Defibrillator start method, defibrillator, and computer-readable storage medium
By setting up first and second controllers in the defibrillator and transmitting operating mode control commands through IO pins or communication ports, the problem of power-on and mode switching caused by rotary switch failure is solved, achieving fast and reliable power-on and mode switching, and improving the reliability and ease of use of the defibrillator.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SHENZHEN MINDRAY BIO MEDICAL ELECTRONICS CO LTD
- Filing Date
- 2020-11-20
- Publication Date
- 2026-05-22
AI Technical Summary
Existing defibrillators often use a rotary switch to turn on/off and switch operating modes. When the rotary switch malfunctions, the defibrillator may fail to enter the power-on state or the corresponding operating mode, delaying the patient's rescue time.
The first controller responds to user operations, generates operating mode control commands, and sends the commands to the second controller via IO pins or communication ports to control the defibrillator to enter the corresponding operating mode, ensuring the reliability of the power-on status and mode switching, and outputs operating mode indication information in multiple ways to improve ease of use.
This avoids the risk of the defibrillator failing to power on due to a faulty power button, shortens the time it takes to power on and enter working mode, improves the reliability and ease of use of the defibrillator, and reduces the risk of clinical resuscitation.
Smart Images

Figure CN114515390B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of medical devices, and more particularly to a defibrillator activation method, a defibrillator, and a computer-readable storage medium. Background Technology
[0002] A defibrillator is a medical device primarily used to treat dangerous cardiac conditions such as ventricular fibrillation and atrial fibrillation. Defibrillators operate in four modes: monitoring mode, pacing mode, manual defibrillation mode, and AED mode. Monitoring mode is used to monitor a patient's vital signs, assess their condition, or provide prolonged monitoring after resuscitation. Pacing mode is used to treat patients with bradycardia and improve their circulation. Manual defibrillation mode is used to treat life-threatening arrhythmias such as ventricular tachycardia, ventricular fibrillation, and atrial fibrillation. AED mode guides non-specialists in defibrillation and cardiopulmonary resuscitation. In clinical practice, medical staff will switch between monitoring, manual defibrillation, pacing, and AED modes depending on the patient's condition to provide appropriate monitoring or treatment.
[0003] Existing defibrillators often use a rotary switch to turn on / off and switch between operating modes. When the rotary switch malfunctions, the defibrillator may fail to enter the power-on state or the corresponding operating mode, delaying the patient's rescue time. Summary of the Invention
[0004] In view of this, the present invention provides a defibrillator activation method, a defibrillator, and a computer-readable storage medium.
[0005] A first aspect of the present invention provides a defibrillator activation method, the defibrillator including a power button, a working mode button, a first controller, and a second controller, the method comprising:
[0006] The first controller responds to the user's pressing of the power button or the working mode button, controls the defibrillator to enter the power-on state, and generates a working mode control command, wherein the working mode control command is used to instruct the second controller to control the defibrillator to enter the corresponding working mode;
[0007] The operating mode control command is sent to the second controller, so that the second controller can control the defibrillator to enter the corresponding operating mode based on the operating mode control command.
[0008] A second aspect of the present invention provides a defibrillator comprising:
[0009] Power button and operating mode button;
[0010] The first controller is used to respond to the user's pressing operation of the power button or the working mode button, control the defibrillator to enter the power-on state, and generate a working mode control command, wherein the working mode control command is used to instruct the second controller to control the defibrillator to enter the corresponding working mode.
[0011] The second controller is used to control the defibrillator to enter the corresponding working mode according to the working mode control command.
[0012] A third aspect of the present invention provides a computer-readable storage medium storing a computer program that, when executed by a processor, implements the defibrillator activation method as described above.
[0013] A fourth aspect of the present invention provides a defibrillator activation method, the defibrillator including a power button, a working mode button, and a controller, the method comprising:
[0014] The controller responds to the user's pressing of the power button or the working mode button, controls the defibrillator to enter the power-on state, and generates a working mode control command, wherein the working mode control command is used to instruct the controller to control the defibrillator to enter the corresponding working mode.
[0015] The controller controls the defibrillator to enter the corresponding working mode based on the working mode control command.
[0016] As can be seen from the above technical solutions, the defibrillator activation method proposed in the first aspect of the present invention controls the defibrillator to enter the power-on state when the user presses the power button or the working mode button, thus avoiding the risk that the defibrillator cannot enter the power-on state when the power button malfunctions. Furthermore, by setting a second controller to receive the working mode control command generated by the first controller and controlling the defibrillator to enter the corresponding working mode, the defibrillator directly enters the corresponding working mode after the user presses the power button or the working mode button to enter the power-on state, effectively shortening the time for the defibrillator to power on and enter the working mode, thus gaining valuable time for patient rescue. Attached Figure Description
[0017] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the following description of the embodiments will be briefly introduced. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0018] Figure 1 This is a schematic diagram of the defibrillator according to an embodiment of the present invention;
[0019] Figure 2 This is a block diagram of a defibrillator activation method according to an embodiment of the present invention;
[0020] Figure 3 This is a block diagram of a method for outputting working mode indication information according to an embodiment of the present invention;
[0021] Figure 4 This is a block diagram of a button function status detection method proposed in an embodiment of the present invention;
[0022] Figure 5 This is a schematic diagram of the defibrillator proposed in another embodiment of the present invention;
[0023] Figure 6 This is a block diagram of a defibrillator activation method according to another embodiment of the present invention;
[0024] Figure 7 This is a schematic diagram of the defibrillator proposed in another embodiment of the present invention;
[0025] Figure 8 This is a block diagram of a defibrillator activation method according to another embodiment of the present invention;
[0026] Figure 9 This is a block diagram of a defibrillator activation method according to another embodiment of the present invention;
[0027] Figure 10 This is a block diagram illustrating the structure of a defibrillator according to an embodiment of the present invention;
[0028] Figure 11 This is a block diagram illustrating the structure of a defibrillator according to another embodiment of the present invention;
[0029] Figure 12 This is a block diagram illustrating the structure of a defibrillator according to another embodiment of the present invention. Detailed Implementation
[0030] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0031] It should also be understood that the terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to limit the invention. As used in this specification and the appended claims, the singular forms “a,” “an,” and “the” are intended to include the plural forms unless the context clearly indicates otherwise.
