obtaining monitoring data based on the signals obtained by the sensor (110); controlling the wireless communication unit (130) to establish a communication connection with the monitoring device (200), and transmitting the monitoring data to the monitoring device (200), comprising: under a first preset condition, transmitting the monitoring data corresponding to a signal acquired at a first acquisition frequency in a first transmission mode (S631); transmitting the monitoring data in a second transmission mode under a second preset condition (S632); and when the monitoring data is transmitted in the second transmission mode, if a third preset condition is detected, switching to a third transmission mode to transmit the monitoring data corresponding to the signal acquired at the third acquisition frequency, and when the transmission duration after switching to the third transmission mode reaches a first preset time threshold and the first preset condition is not detected, transmitting the monitoring data corresponding to the signal acquired at the third acquisition frequency to the second transmission mode. And switching back to the second transmission mode (S633).
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Description

Wearable mobile monitoring device, monitoring system and data transmission method

[0001] manual Technical Field

[0002] The present application generally relates to the technical field of medical monitoring equipment, and more specifically to a wearable mobile monitoring device, a monitoring system, and a data transmission method. Background Art

[0003] For patients recovering from surgery, clinical advice is to get out of bed and move around as soon as possible to promote recovery. However, there's a risk of condition changes during recovery, and this risk increases with activity. Consequently, various wireless monitoring devices have emerged to monitor changes in a patient's vital signs during activity. Current wireless monitoring devices, designed to balance battery life with continuous, real-time monitoring to ensure timely identification of risk changes, are often bulky and uncomfortable for patients.

[0004] Summary of the Invention

[0005] The present application provides a wearable mobile monitoring device, a monitoring system and a data transmission method, which can solve the above problems.

[0006] According to one aspect of the present application, a wearable mobile monitoring device is provided, which includes a sensor, a processor and a wireless communication unit, wherein: the sensor is used to obtain a signal representing at least one vital sign parameter of a human body; the processor is used to perform the following operations: obtain monitoring data corresponding to the signal based on the signal obtained by the sensor; control the wireless communication unit to transmit the monitoring data to the monitoring device through a communication connection established with a monitoring device outside the human body; the transmitting of the monitoring data to the monitoring device includes: under a first preset condition, transmitting the monitoring data corresponding to the signal obtained at a first acquisition frequency in a first transmission mode; under a second preset condition, transmitting the signal obtained at a second acquisition frequency in a second transmission mode. Corresponding monitoring data, the frequency of transmitting the monitoring data in the first transmission mode is higher than the frequency of transmitting the monitoring data in the second transmission mode, and / or the first acquisition frequency is higher than the second acquisition frequency; when transmitting the monitoring data in the second transmission mode, if a third preset condition is detected, switching to the third transmission mode to transmit the monitoring data corresponding to the signal acquired at the third acquisition frequency, and switching back to the second transmission mode when the transmission duration after switching to the third transmission mode reaches a first preset time threshold and the first preset condition is not detected; wherein, the frequency of transmitting the monitoring data in the third transmission mode is higher than the frequency of transmitting the monitoring data in the second transmission mode, and / or the third acquisition frequency is higher than the second acquisition frequency.

[0007] According to another aspect of the present application, a monitoring system is provided, which includes a wearable mobile monitoring device worn on a human body and a monitoring device outside the human body, wherein: the mobile monitoring device is used to monitor and obtain monitoring data of the human body; the monitoring device is used to acquire and display the monitoring data; the mobile monitoring device is also used to perform the following operations: transmitting the monitoring data to the monitoring device through a communication connection established with the monitoring device, wherein the transmitting of the monitoring data to the monitoring device includes: under a first preset condition, transmitting the monitoring data acquired at a first acquisition frequency in a first transmission mode; under a second preset condition, transmitting the monitoring data acquired at a second acquisition frequency in a second transmission mode, and the second preset condition. The frequency of transmitting the monitoring data in the first transmission mode is higher than the frequency of transmitting the monitoring data in the second transmission mode, and / or the first acquisition frequency is higher than the second acquisition frequency; wherein, when transmitting the monitoring data in the second transmission mode, if a third preset condition is detected, the monitoring data acquired in the third acquisition frequency is switched to the third transmission mode, and if the transmission duration after switching to the third transmission mode reaches a first preset time threshold and the first preset condition is not detected, the monitoring data is switched back to the second transmission mode; wherein, the frequency of transmitting the monitoring data in the third transmission mode is higher than the frequency of transmitting the monitoring data in the second transmission mode, and / or the third acquisition frequency is higher than the second acquisition frequency.

[0008] According to another aspect of the present application, a data transmission method is provided, which is applied to a wearable mobile monitoring device, the method comprising: acquiring a signal representing at least one physiological sign parameter of a human body; obtaining monitoring data based on the signal; and transmitting the monitoring data to the monitoring device via a communication connection established with a monitoring device outside the human body. The method further comprises: transmitting the monitoring data acquired at a first acquisition frequency in a first transmission mode under a first preset condition; and transmitting the monitoring data acquired at a second acquisition frequency in a second transmission mode under a second preset condition, wherein the frequency of transmitting the monitoring data in the first transmission mode is higher than the frequency of transmitting the monitoring data in the second transmission mode, and / or the first acquisition frequency is higher than the second acquisition frequency. The method further comprises: when transmitting the monitoring data in the second transmission mode, if a third preset condition is detected, switching to a third transmission mode to transmit the monitoring data acquired at the third acquisition frequency, and switching back to the second transmission mode if the transmission duration after switching to the third transmission mode reaches a first preset time threshold and the first preset condition is not detected. The method further comprises: transmitting the monitoring data in the third transmission mode at a higher frequency than the frequency of transmitting the monitoring data in the second transmission mode, and / or the third acquisition frequency is higher than the second acquisition frequency.

[0009] In the wearable mobile monitoring device, monitoring system and data transmission method of the present application, after obtaining the monitoring data of the human body, the mobile monitoring device can transmit the monitoring data to the monitoring device outside the human body through different transmission methods. These different transmission methods can meet the scenarios with high monitoring requirements, the scenarios with low power consumption requirements, and the scenarios that require temporary mode switching, thereby being able to meet various complex scenarios while minimizing power consumption. BRIEF DESCRIPTION OF THE DRAWINGS

[0010] FIG1 shows a schematic structural block diagram of a wearable mobile monitoring device according to an embodiment of the present application.

[0011] FIG2 shows a schematic structural block diagram of a monitoring system according to an embodiment of the present application.

[0012] FIG3 is a schematic diagram showing a wearable mobile monitoring device in a monitoring system according to an embodiment of the present application transmitting monitoring data to a monitoring device outside the human body in different transmission modes.

[0013] FIG4 is a schematic diagram showing an example of displaying countdown prompt information on a monitoring device in a monitoring system according to an embodiment of the present application.

[0014] FIG5 is a schematic diagram showing another example of displaying countdown prompt information on a monitoring device in a monitoring system according to an embodiment of the present application.

[0015] FIG6 shows a schematic flowchart of a data transmission method according to an embodiment of the present application. DETAILED DESCRIPTION

[0016] In order to make the purpose, technical solutions and advantages of the present application more apparent, the following is a detailed description of example embodiments of the present application with reference to the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application, and it should be understood that the present application is not limited to the example embodiments described herein. Based on the embodiments of the present application described in this application, all other embodiments obtained by those skilled in the art without creative work should fall within the scope of protection of this application.

[0017] In the following description, a large number of specific details are provided to provide a more thorough understanding of the present application. However, it will be apparent to those skilled in the art that the present application can be implemented without one or more of these details. In other examples, some technical features well known in the art are not described in order to avoid confusion with the present application.

[0018] It should be understood that the present application can be implemented in different forms and should not be interpreted as being limited to the embodiments set forth herein. On the contrary, providing these embodiments will make the disclosure thorough and complete and will fully convey the scope of the present application to those skilled in the art.

[0019] The purpose of the terms used herein is only to describe specific embodiments and is not intended to limit the present application. When used herein, the singular forms "a", "an", and "the" are intended to include the plural forms, unless the context clearly indicates otherwise. It should also be understood that the terms "comprising" and / or "including", when used in this specification, determine the presence of the features, integers, steps, operations, elements and / or parts, but do not exclude the presence or addition of one or more other features, integers, steps, operations, elements, parts and / or groups. When used herein, the term "and / or" includes any and all combinations of the relevant listed items.

[0020] In order to thoroughly understand the present application, detailed steps and detailed structures will be provided in the following description to illustrate the technical solution proposed by the present application. The preferred embodiments of the present application are described in detail below. However, in addition to these detailed descriptions, the present application may also have other implementation methods.

[0021] FIG1 shows a schematic block diagram of a wearable mobile monitoring device 100 according to an embodiment of the present application. As shown in FIG1 , the wearable mobile monitoring device 100 includes a sensor 110, a processor 120, and a wireless communication unit 130. The sensor 110 is configured to acquire a signal representing at least one vital sign parameter of a human body; the processor 120 is configured to perform the following operations: obtain monitoring data corresponding to the signal acquired by the sensor 110; and control the wireless communication unit 130 to transmit the monitoring data to the monitoring device via a communication connection established with the monitoring device outside the human body. Wherein, transmitting the monitoring data to the monitoring device includes: under a first preset condition, transmitting the monitoring data corresponding to the signal acquired at the first acquisition frequency in a first transmission mode; under a second preset condition, transmitting the monitoring data corresponding to the signal acquired at the second acquisition frequency in a second transmission mode, the frequency of transmitting the monitoring data in the first transmission mode is higher than the frequency of transmitting the monitoring data in the second transmission mode, and / or the first acquisition frequency is higher than the second acquisition frequency; when transmitting the monitoring data in the second transmission mode, if a third preset condition is detected, switching to the third transmission mode to transmit the monitoring data corresponding to the signal acquired at the third acquisition frequency, and switching back to the second transmission mode when the transmission time after switching to the third transmission mode reaches a first preset time threshold and the first preset condition is not detected; wherein, the frequency of transmitting the monitoring data in the third transmission mode is higher than the frequency of transmitting the monitoring data in the second transmission mode, and / or the third acquisition frequency is higher than the second acquisition frequency.

