Device startup and shutdown control method, in-vitro diagnostic device, pipeline and storage medium
By automatically controlling the power on and off of in vitro diagnostic equipment, and using the host to centrally manage the power on and off times of the equipment based on the current time and status, the waiting problem caused by manual operation of the equipment is solved, thereby improving equipment management efficiency and user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SHENZHEN MINDRAY BIO MEDICAL ELECTRONICS CO LTD
- Filing Date
- 2018-12-04
- Publication Date
- 2026-04-14
AI Technical Summary
In in vitro diagnostic equipment production lines, operators need to manually turn the equipment on or off each time, resulting in excessively long waiting times and wasting valuable working time.
By acquiring the current time and status of the in vitro diagnostic equipment, the system automatically controls the equipment to enter a preset mode, including powering on or off. The system uses the host to uniformly manage the power on/off times of the equipment and sets preset times based on historical data to achieve automatic power on/off of the equipment.
It reduces operator waiting time, improves equipment management efficiency and user experience, and ensures that equipment automatically turns on and off at preset times, saving time spent on manual operation.
Smart Images

Figure CN115718199B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the medical and testing fields, including but not limited to methods for controlling the on / off operation of equipment, in vitro diagnostic equipment, production lines, and storage media. Background Technology
[0002] In in-vitro diagnostic (IVD) automated systems, the actual operators in the laboratory need to shut down the IVD system when they leave work and manually restart it when they arrive in the morning. At the end of the day, operators must manually shut down the system, sometimes even walking to each IVD device individually to shut it down and wait for the shutdown process to complete. Upon returning to work, they must manually start the system and each IVD device, a startup process that takes approximately 30 minutes before they can begin their work and analyze samples. This excessive waiting time for each startup and shutdown significantly wastes the operators' time, especially the nearly 30-minute startup wait, effectively meaning each operator spends half an hour of their workday on the line. Summary of the Invention
[0003] In view of this, embodiments of this application provide a device power-on / off control method, an in vitro diagnostic device, a production line, and a storage medium to solve at least one problem existing in the related art.
[0004] The technical solution of this application embodiment is implemented as follows:
[0005] In a first aspect, embodiments of this application provide a device power-on / off control method, applied to an in vitro diagnostic automated system, comprising:
[0006] Obtain the current time and current status of the in vitro diagnostic equipment in the pipeline;
[0007] If the current time reaches a preset time, a preset mode corresponding to the current time is determined; and if the current state of the in vitro diagnostic device meets the preset switching conditions, the in vitro diagnostic device is controlled to enter the preset mode.
[0008] The preset switching conditions include that if the preset mode corresponding to the preset time is power off, then the in vitro diagnostic device is currently in an idle state.
[0009] Secondly, embodiments of this application provide an in vitro diagnostic device, the in vitro diagnostic device including a processor, the processor being used for:
[0010] Obtain the current time and current state of the in vitro diagnostic device;
[0011] If the current time reaches a preset time, a preset mode corresponding to the current time is determined; and if the current state of the in vitro diagnostic device meets the preset switching conditions, the in vitro diagnostic device is controlled to enter the preset mode.
[0012] The preset switching conditions include that if the preset mode corresponding to the preset time is power off, then the in vitro diagnostic device is currently in an idle state.
[0013] Thirdly, embodiments of this application provide an in vitro diagnostic pipeline, which includes multiple in vitro diagnostic devices and a host, wherein the host is used to receive test results returned by each in vitro diagnostic device;
[0014] The host computer is also used to uniformly control the opening and closing of the multiple in vitro diagnostic devices;
[0015] Each in vitro diagnostic device also includes a processor for implementing the device power-on / off control method described above.
[0016] This application provides a storage medium storing a program that, when executed by a processor, implements the steps of the device power-on / off control method described above.
[0017] This application provides a device power-on / off control method, an in vitro diagnostic device, a production line, and a storage medium. The method involves first acquiring the current time and current state of the in vitro diagnostic device in the production line; if the current time reaches a preset time, a preset mode corresponding to the current time is determined; and if the current state of the in vitro diagnostic device meets preset switching conditions, the in vitro diagnostic device is controlled to enter the preset mode. The preset switching conditions include that if the preset mode corresponding to the preset time is power off, then the in vitro diagnostic device is currently in an idle state. This pre-setting of the power-on / off time for the in vitro diagnostic device ensures that it automatically powers on / off upon reaching the preset time, saving operators significant waiting time. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the structure of the in vitro diagnostic equipment production line according to an embodiment of this application;
[0019] Figure 2A This is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application.
[0020] Figure 2B This is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application.
[0021] Figure 2CThis is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application.
[0022] Figure 2D This is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application.
[0023] Figure 2E This is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application.
[0024] Figure 2F This is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application.
[0025] Figure 2G This is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application.
[0026] Figure 3 This is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application.
[0027] Figure 4A This is a schematic diagram illustrating the process of implementing scheduled shutdown using a device power-on / off control method in an embodiment of this application.
[0028] Figure 4B This is a schematic diagram illustrating the process of implementing scheduled shutdown using a device power-on / off control method in an embodiment of this application.
[0029] Figure 5 This is a schematic diagram of the composition of the in vitro diagnostic device according to an embodiment of this application. Detailed Implementation
[0030] The technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings.
[0031] To better understand the embodiments of the present invention, the process of sample analysis in related technologies will be described first.