[0032] It should also be further understood that the term "and / or" as used in this specification and the appended claims refers to any combination of one or more of the associated listed items and all possible combinations, and includes such combinations.
[0033] like Figure 1-2 As shown, an embodiment of the present invention provides a defibrillator activation method S10. The defibrillator 10 includes a power button 11, a working mode button 12, a first controller 13, and a second controller 14. The defibrillator activation method S10 includes:
[0034] S11: The first controller 13 responds to the user's pressing operation of the power button 11 or the working mode button 12, controls the defibrillator 10 to enter the power-on state, and generates a working mode control command, wherein the working mode control command is used to instruct the second controller 14 to control the defibrillator 10 to enter the corresponding working mode.
[0035] S12: Send the working mode control command to the second controller 14 so that the second controller 14 can control the defibrillator 10 to enter the corresponding working mode based on the working mode control command.
[0036] The first controller 13 and the second controller 14 may include a processor and a memory. The processor may be a Central Processing Unit (CPU), or it may be other general-purpose processors, digital signal processors (DSPs), application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The general-purpose processor may be a microprocessor or any conventional processor, enabling it to execute the corresponding steps of the ultrasound image processing methods in the various embodiments of this application. The memory may be volatile memory, such as random access memory (RAM); or non-volatile memory, such as read-only memory (ROM), flash memory, hard disk drive (HDD), or solid-state drive (SSD); or a combination of the above types of memory, providing instructions and data to the processor.
[0037] Optionally, the operating modes include AED mode, manual defibrillation mode, pacing mode, and monitoring mode. Correspondingly, the operating mode buttons 12 include AED mode button 121, manual defibrillation mode button 122, pacing mode button 123, and monitoring mode button 124. AED mode button 121 is used to trigger defibrillator 10 to enter AED mode, manual defibrillation mode button 122 is used to trigger defibrillator 10 to enter manual defibrillation mode, pacing mode button 123 is used to trigger defibrillator 10 to enter pacing mode, monitoring mode button 124 is used to trigger defibrillator 10 to enter monitoring mode, and power button 11 is used to trigger defibrillator 10 to enter power-on mode.
[0038] Taking the defibrillator 10 entering manual defibrillation mode as an example, when the user presses the manual defibrillation mode button 122, the first controller 13 detects that the manual defibrillation mode button 122 has been triggered and powers on the downstream system through the analog signal power supply (VCC_EN), enable input signal (ENABLE), and input run signal (RUN), thus putting the defibrillator 10 into the power-on state. Simultaneously, the first controller 13 continuously sends the working mode control command for entering manual defibrillation mode to the second controller 14. After receiving the working mode control command, the second controller 14 queries the power-on status and initializes the manual defibrillation mode according to the queried status, controlling the defibrillation system to enter manual defibrillation mode. This process is repeated for the other three working modes, which will not be elaborated further. Alternatively, the user can first press the power button 11, putting the defibrillator 10 into the power-on state, and then press the manual defibrillation mode button 122 to enter manual defibrillation mode.
[0039] In this implementation, by setting the first controller 13 to respond to the user's pressing of the power button 11 or the working mode button 12, the defibrillator 10 is controlled to enter the power-on state. That is, pressing either the power button 11 or the working mode button 12 will activate the defibrillator, avoiding the risk that the defibrillator 10 will fail to activate if the power button 11 malfunctions. Furthermore, by setting the second controller 14 to receive the working mode control command generated by the first controller 13, the defibrillator 10 is controlled to enter the corresponding working mode. This means that after the user presses the power button 11 or the working mode button 12 to activate the defibrillator, it directly enters the corresponding working mode, effectively shortening the time it takes for the defibrillator 10 to activate and enter the working mode, thus gaining valuable time for patient rescue.
[0040] In some embodiments, the first controller 13 and the second controller 14 are connected via I / O pin 15, and sending the operating mode control command to the second controller 14 includes:
[0041] The operating mode control command is sent to the second controller 14 through the level combination of IO pin 15.
[0042] The IO pins have the advantage of fast data transmission, which can shorten the time it takes for the defibrillator 10 to enter the working mode and save rescue time.
[0043] For example, the first controller 13 and the second controller 14 are connected via two I / O pins. These I / O pins have four voltage level combinations: "00", "01", "10", and "11", where "1" represents a high voltage level and "0" represents a low voltage level. These four voltage level combinations correspond to the defibrillator's AED mode, manual defibrillation mode, pacing mode, and monitoring mode, respectively. The first controller 13 sends a control command to the second controller 14 to enter AED mode via a "00" voltage level combination; the first controller 13 sends a control command to the second controller 14 to enter manual defibrillation mode via a "01" voltage level combination; the first controller 13 sends a control command to the second controller 14 to enter pacing mode via a "10" voltage level combination; and the first controller 13 sends a control command to the second controller 14 to enter monitoring mode via a "11" voltage level combination.
