Central station for processing monitoring information and method of processing monitoring information thereof
By dividing the display area within the bed interface of the central station and displaying bed number, patient information, and alarm information, the problem of inconvenient information in multi-bed monitoring is solved, and the work efficiency of medical staff is improved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2020-12-18
- Publication Date
- 2026-03-31
AI Technical Summary
In existing technologies, when medical staff monitor multiple beds centrally, they cannot see all the relevant information about abnormal infusions in a single display area, leading to inconvenience and low work efficiency.
The central station generates a bed interface, divides the display area according to the number of beds and the pre-set display layout, displays patient information, and displays bed number, patient information and alarm information within the same display area. The bed location of the alarm information is determined and displayed using an identification code and a mapping table.
This allows medical staff to have a clear understanding of patients' conditions at a glance, improving patient management efficiency and simplifying the information viewing process.
Smart Images

Figure CN113808702B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of medical monitoring technology, specifically to a central station for processing monitoring information, and a method for the central station to process monitoring information. Background Technology
[0002] With the development of medical technology and the improvement of medical standards, intravenous infusion and injection for drug administration, nutritional supplementation, and regulation of fluid balance are becoming increasingly indispensable methods in diagnosis and treatment, and corresponding products are also becoming more and more numerous (such as infusion pumps, syringe pumps, etc.).
[0003] Clinical treatment often involves the extensive use of medical equipment such as ventilators, infusion pumps, and syringe pumps. Therefore, efficient infusion management is crucial. A central station, comprising a host computer and monitors, provides unified management of all medical devices. The host computer communicates with each device, automatically collecting infusion data from all channels in real time and outputting it to the monitors for medical staff to view. This enables centralized monitoring of patients across multiple beds. In addition to monitoring patients' physiological parameters, medical staff must also pay attention to any abnormalities that occur during the infusion process.
[0004] like Figure 2 The image shows the current display interface on the central station's monitor. The left-hand display area is the multi-bed area, containing multiple display units, each showing a pre-assigned bed number. The right-hand area displays the alarm list. This display method separates the detailed infusion abnormality information for each bed and its corresponding patient into two display areas. If the user needs further details about the infusion, they need to click to open... Figure 3 This interface is inconvenient for users to read.
[0005] When an abnormality occurs during an infusion in a patient in a certain bed, an abnormality alert will appear on the display unit corresponding to that bed in the multi-bed area (e.g., indicated by color within the display unit), and the alarm list will display the details of the abnormality that occurred during the infusion process in that bed (e.g., different background colors and corresponding text indicating the bed, the currently infused medication, and the cause of the abnormality).
[0006] by Figure 2For example, if medical staff see an abnormal alert for bed number 10 in a multi-bed area, they can know that the patient in bed 10 experienced an abnormality during intravenous infusion. However, they must search for detailed infusion abnormality information for bed 10 in the alarm list on the right side of the display interface to find out that the abnormality was caused by dopamine blockage. Because it's impossible to see all the relevant information about the patient's infusion abnormality in one display area, this display method is not user-friendly and will increasingly impact work efficiency as the number of beds to be managed increases. Summary of the Invention
[0007] The main technical problem solved by this invention is to provide a central station for processing monitoring information, enabling medical staff to have a clear overview when centrally monitoring and managing multiple beds.
[0008] According to a first aspect, one embodiment provides a method for a central station to process monitoring information, wherein the central station is communicatively connected to at least one medical device corresponding to a bed for admitting patients, each bed having a corresponding bed number, and the central station sets patient information for each bed based on input instructions, the method comprising:
[0009] The central station generates a bed interface. Within the bed interface, a first display segment corresponding to each bed is divided according to the number of beds with bed numbers and a pre-set display layout. The patient information of the patients admitted to the corresponding beds is displayed in the first display segment.
[0010] The central station generates a first mapping table for the bed interface, and the first mapping table records the position coordinates of the first display segment of each bed within the bed interface;
[0011] For any one of the at least one medical devices, the central station receives first medical information sent by the medical device, the first medical information including a first identification code of the medical device;
[0012] The central station parses the first medical information. When the first medical information includes at least one alarm message, it determines the bed corresponding to the medical device that sent the at least one alarm message based on the first identification code in the first medical information and the correspondence table between the first identification code and the bed number pre-stored by the central station.
[0013] The central station determines the position coordinates of the first display segment of the bed corresponding to the medical device within the bed interface according to the first mapping table, and displays the bed number of the bed corresponding to the medical device and the at least one alarm message sent by the medical device in the first display segment of the bed corresponding to the medical device.