[0032] Figure 1 This is a schematic diagram of the structure of the in vitro diagnostic equipment production line according to an embodiment of this application, as shown below. Figure 1As shown, the in vitro diagnostic equipment production line includes at least: an unloading platform 101, in vitro diagnostic equipment 1, in vitro diagnostic equipment 2, ..., in vitro diagnostic equipment n, a host 102, and a loading platform 103. In vitro diagnostic equipment 1 to n are sequentially transported from the loading platform 103 to the unloading platform 101, and finally unloaded on the unloading platform 101. The host 104 receives the test results fed back by in vitro diagnostic equipment 1 to n after analyzing the samples in the sample tube rack. The host 102 can centrally manage the opening and closing of in vitro diagnostic equipment 1 to n, or it can manage the opening and closing of each in vitro diagnostic equipment individually, and receive and display the test results of each in vitro diagnostic equipment 1 to n. In vitro diagnostic equipment 1, in vitro diagnostic equipment 2, ..., in vitro diagnostic equipment n can test the same sample or test different samples; for example, in vitro diagnostic equipment 1 is a blood analyzer, and in vitro diagnostic equipment 2 is a slide pusher. Each in vitro diagnostic equipment also contains a processor, which can independently control itself to perform tests, etc. In related technologies, operators need to manually shut down the in vitro diagnostic equipment production line at the end of each workday. Shutting down the in vitro diagnostic equipment requires a series of operations, such as probe fluid maintenance, fluid circuit cleaning, gas supply shutdown, and screen shutdown, which consumes a significant amount of time. Similarly, operators need to manually perform the startup procedure at the start of the workday. Starting the in vitro diagnostic equipment also requires a series of operations, such as gas supply startup, component initialization, and fluid circuit cleaning, which also consumes a significant amount of time. Therefore, operators' daily startup and shutdown of the in vitro diagnostic equipment inevitably takes up normal working hours or delays their departure time.
[0033] This application provides a device power-on / off control method. Figure 2A This is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application. Figure 2A As shown, the method includes the following steps:
[0034] Step S201: Obtain the current time and current state of the in vitro diagnostic equipment in the pipeline.
[0035] Here, the in vitro diagnostic equipment can be various in vitro diagnostic devices, such as blood analyzers, C-reaction protein (CRP) analyzers, tablet pushers, etc. The automated production line is as follows: Figure 1 The diagram shows the in vitro diagnostic equipment pipeline; the current status of the in vitro diagnostic equipment includes: idle status and testing status.
[0036] Step S202: If the current time reaches a preset time, determine the preset mode corresponding to the current time; and if the current state of the in vitro diagnostic device meets the preset switching conditions, then control the in vitro diagnostic device to enter the preset mode.
[0037] Here, the preset time can be a preset power-on time or a preset power-off time, etc.; the preset mode corresponding to the current time can be understood as the power-on mode corresponding to the preset power-on time, and the power-off mode corresponding to the preset power-off time. Meeting the preset switching condition can be understood as follows: if the preset mode corresponding to the preset time is the power-off time, and the in vitro diagnostic device is in an idle state, it is determined that the switching condition is met, and the in vitro diagnostic device is switched to the power-off mode. Meeting the preset switching condition can also be understood as follows: if the preset mode corresponding to the preset time is the power-on time, and the in vitro diagnostic device is in a power-off state, it is determined that this situation also meets the preset switching condition, and the in vitro diagnostic device is switched to the power-on mode.
[0038] In this embodiment, when the current time of the in vitro diagnostic device in the production line reaches the preset power-on / off time, if the current state of the device meets the switching conditions, the device is controlled to enter the corresponding preset mode. In this way, the power-on / off time of the in vitro diagnostic device is set in advance, so that the in vitro diagnostic device can automatically power on and off when the preset time is reached, saving the operator a lot of waiting time.
[0039] This application provides a device power-on / off control method. Figure 2B This is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application. Figure 2B As shown, the method includes the following steps:
[0040] Step S221: Obtain the moment when the in vitro diagnostic device first enters the test state within each preset time period of I preset time periods, and obtain a first time set containing I moments.
[0041] Here, I is an integer greater than or equal to 1; the preset power-on time of the in vitro diagnostic device is determined based on the first time set. The I preset time periods can be I days prior to the current time, for example, 7 days prior to the current time. The first time set containing 7 times is obtained by counting the first test state each day within these 7 days.
[0042] Step S222: Determine the preset power-on time of the in vitro diagnostic device based on the first time set.
[0043] Here, since it takes some time for the in vitro diagnostic equipment to go from being powered on to entering the testing state, the preset power-on time needs to be appropriately earlier than the time in the first time set. For example, if the first batch of equipment in the first time set enters the testing state at 9 o'clock, since a series of operations need to be performed before powering on the in vitro diagnostic equipment, the preset power-on time needs to be set before 9 o'clock, that is, it needs to be prepared to be powered on at 8:30. In other words, the preset power-on time is set to 8:30.
[0044] The above steps S221 and S222 provide a method for "determining the preset power-on time". In this method, firstly, the time when the in vitro diagnostic device first enters the test state within the pre-period data is statistically analyzed. Based on these times, the preset power-on time is determined. In this way, the preset power-on time can be accurately set for the in vitro diagnostic device, thereby powering it on in advance at a set time.
[0045] Step S223: Obtain the moment when the in vitro diagnostic device last exits the test state within each of the I preset time periods, and obtain a second time set containing I moments.
[0046] Here, I is an integer greater than or equal to 1.
[0047] Step S224: Determine the preset shutdown time of the in vitro diagnostic device based on the second time set.
[0048] Here, the last time the test state was exited in the second time set was 4:30 pm, and the operator of the in vitro diagnostic device finished get off work at 5:30 pm. So, 5:00 pm can be set as the preset shutdown time, or 4:30 pm can be set as the preset shutdown time.
[0049] Steps S223 and S224 above provide a method for "determining the preset shutdown time". In this method, firstly, the time when the in vitro diagnostic device last exited the test state within the pre-period data is statistically analyzed. Based on these times, the preset shutdown time is determined. In this way, the preset shutdown time can be accurately set for the in vitro diagnostic device, thereby shutting it down in advance on time and saving waiting time for the operator.
[0050] Step S225: Obtain the current time and current state of the in vitro diagnostic equipment in the pipeline.