[0044] Of course, the first controller 13 can also send operating mode control commands to the second controller 14 using a combination of levels from one or more I / O pins. It should be noted that when the first controller 13 sends an operating mode control command to the second controller 14 through one I / O pin, the level combination refers to either a "0" or a "1" level state.
[0045] In some embodiments, the defibrillator 10 further includes a communication port 16 connecting the first controller 13 and the second controller 14. After the second controller 14 controls the defibrillator 10 to enter a corresponding operating mode based on the operating mode control command, the defibrillator activation method S10 further includes:
[0046] S13: The second controller 14 queries the defibrillator 10 via the communication port command to specify the operating mode to be entered;
[0047] S14: If the specified working mode of the defibrillator 10 is found to be inconsistent with the current working mode, the defibrillator 10 is controlled to enter the working mode corresponding to the communication port command.
[0048] In some embodiments, the communication port is an interface used for communication. In some embodiments, the communication port includes a serial port.
[0049] Specifically, during the process of the first controller 13 sending the operating mode control command to the second controller 14 via the level combination of the IO pins, the first controller 13 also simultaneously sends the operating mode control command to the second controller 14 via the communication port command. The second controller 14 is configured to prioritize controlling the defibrillator 10 to enter the corresponding operating mode via the operating mode control command transmitted through the IO pins. After the second controller 14 controls the defibrillator 10 to enter the corresponding operating mode according to the operating mode control command transmitted through the IO pins, the second controller 14 queries the defibrillator 10 for the specified operating mode to enter via the communication port command. If the specified operating mode queried by the second controller 14 via the communication port command does not match the current operating mode, the defibrillator 10 is restarted, and the specified operating mode queried by the communication port command is used as the standard, controlling the defibrillator 10 to power on and enter the operating mode corresponding to the communication port command. This implementation avoids the problem of the defibrillator 10 being unable to enter the corresponding operating mode due to IO pin failure, improves the reliability of the system, and also improves the clinical usability of the defibrillator 10.
[0050] For example, the first controller 13 sends a working mode control command to the second controller 14 via a "01" level combination. The second controller 14 should control the defibrillator 10 to enter manual defibrillation mode. However, due to some reason, the low-level output IO pin becomes a high-level output due to a fault. The level combination transmitted from the first controller 13 to the second controller 14 becomes "11", and the second controller 14 controls the defibrillator 10 to enter monitoring mode. The second controller 13 queries the defibrillator 10 via a communication port command, indicating that the specified working mode should be manual defibrillation mode. Then, the second controller 14 controls the defibrillator 10 to restart and controls the defibrillator 10 to enter manual defibrillation mode.
[0051] In some embodiments, the defibrillator activation method S10 further includes:
[0052] When there is an IO communication failure between the first controller 13 and the second controller 14, an alarm is issued to the user.
[0053] Early warning and troubleshooting when I / O communication fails can reduce clinical risks.
[0054] For example, an alarm can be sent to a user via voice prompts, indicator lights, a buzzer, or text prompts on a display screen.
[0055] In some embodiments, the defibrillator activation method S10 further includes:
[0056] Check for abnormalities in I / O communication.
[0057] For example, level toggling can be used to detect whether I / O communication is abnormal. For instance, in manual defibrillation mode, the I / O pin output should be "01". During testing, toggling the level of the I / O pin results in a "10" combination, indicating no logical error and that the I / O pin is normal. If, after toggling, the combination becomes "11", a logical error occurs, indicating that the high-level output pin is faulty and needs repair or replacement. The same principle applies to detecting abnormal I / O pin level combinations in the other three operating modes, which will not be elaborated further.
[0058] In some embodiments, the defibrillator activation method S10 further includes:
[0059] When the communication between the first controller 13 and the second controller 14 is abnormal, an alarm is issued to the user.
[0060] Early warning and troubleshooting when communication ports malfunction can reduce clinical risks.
[0061] For example, an alarm can be sent to a user via voice prompts, indicator lights, a buzzer, or text prompts on a display screen.
[0062] In some embodiments, the defibrillator activation method S10 further includes:
[0063] Check if there are any abnormalities in the communication port.
[0064] For example, data can be sent from one controller to another. If the receiver returns acknowledgment data, the communication between the first controller 13 and the second controller 14 is normal. If the receiver does not return acknowledgment data, the connection port or the connection cable of the communication port is abnormal. Subsequently, a new connection cable can be plugged in to detect whether the connection cable or the connection port is faulty.
[0065] In some embodiments, the defibrillator activation method S10 further includes:
[0066] Output operating mode indication information to indicate the current operating mode of defibrillator 10.
[0067] By outputting operating mode indication information to indicate the current operating mode of the defibrillator 10, confusion regarding the operating mode of the defibrillator 10 can be avoided in clinical practice, thereby improving the ease of use of the defibrillator 10.
[0068] like Figure 3 As shown, in some embodiments, the defibrillator 10 includes multiple operating mode indicator lights, and the output operating mode indication information includes:
[0069] S151: Determine the target operating mode indicator from among multiple operating mode indicator lights based on the current operating mode of the defibrillator 10;
[0070] S152: Illuminate the target operating mode indicator to indicate the current operating mode of the defibrillator 10.
[0071] For example, the defibrillator 10 has four indicator lights, which correspond to the four working modes of the defibrillator: AED mode, manual defibrillation mode, pacing mode, and monitoring mode. When the defibrillator enters one of the working modes or enters the power-on state, the corresponding indicator light will light up.