[0014] According to a second aspect, one embodiment provides a central station for processing monitoring information, the central station being communicatively connected to at least one medical device corresponding to a bed for admitting patients, each bed having a corresponding bed number, the central station setting patient information for each bed based on input instructions, the central station comprising:
[0015] Memory, used to store patient information and procedures;
[0016] A processor for implementing the method of the first aspect by executing a program stored in the memory.
[0017] According to a third aspect, one embodiment provides a computer-readable storage medium, characterized in that it includes a program that can be executed by a processor to implement the method of the first aspect.
[0018] The aforementioned central station's method of processing monitoring information displays bed information, patient information, and alarm information that occurs during abnormalities in the same display area. Users can centrally monitor patients in one display area, which not only facilitates user use but also improves the efficiency of patient management. Attached Figure Description
[0019] Figure 1 This is a structural block diagram of a central station according to one embodiment;
[0020] Figure 2 This is a schematic diagram of the bed interface in the prior art;
[0021] Figure 3 This is a schematic diagram of a detailed infusion information display interface in the prior art;
[0022] Figure 4 A flowchart illustrating a method for central station to process monitoring information according to one embodiment;
[0023] Figure 5 This is a schematic diagram of the bed interface and the remaining infusion time interface in one embodiment;
[0024] Figure 6 This is a schematic diagram of a single-bed alarm interface according to one embodiment;
[0025] Figure 7 This is a schematic diagram of a single-bed infusion interface according to one embodiment;
[0026] Figure 8 This is a schematic diagram of another single-bed infusion interface according to one embodiment. Detailed Implementation
[0027] The present invention will now be described in further detail with reference to specific embodiments and accompanying drawings. Similar elements in different embodiments are referred to by associated similar element reference numerals. In the following embodiments, many details are described to facilitate a better understanding of this application. However, those skilled in the art will readily recognize that some features may be omitted in different situations, or may be replaced by other elements, materials, or methods. In some cases, certain operations related to this application are not shown or described in the specification. This is to avoid obscuring the core parts of this application with excessive description. For those skilled in the art, detailed description of these related operations is not necessary; they can fully understand the related operations based on the description in the specification and general technical knowledge in the art.
[0028] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments. At the same time, the steps or actions in the method description can be rearranged or adjusted in a manner obvious to those skilled in the art. Therefore, the various orders in the specification and drawings are only for the clear description of a particular embodiment and do not imply a necessary order, unless otherwise stated that a particular order must be followed.
[0029] The serial numbers assigned to components in this document, such as "first" and "second," are used only to distinguish the described objects and have no sequential or technical meaning. The terms "connection" and "linkage" used in this application, unless otherwise specified, include both direct and indirect connections (linkages).
[0030] Before providing a further detailed description of the present invention, the nouns and terms used in the embodiments of the present invention will be explained, and the nouns and terms used in the embodiments of the present invention shall be interpreted as follows.
[0031] 1) Monitoring information refers to the total amount of patient-related information obtained by the central station through bedside medical equipment. This may include patient physiological parameters, infusion information, etc. Medical staff can learn about the current condition of the patient through monitoring information.
[0032] 2) The infusion device can hold different types of medications through the corresponding medication storage unit, achieving high-precision, stable and pulsation-free liquid transmission, and injecting the corresponding different types of medications into the patient's body.
[0033] In several embodiments of the present invention, the central station includes a display and a host connected to the display by a signal. The display includes a screen with a graphical user interface (GUI), and the host includes one or more processors, a memory, and one or more modules, programs, or instruction sets stored in the memory for performing various functions.
[0034] In several embodiments of the present invention, the display in the central station can support various applications with an intuitive graphical user interface (GUI). The control objects of the interface can be implemented using computer languages such as VB and Java, and their visualization results are graphical objects displayed on the GUI. These graphical objects include one or more combinations of graphics, text, and images displayed on the GUI. A physical hardware input device (e.g., a combination of one or more mouse and / or keyboard) can be used as the human-computer interaction interface of the central station, allowing users to input data to trigger relevant events for applications or functions. For example, the hardware input device can control cursor movement on the GUI to present an operation action. In other embodiments, the display screen can also be a touchscreen, allowing input via touchscreen gestures.
[0035] The hardware and software environments upon which the various embodiments of the present invention are based will now be described in detail with reference to the accompanying drawings.
[0036] In one embodiment of the present invention Figure 1 The associated hardware and / or software architecture of a central station in one implementation is given.
[0037] The central station includes a host 100, a display 200, and other input devices 300. The host 100 may include a memory 114 (which may include one or more computer-readable storage media), a central processing unit 112 (which may consist of one or more processors and / or controllers), a peripheral interface 116, and an I / O subsystem 120. The display 200 may include a screen, and the content displayed on the screen is the display interface of the display 200.