[0022] In an embodiment of the present application, after acquiring monitoring data, the wearable mobile monitoring device 100 transmits the monitoring data to a monitoring device external to the human body via a wireless communication connection. In different situations, the monitoring data can be acquired at different acquisition frequencies or transmitted using different transmission modes. For example, under a first preset condition, monitoring data acquired at the first acquisition frequency is transmitted using a first transmission mode; under a second preset condition, monitoring data acquired at the second acquisition frequency is transmitted using a second transmission mode. The frequency of transmitting monitoring data in the first transmission mode is higher than the frequency of transmitting monitoring data in the second transmission mode, and / or the first acquisition frequency is higher than the second acquisition frequency. Therefore, the mobile monitoring device 100 according to an embodiment of the present application can acquire monitoring data at different acquisition frequencies and can also use different transmission modes to transmit monitoring data to the monitoring device to meet transmission requirements under different conditions. Specifically, the first acquisition frequency is higher than the second acquisition frequency, thus meeting scenarios with higher human body monitoring requirements and less concern for power consumption. The second acquisition frequency is lower than the first acquisition frequency, thus meeting scenarios with lower human body monitoring requirements and more concern for power consumption. Similarly, compared to the second transmission mode, the first transmission mode transmits monitoring data at a higher frequency, and thus can meet the needs of scenarios with high human body monitoring requirements, scenarios where the communication environment is suitable for low-power data transmission, and scenarios where power consumption is less of a concern. Compared to the first transmission mode, the second transmission mode transmits monitoring data at a lower frequency, and thus can meet the needs of scenarios with low human body monitoring requirements, scenarios where the communication environment is not suitable for low-power data transmission, and scenarios where power consumption is a concern. Precisely because the mobile monitoring device 100 provides a relatively low-power monitoring mode and / or transmission mode, the mobile monitoring device 100 can be smaller than a device that only includes a high-frequency monitoring mode and a high-frequency transmission mode, making it easier for users to wear and improving the user experience.

[0023] Furthermore, the wearable mobile monitoring device 100 can also acquire monitoring data at a third acquisition frequency, wherein the third acquisition frequency is higher than the second acquisition frequency mentioned above. In addition, the wearable mobile monitoring device 100 can also include a third transmission mode when transmitting monitoring data to a monitoring device outside the human body through a wireless communication connection. The third transmission mode is a "temporary" transmission mode to which the third preset condition is switched when the second transmission mode is detected. At this time, "temporary" can be understood as: when the transmission time after switching to the third transmission mode reaches the first preset time threshold and the first preset condition is not detected, switch back to the second transmission mode.

[0024] The third transmission mode is provided because, under normal circumstances, when the first preset condition is met, the first transmission mode is used to transmit monitoring data acquired at the first acquisition frequency to the monitoring device, and when the second preset condition is met, the second transmission mode is used to transmit monitoring data acquired at the second acquisition frequency to the monitoring device. However, in some temporary, emergency situations, although the first preset condition is not currently met, such temporary situations require the use of a monitoring mode with a higher monitoring frequency and / or a transmission mode with a higher transmission frequency to obtain more monitoring data. Moreover, such temporary situations are generally resolved quickly and do not last long. Therefore, in such situations, a relatively "brief" switch can be made to a transmission mode that can obtain more monitoring data. After a certain period of time, the switch can be returned to the second transmission mode to transmit monitoring data acquired at the second acquisition frequency. This temporary switch can meet some temporary or emergency needs of the user, and because the switch back to the second transmission mode is quick, it also helps the mobile monitoring device 100 minimize power consumption. Based on such application scenarios, the third transmission mode is provided. Therefore, the frequency of transmitting monitoring data in the third transmission mode is higher than the frequency of transmitting monitoring data in the second transmission mode, and / or the third acquisition frequency is greater than the second acquisition frequency. The relationship between the frequency of transmitting monitoring data in the third transmission mode and the frequency of transmitting monitoring data in the first transmission mode is not limited and can be equal or different. Similarly, the relationship between the third acquisition frequency and the first acquisition frequency is not limited and can be equal or different.

[0025] The following describes an example of a third preset condition. In one example, the third preset condition may include a user instruction for switching modes. In this example, the switch from the second transmission mode to the third transmission mode is necessitated by receiving a user instruction. For example, if a patient's condition improves, the mobile monitoring device 100 may transmit data to the monitoring device using the second transmission mode with a lower transmission frequency. At this time, while a medical staff member is conducting a ward round and the patient is not present, the medical staff member may send a mode switch instruction. Based on this instruction, the mobile monitoring device 100 may temporarily switch from the second transmission mode to the third transmission mode, transmitting monitoring data in the third transmission mode for a certain period of time (this period may be preset or specified by the user) to meet the medical staff member's temporary review needs. After reviewing a large amount of monitoring data over a certain period of time, the medical staff member may determine whether there are any unexpected changes in the patient's condition. If no additional instructions are received, this generally indicates that the medical staff member is certain that there are no unexpected changes in the patient's condition. Therefore, after transmitting data in the third transmission mode for a certain period of time, and if the first preset condition is not detected, the mobile monitoring device 100 may switch back to the second transmission mode.

[0026] For another example, because a person's condition improves, the mobile monitoring device 100 uses the second transmission mode with a lower transmission frequency to transmit data to the monitoring device; at this time, the medical staff finds that there is a certain risk in the data trend through the monitoring data displayed by the monitoring device. At this time, the medical staff can send an instruction to switch the mode. Based on the instruction, the mobile monitoring device 100 can temporarily switch from the second transmission mode to the third transmission mode, and transmit the monitoring data for a certain period of time in the third transmission mode (the time can be preset or required by the user instruction) to meet the temporary viewing needs of the medical staff; after viewing a large amount of monitoring data for a certain period of time, the medical staff can ensure whether there are any unexpected changes in the patient's condition. If no additional instructions are received, it generally means that the medical staff is sure that there are no unexpected changes in the patient's condition. Therefore, the mobile monitoring device 100 can switch back to the second transmission mode after transmitting data in the third transmission mode for a certain period of time and if the first preset condition is not detected.

[0027] In the two examples above, upon receiving a user instruction, a temporary mode switch can be performed to meet the user's temporary viewing needs. In other examples, there may be other situations requiring temporary mode switching, which are not exemplified here. Overall, such temporary mode switching enables the mobile monitoring device 100 to meet various complex scenarios while minimizing power consumption.

[0028] In an embodiment of the present application, the aforementioned first preset condition may include: an indicator reflecting the communication status between the mobile monitoring device 100 and the monitoring device satisfies a fourth preset condition, and / or an indicator reflecting the health status of the human body satisfies a fifth preset condition. In this embodiment, the first preset condition is mainly associated with at least one of the following two: the communication status between the mobile monitoring device 100 and the monitoring device, and the health status of the human body. Generally speaking, it is easy to understand that when the communication status between the mobile monitoring device 100 and the monitoring device is good, so that the communication between the two does not consume too much power, a first transmission mode with a higher transmission frequency can be selected to obtain more monitoring data while saving power as much as possible; in addition, when the health status of the human body is not very good or the risk is relatively high, the first transmission mode with a higher transmission frequency can be selected to ensure the safety of patient monitoring based on more intensive monitoring data.

[0029] In an embodiment of the present application, the indicator reflecting the communication status between the mobile monitoring device 100 and the monitoring device meets the fourth preset condition, including at least one of the following: the communication connection between the mobile monitoring device 100 and the monitoring device is a point-to-point wireless communication connection; when the monitoring device is a monitor located in a ward, the mobile monitoring device 100 is located within the ward; the distance between the mobile monitoring device 100 and the monitoring device is less than the first preset distance threshold.

[0030] The point-to-point wireless communication connection may include a Bluetooth connection, a Wireless Fidelity (WIFI) direct connection, a Wireless Medical Telemetry Services (WMTS) direct connection, etc. Since the point-to-point communication connection has low power consumption, even if the transmission frequency is high, the power consumption will not be too high. Therefore, the first transmission mode can be used in this case.

[0031] If the monitoring device is a monitor located in a ward, and the mobile monitoring device 100 is also located in the ward, since both the mobile monitoring device 100 and the monitoring device are in the same ward, the communication distance between them is short, and even a higher transmission frequency will not consume much power. Therefore, in this case, the first transmission mode can be used. In addition, if the mobile monitoring device 100 is located in the ward, that is, the patient wearing it has not left the ward, this may mean that the patient's condition is not yet suitable for leaving the bed. In this case, the first transmission mode with a higher transmission frequency is more suitable to ensure monitoring safety.

[0032] The distance between the mobile monitoring device 100 and the monitoring device is less than the first preset distance threshold, similar to the situation where both are in the same ward. Due to the small distance between the two, the communication distance is short, and even a higher transmission frequency will not consume much power. Therefore, in this case, the first transmission mode can be used. In addition, the small distance between the mobile monitoring device 100 and the monitoring device, if the monitoring device is a monitor in the ward, also means that the mobile monitoring device 100 is also located in the ward, that is, the patient wearing it has not left the ward, which may mean that the patient's condition is not yet suitable for leaving the bed. In this case, it is even more necessary to use the first transmission mode with a higher transmission frequency to ensure monitoring safety.

[0033] In an embodiment of the present application, the indicator reflecting the health status of the human body meets the fifth preset condition, including at least one of the following: the monitoring time of the human body by the mobile monitoring device 100 does not reach the second preset time threshold; the early warning score (Early Warning Signal, referred to as EWS) of the human body based on the monitoring data is lower than the first preset score threshold; at least one item of the monitoring data is abnormal at the current moment; at least one item of the monitoring data has no abnormality at the current moment, but has an abnormality within the preset time before the current moment, and the duration of the preset time is the third preset time threshold; an unexpected movement event occurs to the human body.

[0034] In this embodiment, at least one of the monitoring time, the EWS based on the monitoring data, the monitoring data itself, and other unexpected events is used as an indicator reflecting the health status of the human body. Among them, for the monitoring time, for example, within 8 hours after surgery is a relatively important monitoring time, during which the patient needs to be closely monitored to ensure that the patient monitors possible postoperative risks. Therefore, when the monitoring time of the mobile monitoring data for the patient is less than 8 hours, the first transmission mode with a higher transmission frequency should be adopted. Of course, this is only exemplary. In other cases, other time thresholds (collectively referred to as the second preset time threshold) can be used for judgment.

[0035] In addition, the EWS based on monitoring data can reflect the patient's overall condition. When the EWS is lower than the first preset score threshold, it can be considered that the patient's overall condition still requires more monitoring data to ensure safety. Therefore, the first transmission mode with a higher transmission frequency should be used at this time.

[0036] In addition, for some important monitoring data (such as heart rate, blood oxygen saturation, etc.) that may reflect changes in the disease condition if abnormal, they should be closely monitored immediately once abnormalities occur. In such cases, the first transmission mode with a higher transmission frequency should also be used.

[0037] Furthermore, even if the abnormality in such monitoring data disappears after a period of monitoring or treatment, and the abnormality is no longer present, close monitoring can be continued for a period of time to ensure that the abnormality remains constant for a period of time before the patient's condition can be temporarily deemed stable and no longer requiring close monitoring. This can further improve monitoring safety. In such a case, i.e., if the monitoring data is normal at the current moment, but there were abnormalities within a preset time period before the current moment, the first transmission mode with a higher transmission frequency should still be used. In other words, after the abnormality disappears, the transmission mode is not switched immediately. Instead, data transmission continues in the first transmission mode with a higher transmission frequency for the preset time period, and then switches to the second transmission mode after the preset time period.