[0072] The defibrillator's usability can be further improved by using four indicator lights that display different colors when illuminated. For example, when the defibrillator enters AED mode, the corresponding indicator light illuminates and displays a yellow light; when the defibrillator enters manual defibrillation mode, the corresponding indicator light illuminates and displays a blue light; when the defibrillator enters pacing mode, the corresponding indicator light illuminates and displays a gray light; and when the defibrillator enters monitoring mode, the corresponding indicator light illuminates and displays a white light. Optionally, the indicator lights can be located on the back of the operating mode buttons. When a specific operating mode button is pressed, the corresponding indicator light illuminates, causing the button to display the corresponding color. Of course, the indicator lights can also be located above the operating mode buttons, for example, above the buttons. When a specific operating mode button is pressed, the corresponding indicator light illuminates and displays the corresponding color.
[0073] It should be noted that the defibrillator 10 is not limited to outputting working mode indication information through indicator lights. For example, the defibrillator can also output working mode indication information through voice broadcast. Optionally, when the defibrillator enters manual defibrillation mode, the speaker set on the defibrillator broadcasts the voice "Current working mode is manual defibrillation mode" to output working mode indication information. Similarly, it outputs indication information for the other three working modes, which will not be described in detail.
[0074] For example, the defibrillator 10 can also output operating mode indication information through text display on the screen. Optionally, when the defibrillator enters manual defibrillation mode, the defibrillator's display is set to display the words "manual defibrillation mode" to output operating mode indication information. Similarly, the indication information for the other three operating modes is output, which will not be described in detail.
[0075] In some embodiments, the second controller 14 controls the defibrillator to enter a corresponding operating mode based on an operating mode control command, including:
[0076] When the operating mode control command is generated by the user pressing the power button 11, the second controller 14 controls the defibrillator to enter the manual defibrillation mode.
[0077] Pressing the power button 11 allows direct entry into manual defibrillation mode, effectively improving clinical work efficiency. Of course, pressing the power button 11 is not limited to directly entering manual defibrillation mode; it can also enter any of the following working modes: AED mode, pacing mode, and monitoring mode.
[0078] In some embodiments, the defibrillator activation method S10 further includes:
[0079] When in standby mode, defibrillator 10 supplies power to the minimum system of the defibrillator.
[0080] The minimum system comprises a system consisting of a first controller 13, a second controller 14, and the wiring between them. When the defibrillator 10 is in standby mode, power is supplied to the minimum system of the defibrillator. During clinical use, the defibrillator 10 can quickly enter the power-on state and corresponding operating mode, saving clinical rescue time.
[0081] like Figure 4 As shown, in some embodiments, the defibrillator activation method S10 further includes:
[0082] S161: Perform button function status detection on the power button 11 and / or the working mode button 12;
[0083] S162: If the power button 11 and / or the working mode button 12 are detected to be in an abnormal state, an alarm will be issued to the user.
[0084] There are two self-test methods for buttons: one with user participation and the other without user participation. In the user-participatory self-test method, the defibrillator issues a prompt to trigger the button, receives the voltage level, and determines the functional state of the power button 11 and / or the operating mode button 12 based on the voltage level. In some embodiments, the functional states include a normal functional state and a functional abnormal state, wherein the functional abnormal state further includes a button sticking state and a button poor contact state.
[0085] In some embodiments, the button function status of the power button 11 and / or the working mode button 12 can be detected based on the button's level state within a preset time period. If, when the button is not pressed, the level state is consistent with the preset level state after button pressing within the preset time period, it can be determined that button sticking has occurred. In some embodiments, taking the power button 11 as an example, if the power button 11 continuously outputs a low level within the preset time period, for example, continuously outputting a low level for 10 seconds, it proves that the power button 11 is stuck and needs repair or replacement. In some embodiments, pressing the power button 11 can also be set to output a high level; this is not limited here. By detecting button sticking of the power button 11 and / or the working mode button 12, early alarm and repair can be initiated when the power button 11 and / or the working mode button 12 malfunction, reducing clinical risks. In some embodiments, the user can perform a button sticking self-test without pressing the button; button sticking is equivalent to the button being pressed, and the signal path after pressing the button is as described above. In some embodiments, the detected level is the level between the power button 11 and / or the operating mode button 12 and the first controller.
[0086] In some embodiments, taking the power button 11 as an example, the process of detecting poor button contact is explained. A preset level state after the button is pressed is set in advance. If the level output of the power button 11 after pressing does not meet the preset level state, it proves that the power button 11 has poor contact and needs to be repaired or replaced. For example, the preset level state is 0V-0.2V. When the power button 11 is pressed, if the level output of the power button 11 is higher than 0.2V, it is determined that the power button 11 has poor contact. In some embodiments, the detected level is the level between the power button 11 and / or the working mode button 12 and the first controller. Further, it can be understood that when the button is pressed, if the level state output by the button is inconsistent with the preset level state, it can be determined that the button function is malfunctioning. By detecting poor button contact of the power button 11 and / or the working mode button 12, early alarm and repair can be carried out when the power button 11 and / or the working mode button 12 malfunctions, which can reduce clinical risks.
[0087] For example, an alarm can be sent to a user via voice prompts, indicator lights, a buzzer, or text prompts on a display screen.
[0088] like Figure 5-6 As shown, another embodiment of the present invention provides a defibrillator activation method S20. The defibrillator 20 includes a power button 21, a working mode button 22, a first controller 23, and a second controller 24. The defibrillator activation method S20 includes:
[0089] S21: The first controller 23 responds to the user's pressing operation of the power button 21 or the working mode button 22, controls the defibrillator 20 to enter the power-on state, and generates a working mode control command, wherein the working mode control command is used to instruct the second controller 24 to control the defibrillator 20 to enter the corresponding working mode.