[0051] Step S226: If the current time reaches a preset time, determine the preset mode corresponding to the current time; and if the current state of the in vitro diagnostic device meets the preset switching conditions, then control the in vitro diagnostic device to enter the preset mode.
[0052] Here, the pipeline can be a unified management system for in vitro diagnostic devices, receiving and displaying the test results of each device; the power-on / off control software, which includes the program corresponding to the device power-on / off control method provided in this embodiment, can be installed on the host of the pipeline. When the preset power-on or power-off time arrives, the host sends a command to control the power-on / off of the in vitro diagnostic devices; that is, as... Figure 1 As shown, the host 102 is equipped with power-on / off control software for each in vitro diagnostic device. This allows the host 102 to control the power-on / off time of each device individually, or to set the power-on / off time of all devices to the same time, or to set the power-on / off time of each device separately based on its testing needs. For example, if a slide pusher is not frequently used, it can be set to shut down early; if a blood analyzer is frequently used, it can be set to shut down only after the last set of tests is completed. By installing the power-on / off control software for each in vitro diagnostic device on the host 102, both setup and management of the devices become easier. In this embodiment, each in vitro diagnostic device has its own power-on / off control software, allowing each device to independently control its own power-on / off.
[0053] The in vitro diagnostic equipment in the production line also includes some less frequently used instruments, such as slide pushers, which can be turned on later than other in vitro diagnostic equipment. Or, less frequently used in vitro diagnostic equipment can be manually controlled to turn on and off. Frequently used (or essential) in vitro diagnostic equipment is turned on and off at a set time every day. This allows for flexible setting of the start-up and shutdown times of each in vitro diagnostic equipment in the production line, improving the user experience.
[0054] This application provides a device power-on / off control method. Figure 2C This is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application. Figure 2C As shown, the method includes the following steps:
[0055] Step S231: Obtain the current time and current state of the in vitro diagnostic equipment in the pipeline.
[0056] Step S232: If the current time reaches the preset shutdown time and the current state of the in vitro diagnostic device is idle, and the preset switching conditions are met, then the in vitro diagnostic device is controlled to enter the shutdown mode.
[0057] Step S233: If the current time reaches the preset power-on time and the current state of the in vitro diagnostic device is the power-off state, and the preset switching conditions are met, then the in vitro diagnostic device is controlled to enter the power-on mode.
[0058] Steps S232 and S233 above provide a method to achieve "if the current time reaches a preset time, determine the preset mode corresponding to the current time; and if the current state of the in vitro diagnostic device meets the preset switching conditions, then control the in vitro diagnostic device to enter the preset mode". In this method, if the current time reaches the shutdown time and is in an idle state, then the device is shut down; if the current time reaches the power-on time and the current state is in a shutdown state, then the device is powered on. This controls the in vitro diagnostic device to be turned on and off in advance, saving waiting time for operators.
[0059] This application provides a device power-on / off control method. Figure 2D This is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application. Figure 2D As shown, the method includes the following steps:
[0060] Step S241: Obtain the current time and current state of the in vitro diagnostic equipment in the pipeline.
[0061] Step S242: If the time the in vitro diagnostic device is idle is longer than the preset idle time and the preset shutdown time has not been reached, the working mode of the in vitro diagnostic device is adjusted to hibernation mode.
[0062] Here, if it is detected that the in vitro diagnostic device is idle for a long time before the preset shutdown time, in order to save resources, the in vitro diagnostic device is controlled to enter the hibernation mode.
[0063] Step S243: If the time for the in vitro diagnostic device to enter hibernation mode is longer than the preset hibernation time period, and the preset shutdown time has not been reached, the in vitro diagnostic device is adjusted from hibernation mode to exit hibernation mode.
[0064] Here, if the in vitro diagnostic device has been in sleep mode for a period of time but has not reached the preset shutdown time, in order to prevent the device from still being in sleep mode when testing is required, the device is controlled to enter and exit sleep mode.
[0065] Steps S242 and S243 above provide a way to avoid the device being idle for a long time and save resources. In this way, if the device is idle for a long time and the shutdown time has not been reached, the device is controlled to enter a sleep mode. When the sleep time reaches the preset sleep time period, the device exits the sleep mode. This not only saves resources but also does not affect the normal use of the device.
[0066] This application provides a device power-on / off control method. Figure 2E This is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application. Figure 2EAs shown, the method includes the following steps:
[0067] Step S251: Obtain the current time and current state of the in vitro diagnostic equipment in the pipeline.
[0068] Step S252: If the current time of the in vitro diagnostic device reaches the preset shutdown time and the in vitro diagnostic device is in test state, obtain the time when the in vitro diagnostic device completes the test.
[0069] Step S253: Update the preset shutdown time according to the time when the in vitro diagnostic device completes the test, or shut down the device after a preset time (e.g., 1 hour after the test ends).
[0070] The steps S252 and S253 described above ensure that if the preset shutdown time is reached but the system is still in the testing state, the system will not shut down until the test is completed, thus avoiding a sudden shutdown during the testing process and preventing test interruption.
[0071] In this embodiment, if the shutdown time has arrived but the in vitro diagnostic device is still being tested, a small window can pop up on the host 102 saying "Testing, please delay shutdown". Alternatively, it can automatically delay for a period of time, or it can automatically shut down after the current test is completed. In this way, the test is not interrupted by a sudden shutdown during the test.
[0072] This application provides a device power-on / off control method. Figure 2F This is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application. Figure 2F As shown, the method includes the following steps:
[0073] Step S261: Obtain the current time and current state of the in vitro diagnostic equipment in the pipeline.
[0074] Step S262: If the current time reaches a preset time, determine the preset mode corresponding to the current time; and if the current state of the in vitro diagnostic device meets the preset switching conditions, then control the in vitro diagnostic device to enter the preset mode.
[0075] Step S263: If the in vitro diagnostic device is in power-off mode or sleep mode, turn off the backlight indicator and buzzer of the in vitro diagnostic device.