[0038] Furthermore, if a patient movement accident occurs, such as a fall, the fall may be caused by an abnormality in the patient or may be caused by an abnormality. Therefore, the first transmission mode with a higher transmission frequency should be used to ensure monitoring safety. After transmitting monitoring data in the first transmission mode for a period of time, if no abnormality is detected or if an abnormality was detected but has disappeared, the second transmission mode can be switched to.

[0039] In an embodiment of the present application, the aforementioned second preset condition may include: under the premise that no user instruction for switching the transmission mode is detected, the indicator reflecting the communication status between the mobile monitoring device 100 and the monitoring device satisfies the sixth preset condition, and / or, under the premise that no user instruction for switching the transmission mode is detected, the indicator reflecting the health status of the human body satisfies the seventh preset condition. In this embodiment, the second preset condition is mainly associated with at least one of the following two: the communication status between the mobile monitoring device 100 and the monitoring device, and the health status of the human body. Generally speaking, it is easy to understand that when the communication status between the mobile monitoring device 100 and the monitoring device is not suitable for high-frequency data transmission, or when high-frequency data transmission consumes a lot of power, a second transmission mode with a lower transmission frequency can be selected to save power consumption; in addition, when the health status of the human body is good or the risk is small, a second transmission mode with a lower transmission frequency can be selected to save power consumption.

[0040] In an embodiment of the present application, the indicator reflecting the communication status between the mobile monitoring device 100 and the monitoring device meets the sixth preset condition, including at least one of the following: the communication connection between the mobile monitoring device 100 and the monitoring device is a non-point-to-point wireless communication connection; when the monitoring device is a monitor located in a ward, the mobile monitoring device 100 is located outside the ward; the distance between the mobile monitoring device 100 and the monitoring device is not less than the second preset distance threshold.

[0041] The non-point-to-point wireless communication connection may include a wireless communication connection via an access point (AP) network connection. Since the non-point-to-point communication connection consumes a lot of power, a second transmission mode with a lower transmission frequency may be used in this case to save power.

[0042] If the monitoring device is a monitor located within a ward and the mobile monitoring device 100 is located outside the ward, the communication distance between the two is long, and a higher transmission frequency would consume too much power. Therefore, in this case, the second transmission mode with a lower transmission frequency can be used to save power. Furthermore, if the mobile monitoring device 100 is located outside the ward, meaning that the patient wearing it has left, this may indicate that the patient's condition has improved. In this case, the higher transmission frequency of the first transmission mode is not necessary, and the lower transmission frequency of the second transmission mode can be used.

[0043] If the distance between the mobile monitoring device 100 and the monitoring device is no less than the second preset distance threshold, similar to the situation where both are in the same ward, due to the large distance between the two and the long communication distance, a higher transmission frequency would consume too much power. Therefore, in this case, the second transmission mode with a lower transmission frequency can be used to save power. In addition, if the distance between the mobile monitoring device 100 and the monitoring device is long, if the monitoring device is a monitor in the ward, this also means that the mobile monitoring device 100 may be outside the ward, that is, the patient wearing it has left the ward, which may indicate that the patient's condition has improved. In this case, there is no need to use the first transmission mode with a higher transmission frequency, and the second transmission mode with a lower transmission frequency can be used.

[0044] In an embodiment of the present application, the indicator reflecting the health status of the human body meets the seventh preset condition, including at least one of the following: the monitoring time of the human body by the mobile monitoring device 100 reaches the fourth preset time threshold; the early warning score (Early Warning Signal, abbreviated as EWS) of the human body based on the monitoring data is not lower than the second preset score threshold; there are no abnormalities in the monitoring data; and no movement accidents occur to the human body.

[0045] In this embodiment, at least one of the monitoring time, the EWS based on the monitoring data, the monitoring data itself, and other unexpected events is used as an indicator reflecting the health status of the human body. Among them, for the monitoring time, for example, within 8 hours after surgery is a relatively important monitoring time. During this time, the patient needs to be closely monitored to ensure that the patient monitors possible postoperative risks. After the time, the condition is generally stable. Therefore, after the mobile monitoring data has monitored the patient for 8 hours, a second transmission mode with a lower transmission frequency can be adopted. Of course, this is only exemplary. In other cases, other time thresholds (collectively referred to as the fourth preset time threshold) can be used for judgment.

[0046] In addition, the EWS based on the monitoring data can reflect the patient's overall condition. When the EWS is not lower than the second preset score threshold, the patient's overall condition can be considered stable or good. Therefore, the second transmission mode with a lower transmission frequency should be used at this time.

[0047] Furthermore, if the monitoring data is normal, it generally indicates that the patient's overall condition is stable or good, so the second transmission mode with a lower transmission frequency should be used. Similarly, if the patient has not experienced a motor accident, the first transmission mode with a higher transmission frequency is not necessary; the second transmission mode with a lower transmission frequency can be used.

[0048] In an embodiment of the present application, the processor 120 can also be used to: output a countdown prompt message according to the first preset time threshold mentioned above to prompt the user that the third transmission mode is about to be switched back to the second transmission mode, and the start time of the countdown in the countdown prompt message is when switching from the second transmission mode to the third transmission mode.

[0049] As mentioned above, the first preset time threshold is the duration of the monitoring data transmitted using the third transmission mode after switching from the second transmission mode to the third transmission mode. Based on this, in this embodiment, a countdown prompt information is provided according to the first preset time threshold. Specifically, when the second transmission mode is switched to the third transmission mode, a countdown (for example, 120 seconds or other suitable time) can be started, and the system switches back to the second transmission mode at the end of the countdown. Based on this countdown prompt information, the user can intuitively understand the duration of the third transmission mode and determine whether the current situation is really suitable for switching back to the second transmission mode at the end of the time. For example, if the user finds that monitoring still needs to continue for a period of time when the countdown is about to end, the user can give an instruction to continue the third transmission mode; or, if the system has switched back to the second transmission mode after the countdown ends, the user can give another instruction to switch back to the third transmission mode; or, if the first preset condition is detected before the countdown ends, the system can also switch to the first transmission mode. In general, based on the countdown prompt information, the user can be reminded that the transmission mode will switch later, which is convenient for the user to confirm whether such a switch is appropriate, and to determine the actions to be taken afterwards (for example, after switching back to the second transmission mode, due to the lower transmission frequency, the user may need to pay attention to some emergencies that cannot be reflected in the data in time, etc.).

[0050] In an embodiment of the present application, the processor 120 can also be used to: output a countdown prompt message according to the third preset time threshold mentioned above to prompt the user that the first transmission mode is about to switch to the second transmission mode, and the starting time of the countdown in the countdown prompt message is the time when the abnormality disappears.

[0051] As mentioned above, the third preset time threshold is the duration of continuing to use the first transmission mode to transmit the monitoring data after the monitoring data anomaly disappears. Based on this, in this embodiment, countdown prompt information is provided according to the third preset time threshold, specifically, the countdown begins after the monitoring data anomaly disappears (for example, 120 seconds or other suitable time), and switches to the second transmission mode at the end of the countdown. Based on the countdown prompt information, the user can intuitively understand that the anomaly has disappeared, and will switch to the second transmission mode with a lower transmission frequency, as well as the actions that should be taken thereafter (for example, after switching back to the second transmission mode, due to the lower transmission frequency, the user may need to pay attention to some emergencies that cannot be reflected in the data in a timely manner, etc.).

[0052] In an embodiment of the present application, the countdown prompt information described above can be displayed on the display of the mobile monitoring device 100 and / or the display of the monitoring device, and / or played through the speaker of the mobile monitoring device 100 and / or the speaker of the monitoring device.

[0053] In an embodiment of the present application, the monitoring device mentioned above can be a monitor (for example, located in a ward) or a central monitoring system (for example, located at a nurse station).

[0054] In an embodiment of the present application, the first transmission mode mentioned above may include a continuous transmission mode, the second transmission mode mentioned above may include an intermittent transmission mode, and the third transmission mode mentioned above may include a temporary continuous transmission mode, wherein: the continuous transmission mode refers to transmitting data within a first preset number of consecutive transmission cycles; the intermittent transmission mode refers to transmitting data only within a first part of the transmission cycles in a continuous preset number of transmission cycles; the temporary continuous transmission mode refers to transmitting data only within a second part of the transmission cycles in a continuous preset number of transmission cycles, wherein the number of the second part of the transmission cycles is greater than the number of the first part of the transmission cycles.

[0055] In this embodiment, the first transmission mode includes a continuous transmission mode, and the second transmission mode includes an intermittent transmission mode. It is not difficult to understand that the frequency of transmitting monitoring data in the continuous transmission mode is higher than that in the intermittent transmission mode. In addition, the third transmission mode includes a temporary continuous transmission mode, wherein the temporary continuous transmission mode is a "temporary" continuous transmission mode, which can be specifically reflected as follows: compared with the continuous transmission mode, it also transmits data within a continuous preset number of transmission cycles, but its transmission cycle is smaller than the transmission cycle in the continuous transmission mode; or, compared with the intermittent transmission mode, there are some cycles in the continuous preset number of transmission cycles for transmitting data, and these cycles may be continuous, and the number of these cycles is greater than the number of cycles for transmitting data in the intermittent transmission mode. The continuous transmission mode, the intermittent transmission mode, and the temporary continuous transmission mode can be respectively adapted to the scenarios corresponding to the first transmission mode, the second transmission mode, and the third transmission mode described above, and will not be repeated here.

[0056] In an embodiment of the present application, the monitoring data transmitted in the continuous transmission mode includes real-time monitoring data; the monitoring data transmitted in the temporary continuous transmission mode includes analysis results of the real-time monitoring data. In this embodiment, the monitoring data transmitted in the continuous transmission mode and the temporary continuous transmission mode can be different. Among them, in the continuous transmission mode, the mobile monitoring device 100 transmits the real-time monitoring data to the monitoring device, and the monitoring device can display such real-time data and execute more complex algorithms to analyze the real-time data to obtain some analysis result data. In the temporary continuous transmission mode, after the mobile monitoring device 100 obtains the real-time monitoring data, since it does not need to be transmitted to the monitoring device in real time, it can analyze the real-time monitoring data and transmit the analysis result data to the monitoring device. The monitoring device can directly display such analysis result data without having to perform complex algorithms itself, or perform some algorithms that are not performed on the mobile monitoring device 100.