[0038] Of course, the central station may also include a communication module 130, an audio processor 150, a speaker 160, an external port 140, and a power supply system 170 (including a DC / DC conversion circuit and / or an AC / DC conversion circuit). The aforementioned components or modules can communicate on one or more communication buses or signal lines.
[0039] Memory 114 may include high-speed random access memory and may also include non-volatile memory, such as one or more disk storage devices, flash storage devices, or other non-volatile solid-state storage devices. In some embodiments, memory 114 may also include memory remote from one or more processors, such as network-attached memory accessed via communication module 130 or external port 140 and a communication network (not shown), wherein the communication network may be the Internet, one or more intranets, local area networks (LANs) and wide area networks (WANs) and storage area networks (SANs), or suitable combinations thereof.
[0040] Peripheral interface 116 couples the input and output peripherals of the central station to the central processing unit 112. The central processing unit 112 runs or executes various software programs and / or instruction sets stored in memory 114 to perform various functions and applications of the device and process data.
[0041] In various embodiments of the invention, the peripheral interface 116, the central processing unit 112 (CPU), and the memory 114 may be implemented on a single chip, such as the same chip. In some embodiments, they may also be implemented on multiple discrete chips. The CPU 112, together with the peripheral interface 116, the memory 114, or a portion thereof, constitutes the processing unit 110.
[0042] The communication module 130 is used to receive communication signals and convert them into electrical signals, and to convert electrical signals into communication signals for transmission. The communication module 130 can be implemented using any method known in the art, primarily enabling the central station to communicate with external networks or other external devices. For example, the communication module 130 can access the Internet (WWW), intranets, and / or wireless and / or wired networks such as cellular telephone networks, local area networks (LANs), and / or metropolitan area networks (MANs), as well as communicate with other devices. The communication module 130 can use any of a variety of communication standards, protocols, and technologies, including but not limited to using wired or wireless media, including Bluetooth, Ethernet, 802.11(x) standards, body area networks, or other wireless protocols.
[0043] Audio processor 150 and speaker 160 provide an audio interface between the user (medical staff) and host 100. Audio processor 150 can receive audio data from peripheral interface 116, convert the audio data into electrical signals, and send the electrical signals to speaker 160. Speaker 160 converts the electrical signals into sound waves that are audible to humans. Peripheral interface 116 can retrieve audio data from memory 114 and / or communication module 130 and / or send audio data to memory 114 and / or communication module 130.
[0044] I / O subsystem 120 couples display 200 and other input devices 300 to peripheral interface 116. I / O subsystem 120 may include display controller 122 and one or more other input controllers 124 for controlling the other input devices 300. The one or more other input controllers 124 receive / send electrical signals to the other input devices 300. Other input devices 300 may include physical buttons and similar devices.
[0045] The central station also includes a power supply system 170 that provides power input to various components, modules, or circuits. This system includes a power management system, one or more power sources (e.g., batteries, alternating current (AC)), a charging system, power fault detection circuitry, power converters or inverters, power status indicators (e.g., light-emitting diodes (LEDs)), and any other components related to the generation, management, and distribution of power in the central station. Depending on the power source, it may include DC / DC conversion circuitry or AC / DC conversion circuitry.
[0046] The above Figure 1 This merely provides a structural block diagram of a central station; of course, the aforementioned central station can also have more... Figure 1 It can use more or fewer components or modules, or it can combine two or more of the above-mentioned components or modules, or it can also be used for... Figure 1 The architecture within the framework is configured with different settings. For example... Figure 1 The various components or modules shown can be implemented in hardware, software, or a combination of both, including one or more signal processing and / or application-specific integrated circuits.
[0047] Figure 4 This is a flowchart of a monitoring information processing method according to one embodiment of the present invention, including the following steps:
[0048] Step 100: The central station generates a bed interface 10, and divides the bed interface 10 into a first display segment 11 corresponding to each bed according to the number of beds with bed numbers and the pre-set display layout. The patient information of the patients admitted to the corresponding beds is displayed in the first display segment 11.
[0049] Patient information includes some or all of the patient's information, such as the patient's name, age, height, and weight. Preferably, in the first display segment 11, the patient information includes the name.
[0050] In some embodiments, the bed number for each bed is assigned by a central station, which can assign a bed number to each bed for accommodating patients based on the number of beds available for patient admission. For example, the central station manages the medical equipment in a department with 10 beds for accommodating patients. Medical staff number the beds according to their arrangement and input the assigned bed number to the central station via a human-computer interaction interface.
[0051] The preset display layout can be stored in the memory 114 of the host 100 in the form of a corresponding instruction set. The central processing unit 112 executes the stored instruction set in response to the user's input, thereby dividing the generated bed interface 10 according to the preset display layout.