[0076] Step S264: If the in vitro diagnostic device is in power-on mode or has exited sleep mode, turn on the backlight indicator and buzzer of the in vitro diagnostic device.
[0077] In steps S263 and S264 above, if the in vitro diagnostic equipment is turned off, the backlight and buzzer of the equipment are also turned off to save resources; if the in vitro diagnostic equipment is turned on, the backlight and buzzer of the equipment are also turned on to facilitate operation.
[0078] This application provides a device power-on / off control method. Figure 2G This is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application. Figure 2G As shown, the method includes the following steps:
[0079] Step S271: Obtain the N times corresponding to the first N in vitro diagnostic devices entering the test state in the pipeline within the preset historical time period, and obtain a third time set containing the N times.
[0080] Here, M and N are both integers greater than 0, and N is less than or equal to M. Step S171 can be understood as counting the times when N external diagnostic devices in the pipeline first enter the test state each day. These N times are the first N times among all the times when all devices in the pipeline enter the test state.
[0081] Step S272: Determine the preset start-up time for turning on all in vitro diagnostic devices in the pipeline based on the third time set.
[0082] Here, these N times indicate the moment when most in vitro diagnostic devices in the pipeline first enter the testing state each day; based on this, a unified power-on time is determined for all devices. This allows the main unit in the pipeline to uniformly manage the power-on of these devices.
[0083] Step S273: Obtain the Q times corresponding to the last Q in vitro diagnostic devices that exited the test state in the pipeline within the preset historical time period, and obtain a fourth time set containing the Q times.
[0084] Here, Q is an integer greater than 0, and Q is less than or equal to M.
[0085] Step S274: Determine the preset shutdown time for shutting down all in vitro diagnostic devices in the pipeline based on the fourth time set.
[0086] Here, since these Q times indicate the last time most in-vitro diagnostic devices in the pipeline exit the testing state each day, a unified shutdown time is determined for all devices. This allows the main unit in the pipeline to centrally manage the shutdown of these devices.
[0087] In this embodiment, by obtaining the time when most devices first enter the test state and the time when they last exit the test state, a unified power-on time and power-off time are determined, which facilitates the unified management of in vitro diagnostic devices in the pipeline.
[0088] This application provides a device power-on / off control method. Figure 3 This is a schematic diagram illustrating the implementation process of the device power-on / off control method in an embodiment of this application. Figure 3 As shown, the method includes the following steps:
[0089] Step S301: Determine the preset power-on time.
[0090] Here, the moment when the in vitro diagnostic device first enters the test state within each of the I preset time periods is obtained, resulting in a first time set containing I moments; where I is an integer greater than or equal to 1; and the preset power-on time of the in vitro diagnostic device is determined based on the first time set.
[0091] Step S302: Determine the preset shutdown time.
[0092] Here, the moment when the in vitro diagnostic device last exits the test state within each of the I preset time periods is obtained to obtain a second time set containing I moments; based on the second time set, the preset shutdown time of the in vitro diagnostic device is determined.
[0093] Step S303: Obtain the current time and current state of the in vitro diagnostic equipment in the production line.
[0094] Step S304: If the current time reaches the preset shutdown time and the current state of the in vitro diagnostic device is idle, and the preset switching conditions are met, then the in vitro diagnostic device is controlled to enter the shutdown mode.
[0095] Step S305: Turn off the backlight indicator and buzzer of the in vitro diagnostic device.
[0096] Step S306: If the current time reaches the preset power-on time and the current state of the in vitro diagnostic device is the power-off state, and the preset switching conditions are met, then the in vitro diagnostic device is controlled to enter the power-on mode.
[0097] Step S307: Turn on the backlight indicator and buzzer of the in vitro diagnostic device.
[0098] In this embodiment, when the current time of the in vitro diagnostic device in the production line reaches the preset power-on / off time, if the current state of the device meets the switching conditions, the device is controlled to enter the corresponding preset mode, and the backlight and buzzer are turned on and off in a timely manner. In this way, the power-on / off time of the in vitro diagnostic device is set in advance, so that the in vitro diagnostic device can automatically power on and off when the preset time is reached, saving a lot of waiting time for the operator of the device.
[0099] This application provides a method for controlling the on / off operation of equipment. In this embodiment, the on / off times for each piece of equipment are pre-set according to the actual work needs of the operators. Whenever the time is reached, the equipment automatically starts or stops. When operators arrive at work, the entire production line is already powered on and ready to begin work immediately. When operators leave work, they can leave the office on time, and the production line equipment will automatically shut down. Figure 4A This is a schematic diagram illustrating the process of implementing scheduled shutdown using a device power-on / off control method in an embodiment of this application. Figure 4A As shown, if the power on / off control software is installed on the main unit of the production line, the method includes the following steps:
[0100] In step S401, the main unit of the production line detects that the current time has reached the preset shutdown time and proceeds to step S402.
[0101] In step S402, if the main unit of the pipeline detects that the current state of the in vitro diagnostic device is idle, proceed to step S403 or step S404.
[0102] Here, if the current state of the in vitro diagnostic device is the test state, then the process will not proceed to step S403 or step S404 until the test is completed.
[0103] In step S403, the main unit of the production line shuts down the in vitro diagnostic device.
[0104] Here, after shutting down the in vitro diagnostic device, proceed to step S405.
[0105] In step S404, the main unit of the production line controls the in vitro diagnostic device to enter hibernation mode.
[0106] Here, after the in vitro diagnostic device enters hibernation, it proceeds to step S405.
[0107] In step S405, the main unit of the production line turns off the backlight indicator and buzzer of the in vitro diagnostic device.
[0108] In this embodiment, the power-on / off control software can also be installed in each in vitro diagnostic device, i.e., steps S401 to S405, or it can be executed by the processor of each in vitro diagnostic device.
[0109] In this embodiment, when the preset shutdown time is reached, if the device is in an idle state, the device is controlled to shut down or enter a sleep mode.