[0057] The above is an exemplary illustration of a wearable mobile monitoring device 100 according to an embodiment of the present application. Based on the above description, after acquiring monitoring data of the human body, the wearable mobile monitoring device 100 according to an embodiment of the present application can transmit the monitoring data to a monitoring device outside the human body through different transmission methods. These different transmission methods can meet scenarios with high monitoring requirements, scenarios with low power consumption requirements, and scenarios that require temporary mode switching, thereby being able to meet various complex scenarios while minimizing power consumption.

[0058] The following describes a monitoring system provided according to another aspect of the present application.

[0059] Fig. 2 shows a schematic structural block diagram of a monitoring system 20 according to an embodiment of the present application. As shown in Fig. 2, the monitoring system 20 may include a wearable mobile monitoring device 100 worn on a human body and a monitoring device 200 outside the human body. The mobile monitoring device is used to monitor and obtain monitoring data of a human body; the monitoring device 200 is used to acquire and display the monitoring data; the mobile monitoring device is further used to perform the following operations: transmitting the monitoring data to the monitoring device 200 through a communication connection established with the monitoring device 200, wherein the transmitting of the monitoring data to the monitoring device 200 includes: under a first preset condition, transmitting the monitoring data acquired at a first acquisition frequency in a first transmission mode; under a second preset condition, transmitting the monitoring data acquired at a second acquisition frequency in a second transmission mode, wherein the frequency of transmitting the monitoring data in the first transmission mode is higher than the frequency of transmitting the monitoring data in the second transmission mode, and / or the first acquisition frequency is higher than the second acquisition frequency; wherein, when transmitting the monitoring data in the second transmission mode, if a third preset condition is detected, switching to the third transmission mode to transmit the monitoring data corresponding to the signal acquired at the third acquisition frequency, and switching back to the second transmission mode if the transmission time after switching to the third transmission mode reaches a first preset time threshold and the first preset condition is not detected; wherein the frequency of transmitting the monitoring data in the third transmission mode is higher than the frequency of transmitting the monitoring data in the second transmission mode, and / or the third acquisition frequency is higher than the second acquisition frequency.

[0060] In an embodiment of the present application, after acquiring monitoring data, the wearable mobile monitoring device 100 in the monitoring system 20 transmits the monitoring data to the monitoring device 200 outside the human body via a wireless communication connection. In different situations, the mobile monitoring device 100 can acquire monitoring data at different acquisition frequencies and can also transmit the monitoring data using different transmission modes. For example, under a first preset condition, the mobile monitoring device 100 transmits monitoring data acquired at the first acquisition frequency using a first transmission mode; under a second preset condition, the mobile monitoring device 100 transmits monitoring data acquired at the second acquisition frequency using a second transmission mode, as shown in FIG3 . The frequency of transmitting monitoring data in the first transmission mode is higher than the frequency of transmitting monitoring data in the second transmission mode, and / or the first acquisition frequency is higher than the second acquisition frequency. Therefore, according to an embodiment of the present application, the mobile monitoring device 100 in the monitoring system 20 can acquire monitoring data at different acquisition frequencies and can also use different transmission modes to transmit monitoring data to the monitoring device 200 to meet transmission requirements under different conditions. Specifically, the first acquisition frequency is higher than the second acquisition frequency, thus meeting scenarios with higher human body monitoring requirements and scenarios with less concern for power consumption. Compared with the first acquisition frequency, the second acquisition frequency is lower, which can meet the needs of scenarios with lower requirements for human body monitoring, scenarios where power consumption is more concerned, etc. Similarly, compared with the second transmission mode, the first transmission mode transmits monitoring data at a higher frequency, and thus can meet the needs of scenarios with higher requirements for human body monitoring, scenarios where the communication environment is suitable for low-power data transmission, scenarios where power consumption is not a big concern, etc. Compared with the first transmission mode, the second transmission mode transmits monitoring data at a lower frequency, which can meet the needs of scenarios with lower requirements for human body monitoring, scenarios where the communication environment is not suitable for low-power data transmission, scenarios where power consumption is more concerned, etc. It is precisely because the mobile monitoring device 100 provides a relatively low-power monitoring mode and / or transmission mode that the mobile monitoring device 100 can have a smaller size than a device that only includes a high-frequency monitoring mode and a high-frequency transmission mode, making it easier for users to wear and improving the user experience.

[0061] Furthermore, the wearable mobile monitoring device 100 in the monitoring system 20 can also acquire monitoring data at a third acquisition frequency, wherein the third acquisition frequency is higher than the second acquisition frequency mentioned above. In addition, the wearable mobile monitoring device 100 can also include a third transmission mode when transmitting monitoring data to the monitoring device 200 outside the human body through a wireless communication connection. The third transmission mode is a "temporary" transmission mode to which the third preset condition is switched when the second transmission mode is detected. At this time, "temporary" can be understood as: when the transmission time after switching to the third transmission mode reaches the first preset time threshold and the first preset condition is not detected, switch back to the second transmission mode, as shown in Figure 3.

[0062] The third transmission mode is provided because, under normal circumstances, when the first preset condition is met, the first transmission mode is used to transmit monitoring data acquired at the first acquisition frequency to the monitoring device 200, and when the second preset condition is met, the second transmission mode is used to transmit monitoring data acquired at the second acquisition frequency to the monitoring device 200. However, in some temporary or emergency situations, although the first preset condition is not currently met, such temporary situations may require the use of a monitoring mode with a higher monitoring frequency and / or a transmission mode with a higher transmission frequency to obtain more monitoring data. Moreover, such temporary situations are generally resolved quickly and do not last long. Therefore, in such situations, a "brief" switch can be made to the transmission mode that can obtain more monitoring data. After a certain period of time, the switch can be returned to the second transmission mode to transmit monitoring data acquired at the second acquisition frequency. This temporary switch can meet some temporary or emergency needs of users, and because the switch back to the second transmission mode is quick, it also helps to minimize power consumption of the mobile monitoring device 100. Based on such application scenarios, the third transmission mode is provided. Therefore, the frequency of transmitting monitoring data in the third transmission mode is higher than the frequency of transmitting monitoring data in the second transmission mode, and / or the third acquisition frequency is greater than the second acquisition frequency. The relationship between the frequency of transmitting monitoring data in the third transmission mode and the frequency of transmitting monitoring data in the first transmission mode is not limited and can be equal or different. Similarly, the relationship between the third acquisition frequency and the first acquisition frequency is not limited and can be equal or different.

[0063] The following describes an example of a third preset condition. In one example, the third preset condition may include a user instruction for switching modes. In this example, the switch from the second transmission mode to the third transmission mode is necessitated by receiving a user instruction. For example, if a patient's condition improves, the mobile monitoring device 100 may transmit data to the monitoring device 200 using the second transmission mode with a lower transmission frequency. At this time, while a medical professional is conducting a ward round and the patient is not present, the medical professional may send a mode-switch instruction. Based on this instruction, the mobile monitoring device 100 may temporarily switch from the second transmission mode to the third transmission mode, transmitting monitoring data in the third transmission mode for a certain period of time (this period may be preset or specified by the user) to meet the medical professional's temporary review needs. After reviewing a large amount of monitoring data over a certain period of time, the medical professional can determine whether there are any unexpected changes in the patient's condition. If no additional instructions are received, this generally indicates that the medical professional is certain that there are no unexpected changes in the patient's condition. Therefore, after transmitting data in the third transmission mode for a certain period of time, and if the first preset condition is not detected, the mobile monitoring device 100 may switch back to the second transmission mode.

[0064] For another example, because a person's condition improves, the mobile monitoring device 100 uses the second transmission mode with a lower transmission frequency to transmit data to the monitoring device 200; at this time, the medical staff finds that there is a certain risk in the data trend through the monitoring data displayed by the monitoring device 200. At this time, the medical staff can send an instruction to switch modes. Based on this instruction, the mobile monitoring device 100 can temporarily switch from the second transmission mode to the third transmission mode, and transmit the monitoring data for a certain period of time in the third transmission mode (this time can be preset or required by the user's instruction) to meet the temporary viewing needs of the medical staff; after viewing a large amount of monitoring data for a certain period of time, the medical staff can ensure whether there are any unexpected changes in the patient's condition. If no additional instructions are received, it generally means that the medical staff is sure that there are no unexpected changes in the patient's condition. Therefore, the mobile monitoring device 100 can switch back to the second transmission mode after transmitting data in the third transmission mode for a certain period of time and if the first preset condition is not detected.

[0065] In the two examples above, upon receiving a user instruction, a temporary mode switch can be performed to meet the user's temporary viewing needs. In other examples, there may be other situations requiring temporary mode switching, which are not exemplified here. Overall, such temporary mode switching enables the mobile monitoring device 100 to meet various complex scenarios while minimizing power consumption.

[0066] In an embodiment of the present application, the aforementioned first preset condition may include: an indicator reflecting the communication status between the mobile monitoring device 100 and the monitoring device 200 satisfies a fourth preset condition, and / or an indicator reflecting the health status of the human body satisfies a fifth preset condition. In this embodiment, the first preset condition is primarily associated with at least one of the following two conditions: the communication status between the mobile monitoring device 100 and the monitoring device 200, and the health status of the human body. Generally speaking, it is easy to understand that when the communication status between the mobile monitoring device 100 and the monitoring device 200 is good, so that the communication between the two does not consume much power, the first transmission mode with a higher transmission frequency can be selected to obtain more monitoring data while minimizing power consumption. In addition, when the health status of the human body is not good or the risk is relatively high, the first transmission mode with a higher transmission frequency can be selected to ensure the safety of patient monitoring based on more intensive monitoring data.

[0067] In an embodiment of the present application, the indicator reflecting the communication status between the mobile monitoring device 100 and the monitoring device 200 satisfies a fourth preset condition, including at least one of the following: the communication connection between the mobile monitoring device 100 and the monitoring device 200 is a point-to-point wireless communication connection; when the monitoring device 200 is a monitor located in a ward, the mobile monitoring device 100 is located within the ward; the distance between the mobile monitoring device 100 and the monitoring device 200 is less than a first preset distance threshold.

[0068] The point-to-point wireless communication connection may include a Bluetooth connection, a Wireless Fidelity (WIFI) direct connection, a Wireless Medical Telemetry Services (WMTS) direct connection, etc. Since the point-to-point communication connection has low power consumption, even if the transmission frequency is high, the power consumption will not be too high. Therefore, the first transmission mode can be used in this case.

[0069] If monitoring device 200 is a monitor located in a ward, and mobile monitoring device 100 is also located in the ward, since both mobile monitoring device 100 and monitoring device 200 are in the same ward, the communication distance between them is short, and even a higher transmission frequency will not consume much power. Therefore, in this case, the first transmission mode can be used. Furthermore, if mobile monitoring device 100 is located in the ward, meaning the patient wearing it has not left, this may indicate that the patient's condition is not yet suitable for leaving the bed. In this case, the first transmission mode with a higher transmission frequency is even more suitable to ensure monitoring safety.