[0052] like Figure 5 The diagram shows a bed interface 10 according to one embodiment. This bed interface 10 can be displayed as a single display on the screen of the monitor 200. Medical staff input the number of beds as nine through the human-computer interaction interface of the central station. After the central processing unit 112 reads the number of beds, it calls the instruction set in the memory 114 to divide the bed interface 10 into 3x3 rectangles. Each rectangle is a first display segment 11. The bed number is displayed on the left side near the top of the first display segment 11, and the patient's name is displayed on the right side near the top of the first display segment 11.
[0053] Step 200: The central station generates a first mapping table for the bed interface 10. The first mapping table records the position coordinates of the first display segment 11 of each bed within the bed interface 10.
[0054] The position coordinates in the first image table can be represented by a vertical coordinate system. For example, in the bed interface 10, the horizontal direction is the X-axis and the vertical direction is the Y-axis. In other embodiments, the horizontal direction of the bed interface 10 can also be set as the Y-axis and the vertical direction as the X-axis, or a user-defined direction can be used as the X-axis.
[0055] Step 300: For any one of the at least one medical devices, the central station receives and parses the first medical information sent by the medical device. The first medical information includes a first identification code of the medical device.
[0056] The first identification code can be a unique ID of the medical device, such as the serial number obtained during the manufacturing process, or a number assigned to the medical device by the user during initialization. The central station has a pre-stored correspondence table between the first identification code and the bed number. After obtaining the first identification code, the central station can determine which medical device sent the first medical information based on the first identification code.
[0057] Step 400: The central station determines whether the first medical information includes at least one alarm message. If it does, then the medical device that sent at least one alarm message is executed in step 500; otherwise, step 400 is executed.
[0058] Step 500: Based on the first identification code in the first medical information and the correspondence table between the first identification code and the bed number pre-stored by the central station, determine the bed corresponding to the medical device that sent at least one alarm message.
[0059] For example, consider a ventilator. When a leak occurs in the tubing between the ventilator and the patient, or the breathing mask is not properly sealed, the inspiratory / expiratory sensors installed inside the tubing will detect a change in internal air pressure. Based on this, the ventilator can generate an alarm message indicating mask dislodgement and send this alarm message, along with the acquired patient breathing parameters and the ventilator's first identification code, to a central station. The central station can then determine which ventilator sent the alarm message.
[0060] Step 600: The central station determines the position coordinates of the first display segment 11 of the medical device corresponding to the bed in the bed interface 10 according to the first mapping table. The central station displays the bed number of the medical device corresponding to the bed and at least one alarm message sent by the medical device in the first display segment 11 of the medical device corresponding to the bed.
[0061] Figure 5 A bed interface 10 is provided that displays alarm information. The medical devices corresponding to beds numbered 1, 2, and 3 in this bed interface 10 have sent alarm information (patient information for other beds is omitted).
[0062] Through the above-mentioned methods of processing monitoring information, when medical staff observe the monitor 200 connected to the central station, they can see three types of information in each first display segment 11 of the bed interface 10: the bed number, the patient information, and the alarm information when an abnormality occurs, so as to have a clear understanding of the patient's condition.
[0063] In some embodiments, alarm information can be classified into levels based on the severity and urgency of user-defined anomalies, with a first alarm level and a second alarm level. The first alarm level represents more serious or urgent anomalies. To distinguish different alarm levels on the display interface of the monitor 200, the alarm information also includes a first identifier representing the alarm level. For example, if the alarm information is transmitted as a string, the first identifier is a field within that string. After parsing the first medical information, the central station will further parse each alarm message separately to obtain the first identifier for each message. Based on the first identifier, the alarm message can be displayed in different ways. Generally, alarm messages of the first alarm level are displayed more prominently.
[0064] For example, in some embodiments, if the first identifier included in the alarm information represents a first alarm level, the central station will display the alarm information in the center of the first display segment 11 corresponding to the bed of the medical device. Furthermore, a striking color, such as red, can be used as the background color to display the alarm information (see [reference]). Figure 5 (Wednesday 1, 2, and 3 are represented by grayscale to indicate the background color).
[0065] If the first identifier included in the alarm information represents the second alarm level, the central station will display the alarm information at the edge of the first display segment 11 corresponding to the bed of the medical device (not shown in the figure).
[0066] By classifying alarm information and displaying it in different ways, medical staff can quickly distinguish the severity and urgency of abnormal situations and take appropriate measures.
[0067] When an alarm message includes a first identifier, the central station, upon receiving a first medical message, can determine the number of alarm messages corresponding to the first alarm level by the number of first identifiers representing the first alarm level within that first medical message. For example, if a medical message contains three alarm messages, and after parsing, two first identifiers representing the first alarm level are obtained, then the first medical message includes two alarm messages of the first alarm level. When a first medical message contains at least two alarm messages of the first alarm level, the central station can display at least two alarm messages of the first alarm level alternately in the center of the first display segment 11 corresponding to the bed of the medical device that sent the first medical message. For example, each alarm message of the first alarm level is displayed in the center of the first display segment 11 for 10 seconds.