[0090] S22: Send the operating mode control command to the second controller 24 so that the second controller 24 can control the defibrillator 24 to enter the corresponding operating mode based on the operating mode control command.
[0091] In the embodiments of the present invention, the defibrillator activation method S20 is implemented in the same principle as S11-S12, and will not be described again. The difference lies in that, in this embodiment, the first controller 23 and the second controller 24 only transmit operating mode control commands through I / O pin 25; the first controller 23 and the second controller 24 do not transmit operating mode control commands or query operating mode control commands through a communication port connection. The method of transmitting operating mode control commands between the first controller 23 and the second controller through I / O pins can refer to the above embodiments.
[0092] In some embodiments, the defibrillator activation method S20 further includes: issuing an alarm to the user when the IO communication between the first controller 23 and the second controller 24 is abnormal.
[0093] In some embodiments, the defibrillator activation method S20 further includes: outputting operating mode indication information to indicate the current operating mode of the defibrillator 20.
[0094] In some embodiments, the defibrillator 20 includes a plurality of operating mode indicator lights, and the output operating mode indication information includes: determining a target operating mode indicator light from the plurality of operating mode indicator lights according to the current operating mode of the defibrillator 20; illuminating the target operating mode indicator light to indicate the current operating mode of the defibrillator 20.
[0095] In some embodiments, the second controller 24 controls the defibrillator to enter the corresponding working mode based on the working mode control command, including: when the working mode control command is generated by the user pressing the power button 21, the second controller 24 controls the defibrillator 20 to enter the manual defibrillation mode.
[0096] In some embodiments, the defibrillator activation method S20 further includes: when the defibrillator 20 is in a standby state, supplying power to the minimum system of the defibrillator 20.
[0097] In some embodiments, the defibrillator activation method S20 further includes: detecting the button function status of the power button 21 and / or the working mode button 22; if the button function status of the power button 21 and / or the working mode button 22 is detected to be malfunctioning, an alarm is issued to the user.
[0098] like Figure 7-8 As shown, another embodiment of the present invention provides a defibrillator activation method S30. The defibrillator 30 includes a power button 31, a working mode button 32, a first controller 33, and a second controller 34. The defibrillator activation method S30 includes:
[0099] S31: The first controller 33 responds to the user's pressing operation of the power button 31 or the working mode button 32, controls the defibrillator 30 to enter the power-on state, and generates a working mode control command, wherein the working mode control command is used to instruct the second controller 34 to control the defibrillator to enter the corresponding working mode.
[0100] S32: Send the operating mode control command to the second controller 34 so that the second controller 34 can control the defibrillator 30 to enter the corresponding operating mode based on the operating mode control command.
[0101] In the embodiments of the present invention, the defibrillator activation method S30 is implemented in the same principle as S11-S12, and will not be described again. The difference is that, in this embodiment, the first controller 33 and the second controller 34 are connected only through the communication port 35 to transmit the working mode control command, and the first controller 33 and the second controller 34 are not connected through IO pins to transmit the working mode control command.
[0102] In some embodiments, the defibrillator activation method S30 further includes: when the communication between the communication port of the first controller 33 and the second controller 34 is abnormal, the second controller 34 controls the defibrillator 30 to enter a preset defibrillation mode.
[0103] In some embodiments, the preset defibrillation mode includes a manual defibrillation mode. By setting the second controller 34 to directly control the defibrillator 30 to enter manual defibrillation mode when the communication port between the first controller 33 and the second controller 34 malfunctions, clinical work efficiency can be effectively improved. Of course, it is not limited to entering manual defibrillation mode; it can also enter any of the following working modes: AED mode, pacing mode, and monitoring mode.
[0104] In some embodiments, the defibrillator activation method S30 further includes: issuing an alarm to the user when the communication between the first controller 33 and the second controller 34 is abnormal.
[0105] In some embodiments, the defibrillator activation method S30 further includes: outputting operating mode indication information to indicate the current operating mode of the defibrillator 30.
[0106] In some embodiments, the defibrillator 30 includes a plurality of operating mode indicator lights and outputs operating mode indication information, including: determining a target operating mode indicator light from the plurality of operating mode indicator lights according to the current operating mode of the defibrillator 30; and illuminating the target operating mode indicator light to indicate the current operating mode of the defibrillator 30.
[0107] In some embodiments, the second controller 34 controls the defibrillator to enter the corresponding working mode based on the working mode control command, including: when the working mode control command is generated by the user pressing the power button 31, the second controller 34 controls the defibrillator 30 to enter the manual defibrillation mode.
[0108] In some embodiments, the defibrillator activation method S30 further includes: when the defibrillator is in standby mode, supplying power to the minimum system of the defibrillator.
[0109] In some embodiments, the defibrillator activation method S30 further includes: detecting the button function status of the power button 31 and / or the working mode button 32; if the button function status of the power button 31 and / or the working mode button 32 is detected to be abnormal, an alarm is issued to the user.
[0110] like Figure 9 As shown, another embodiment of the present invention provides a defibrillator activation method S40. The defibrillator includes a power button, a working mode button, and a controller. The defibrillator activation method S40 includes:
[0111] S41: The controller responds to the user's pressing of the power button or the working mode button, controls the defibrillator to enter the power-on state, and generates a working mode control command, wherein the working mode control command is used to instruct the controller to control the defibrillator to enter the corresponding working mode.