[0070] The distance between the mobile monitoring device 100 and the monitoring device 200 is less than the first preset distance threshold, similar to the situation where both are in the same ward. Due to the small distance between the two, the communication distance is short, and even a higher transmission frequency will not consume much power. Therefore, in this case, the first transmission mode can be used. In addition, the small distance between the mobile monitoring device 100 and the monitoring device 200, if the monitoring device 200 is a monitor in the ward, also means that the mobile monitoring device 100 is also located in the ward, that is, the patient wearing it has not left the ward, which may mean that the patient's condition is not yet suitable for leaving the bed. In this case, it is even more necessary to use the first transmission mode with a higher transmission frequency to ensure monitoring safety.

[0071] In an embodiment of the present application, the indicator reflecting the health status of the human body meets the fifth preset condition, including at least one of the following: the monitoring time of the human body by the mobile monitoring device 100 does not reach the second preset time threshold; the early warning score (Early Warning Signal, referred to as EWS) of the human body based on the monitoring data is lower than the first preset score threshold; at least one item of the monitoring data is abnormal at the current moment; at least one item of the monitoring data has no abnormality at the current moment, but has an abnormality within the preset time before the current moment, and the duration of the preset time is the third preset time threshold; an unexpected movement event occurs to the human body.

[0072] In this embodiment, at least one of the monitoring time, the EWS based on the monitoring data, the monitoring data itself, and other unexpected events is used as an indicator reflecting the health status of the human body. Among them, for the monitoring time, for example, within 8 hours after surgery is a relatively important monitoring time, during which the patient needs to be closely monitored to ensure that the patient monitors possible postoperative risks. Therefore, when the monitoring time of the mobile monitoring data for the patient is less than 8 hours, the first transmission mode with a higher transmission frequency should be adopted. Of course, this is only exemplary. In other cases, other time thresholds (collectively referred to as the second preset time threshold) can be used for judgment.

[0073] In addition, the EWS based on monitoring data can reflect the patient's overall condition. When the EWS is lower than the first preset score threshold, it can be considered that the patient's overall condition still requires more monitoring data to ensure safety. Therefore, the first transmission mode with a higher transmission frequency should be used at this time.

[0074] In addition, for some important monitoring data (such as heart rate, blood oxygen saturation, etc.) that may reflect changes in the disease condition if abnormal, they should be closely monitored immediately once abnormalities occur. In such cases, the first transmission mode with a higher transmission frequency should also be used.

[0075] Furthermore, even if the abnormality in such monitoring data disappears after a period of monitoring or treatment, and the abnormality is no longer present, close monitoring can be continued for a period of time to ensure that the abnormality remains constant for a period of time before the patient's condition can be temporarily deemed stable and no longer requiring close monitoring. This can further improve monitoring safety. In such a case, i.e., if the monitoring data is normal at the current moment, but there were abnormalities within a preset time period before the current moment, the first transmission mode with a higher transmission frequency should still be used. In other words, after the abnormality disappears, the transmission mode is not switched immediately. Instead, data transmission continues in the first transmission mode with a higher transmission frequency for the preset time period, and then switches to the second transmission mode after the preset time period.

[0076] Furthermore, if a patient movement accident occurs, such as a fall, the fall may be caused by an abnormality in the patient or may be caused by an abnormality. Therefore, the first transmission mode with a higher transmission frequency should be used to ensure monitoring safety. After transmitting monitoring data in the first transmission mode for a period of time, if no abnormality is detected or if an abnormality was detected but has disappeared, the second transmission mode can be switched to.

[0077] In an embodiment of the present application, the aforementioned second preset condition may include: under the premise that no user instruction for switching the transmission mode is detected, the indicator reflecting the communication status between the mobile monitoring device 100 and the monitoring device 200 satisfies the sixth preset condition, and / or, under the premise that no user instruction for switching the transmission mode is detected, the indicator reflecting the health status of the human body satisfies the seventh preset condition. In this embodiment, the second preset condition is mainly associated with at least one of the following two: the communication status between the mobile monitoring device 100 and the monitoring device 200, and the health status of the human body. Generally speaking, it is easy to understand that when the communication status between the mobile monitoring device 100 and the monitoring device 200 is not suitable for high-frequency data transmission, or when high-frequency data transmission consumes a lot of power, a second transmission mode with a lower transmission frequency can be selected to save power consumption; in addition, when the health status of the human body is good or the risk is small, a second transmission mode with a lower transmission frequency can be selected to save power consumption.

[0078] In an embodiment of the present application, the indicator reflecting the communication status between the mobile monitoring device 100 and the monitoring device 200 meets the sixth preset condition, including at least one of the following: the communication connection between the mobile monitoring device 100 and the monitoring device 200 is a non-point-to-point wireless communication connection; when the monitoring device 200 is a monitor located in the ward, the mobile monitoring device 100 is located outside the ward; the distance between the mobile monitoring device 100 and the monitoring device 200 is not less than the second preset distance threshold.

[0079] The non-point-to-point wireless communication connection may include a wireless communication connection via an access point (AP) network connection. Since the non-point-to-point communication connection consumes a lot of power, a second transmission mode with a lower transmission frequency may be used in this case to save power.

[0080] If monitoring device 200 is a monitor located within a ward and mobile monitoring device 100 is located outside, the communication distance between the two is long, and a higher transmission frequency would consume too much power. Therefore, in this case, the second transmission mode with a lower transmission frequency can be used to conserve power. Furthermore, if mobile monitoring device 100 is located outside the ward, meaning the patient wearing it has left, this may indicate that the patient's condition has improved. In this case, the higher transmission frequency of the first transmission mode is unnecessary, and the lower transmission frequency of the second transmission mode can be used.

[0081] If the distance between the mobile monitoring device 100 and the monitoring device 200 is no less than the second preset distance threshold, similar to the situation where both are in the same ward, due to the large distance between the two and the long communication distance, a higher transmission frequency would consume too much power. Therefore, in this case, the second transmission mode with a lower transmission frequency can be used to save power. In addition, if the distance between the mobile monitoring device 100 and the monitoring device 200 is long, if the monitoring device 200 is a monitor in the ward, this also means that the mobile monitoring device 100 may be located outside the ward, that is, the patient wearing it has left the ward, which may indicate that the patient's condition has improved. In this case, there is no need to use the first transmission mode with a higher transmission frequency, and the second transmission mode with a lower transmission frequency can be used.

[0082] In an embodiment of the present application, the indicator reflecting the health status of the human body meets the seventh preset condition, including at least one of the following: the monitoring time of the human body by the mobile monitoring device 100 reaches the fourth preset time threshold; the early warning score (Early Warning Signal, abbreviated as EWS) of the human body based on the monitoring data is not lower than the second preset score threshold; there are no abnormalities in the monitoring data; and no movement accidents occur to the human body.

[0083] In this embodiment, at least one of the monitoring time, the EWS based on the monitoring data, the monitoring data itself, and other unexpected events is used as an indicator reflecting the health status of the human body. Among them, for the monitoring time, for example, within 8 hours after surgery is a relatively important monitoring time. During this time, the patient needs to be closely monitored to ensure that the patient monitors possible postoperative risks. After the time, the condition is generally stable. Therefore, after the mobile monitoring data has monitored the patient for 8 hours, a second transmission mode with a lower transmission frequency can be adopted. Of course, this is only exemplary. In other cases, other time thresholds (collectively referred to as the fourth preset time threshold) can be used for judgment.

[0084] In addition, the EWS based on the monitoring data can reflect the patient's overall condition. When the EWS is not lower than the second preset score threshold, the patient's overall condition can be considered stable or good. Therefore, the second transmission mode with a lower transmission frequency should be used at this time.

[0085] Furthermore, if the monitoring data is normal, it generally indicates that the patient's overall condition is stable or good, so the second transmission mode with a lower transmission frequency should be used. Similarly, if the patient has not experienced a motor accident, the first transmission mode with a higher transmission frequency is not necessary; the second transmission mode with a lower transmission frequency can be used.

[0086] In an embodiment of the present application, the mobile monitoring device 100 may also be configured to: output a countdown prompt message according to the first preset time threshold described above, to prompt the user that the third transmission mode is about to be switched back to the second transmission mode, and the start time of the countdown in the countdown prompt message is when the second transmission mode is switched to the third transmission mode. Exemplarily, the countdown prompt message may be displayed on the display of the mobile monitoring device 100 and / or the display of the monitoring device 200, and / or played through the speaker of the mobile monitoring device 100 and / or the speaker of the monitoring device 200. FIG4 shows an example diagram of a countdown prompt message displayed on the display of the monitoring device 200. In this example, the countdown time is 120 seconds, which is merely exemplary. The values ​​and waveforms of parameters 1 and 2 and other monitoring parameters are also displayed, which are all exemplary.

[0087] As mentioned above, the first preset time threshold is the duration of the monitoring data transmitted using the third transmission mode after switching from the second transmission mode to the third transmission mode. Based on this, in this embodiment, a countdown prompt information is provided according to the first preset time threshold. Specifically, when the second transmission mode is switched to the third transmission mode, a countdown (for example, 120 seconds or other suitable time) can be started, and the system switches back to the second transmission mode at the end of the countdown. Based on this countdown prompt information, the user can intuitively understand the duration of the third transmission mode and determine whether the current situation is really suitable for switching back to the second transmission mode at the end of the time. For example, if the user finds that monitoring still needs to continue for a period of time when the countdown is about to end, the user can give an instruction to continue the third transmission mode; or, if the system has switched back to the second transmission mode after the countdown ends, the user can give another instruction to switch back to the third transmission mode; or, if the first preset condition is detected before the countdown ends, the system can also switch to the first transmission mode. In general, based on the countdown prompt information, the user can be reminded that the transmission mode will switch later, which is convenient for the user to confirm whether such a switch is appropriate, and to determine the actions to be taken afterwards (for example, after switching back to the second transmission mode, due to the lower transmission frequency, the user may need to pay attention to some emergencies that cannot be reflected in the data in time, etc.).

[0088] In an embodiment of the present application, the mobile monitoring device 100 may also be configured to output a countdown prompt message based on the third preset time threshold described above to prompt the user that the first transmission mode is about to be switched to the second transmission mode, and the start time of the countdown in the countdown prompt message is the time when the anomaly disappears. For example, the countdown prompt message may be displayed on the display of the mobile monitoring device 100 and / or the display of the monitoring device 200, and / or played through the speaker of the mobile monitoring device 100 and / or the speaker of the monitoring device 200. FIG5 shows an example diagram of a countdown prompt message displayed on the display of the monitoring device 200. In this example, the countdown time is 120 seconds, which is merely exemplary. The numerical values ​​and waveforms of parameters 1 and 2 and other monitoring parameters are also displayed, which are all exemplary.