[0068] In some embodiments, upon receiving an alarm message, the central station also generates an alarm interface. This interface displays alarm messages sent by various medical devices currently connected to the central station. In other words, medical staff can observe this alarm interface to obtain information on all abnormal conditions of patients in the departments managed by the central station. The alarm interface displays each alarm message in a list format, with each message occupying one line and sorted according to bed number. In this embodiment, the central station detects the command to display the alarm interface triggered through its human-computer interaction interface and displays both the bed interface 10 and the alarm interface on the same display screen based on this command. That is, the user can access the alarm interface as needed. In some embodiments, such as... Figure 6 As shown, after receiving alarm information, the central station can also generate a single-bed alarm interface 20 corresponding to each bed. A single-bed alarm interface 20 displays the alarm information sent by each medical device corresponding to a bed, for example... Figure 6 The content displayed is two alarm messages sent by the medical equipment in one bed.
[0069] The medical device used in the above method may include any one of an infusion device, a ventilator, an anesthesia machine, and a monitor. An example using an infusion device will be described below.
[0070] In this embodiment, each bed also has at least one corresponding dock, and each dock corresponds to some or all of the infusion devices in at least one infusion device. Each infusion device is communicatively connected to its corresponding dock and sends second medical information to the central station through the corresponding dock. For example, one bed has two corresponding docks and six infusion devices, denoted as dock A and dock B, respectively. Three infusion devices are communicatively connected to dock A, and three infusion devices are communicatively connected to dock B. The second medical information includes infusion parameters, which include at least one of the following: infusion drug name, infusion rate, infused volume, volume to be infused, and remaining infusion time. In addition to the second medical information, the infusion devices also send first medical information with a first identification code. In some embodiments, the first and second medical information may be the same piece of medical information.
[0071] When the infusion device establishes a communication connection with the docking station, it also sends its own second identifier to the docking station. The second identifier is used to characterize the type of the corresponding infusion device. The docking station can identify the type of infusion device through the second identifier. For example, it can identify whether the infusion device is an infusion pump or a syringe pump.
[0072] After receiving the second medical information and second identifier sent by each infusion device that is connected to it, the docking station can package the second medical information and identifier to generate docking information, and send the docking information to the central station for reception and parsing, thereby realizing centralized management of multiple infusion devices.
[0073] In some embodiments, the central station parses docking station information and second medical information. When the second medical information includes remaining infusion time, the central station also compares the remaining infusion time with a preset time limit and marks infusion devices whose remaining infusion time is less than the preset time limit. In the following text, infusion devices with remaining infusion time less than the preset time limit are designated as infusion devices to be monitored. The reason for marking these devices is that when the remaining infusion time is less than the preset time limit, it means that the infusion medication in the device is about to be finished, and medical staff need to prepare in advance.
[0074] After marking the infusion devices to be monitored, the central station generates a remaining infusion time interface 30. Within the remaining infusion time interface 30, a second display segment 31 corresponding to each monitored infusion device is divided according to the number of devices marked as monitoring and a pre-set display layout. Please refer to... Figure 5 The right-hand area of the figure represents a remaining infusion time interface 30. Each row is a second display segment 31, which displays the remaining infusion time sent by the corresponding monitored infusion device and the corresponding bed number. For example, the first row displays information indicating that the infusion device for bed 1 has only 10 minutes of remaining infusion time. In this embodiment, the second display segments 31 are arranged in ascending order according to the remaining infusion time. In other embodiments, they can also be sorted according to other methods such as bed number.
[0075] In addition to the remaining infusion time and bed number, the second display section 31 can also display other infusion parameters, such as... Figure 5 The display also shows the name of the infused medication. Additionally, optionally, the second display section 31 can also display infusion information, in units of drops / min, i.e., the number of drops per minute.
[0076] In this embodiment, the central station detects the instruction triggered by the human-computer interaction interface of the central station to display the remaining infusion time interface 30, and displays the bed interface 10 and the remaining infusion time interface 30 in the same display interface based on the instruction. That is, the user can call up the remaining infusion time interface 30 to view it as needed.
[0077] In addition to the infusion parameters, the central station also pre-stores a simulated icon 32 and a correspondence table between the second identifier and the simulated icon 32. The appearance of the simulated icon 32 simulates the type of infusion device. According to the correspondence table between the second identifier and the simulated icon 32, the central station calls the simulated icon 32 corresponding to each infusion device to be monitored and displays the simulated icon 32 in the second display segment 31 corresponding to each infusion device to be monitored. For example Figure 5 As shown, the second display section 31 in the first row corresponds to the infusion device to be monitored as an infusion pump, while the second display section 31 in the second row corresponds to the infusion device to be monitored as an injection pump.