[0110] Figure 4B This is a schematic diagram illustrating the process of implementing scheduled shutdown using a device power-on / off control method in an embodiment of this application. Figure 4B As shown, if the power on / off control software is installed on the main unit of the production line, the method includes the following steps:
[0111] Step S421: The main unit of the production line detects that the current time has reached the preset power-on time or receives a touch operation to turn on the device, and proceeds to step S422.
[0112] Step S422: The main unit of the production line turns on the backlight indicator and buzzer.
[0113] Step S423: If the in vitro diagnostic device is currently in power-off mode, the main unit of the pipeline controls the in vitro diagnostic device to switch to power-on mode.
[0114] Step S424: If the in vitro diagnostic device is currently in hibernation mode, the main unit of the pipeline controls the in vitro diagnostic device to switch out of hibernation mode.
[0115] In this embodiment, the power-on / off control software can also be installed in each in vitro diagnostic device, i.e., steps S421 to S424, or it can be executed by the processor of each in vitro diagnostic device.
[0116] In this embodiment, when the preset power-on time is reached or the user manually touches the screen to power on, the control device switches to power-on mode or exits sleep mode, thereby saving a lot of waiting time for the operator of the device.
[0117] This application provides an in vitro diagnostic device. Figure 5 This is a schematic diagram of the composition of the in vitro diagnostic device according to an embodiment of this application, such as... Figure 5 As shown, the in vitro diagnostic device 500 includes a processor 501, which is used for:
[0118] Obtain the current time and current state of the in vitro diagnostic device;
[0119] If the current time reaches a preset time, determine the preset mode corresponding to the current time; and if the current state of the in vitro diagnostic device meets the preset switching conditions, then control the in vitro diagnostic device to enter the preset mode.
[0120] The preset switching conditions include that if the preset mode corresponding to the preset time is power off, then the in vitro diagnostic device is currently in an idle state.
[0121] In other embodiments, the processor 501 is configured to determine the preset power-on time by: acquiring the time when the in vitro diagnostic device first enters the test state within each preset time period of I preset time periods, thereby obtaining a first time set containing I times; wherein I is an integer greater than or equal to 1; and determining the preset power-on time of the in vitro diagnostic device based on the first time set.
[0122] Determining the preset shutdown time includes: obtaining the time when the in vitro diagnostic device last exited the test state in each of the I preset time periods, to obtain a second time set containing I times; and determining the preset shutdown time of the in vitro diagnostic device based on the second time set.
[0123] In other embodiments, the processor 501 is configured to control the in vitro diagnostic device to enter a shutdown mode if the current time reaches a preset shutdown time and the current state of the in vitro diagnostic device is an idle state, and if a preset switching condition is determined to be met; or,
[0124] If the current time reaches the preset power-on time and the current state of the in vitro diagnostic device is the power-off state, and the preset switching conditions are met, then the in vitro diagnostic device is controlled to enter the power-on mode.
[0125] In other embodiments, the processor 501 is further configured to:
[0126] If the in vitro diagnostic device is idle for a longer period than the preset idle time, and the preset shutdown time has not been reached, the working mode of the in vitro diagnostic device will be adjusted to sleep mode.
[0127] If the time it takes for the in vitro diagnostic device to enter sleep mode is longer than the preset sleep time period, but the preset shutdown time has not been reached, the in vitro diagnostic device will be switched from sleep mode to exit sleep mode.
[0128] In other embodiments, the processor 501 is further configured to obtain the time when the in vitro diagnostic device completes testing if the current time of the in vitro diagnostic device reaches a preset shutdown time and the in vitro diagnostic device is in a testing state.
[0129] Update the preset shutdown time based on the time when the in vitro diagnostic device completes the test; or shut down the device after a preset time following the completion of the test.
[0130] In other embodiments, the processor 501 is further configured to adjust the in vitro diagnostic device from a power-off mode to a power-on mode, or adjust the in vitro diagnostic device from a hibernation mode to exit hibernation mode, according to user operation instructions.
[0131] If the in vitro diagnostic device is in power-off mode or sleep mode, turn off the backlight indicator and buzzer of the in vitro diagnostic device;
[0132] If the in vitro diagnostic device is in power-on mode or has exited sleep mode, turn on the backlight indicator and buzzer of the in vitro diagnostic device.
[0133] In other embodiments, the processor 501 is further configured to obtain N time points corresponding to the first N in vitro diagnostic devices entering the test state in the pipeline within a preset historical time period, and obtain a third time point set containing the N time points; M and N are both integers greater than 0, and N is less than or equal to M;
[0134] Based on the third time set, determine the preset power-on time for turning on all in vitro diagnostic devices in the pipeline;
[0135] Obtain the Q time points corresponding to the last Q in vitro diagnostic devices that exit the test state in the pipeline within the preset historical time period, and obtain a fourth time point set containing the Q time points; wherein, Q is an integer greater than 0 and Q is less than or equal to M;
[0136] Based on the fourth time set, a preset shutdown time is determined to shut down all in vitro diagnostic devices in the pipeline.
[0137] It should be noted that if the above-mentioned method for determining substance concentration is implemented as a software functional module and sold or used as an independent product, it can also be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the embodiments of the present invention, or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the methods described in the various embodiments of the present invention. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), magnetic disks, or optical disks. Thus, the embodiments of the present invention are not limited to any specific hardware and software combination.
[0138] This application provides an in vitro diagnostic pipeline, which includes at least multiple in vitro diagnostic devices and a host computer. The host computer is used to receive test results returned by each in vitro diagnostic device. The host computer is also used to uniformly control the power on and off of the multiple in vitro diagnostic devices. Each in vitro diagnostic device also includes a processor for implementing the device power on / off control method provided in the above embodiment.
[0139] Accordingly, this embodiment of the invention further provides a computer storage medium storing computer-executable instructions, which, when executed by a processor, implement the steps of the device power-on / off control method provided in the above embodiments.