[0089] As mentioned above, the third preset time threshold is the duration of continuing to use the first transmission mode to transmit the monitoring data after the monitoring data anomaly disappears. Based on this, in this embodiment, countdown prompt information is provided according to the third preset time threshold, specifically, the countdown begins after the monitoring data anomaly disappears (for example, 120 seconds or other suitable time), and switches to the second transmission mode at the end of the countdown. Based on the countdown prompt information, the user can intuitively understand that the anomaly has disappeared, and will switch to the second transmission mode with a lower transmission frequency, as well as the actions that should be taken thereafter (for example, after switching back to the second transmission mode, due to the lower transmission frequency, the user may need to pay attention to some emergencies that cannot be reflected in the data in a timely manner, etc.).

[0090] In an embodiment of the present application, the monitoring device 200 mentioned above can be a monitor (for example, located in a ward) or a central monitoring system 20 (for example, located at a nurse station).

[0091] In an embodiment of the present application, the first transmission mode mentioned above may include a continuous transmission mode, the second transmission mode mentioned above may include an intermittent transmission mode, and the third transmission mode mentioned above may include a temporary continuous transmission mode, wherein: the continuous transmission mode refers to transmitting data within a continuous preset number of transmission cycles; the intermittent transmission mode refers to transmitting data only within the first part of the transmission cycles in a continuous preset number of transmission cycles; the temporary continuous transmission mode refers to transmitting data only within the second part of the transmission cycles in a continuous preset number of transmission cycles, wherein the number of the second part of the transmission cycles is greater than the number of the first part of the transmission cycles.

[0092] In this embodiment, the first transmission mode includes a continuous transmission mode, and the second transmission mode includes an intermittent transmission mode. It is not difficult to understand that the frequency of transmitting monitoring data in the continuous transmission mode is higher than that in the intermittent transmission mode. In addition, the third transmission mode includes a temporary continuous transmission mode, wherein the temporary continuous transmission mode is a "temporary" continuous transmission mode, which can be specifically reflected as follows: compared with the continuous transmission mode, it also transmits data within a continuous preset number of transmission cycles, but its transmission cycle is smaller than the transmission cycle in the continuous transmission mode; or, compared with the intermittent transmission mode, there are some cycles in the continuous preset number of transmission cycles for transmitting data, and these cycles may be continuous, and the number of these cycles is greater than the number of cycles for transmitting data in the intermittent transmission mode. The continuous transmission mode, the intermittent transmission mode, and the temporary continuous transmission mode can be respectively adapted to the scenarios corresponding to the first transmission mode, the second transmission mode, and the third transmission mode described above, and will not be repeated here.

[0093] In an embodiment of the present application, the monitoring data transmitted in the continuous transmission mode includes real-time monitoring data; the monitoring data transmitted in the temporary continuous transmission mode includes analysis results of the real-time monitoring data. In this embodiment, the monitoring data transmitted in the continuous transmission mode and the temporary continuous transmission mode can be different. Among them, in the continuous transmission mode, the mobile monitoring device 100 transmits the real-time monitoring data to the monitoring device 200, and the monitoring device 200 can display such real-time data and execute more complex algorithms to analyze the real-time data to obtain some analysis result data. In the temporary continuous transmission mode, after the mobile monitoring device 100 obtains the real-time monitoring data, since it does not need to be transmitted to the monitoring device 200 in real time, it can analyze the real-time monitoring data and transmit the analysis result data to the monitoring device 200. The monitoring device 200 can directly display such analysis result data without having to perform complex algorithms itself, or perform some algorithms that are not performed on the mobile monitoring device 100.

[0094] The above is an exemplary illustration of the monitoring system 20 according to an embodiment of the present application. Based on the above description, after acquiring the monitoring data of the human body, the wearable mobile monitoring device in the monitoring system 20 according to the embodiment of the present application can transmit the monitoring data to the monitoring device outside the human body through different transmission methods. These different transmission methods can meet the scenarios with high monitoring requirements, the scenarios with low power consumption requirements, and the scenarios that require temporary mode switching, thereby being able to meet various complex scenarios while minimizing power consumption.

[0095] The following describes a data transmission method 600 provided according to another aspect of the present application in conjunction with FIG6 . This method 600 is applied to the wearable mobile monitoring device described above. The data transmission process of the wearable mobile monitoring device has been described in detail above. Those skilled in the art can understand the specific details of the data transmission method 600 in combination with the above. For the sake of brevity, only some main steps of the data transmission method 600 are described here.

[0096] As shown in FIG6 , the data transmission method 600 may include the following steps:

[0097] In step S610, a signal representing at least one physiological parameter of a human body is acquired.

[0098] In step S620, monitoring data is obtained based on the acquired signal.

[0099] In step S630, the monitoring data is transmitted to the monitoring device via a communication connection established with the monitoring device outside the human body.

[0100] Wherein, step S630 further includes step S631, step S632 and step S633.

[0101] In step S631 , under a first preset condition, monitoring data acquired at a first acquisition frequency is transmitted in a first transmission mode.

[0102] In step S632 , under a second preset condition, the monitoring data acquired at the second acquisition frequency is transmitted in a second transmission mode.

[0103] In step S633, when transmitting monitoring data in the second transmission mode, if a third preset condition is detected, switch to the third transmission mode to transmit the monitoring data acquired at the third acquisition frequency, and switch back to the second transmission mode if the transmission duration after switching to the third transmission mode reaches the first preset time threshold and the first preset condition is not detected.

[0104] Among them, the frequency of transmitting monitoring data in the first transmission mode is higher than the frequency of transmitting monitoring data in the second transmission mode, and / or the first acquisition frequency is higher than the second acquisition frequency; the frequency of transmitting monitoring data in the third transmission mode is higher than the frequency of transmitting monitoring data in the second transmission mode, and / or the third acquisition frequency is higher than the second acquisition frequency.

[0105] In an embodiment of the present application, the third preset condition includes a user instruction for switching to the third transmission mode.

[0106] In an embodiment of the present application, the first preset condition includes: the indicator reflecting the communication status between the mobile monitoring device and the monitoring device satisfies the fourth preset condition, and / or, the indicator reflecting the health status of the human body satisfies the fifth preset condition; the second preset condition includes: on the premise that no user instruction for switching the transmission mode is detected, the indicator reflecting the communication status between the mobile monitoring device and the monitoring device satisfies the sixth preset condition, and / or, on the premise that no user instruction for switching the transmission mode is detected, the indicator reflecting the health status of the human body satisfies the seventh preset condition.

[0107] In an embodiment of the present application, the indicator reflecting the communication status between the mobile monitoring device and the monitoring device meets the fourth preset condition, including at least one of the following: the communication connection between the mobile monitoring device and the monitoring device is a point-to-point wireless communication connection; when the monitoring device is a monitor located in a ward, the communication position of the mobile monitoring device is located within the ward; the communication distance between the mobile monitoring device and the monitoring device is less than the first preset distance threshold.

[0108] In an embodiment of the present application, the indicator reflecting the communication status between the mobile monitoring device and the monitoring device meets the sixth preset condition, including at least one of the following: the communication connection between the mobile monitoring device and the monitoring device is a non-point-to-point wireless communication connection; when the monitoring device is a monitor located in the ward, the communication location of the mobile monitoring device is outside the ward; the communication distance between the mobile monitoring device and the monitoring device is not less than the second preset distance threshold.

[0109] In an embodiment of the present application, the indicator reflecting the health status of the human body meets the fifth preset condition, including at least one of the following: the monitoring time of the human body by the mobile monitoring device does not reach the second preset time threshold, and the second preset time threshold is greater than the first preset time threshold; the early warning score of the human body based on the monitoring data is lower than the first preset score threshold; at least one item of the monitoring data is abnormal at the current moment; at least one item of the monitoring data has no abnormality at the current moment, but has an abnormality within the preset time before the current moment, and the duration of the preset time is the third preset time threshold; an unexpected movement event occurs to the human body.

[0110] In an embodiment of the present application, the indicator reflecting the health status of the human body meets the seventh preset condition, including at least one of the following: the monitoring time of the human body by the mobile monitoring device reaches the fourth preset time threshold, and the fourth preset time threshold is greater than the first preset time threshold; the early warning score of the human body based on the monitoring data is higher than the second preset score threshold; there are no abnormalities in the monitoring data; and no movement accidents occur to the human body.

[0111] In an embodiment of the present application, the method further includes: outputting a countdown prompt message according to a first preset time threshold to prompt the user that the third transmission mode is about to be switched back to the second transmission mode, and the start time of the countdown in the countdown prompt message is when switching from the second transmission mode to the third transmission mode.

[0112] In an embodiment of the present application, the method further includes: outputting a countdown prompt message according to a third preset time threshold to prompt the user that the first transmission mode is about to be switched to the second transmission mode, and the start time of the countdown in the countdown prompt message is the time when the abnormality disappears.

[0113] In an embodiment of the present application, the countdown prompt information is displayed on the display of the mobile monitoring device and / or the display of the monitoring device; and / or, the countdown prompt information is played through the speaker of the mobile monitoring device and / or the speaker of the monitoring device.

[0114] In an embodiment of the present application, the monitoring device includes a monitor located in a ward and / or a central monitoring system.

[0115] In an embodiment of the present application, the first transmission mode includes a continuous transmission mode, the second transmission mode includes an intermittent transmission mode, and the third transmission mode includes a temporary continuous transmission mode, wherein: the continuous transmission mode refers to transmitting data within a continuous preset number of transmission cycles; the intermittent transmission mode refers to transmitting data only within a first part of the transmission cycles in a continuous preset number of transmission cycles; the temporary continuous transmission mode refers to transmitting data only within a second part of the transmission cycles in a continuous preset number of transmission cycles, wherein the number of the second part of the transmission cycles is greater than the number of the first part of the transmission cycles.

[0116] In an embodiment of the present application, the monitoring data transmitted in the continuous transmission mode includes real-time monitoring data; and the monitoring data transmitted in the temporary continuous transmission mode includes analysis results of the real-time monitoring data.

[0117] Based on the above description, after obtaining the monitoring data of the human body, the wearable mobile monitoring device in the data transmission method according to the embodiment of the present application can transmit the monitoring data to the monitoring device outside the human body through different transmission methods. These different transmission methods can meet the scenarios with high monitoring requirements, the scenarios with low power consumption requirements, and the scenarios that require temporary switching of modes, thereby being able to meet various complex scenarios while minimizing power consumption.