[0078] In some embodiments, the docking station information also includes a second identification code corresponding to the docking station. Similar to the first identification code in the first medical information, the second identification code can be a unique serial number of the docking station during the manufacturing process, or it can be a number assigned to the docking station by the user during initialization. After receiving and parsing the docking station information sent by the docking station, the central station can determine the bed corresponding to the docking station based on the second identification code in the docking station information and the correspondence table between the second identification code and the bed number pre-stored by the central station.
[0079] In this embodiment, the central station also generates a single-bed infusion interface 40 corresponding to each bed. The single-bed infusion interface 40 displays detailed infusion information for the patient accommodated in each bed. Based on the number of docking stations corresponding to the beds in the single-bed infusion interface 40 and a pre-set display layout, the central station divides the space into display areas 42 corresponding to each docking station of the bed in the single-bed infusion interface 40. Please refer to [reference needed]. Figure 7-8 , Figure 7 and Figure 8 This can represent the interfaces displayed on monitors at two central stations responsible for different departments. (By...) Figure 7 From the upper left corner of the right-hand region, we can see that... Figure 7 The single-bed infusion interface 40 displayed corresponds to bed number 5, which has one docking station and four infusion devices. The left side of this single-bed infusion interface 40 is the display area 42 corresponding to the docking station. And by... Figure 8 From the upper left corner of the right-hand region, we can see that... Figure 8 The single-bed infusion interface 40 displayed in the middle corresponds to bed number 5. There are two docking stations for this bed and 12 infusion devices. The left and right sides of the single-bed infusion interface 40 are display areas 42 corresponding to the docking stations. The display area 42 corresponding to the docking station can be distinguished by dock + number in the upper left corner of each area.
[0080] For any display area 42, the central station, based on the number of infusion devices communicatively connected to the docking station corresponding to display area 42 and a pre-set display layout, divides the display area 42 into a third display segment 41 corresponding to each infusion device communicatively connected to the docking station corresponding to that display area 42. For example... Figure 8 In the single-bed infusion interface 40 corresponding to bed 5, each docking station is connected to six infusion devices. Therefore, each display area 42 is divided into six third display sections 41. In each third display section 41, the central station displays the infusion parameters sent by the corresponding infusion device, infusion rate, remaining volume, infused volume, and remaining time.
[0081] In some embodiments, the docking station is a box-like structure with multiple slots for accommodating infusion devices. Each slot has a physical interface for connecting with the infusion device. The infusion device communicates with the docking station through these interfaces. The docking station can identify which interfaces and slots are occupied, and each slot has a slot number. In this embodiment, the docking information also includes the slot number and occupancy status of the corresponding docking station. After parsing the docking information, the central station can determine the occupancy status of the slots in the docking station. When generating the single-bed infusion interface 40, the central station divides the corresponding display area 42 into a third display segment 41 corresponding to the number of slots in each docking station and according to the slot numbers. The arrangement of the third display segments 41 matches the actual position of the slots on the docking station. For example... Figure 7 The single-bed infusion interface 40 shown has a docking station with six slots, four of which are occupied. In the actual docking station, from top to bottom, all four slots are occupied.
[0082] Using the above method, the actual usage of the dock station can be obtained on the display 200 on one side of the central station.
[0083] The central station detects the user's command to display the single-bed infusion interface 40 triggered through the central station's human-computer interaction interface, and selects one of the at least one single-bed infusion interfaces 40 based on the command, displaying it on the same display interface as the bed interface 10. That is, in this embodiment, the user first needs to select the bed to view. After selection, the single-bed infusion interface 40 for that bed will be invoked and displayed on the same display 200 along with the bed interface 10. For example, when the user double-clicks a blank area of a first display segment 11, the single-bed infusion interface 40 for the corresponding bed in the first display segment 11 will pop up.
[0084] In addition to detailed infusion information, the single-bed infusion interface 40 can also display detailed information about the patients accommodated in the corresponding bed, such as... Figure 7-8Above the display area 42, there is a patient information section that records detailed information such as the patient's height and weight. Furthermore, when the infusion device corresponding to the bed on the single-bed infusion interface 40 sends an alarm message, the alarm message can be displayed both in the third display section 41 corresponding to the infusion device that sent the alarm message and in a blank space on the single-bed infusion interface 40 that includes the third display section 41.