[0140] The descriptions of the above-described sample analysis system and computer storage medium embodiments are similar to those of the above-described method embodiments, and have similar beneficial effects. For technical details not disclosed in the sample analysis system and computer storage medium embodiments of the present invention, please refer to the descriptions of the method embodiments of the present invention for understanding.
[0141] It should be understood that the phrase "one embodiment" or "an embodiment" throughout the specification means that a specific feature, structure, or characteristic related to the embodiment is included in at least one embodiment of this application. Therefore, "in one embodiment" or "in an embodiment" appearing throughout the specification does not necessarily refer to the same embodiment. Furthermore, these specific features, structures, or characteristics can be combined in any suitable manner in one or more embodiments. It should be understood that in the various embodiments of this application, the sequence numbers of the above-described processes do not imply a sequential order of execution; the execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of this application. The sequence numbers of the above-described embodiments are merely descriptive and do not represent the superiority or inferiority of the embodiments.
[0142] It should be noted that, in this document, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Unless otherwise specified, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element.
[0143] In the several embodiments provided in this application, it should be understood that the disclosed devices and methods can be implemented in other ways. The device embodiments described above are merely illustrative. For example, the division of units is only a logical functional division, and in actual implementation, there may be other division methods, such as: multiple units or components can be combined, or integrated into another system, or some features can be ignored or not executed. In addition, the coupling, direct coupling, or communication connection between the various components shown or discussed can be through some interfaces, and the indirect coupling or communication connection between devices or units can be electrical, mechanical, or other forms.
[0144] The units described above as separate components may or may not be physically separate. The components shown as units may or may not be physical units. They may be located in one place or distributed across multiple network units. Some or all of the units may be selected to achieve the purpose of the embodiments of this application, depending on actual needs.
[0145] In addition, each functional unit in the various embodiments of this application can be integrated into one processing unit, or each unit can be a separate unit, or two or more units can be integrated into one unit; the integrated unit can be implemented in hardware or in the form of hardware plus software functional units.
[0146] Those skilled in the art will understand that all or part of the steps of the above method embodiments can be implemented by hardware related to program instructions. The aforementioned program can be stored in a computer-readable storage medium. When the program is executed, it performs the steps of the above method embodiments. The aforementioned storage medium includes various media that can store program code, such as mobile storage devices, read-only memory (ROM), magnetic disks, or optical disks.
[0147] Alternatively, if the integrated units described above are implemented as software functional modules and sold or used as independent products, they can also be stored in a computer-readable storage medium. Based on this understanding, the technical solutions of the embodiments of this application, or the parts that contribute to related technologies, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a terminal to execute all or part of the methods described in the various embodiments of this application. The aforementioned storage medium includes various media capable of storing program code, such as mobile storage devices, ROMs, magnetic disks, or optical disks.
[0148] The above description is merely an embodiment of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this application should be covered by this application.
Claims
1. A device power-on / off control method, applied to an in vitro diagnostic automated line, wherein the in vitro diagnostic automated line includes at least a host and multiple in vitro diagnostic devices, wherein the in vitro diagnostic devices include a blood analyzer and a slide pusher; the in vitro diagnostic devices further include a processor for implementing the device power-on / off control method; The host computer is used to receive and display the test results returned by the plurality of in vitro diagnostic devices; characterized in that, The method includes: Obtain the current time and current status of the in vitro diagnostic equipment in the pipeline; If the current time reaches a preset time, a preset mode corresponding to the current time is determined; and if the current state of the in vitro diagnostic device meets the preset switching conditions, the in vitro diagnostic device is controlled to enter the preset mode. The preset time includes a preset power-on time. If the current time reaches the preset power-on time, the processor controls the in vitro diagnostic device to power on and perform a fluid circuit cleaning operation. Wherein, the preset time of all in vitro diagnostic devices in the production line is the same time; or, the preset time of at least two in vitro diagnostic devices in the production line is different time.
2. The method according to claim 1, characterized in that, At least one in vitro diagnostic device in the production line is manually controlled by the user to enter the preset mode.
3. The method according to claim 2, characterized in that, The preset modes include a shutdown mode, in which the user manually controls at least one pusher in the production line to enter the shutdown mode.
4. The method according to claim 1, characterized in that, The preset time includes a preset shutdown time, and the method further includes: If the in vitro diagnostic device is idle for a longer period than the preset idle time, and the preset shutdown time has not been reached, the operating mode of the in vitro diagnostic device will be adjusted to sleep mode.
5. The method according to claim 4, characterized in that, The method further includes: If the time it takes for the in vitro diagnostic device to enter sleep mode is longer than the preset sleep time period, but the preset shutdown time has not been reached, the in vitro diagnostic device will be switched from sleep mode to exit sleep mode.
6. The method according to claim 1, characterized in that, The preset time includes a preset shutdown time, and the method further includes: If the current time of the in vitro diagnostic device reaches the preset shutdown time, and the in vitro diagnostic device is in test mode, obtain the time when the in vitro diagnostic device completes the test; Update the preset shutdown time based on the time when the in vitro diagnostic device completes the test; or shut down the device after a preset time following the completion of the test.
7. The method according to claim 1, characterized in that, The preset time includes a preset shutdown time, and the method further includes: Determining the preset power-on time includes: obtaining the time when the in vitro diagnostic device first enters the test state within each preset time period of I preset time periods, to obtain a first time set containing I times; where I is an integer greater than or equal to 1; and determining the preset power-on time of the in vitro diagnostic device based on the first time set. Determining the preset shutdown time includes: obtaining the time when the in vitro diagnostic device last exited the test state in each of the I preset time periods, to obtain a second time set containing I times; and determining the preset shutdown time of the in vitro diagnostic device based on the second time set.