[0118] In addition, according to an embodiment of the present application, a storage medium is further provided, on which program instructions are stored, and when the program instructions are executed by a computer or a processor, the corresponding steps of the data transmission method of the embodiment of the present application are executed. The storage medium may include, for example, a memory card of a smart phone, a storage component of a tablet computer, a hard disk of a personal computer, a read-only memory (ROM), an erasable programmable read-only memory (EPROM), a portable compact disk read-only memory (CD-ROM), a USB memory, or any combination of the above storage media. The computer-readable storage medium may be any combination of one or more computer-readable storage media.

[0119] Although example embodiments have been described herein with reference to the accompanying drawings, it should be understood that the above example embodiments are merely illustrative and are not intended to limit the scope of the present application. Various changes and modifications may be made therein by those skilled in the art without departing from the scope and spirit of the present application. All such changes and modifications are intended to be included within the scope of the present application as required by the appended claims.

[0120] Those skilled in the art will appreciate that the units and algorithm steps of each example described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are performed in hardware or software depends on the specific application and design constraints of the technical solution. Professionals and technicians can use different methods to implement the described functions for specific applications, but such implementation should not be considered beyond the scope of this application.

[0121] In the several embodiments provided in this application, it should be understood that the disclosed devices and methods can be implemented in other ways. For example, the device embodiments described above are merely illustrative. For example, the division of the units described is merely a logical function division. In actual implementation, other division methods may be used, such as combining or integrating multiple units or components into another device, or ignoring or not performing some features.

[0122] In the description provided herein, a large number of specific details are described. However, it is understood that the embodiments of the present application can be practiced without these specific details. In some instances, well-known methods, structures, and techniques are not shown in detail so as not to obscure the understanding of this description.

[0123] Similarly, it should be understood that in order to streamline the present application and aid in understanding one or more of the various inventive aspects, in the description of the exemplary embodiments of the present application, the various features of the present application are sometimes grouped together into a single embodiment, figure, or description thereof. However, this approach to the present application should not be interpreted as reflecting the intention that the application claimed for protection requires more features than those explicitly recited in the claims. More precisely, as reflected in the corresponding claims, the inventive point is that the corresponding technical problem can be solved with fewer features than all the features of a single disclosed embodiment. Therefore, the claims following the detailed description are hereby expressly incorporated into the detailed description, with the claims themselves serving as separate embodiments of the present application.

[0124] Those skilled in the art will understand that, except where mutually exclusive, all features disclosed in this specification (including the accompanying claims, abstract, and drawings) and all processes or units of any method or apparatus disclosed herein may be combined in any combination. Unless expressly stated otherwise, features disclosed in this specification (including the accompanying claims, abstract, and drawings) may be replaced by alternative features that provide the same, equivalent, or similar purpose.

[0125] Furthermore, those skilled in the art will appreciate that although some embodiments described herein include certain features included in other embodiments but not other features, combinations of features from different embodiments are intended to be within the scope of this application and to form different embodiments. For example, in the claims, any of the claimed embodiments may be used in any combination.

[0126] The various component embodiments of the present application can be implemented in hardware, or in a software module running on one or more processors, or in a combination thereof. Those skilled in the art will appreciate that a microprocessor or digital signal processor (DSP) can be used in practice to implement some or all of the functions of some modules according to the embodiments of the present application. The application can also be implemented as a device program (for example, a computer program and a computer program product) for performing a part or all of the methods described herein. Such a program implementing the present application can be stored on a computer-readable storage medium, or can have the form of one or more signals. Such a signal can be downloaded from an Internet website, or provided on a carrier signal, or provided in any other form.

[0127] It should be noted that the above embodiments illustrate rather than limit the present application, and that those skilled in the art may devise alternative embodiments without departing from the scope of the appended claims. In the claims, any reference symbols placed between brackets should not be construed as limiting the claims. The present application may be implemented by means of hardware comprising several different elements and by means of a suitably programmed computer. In a unit claim enumerating several means, several of these means may be embodied by the same item of hardware. The use of the words first, second, and third, etc. does not indicate any order. These words may be interpreted as names.

[0128] The above description is merely a specific embodiment or illustration of a specific embodiment of the present application, and the scope of protection of the present application is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in the present application should be included in the scope of protection of the present application. The scope of protection of the present application should be based on the scope of protection of the claims.

Claims

1. A wearable mobile monitoring device, characterized in that: The mobile monitoring device includes a sensor, a processor and a wireless communication unit, wherein: The sensor is used to obtain a signal representing at least one vital sign parameter of a human body; The processor is configured to perform the following operations: Obtaining monitoring data corresponding to the signal based on the signal acquired by the sensor; Controlling the wireless communication unit to transmit the monitoring data to the monitoring device via a communication connection established with the monitoring device outside the human body; The transmitting the monitoring data to the monitoring device comprises: Under a first preset condition, transmitting monitoring data corresponding to the signal acquired at a first acquisition frequency in a first transmission mode; Under a second preset condition, transmitting monitoring data corresponding to the signal acquired at a second acquisition frequency in a second transmission mode, the frequency of transmitting the monitoring data in the first transmission mode being higher than the frequency of transmitting the monitoring data in the second transmission mode, and / or the first acquisition frequency being higher than the second acquisition frequency; When transmitting the monitoring data in the second transmission mode, if a third preset condition is detected, switching to the third transmission mode to transmit the monitoring data corresponding to the signal acquired at the third acquisition frequency, and switching back to the second transmission mode if the transmission duration after switching to the third transmission mode reaches a first preset time threshold and the first preset condition is not detected; The frequency of transmitting the monitoring data in the third transmission mode is higher than the frequency of transmitting the monitoring data in the second transmission mode, and / or the third acquisition frequency is higher than the second acquisition frequency.

2. The mobile monitoring device according to claim 1, characterized in that The third preset condition includes a user instruction for switching to the third transmission mode.

3. The mobile monitoring device according to claim 1, characterized in that The first preset condition includes: an indicator reflecting the communication status between the mobile monitoring device and the monitoring device satisfies a fourth preset condition, and / or an indicator reflecting the health status of the human body satisfies a fifth preset condition; The second preset condition includes: under the premise that no user instruction for switching the transmission mode is detected, the indicator reflecting the communication status between the mobile monitoring device and the monitoring device meets the sixth preset condition, and / or, under the premise that no user instruction for switching the transmission mode is detected, the indicator reflecting the health status of the human body meets the seventh preset condition.

4. The mobile monitoring device according to claim 3, characterized in that The indicator reflecting the communication status between the mobile monitoring device and the monitoring device satisfies a fourth preset condition, including at least one of the following: The communication connection between the mobile monitoring device and the monitoring device is a point-to-point wireless communication connection; When the monitoring device is a monitor located in a ward, the communication location of the mobile monitoring device is located within the ward; The communication distance between the mobile monitoring device and the monitoring device is less than a first preset distance threshold.

5. The mobile monitoring device according to claim 3, characterized in that: The indicator reflecting the communication status between the mobile monitoring device and the monitoring device satisfies a sixth preset condition, including at least one of the following: The communication connection between the mobile monitoring device and the monitoring device is a non-point-to-point wireless communication connection; When the monitoring device is a monitor located in a ward, the communication location of the mobile monitoring device is located outside the ward; The communication distance between the mobile monitoring device and the monitoring device is not less than a second preset distance threshold.

6. The mobile monitoring device according to claim 3, characterized in that The indicator reflecting the health status of the human body satisfies a fifth preset condition, including at least one of the following: The monitoring time of the human body by the mobile monitoring device does not reach a second preset time threshold, and the second preset time threshold is greater than the first preset time threshold; An early warning score for the human body based on the monitoring data is lower than a first preset score threshold; At least one item of the monitoring data is abnormal at the current moment; At least one item of the monitoring data has no abnormality at the current moment, but has an abnormality within a preset time before the current moment, where the duration of the preset time is a third preset time threshold; A movement accident occurs to the human body.

7. The mobile monitoring device according to claim 3, characterized in that: The indicator reflecting the health status of the human body satisfies a seventh preset condition, including at least one of the following: The monitoring time of the human body by the mobile monitoring device reaches a fourth preset time threshold, and the fourth preset time threshold is greater than the first preset time threshold; An early warning score for the human body based on the monitoring data is higher than a second preset score threshold; The monitoring data were normal. No movement accidents occurred to the human body.

8. The mobile monitoring device according to claim 1, characterized in that: The processor is further configured to: A countdown prompt message is output according to the first preset time threshold to prompt the user that a switch from the third transmission mode to the second transmission mode is about to be made. The start time of the countdown in the countdown prompt message is when the switch from the second transmission mode to the third transmission mode is made.

9. The mobile monitoring device according to claim 6, characterized in that: The processor is further configured to: Outputting countdown prompt information according to the third preset time threshold to prompt the user that the first transmission mode is about to be switched to the second transmission mode, wherein the countdown in the countdown prompt information starts at the time when the abnormality disappears.

10. The mobile monitoring device according to claim 8 or 9, characterized in that: The countdown prompt information is displayed on the display of the mobile monitoring device and / or the display of the monitoring device; and / or, The countdown prompt information is played through the speaker of the mobile monitoring device and / or the speaker of the monitoring device.

11. The mobile monitoring device according to claim 1, characterized in that: The monitoring equipment includes a monitor located in the ward and / or a central monitoring system.

12. The mobile monitoring device according to claim 1, characterized in that The first transmission mode includes a continuous transmission mode, the second transmission mode includes an intermittent transmission mode, and the third transmission mode includes a temporary continuous transmission mode, wherein: The continuous transmission mode refers to transmitting data in a continuous preset number of transmission cycles; The intermittent transmission mode refers to transmitting data only in the first part of the transmission cycles in a continuous preset number of transmission cycles; The temporary continuous transmission mode refers to transmitting data only in a second part of transmission cycles in a continuous preset number of transmission cycles, wherein the number of the second part of transmission cycles is greater than the number of the first part of transmission cycles.

13. The mobile monitoring device according to claim 11, characterized in that: The monitoring data transmitted in the continuous transmission mode includes real-time monitoring data; The monitoring data transmitted in the temporary continuous transmission mode includes analysis results of the real-time monitoring data.