[0112] S42: The controller controls the defibrillator to enter the corresponding working mode based on the working mode control command.
[0113] In this embodiment, defibrillator activation is controlled by only one controller, resulting in low cost.
[0114] like Figure 10 As shown, one embodiment of the present invention provides a defibrillator 100, the defibrillator 100 comprising:
[0115] Power button 101 and working mode button 102;
[0116] The first controller 103 is used to respond to the user's pressing operation of the power button 101 or the working mode button 102, control the defibrillator 100 to enter the power-on state, and generate a working mode control command, wherein the working mode control command is used to instruct the second controller 102 to control the defibrillator 100 to enter the corresponding working mode.
[0117] The second controller 104 is used to control the defibrillator 100 to enter the corresponding working mode according to the working mode control command.
[0118] In some embodiments, the defibrillator 100 further includes an IO pin unit 105, for the first controller 103 to send an operating mode control command to the second controller 104 through a combination of levels of the IO pins.
[0119] In some embodiments, the defibrillator 100 further includes a communication port unit 106, which is used by the second controller 104 to query the defibrillator 100 for a specified operating mode via a communication port command; the second controller 104 is also used to control the defibrillator 100 to enter the operating mode corresponding to the communication port command when it is found that the specified operating mode of the defibrillator 100 does not match the current operating mode.
[0120] In some embodiments, the defibrillator 100 further includes a first alarm unit 107, which issues an alarm to the user when there is an abnormality in the IO communication between the first controller 103 and the second controller 104.
[0121] In some embodiments, the defibrillator 100 further includes a second alarm unit 108, which is used to issue an alarm to the user when the communication between the first controller 103 and the second controller 104 is abnormal.
[0122] In some embodiments, the defibrillator 100 further includes an indication unit 109 for outputting operating mode indication information to indicate the current operating mode of the defibrillator 100.
[0123] In some embodiments, the second controller 104 is further configured to control the defibrillator 100 to enter manual defibrillation mode when a working mode control command is generated by the user pressing the power button 101.
[0124] In some embodiments, the defibrillator 100 further includes a power supply unit 110 for supplying power to the minimum system of the defibrillator 100 when the defibrillator 100 is in standby mode.
[0125] In some embodiments, the defibrillator 100 further includes a button self-test unit 111 for performing a button function status self-test on the power button 101 and the working mode button 102; and a third alarm unit 112 for issuing an alarm to the user when the power button 101 and / or the working mode button 102 are detected to be in an abnormal function state.
[0126] In some embodiments, the defibrillator 100 includes two power-on buttons 101. By adding a backup power-on button, if one of the power-on buttons fails, the user can still activate the defibrillator using the remaining power-on button, reducing the risk of clinical resuscitation failure.
[0127] In some embodiments, the defibrillator 100 includes two manual defibrillation mode buttons 102. By adding a backup manual defibrillation mode button, if one of the manual defibrillation mode buttons fails, the user can still trigger the defibrillator to enter manual defibrillation mode using the remaining manual defibrillation mode button, reducing the risk of clinical resuscitation failure.
[0128] like Figure 11 As shown, another embodiment of the present invention provides a defibrillator 200, the defibrillator 200 comprising:
[0129] Power button 201 and working mode button 202;
[0130] The first controller 203 is used to respond to the user's pressing operation of the power button 201 or the working mode button 202, control the defibrillator 200 to enter the power-on state, and generate a working mode control command, wherein the working mode control command is used to instruct the second controller 204 to control the defibrillator to enter the corresponding working mode.
[0131] The second controller 204 is used to control the defibrillator 200 to enter the corresponding working mode according to the working mode control command.
[0132] In some embodiments, the defibrillator 200 further includes an IO pin unit 205, for the first controller 203 to send an operating mode control command to the second controller 204 through a combination of levels of the IO pins.
[0133] In some embodiments, the defibrillator 100 further includes a first alarm unit 206, which issues an alarm to the user when there is an abnormality in the IO communication between the first controller 203 and the second controller 204.
[0134] In some embodiments, the defibrillator 200 further includes an indication unit 207 for outputting operating mode indication information to indicate the current operating mode of the defibrillator 200.
[0135] In some embodiments, the second controller 204 is further configured to control the defibrillator 200 to enter manual defibrillation mode when a working mode control command is generated by the user pressing the power button.
[0136] In some embodiments, the defibrillator 200 further includes a power supply unit 208 for supplying power to the minimum system of the defibrillator 200 when the defibrillator 200 is in standby mode.
[0137] In some embodiments, the defibrillator 200 further includes a button self-test unit 209 for performing a button function status self-test on the power button 201 and the working mode button 202; and a second alarm unit 210 for issuing an alarm to the user when the power button 201 and / or the working mode button 202 are detected to be in an abnormal function state.
[0138] In some embodiments, the defibrillator 200 includes two power buttons 201.
[0139] In some embodiments, the defibrillator 200 includes two manual defibrillation mode buttons 202.
[0140] like Figure 12 As shown, another embodiment of the present invention provides a defibrillator 300, the defibrillator 30 comprising:
[0141] Power button 301 and working mode button 302;
[0142] The first controller 303 is used to respond to the user's pressing operation of the power button 301 or the working mode button 302, control the defibrillator 300 to enter the power-on state, and generate a working mode control command, wherein the working mode control command is used to instruct the second controller 304 to control the defibrillator 300 to enter the corresponding working mode.
[0143] The second controller 304 is used to control the defibrillator 300 to enter the corresponding working mode according to the working mode control command.