8. The method according to claim 4, characterized in that, The method further includes: According to the user's operation instructions, the in vitro diagnostic device is switched from sleep mode to exit sleep mode; If the in vitro diagnostic device is in power-off mode or sleep mode, turn off the backlight indicator and buzzer of the in vitro diagnostic device; If the in vitro diagnostic device is in power-on mode or has exited sleep mode, turn on the backlight indicator and buzzer of the in vitro diagnostic device.
9. The method according to claim 1, characterized in that, The automated production line includes M in vitro diagnostic devices, and the method further includes: Obtain the N times corresponding to the first N in vitro diagnostic devices entering the test state in the pipeline within a preset historical time period, and obtain a third time set containing the N times; M and N are both integers greater than 0, and N is less than or equal to M; Based on the third time set, determine the preset power-on time for turning on all in vitro diagnostic devices in the pipeline; Obtain the Q time points corresponding to the last Q in vitro diagnostic devices that exit the test state in the pipeline within the preset historical time period, and obtain a fourth time point set containing the Q time points; wherein, Q is an integer greater than 0 and Q is less than or equal to M; Based on the fourth time set, a preset shutdown time is determined to shut down all in vitro diagnostic devices in the pipeline.
10. A device power-on / off control method, applied to an in vitro diagnostic automated line, the in vitro diagnostic automated line including at least a host and multiple in vitro diagnostic devices, the in vitro diagnostic devices including a blood analyzer and a slide pusher; the in vitro diagnostic devices further including a processor for implementing the device power-on / off control method; The host computer is used to receive and display the test results returned by the plurality of in vitro diagnostic devices; characterized in that, The method includes: Obtain the current time and current status of the in vitro diagnostic equipment in the pipeline; If the current time reaches a preset time, a preset mode corresponding to the current time is determined; and if the current state of the in vitro diagnostic device meets the preset switching conditions, the in vitro diagnostic device is controlled to enter the preset mode. The preset time includes a preset power-on time. If the current time reaches the preset power-on time, the processor controls the in vitro diagnostic device to power on and perform a fluid circuit cleaning operation. In this process, at least one in vitro diagnostic device in the production line is manually controlled by the user to enter the preset mode.
11. The method according to claim 10, characterized in that, The preset modes include a shutdown mode, in which the user manually controls at least one pusher in the production line to enter the shutdown mode.
12. The method according to claim 10, characterized in that, The preset time includes a preset shutdown time, and the method further includes: If the in vitro diagnostic device is idle for a longer period than the preset idle time, and the preset shutdown time has not been reached, the operating mode of the in vitro diagnostic device will be adjusted to sleep mode.
13. The method according to claim 12, characterized in that, The method further includes: If the time it takes for the in vitro diagnostic device to enter sleep mode is longer than the preset sleep time period, but the preset shutdown time has not been reached, the in vitro diagnostic device will be switched from sleep mode to exit sleep mode.
14. The method according to claim 10, characterized in that, The preset time includes a preset shutdown time, and the method further includes: If the current time of the in vitro diagnostic device reaches the preset shutdown time, and the in vitro diagnostic device is in test mode, obtain the time when the in vitro diagnostic device completes the test; Update the preset shutdown time based on the time when the in vitro diagnostic device completes the test; or shut down the device after a preset time following the completion of the test.
15. The method according to claim 10, characterized in that, The preset time also includes a preset shutdown time, and the method further includes: Determining the preset power-on time includes: obtaining the time when the in vitro diagnostic device first enters the test state within each preset time period of I preset time periods, to obtain a first time set containing I times; where I is an integer greater than or equal to 1; and determining the preset power-on time of the in vitro diagnostic device based on the first time set. Determining the preset shutdown time includes: obtaining the time when the in vitro diagnostic device last exited the test state in each of the I preset time periods, to obtain a second time set containing I times; and determining the preset shutdown time of the in vitro diagnostic device based on the second time set.
16. The method according to claim 12, characterized in that, The method further includes: According to the user's operation instructions, the in vitro diagnostic device is switched from power-off mode to power-on mode, or switched from hibernation mode to exit hibernation mode; If the in vitro diagnostic device is in power-off mode or sleep mode, turn off the backlight indicator and buzzer of the in vitro diagnostic device; If the in vitro diagnostic device is in power-on mode or has exited sleep mode, turn on the backlight indicator and buzzer of the in vitro diagnostic device.
17. The method according to claim 10, characterized in that, The automated production line includes M in vitro diagnostic devices, and the method further includes: Obtain the N times corresponding to the first N in vitro diagnostic devices entering the test state in the pipeline within a preset historical time period, and obtain a third time set containing the N times; M and N are both integers greater than 0, and N is less than or equal to M; Based on the third time set, determine the preset power-on time for turning on all in vitro diagnostic devices in the pipeline; Obtain the Q time points corresponding to the last Q in vitro diagnostic devices that exit the test state in the pipeline within the preset historical time period, and obtain a fourth time point set containing the Q time points; wherein, Q is an integer greater than 0 and Q is less than or equal to M; Based on the fourth time set, a preset shutdown time is determined to shut down all in vitro diagnostic devices in the pipeline.
18. A device power-on / off control method, applied to an in vitro diagnostic automated line, the in vitro diagnostic automated line including at least a host and multiple in vitro diagnostic devices, the in vitro diagnostic devices including a blood analyzer and a slide pusher; the in vitro diagnostic devices further including a processor for implementing the device power-on / off control method; The host computer is used to receive and display the test results returned by the plurality of in vitro diagnostic devices; characterized in that, The method includes: Obtain the current time and current status of the in vitro diagnostic equipment in the pipeline; If the current time reaches a preset time, a preset mode corresponding to the current time is determined; and if the current state of the in vitro diagnostic device meets the preset switching conditions, the in vitro diagnostic device is controlled to enter the preset mode. The preset time includes a preset shutdown time; If the in vitro diagnostic device is idle for a longer period than the preset idle time, and the preset shutdown time has not been reached, the operating mode of the in vitro diagnostic device will be adjusted to sleep mode.