14. A monitoring system, characterized in that: The monitoring system includes a wearable mobile monitoring device worn on the human body and a monitoring device outside the human body, wherein: The mobile monitoring device is used to monitor and obtain monitoring data of the human body; The monitoring device is used to obtain and display the monitoring data; The mobile monitoring device is further configured to perform the following operations: Transmitting the monitoring data to the monitoring device via a communication connection established with the monitoring device, wherein transmitting the monitoring data to the monitoring device comprises: Under a first preset condition, transmitting the monitoring data acquired at a first acquisition frequency in a first transmission mode; Under a second preset condition, the monitoring data acquired at the second acquisition frequency is transmitted in the second transmission mode, the frequency of transmitting the monitoring data in the first transmission mode is higher than the frequency of transmitting the monitoring data in the second transmission mode, and / or the first acquisition frequency is higher than the second acquisition frequency; Wherein, when transmitting the monitoring data in the second transmission mode, if a third preset condition is detected, switching to the third transmission mode to transmit the monitoring data acquired at the third acquisition frequency, and switching back to the second transmission mode if the transmission duration after switching to the third transmission mode reaches a first preset time threshold and the first preset condition is not detected; The frequency of transmitting the monitoring data in the third transmission mode is higher than the frequency of transmitting the monitoring data in the second transmission mode, and / or the third acquisition frequency is higher than the second acquisition frequency.

15. The monitoring system according to claim 14, characterized in that: The third preset condition includes a user instruction for switching to the third transmission mode.

16. The monitoring system according to claim 14, wherein: The first preset condition includes: an indicator reflecting the communication status between the mobile monitoring device and the monitoring device satisfies a fourth preset condition, and / or an indicator reflecting the health status of the human body satisfies a fifth preset condition; The second preset condition includes: under the premise that no user instruction for switching the transmission mode is detected, the indicator reflecting the communication status between the mobile monitoring device and the monitoring device meets the sixth preset condition, and / or, under the premise that no user instruction for switching the transmission mode is detected, the indicator reflecting the health status of the human body meets the seventh preset condition.

17. The monitoring system according to claim 16, characterized in that: The indicator reflecting the communication status between the mobile monitoring device and the monitoring device satisfies a fourth preset condition, including at least one of the following: The communication connection between the mobile monitoring device and the monitoring device is a point-to-point wireless communication connection; When the monitoring device is a monitor located in a ward, the communication location of the mobile monitoring device is located within the ward; The communication distance between the mobile monitoring device and the monitoring device is less than a first preset distance threshold.

18. The monitoring system according to claim 16, wherein: The indicator reflecting the communication status between the mobile monitoring device and the monitoring device satisfies a sixth preset condition, including at least one of the following: The communication connection between the mobile monitoring device and the monitoring device is a non-point-to-point wireless communication connection; When the monitoring device is a monitor located in a ward, the communication location of the mobile monitoring device is located outside the ward; The communication distance between the mobile monitoring device and the monitoring device is not less than a second preset distance threshold.

19. The monitoring system according to claim 16, wherein: The indicator reflecting the health status of the human body satisfies a fifth preset condition, including at least one of the following: The monitoring time of the human body by the mobile monitoring device does not reach a second preset time threshold, and the second preset time threshold is greater than the first preset time threshold; An early warning score for the human body based on the monitoring data is lower than a first preset score threshold; At least one item of the monitoring data is abnormal at the current moment; At least one item of the monitoring data has no abnormality at the current moment, but has an abnormality within a preset time before the current moment, where the duration of the preset time is a third preset time threshold; A movement accident occurs to the human body.

20. The monitoring system according to claim 16, wherein: The indicator reflecting the health status of the human body satisfies a seventh preset condition, including at least one of the following: The monitoring time of the human body by the mobile monitoring device reaches a fourth preset time threshold, and the fourth preset time threshold is greater than the first preset time threshold; An early warning score for the human body based on the monitoring data is higher than a second preset score threshold; The monitoring data were normal. No movement accidents occurred to the human body.

21. The monitoring system according to claim 14, wherein: The mobile monitoring device is also used for: A countdown prompt message is output according to the first preset time threshold to prompt the user that a switch from the third transmission mode to the second transmission mode is about to be made. The start time of the countdown in the countdown prompt message is when the switch from the second transmission mode to the third transmission mode is made.

22. The monitoring system according to claim 19, wherein: The mobile monitoring device is also used for: Outputting countdown prompt information according to the third preset time threshold to prompt the user that the first transmission mode is about to be switched to the second transmission mode, wherein the countdown in the countdown prompt information starts at the time when the abnormality disappears.

23. The monitoring system according to claim 21 or 22, characterized in that: The countdown prompt information is displayed on the display of the mobile monitoring device and / or the display of the monitoring device; and / or, The countdown prompt information is played through the speaker of the mobile monitoring device and / or the speaker of the monitoring device.

24. The monitoring system according to claim 14, wherein: The monitoring equipment includes a monitor located in the ward and / or a central monitoring system.

25. The monitoring system according to claim 14, wherein: The first transmission mode includes a continuous transmission mode, the second transmission mode includes an intermittent transmission mode, and the third transmission mode includes a temporary continuous transmission mode, wherein: The continuous transmission mode refers to transmitting data in a continuous preset number of transmission cycles; The intermittent transmission mode refers to transmitting data only in the first part of the transmission cycles in a continuous preset number of transmission cycles; The temporary continuous transmission mode refers to transmitting data only in a second part of transmission cycles in a continuous preset number of transmission cycles, wherein the number of the second part of transmission cycles is greater than the number of the first part of transmission cycles.

26. The monitoring system according to claim 25, characterized in that The monitoring data transmitted in the continuous transmission mode includes real-time monitoring data; The monitoring data transmitted in the temporary continuous transmission mode includes analysis results of the real-time monitoring data.

27. A data transmission method, applied to a wearable mobile monitoring device, characterized in that: The method comprises: Acquiring a signal representing at least one physiological parameter of a human body; obtaining monitoring data based on the signal; Transmitting the monitoring data to the monitoring device via a communication connection established with the monitoring device outside the human body; The step of transmitting the monitoring data to the monitoring device includes: Under a first preset condition, transmitting the monitoring data acquired at a first acquisition frequency in a first transmission mode; Under a second preset condition, the monitoring data acquired at the second acquisition frequency is transmitted in the second transmission mode, the frequency of transmitting the monitoring data in the first transmission mode is higher than the frequency of transmitting the monitoring data in the second transmission mode, and / or the first acquisition frequency is higher than the second acquisition frequency; Wherein, when transmitting the monitoring data in the second transmission mode, if a third preset condition is detected, switching to the third transmission mode to transmit the monitoring data acquired at the third acquisition frequency, and switching back to the second transmission mode if the transmission duration after switching to the third transmission mode reaches a first preset time threshold and the first preset condition is not detected; The frequency of transmitting the monitoring data in the third transmission mode is higher than the frequency of transmitting the monitoring data in the second transmission mode, and / or the third acquisition frequency is higher than the second acquisition frequency.

28. The method according to claim 27, characterized in that The third preset condition includes a user instruction for switching to the third transmission mode.

29. The method according to claim 27, characterized in that The first preset condition includes: an indicator reflecting the communication status between the mobile monitoring device and the monitoring device satisfies a fourth preset condition, and / or an indicator reflecting the health status of the human body satisfies a fifth preset condition; The second preset condition includes: under the premise that no user instruction for switching the transmission mode is detected, the indicator reflecting the communication status between the mobile monitoring device and the monitoring device meets the sixth preset condition, and / or, under the premise that no user instruction for switching the transmission mode is detected, the indicator reflecting the health status of the human body meets the seventh preset condition.

30. The method according to claim 29, characterized in that The indicator reflecting the communication status between the mobile monitoring device and the monitoring device satisfies a fourth preset condition, including at least one of the following: The communication connection between the mobile monitoring device and the monitoring device is a point-to-point wireless communication connection; When the monitoring device is a monitor located in a ward, the communication location of the mobile monitoring device is located within the ward; The communication distance between the mobile monitoring device and the monitoring device is less than a first preset distance threshold.

31. The method according to claim 29, wherein: The indicator reflecting the communication status between the mobile monitoring device and the monitoring device satisfies a sixth preset condition, including at least one of the following: The communication connection between the mobile monitoring device and the monitoring device is a non-point-to-point wireless communication connection; When the monitoring device is a monitor located in a ward, the communication location of the mobile monitoring device is located outside the ward; The communication distance between the mobile monitoring device and the monitoring device is not less than a second preset distance threshold.

32. The method according to claim 29, wherein The indicator reflecting the health status of the human body satisfies a fifth preset condition, including at least one of the following: The monitoring time of the human body by the mobile monitoring device does not reach a second preset time threshold, and the second preset time threshold is greater than the first preset time threshold; An early warning score for the human body based on the monitoring data is lower than a first preset score threshold; At least one item of the monitoring data is abnormal at the current moment; At least one item of the monitoring data has no abnormality at the current moment, but has an abnormality within a preset time before the current moment, where the duration of the preset time is a third preset time threshold; A movement accident occurs to the human body.

33. The method according to claim 29, wherein The indicator reflecting the health status of the human body satisfies a seventh preset condition, including at least one of the following: The monitoring time of the human body by the mobile monitoring device reaches a fourth preset time threshold, and the fourth preset time threshold is greater than the first preset time threshold; An early warning score for the human body based on the monitoring data is higher than a second preset score threshold; The monitoring data were normal. No movement accidents occurred to the human body.

34. The method according to claim 27, wherein The method further comprises: A countdown prompt message is output according to the first preset time threshold to prompt the user that a switch from the third transmission mode to the second transmission mode is about to be made. The start time of the countdown in the countdown prompt message is when the switch from the second transmission mode to the third transmission mode is made.

35. The monitoring system according to claim 32, wherein: The method further comprises: Outputting countdown prompt information according to the third preset time threshold to prompt the user that the first transmission mode is about to be switched to the second transmission mode, wherein the countdown in the countdown prompt information starts at the time when the abnormality disappears.

36. The method according to claim 34 or 35, characterized in that The countdown prompt information is displayed on the display of the mobile monitoring device and / or the display of the monitoring device; and / or, The countdown prompt information is played through the speaker of the mobile monitoring device and / or the speaker of the monitoring device.

37. The method according to claim 27, wherein The monitoring equipment includes a monitor located in the ward and / or a central monitoring system.

38. The method according to claim 27, wherein The first transmission mode includes a continuous transmission mode, the second transmission mode includes an intermittent transmission mode, and the third transmission mode includes a temporary continuous transmission mode, wherein: The continuous transmission mode refers to transmitting data in a continuous preset number of transmission cycles; The intermittent transmission mode refers to transmitting data only in the first part of the transmission cycles in a continuous preset number of transmission cycles; The temporary continuous transmission mode refers to transmitting data only in a second part of transmission cycles in a continuous preset number of transmission cycles, wherein the number of the second part of transmission cycles is greater than the number of the first part of transmission cycles.

39. The method according to claim 38, characterized in that The monitoring data transmitted in the continuous transmission mode includes real-time monitoring data; The monitoring data transmitted in the temporary continuous transmission mode includes analysis results of the real-time monitoring data.

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