[0085] Furthermore, the central station pre-stores a correspondence table between the second identifier and the display layout template. For each infusion device, the central station calls the display layout template based on the second identifier of the infusion device. The central station applies the infusion parameters sent by the infusion device to the display layout template to generate a display image, which is then displayed in the corresponding third display segment 41. The aforementioned display layout template is identical to the actual display interface layout on the corresponding infusion device, ensuring that the content and layout of any third display segment 41 are completely consistent with the content displayed on the screen of the corresponding infusion device. Therefore, the information obtained by medical personnel observing the third display segment 41 is completely consistent with the information obtained by medical personnel observing the screen of the corresponding infusion device.
[0086] As mentioned above, the docking station can comprehensively manage the infusion devices it communicates with. When the docking station detects an abnormal operating status of a connected infusion device, i.e., it is not in a normal working state, it generates a third identifier to characterize this abnormal state. The central station, based on pre-stored abnormal state information and a mapping table between the third identifier and abnormal state information, displays the corresponding abnormal state information for the infusion device in the third display segment 41 corresponding to the infusion device. For example... Figure 7 As shown, although two infusion devices are electrically connected to the docking station, they are not transmitting data. After the docking station identifies the status of these two infusion devices, it will send the third identifier corresponding to "standby status" and the third identifier corresponding to "power off" to the central station, so that they can be displayed in the corresponding third display section 41.
[0087] The aforementioned central station's method of processing monitoring information displays bed information, patient information, and alarm information that occurs during abnormalities within the same display area. Users can centrally monitor patients in one display area, which not only facilitates user operation but also improves patient management efficiency. Furthermore, it provides various display interfaces, including an alarm interface, a remaining infusion time interface, and a single-bed infusion interface. The layout and style of the single-bed infusion interface closely resemble the actual product, creating a mirror image of the bedside equipment, allowing users to remotely observe the medical equipment at their bedside while processing monitoring information.
[0088] The above examples illustrate the present invention only to aid in understanding it and are not intended to limit the scope of the invention. Those skilled in the art can make various simple deductions, modifications, or substitutions based on the principles of this invention.
Claims
1. A method for processing monitoring information by a central station, the central station being communicatively connected with at least one medical device corresponding to a bed for receiving a patient, each of the beds having a corresponding bed number, the central station setting patient information for each of the beds based on an input instruction, at least one of the medical devices including at least one infusion device; each of the beds further having a corresponding at least one docking station, each docking station corresponding to some or all of the at least one infusion device, each infusion device being communicatively connected with a corresponding docking station; characterized in that, The method comprises: The central station generates a bed interface, and divides a first display segment corresponding to each bed in the bed interface according to the number of beds with bed numbers and a pre-set display layout; The central station generates a first mapping table of the bed interface, and records the position coordinates of the first display segment of each bed in the bed interface in the first mapping table; For any medical device in the at least one medical device, the central station receives first medical information sent by the medical device, and the first medical information comprises a first identification code of the medical device; The central station analyzes the first medical information, and when the first medical information comprises at least one alarm information, determines the bed corresponding to the medical device sending the at least one alarm information according to the first identification code in the first medical information and a pre-stored corresponding table of the first identification code and the bed number of the central station; wherein the at least one alarm information is used to represent an abnormal situation related to the at least one infusion device; The central station determines the position coordinates of the first display segment of the bed corresponding to the medical device in the bed interface according to the first mapping table, and displays the bed number of the bed corresponding to the medical device, the at least one alarm information sent by the medical device and patient information of a patient admitted by the corresponding bed in the first display segment of the bed corresponding to the medical device; For any docking station in the at least one docking station, the central station receives and analyzes docking information sent by the docking station, and the docking information comprises a second identification code of the corresponding docking station; the central station determines the bed corresponding to the docking station according to the second identification code in the docking information and a pre-stored corresponding table of the second identification code and the bed number of the central station; The central station generates a single-bed infusion interface corresponding to each bed and displayed on the same screen with the first display segment, and divides a display area corresponding to each docking station of the bed corresponding to the single-bed infusion interface according to the number of corresponding docking stations of the bed corresponding to the single-bed infusion interface and a pre-set display layout in the single-bed infusion interface; For any display area, the central station divides a third display segment corresponding to each infusion device in communication connection with the docking station corresponding to the display area in the display area according to the number of infusion devices in communication connection with the docking station corresponding to the display area and a pre-set display layout; wherein the arrangement mode of the third display segment matches the actual position of the slot on the docking station; If the docking information further comprises a third identifier corresponding to the infusion device and used to represent an abnormal working state, the central station displays the abnormal state information corresponding to the infusion device in the third display segment corresponding to the infusion device according to the pre-stored abnormal state information and a corresponding table of the third identifier and the abnormal state information.
2. The method of claim 1, wherein, The central station allocates a bed number for each bed, and the method further comprises: The central station assigns a bed number to each of the beds for receiving patients according to a number of the beds for receiving patients.