[0144] In some embodiments, the defibrillator 300 further includes a communication port unit 305, which is used by the first controller 303 to send operating mode control commands to the second controller 304 via communication port commands.
[0145] In some embodiments, the second controller 304 is further configured to control the defibrillator 300 to enter a preset defibrillation mode when the communication between the first controller 303 and the second controller 304 is abnormal.
[0146] In some embodiments, the defibrillator 300 further includes a first alarm unit 306, which is used to issue an alarm to the user when the communication between the first controller 303 and the second controller 304 is abnormal.
[0147] In some embodiments, the defibrillator 300 further includes an indication unit 307 for outputting operating mode indication information to indicate the current operating mode of the defibrillator 300.
[0148] In some embodiments, the second controller 304 is further configured to control the defibrillator 300 to enter manual defibrillation mode when a working mode control command is generated by the user pressing the power button.
[0149] In some embodiments, the defibrillator 300 further includes a power supply unit 308 for supplying power to the minimum system of the defibrillator 300 when the defibrillator 300 is in standby mode.
[0150] In some embodiments, the defibrillator 300 further includes a button self-test unit 309 for performing a button function status self-test on the power button 301 and the working mode button 302; and a second alarm unit 310 for issuing an alarm to the user when the power button 301 and / or the working mode button 302 are detected to be in an abnormal function state.
[0151] In some embodiments, the defibrillator 300 includes two power buttons 301.
[0152] In some embodiments, the defibrillator 300 includes two manual defibrillation mode buttons 302.
[0153] Another embodiment of the present invention provides a computer-readable storage medium storing a computer program that, when executed by a processor, implements the defibrillator activation method described above.
[0154] The computer-readable storage medium may be volatile memory, such as random-access memory (RAM); or non-volatile memory, such as read-only memory (ROM), flash memory, hard disk drive (HDD), or solid-state drive (SSD); or it may be a device that includes one or any combination of the above-mentioned memories, such as a mobile phone, computer, tablet device, personal digital assistant, etc.
[0155] Those skilled in the art will understand that embodiments of the present invention can be provided as methods, systems, or computer program products. Therefore, the present invention can take the form of hardware embodiments, software embodiments, or embodiments combining software and hardware aspects. Furthermore, the present invention can take the form of a computer program product embodied on one or more computer-usable storage media (including, but not limited to, disk storage and optical storage) containing computer-usable program code.
[0156] This invention is described with reference to flowchart illustrations and / or block diagrams of methods, apparatus (systems), and computer program products according to embodiments of the invention. It will be understood that each block of the flowchart illustrations and / or block diagrams, and combinations of blocks in the flowchart illustrations and / or block diagrams, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer, special-purpose computer, embedded processor, or other programmable data processing apparatus to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing apparatus, generate instructions for implementing the flowchart illustrations and / or block diagrams. Figure 1 One or more processes and / or boxes Figure 1 A device that provides the functions specified in one or more boxes.
[0157] These computer program instructions may also be stored in a computer-readable storage medium that can direct a computer or other programmable data processing device to function in a particular manner, such that the instructions stored in the computer-readable storage medium produce an article of manufacture including instruction means, which are implemented in a process Figure 1 One or more processes and / or boxes Figure 1 The function specified in one or more boxes.
[0158] These computer program instructions may also be loaded onto a computer or other programmable data processing equipment to cause a series of operational steps to be performed on the computer or other programmable equipment to produce a computer-implemented process, thereby providing instructions that execute on the computer or other programmable equipment for implementing the process. Figure 1 One or more processes and / or boxes Figure 1 The steps of the function specified in one or more boxes.
[0159] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in the present invention, and these modifications or substitutions should all be covered within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.
Claims
1. A defibrillator activation method, characterized in that, The defibrillator includes a power button, a working mode button, a first controller, and a second controller. The defibrillator includes multiple working mode indicator lights. The working mode button includes an AED mode button, a manual defibrillation mode button, a pacing mode button, and / or a monitoring mode button. The AED mode button triggers the defibrillator to enter AED mode; the manual defibrillation mode button triggers the defibrillator to enter manual defibrillation mode; the pacing mode button triggers the defibrillator to enter pacing mode; and the monitoring mode button triggers the defibrillator to enter monitoring mode. The method includes: The first controller responds to the user's pressing of the power button or the working mode button, controls the defibrillator to enter the power-on state, and generates a working mode control command, wherein the working mode control command is used to instruct the second controller to control the defibrillator to enter the corresponding working mode; The operating mode control command is sent to the second controller, so that the second controller can control the defibrillator to enter the corresponding operating mode based on the operating mode control command; and Based on the current operating mode of the defibrillator, a target operating mode indicator is determined from the plurality of operating mode indicator lights; the target operating mode indicator light is illuminated to indicate the current operating mode of the defibrillator.
2. The method as described in claim 1, characterized in that, The first controller and the second controller are connected via I / O pins. Sending the operating mode control command to the second controller includes: The operating mode control command is sent to the second controller via the level combination of the IO pins.
3. The method as described in claim 2, characterized in that, The defibrillator also includes a communication port connecting the first controller and the second controller. After the second controller controls the defibrillator to enter the corresponding operating mode based on the operating mode control command, it further includes: The second controller queries the defibrillator for the specified operating mode via a communication port command. If the defibrillator is found to be operating in a mode that does not match the current operating mode, the defibrillator is controlled to enter the operating mode corresponding to the communication port command.
4. The method as described in claim 2, characterized in that, Also includes: An alarm is issued to the user when there is an abnormality in the IO communication between the first controller and the second controller.