3. The method of claim 1, wherein, The alarm information further comprises a first identifier for representing an alarm level; The central station parses the first medical information sent by the medical device, and when the first medical information comprises at least one piece of alarm information, further comprises: For any alarm information in the at least one piece of alarm information, the central station parses the alarm information to obtain a first identifier, and determines a display mode corresponding to the alarm information according to the first identifier; The central station displays the alarm information through the display mode.
4. The method of claim 3, wherein, The alarm level comprises a first alarm level and a second alarm level; and the central station displays the alarm information through the display mode, comprising: If the first identifier included in the alarm information represents the first alarm level, the central station displays the alarm information at the center of a first display section of the bed corresponding to the medical device; or If the first identifier included in the alarm information represents the second alarm level, the central station displays the alarm information at the edge of the first display section of the bed corresponding to the medical device.
5. The method of claim 4, wherein, The method further comprises: The central station determines the number of alarm information of the corresponding first alarm level according to the number of the first identifiers representing the first alarm level in the first medical information sent by the medical device; When the alarm information of the corresponding first alarm level is at least two, the central station displays the at least two pieces of alarm information of the first alarm level alternately at the center of the first display section of the bed corresponding to the medical device.
6. The method of claim 1, wherein, The method further comprises: The central station generates an alarm interface; The central station displays the at least one piece of alarm information sent by the medical device in the alarm interface; The central station detects an instruction of displaying an alarm interface triggered through a human-computer interaction interface of the central station, and displays the bed interface and the alarm interface in the same display interface based on the instruction.
7. The method of claim 1, wherein, The medical device further comprises one of a ventilator, an anesthesia machine and a monitor.
8. The method of claim 1, wherein, The method further comprises: The dock information further comprises second medical information sent by each infusion device in communication connection with the dock station, and a second identifier corresponding to each infusion device in communication connection with the dock station, the second identifier being used for representing a type of the corresponding infusion device; and the second medical information comprises infusion parameters, the infusion parameters comprising at least one of an infusion drug name, an infusion rate, an already infused amount, an amount to be infused and a remaining infusion time.
9. The method of claim 8, wherein, The central station receives and parses the dock information sent by the dock station, comprising: For any second medical information in the dock information, the central station parses the second medical information, compares the remaining infusion time with a preset time limit when the second medical information comprises the remaining infusion time, and marks the infusion device with a sent remaining infusion time less than the preset time limit as a to-be-monitored infusion device; The central station generates a remaining infusion time interface, in which a second display section corresponding to each infusion device to be monitored is divided according to the number of infusion devices to be monitored and a preset display layout; In each second display section, the central station displays the remaining infusion time sent by the corresponding infusion device to be monitored and the corresponding bed number; The central station detects an instruction for displaying the remaining infusion time interface triggered through the human-computer interaction interface of the central station, and displays the bed interface and the remaining infusion time interface in the same display interface based on the instruction.
10. The method of claim 9, wherein, The method further comprises: For any infusion device to be monitored, the central station acquires a second identifier corresponding to the infusion device to be monitored; The central station pre-stores a corresponding table of figurative icons and second identifiers and figurative icons; The central station calls the figurative icon corresponding to the infusion device to be monitored according to the corresponding table of second identifiers and figurative icons, and displays the figurative icon in the second display section corresponding to the infusion device to be monitored.
11. The method of claim 9, wherein, The second display section also displays infusion information.
12. The method of claim 8, wherein, The central station receives and parses the dock information sent by the dock station, and further comprises: In each third display section, the central station displays the infusion parameters sent by the corresponding infusion device; The central station detects an instruction for displaying a single-bed infusion interface triggered by a user through the human-computer interaction interface of the central station, and selects one of the at least one single-bed infusion interface based on the instruction to display in the same display interface with the bed interface.
13. The method of claim 12, wherein, In each third display section, the central station displays the infusion parameters sent by the corresponding infusion device, including: The central station pre-stores a corresponding table of second identifiers and display layout templates; In each third display section, the central station calls a display layout template according to the second identifier of the corresponding infusion device; the central station generates a display image by fitting the infusion parameters sent by the corresponding infusion device into the display layout template, and displays the display image; The display layout template is the same as the actual display interface layout on the corresponding infusion device.
14. A central station for processing monitoring information, said central station being in communication connection with at least one medical device corresponding to a bed for receiving a patient, each of said beds having a corresponding bed number, said central station setting patient information for each bed based on input instructions, characterized in that, The central station comprises: A memory for storing patient information and programs; A processor for executing the programs stored in the memory to implement the method of any one of claims 1-13.
15. A computer-readable storage medium, characterized in that, A program capable of being executed by a processor to implement the method of any one of claims 1-13.
Citation Information
Patent Citations
Infusion monitoring information display method and display system
CN108683710A
Hospital bed information displaying method and medical host
CN108898764A