5. The method as described in claim 1, characterized in that, The defibrillator also includes a communication port connecting the first controller and the second controller, wherein sending the operating mode control command to the second controller includes: The operating mode control command is sent to the second controller via the communication port.
6. The method as described in claim 5, characterized in that, Also includes: When the communication between the first controller and the second controller is abnormal, the second controller controls the defibrillator to enter a preset defibrillation mode.
7. The method as described in claim 6, characterized in that, The preset defibrillation modes include manual defibrillation mode.
8. The method as described in claim 5, characterized in that, Also includes: An alarm is issued to the user when the communication between the first controller and the second controller is abnormal.
9. The method as described in claim 1, characterized in that, The second controller controls the defibrillator to enter the corresponding operating mode based on the operating mode control command, including: When the operating mode control command is generated by the user pressing the power button, the second controller controls the defibrillator to enter manual defibrillation mode.
10. The method as described in claim 1, characterized in that, Also includes: When the defibrillator is in standby mode, it supplies power to the defibrillator's minimum system.
11. The method as described in claim 1, characterized in that, Also includes: Perform button function status detection on the power button and / or working mode button; If the power button and / or the working mode button are detected to be in an abnormal state, an alarm will be issued to the user.
12. A defibrillator, characterized in that, include: Multiple operating mode indicator lights; The device includes a power button and a working mode button, wherein the working mode button includes an AED mode button, a manual defibrillation mode button, a pacing mode button, and / or a monitoring mode button; the AED mode button is used to trigger the defibrillator to enter AED mode, the manual defibrillation mode button is used to trigger the defibrillator to enter manual defibrillation mode, the pacing mode button is used to trigger the defibrillator to enter pacing mode, and the monitoring mode button is used to trigger the defibrillator to enter monitoring mode. The first controller is used to respond to the user's pressing operation of the power button or the working mode button, control the defibrillator to enter the power-on state, and generate a working mode control command, wherein the working mode control command is used to instruct the second controller to control the defibrillator to enter the corresponding working mode. The second controller is configured to control the defibrillator to enter the corresponding working mode according to the working mode control command; determine the target working mode indicator from the plurality of working mode indicator lights according to the current working mode of the defibrillator; and illuminate the target working mode indicator to indicate the current working mode of the defibrillator.
13. The defibrillator as claimed in claim 12, characterized in that, The defibrillator also includes: An IO pin unit is used by the first controller to send the operating mode control command to the second controller through a combination of IO pin levels.
14. The defibrillator as claimed in claim 13, characterized in that, The defibrillator also includes: A communication port unit is used by the second controller to query the defibrillator's specified operating mode via a communication port command. The second controller is also configured to control the defibrillator to enter the working mode corresponding to the communication port command when it is found that the specified working mode of the defibrillator does not match the current working mode.
15. The defibrillator as claimed in claim 13, characterized in that, The defibrillator also includes: The first alarm unit is used to issue an alarm to the user when there is an abnormality in the IO communication between the first controller and the second controller.
16. The defibrillator as claimed in claim 12, characterized in that, The defibrillator also includes: The communication port unit is used by the first controller to send the working mode control command to the second controller via the communication port command.
17. The defibrillator as claimed in claim 16, characterized in that, The second controller is also used to control the defibrillator to enter a preset defibrillation mode when the communication between the first controller and the second controller is abnormal.
18. The defibrillator as claimed in claim 16, characterized in that, The defibrillator also includes: The second alarm unit is used to issue an alarm to the user when the communication between the first controller and the second controller is abnormal.
19. The defibrillator as claimed in claim 12, characterized in that, The second controller is also used to control the defibrillator to enter manual defibrillation mode when the operating mode control command is generated by the user pressing the power button.
20. The defibrillator as claimed in claim 12, characterized in that, The defibrillator also includes: The power supply unit is used to supply power to the minimum system of the defibrillator when the defibrillator is in standby mode.
21. The defibrillator as claimed in claim 12, characterized in that, The defibrillator also includes: A button self-test unit is used to perform a button function status self-test on the power button and the working mode button. The third alarm unit is used to issue an alarm to the user when it detects that the power button and / or the working mode button are in an abnormal state.
22. The defibrillator as claimed in claim 12, characterized in that, The defibrillator includes two power-on buttons.
23. The defibrillator as claimed in claim 12, characterized in that, The defibrillator includes two manual defibrillation mode buttons.
24. A computer-readable storage medium, characterized in that, The storage medium stores a computer program that, when executed by a processor, implements the defibrillator activation method as described in any one of claims 1 to 11.
25. A defibrillator activation method, characterized in that, The defibrillator includes a power button, a working mode button, and a controller. The defibrillator includes multiple working mode indicator lights. The working mode buttons include an AED mode button, a manual defibrillation mode button, a pacing mode button, and / or a monitoring mode button. The AED mode button triggers the defibrillator to enter AED mode; the manual defibrillation mode button triggers the defibrillator to enter manual defibrillation mode; the pacing mode button triggers the defibrillator to enter pacing mode; and the monitoring mode button triggers the defibrillator to enter monitoring mode. The method includes: The controller responds to the user's pressing of the power button or the working mode button, controls the defibrillator to enter the power-on state, and generates a working mode control command, wherein the working mode control command is used to instruct the controller to control the defibrillator to enter the corresponding working mode. The controller controls the defibrillator to enter the corresponding operating mode based on the operating mode control command; and The controller determines a target operating mode indicator from the plurality of operating mode indicator lights according to the current operating mode of the defibrillator; and illuminates the target operating mode indicator light to indicate the current operating mode of the defibrillator.