19. The method according to claim 18, characterized in that, The method further includes: If the time it takes for the in vitro diagnostic device to enter sleep mode is longer than the preset sleep time period, but the preset shutdown time has not been reached, the in vitro diagnostic device will be switched from sleep mode to exit sleep mode.
20. The method according to claim 18, characterized in that, The method further includes: If the current time of the in vitro diagnostic device reaches the preset shutdown time, and the in vitro diagnostic device is in test mode, obtain the time when the in vitro diagnostic device completes the test; Update the preset shutdown time based on the time when the in vitro diagnostic device completes the test; or shut down the device after a preset time following the completion of the test.
21. The method according to claim 18, characterized in that, The preset time includes a preset power-on time, and the method further includes: Determining the preset power-on time includes: obtaining the time when the in vitro diagnostic device first enters the test state within each preset time period of I preset time periods, to obtain a first time set containing I times; where I is an integer greater than or equal to 1; and determining the preset power-on time of the in vitro diagnostic device based on the first time set. Determining the preset shutdown time includes: obtaining the time when the in vitro diagnostic device last exited the test state in each of the I preset time periods, to obtain a second time set containing I times; and determining the preset shutdown time of the in vitro diagnostic device based on the second time set.
22. The method according to claim 18, characterized in that, The method further includes: According to the user's operation instructions, the in vitro diagnostic device is switched from power-off mode to power-on mode, or switched from hibernation mode to exit hibernation mode; If the in vitro diagnostic device is in power-off mode or sleep mode, turn off the backlight indicator and buzzer of the in vitro diagnostic device; If the in vitro diagnostic device is in power-on mode or has exited sleep mode, turn on the backlight indicator and buzzer of the in vitro diagnostic device.
23. The method according to claim 18, characterized in that, The preset time includes a preset power-on time, the production line includes M in vitro diagnostic devices, and the method further includes: Obtain the N times corresponding to the first N in vitro diagnostic devices entering the test state in the pipeline within a preset historical time period, and obtain a third time set containing the N times; M and N are both integers greater than 0, and N is less than or equal to M; Based on the third time set, determine the preset power-on time for turning on all in vitro diagnostic devices in the pipeline; Obtain the Q time points corresponding to the last Q in vitro diagnostic devices that exit the test state in the pipeline within the preset historical time period, and obtain a fourth time point set containing the Q time points; wherein, Q is an integer greater than 0 and Q is less than or equal to M; Based on the fourth time set, a preset shutdown time is determined to shut down all in vitro diagnostic devices in the pipeline.
24. The method according to claim 18, characterized in that, The preset time includes a preset power-on time. If the current time reaches the preset power-on time, the processor controls the in vitro diagnostic device to power on and perform a fluid circuit cleaning operation. Wherein, the preset time of all in vitro diagnostic devices in the production line is the same time; or, the preset time of at least two in vitro diagnostic devices in the production line is different time.
25. The method according to claim 18, characterized in that, At least one in vitro diagnostic device in the production line is manually controlled by the user to enter the preset mode.
26. The method according to claim 25, characterized in that, The user manually controls at least one pusher in the production line to enter the shutdown mode.
27. A device power-on / off control method, applied to an in vitro diagnostic automated line, the in vitro diagnostic automated line including at least a host and multiple in vitro diagnostic devices, the in vitro diagnostic devices including a blood analyzer and a slide pusher; the in vitro diagnostic devices further including a processor for implementing the device power-on / off control method; The host computer is used to receive and display the test results returned by the plurality of in vitro diagnostic devices; characterized in that, The method includes: Obtain the current time and current status of the in vitro diagnostic equipment in the pipeline; If the current time reaches a preset time, a preset mode corresponding to the current time is determined; and if the current state of the in vitro diagnostic device meets the preset switching conditions, the in vitro diagnostic device is controlled to enter the preset mode. The preset time includes a preset shutdown time; If the current time of the in vitro diagnostic device reaches the preset shutdown time, and the in vitro diagnostic device is in test mode, obtain the time when the in vitro diagnostic device completes the test; Update the preset shutdown time based on the time when the in vitro diagnostic device completes the test; or shut down the device after a preset time following the completion of the test.
28. The method according to claim 27, characterized in that, The method further includes: If the in vitro diagnostic device is idle for a longer period than the preset idle time, and the preset shutdown time has not been reached, the operating mode of the in vitro diagnostic device will be adjusted to sleep mode.
29. The method according to claim 28, characterized in that, The method further includes: If the time it takes for the in vitro diagnostic device to enter sleep mode is longer than the preset sleep time period, but the preset shutdown time has not been reached, the in vitro diagnostic device will be switched from sleep mode to exit sleep mode.
30. The method according to claim 27, characterized in that, The preset time includes a preset power-on time, and the method further includes: Determining the preset power-on time includes: obtaining the time when the in vitro diagnostic device first enters the test state within each preset time period of I preset time periods, to obtain a first time set containing I times; where I is an integer greater than or equal to 1; and determining the preset power-on time of the in vitro diagnostic device based on the first time set. Determining the preset shutdown time includes: obtaining the time when the in vitro diagnostic device last exited the test state in each of the I preset time periods, to obtain a second time set containing I times; and determining the preset shutdown time of the in vitro diagnostic device based on the second time set.
31. The method according to claim 28, characterized in that, The method further includes: According to the user's operation instructions, the in vitro diagnostic device is switched from power-off mode to power-on mode, or switched from hibernation mode to exit hibernation mode; If the in vitro diagnostic device is in power-off mode or sleep mode, turn off the backlight indicator and buzzer of the in vitro diagnostic device; If the in vitro diagnostic device is in power-on mode or has exited sleep mode, turn on the backlight indicator and buzzer of the in vitro diagnostic device.
32. The method according to claim 27, characterized in that, The preset time includes a preset power-on time, the production line includes M in vitro diagnostic devices, and the method further includes: Obtain the N times corresponding to the first N in vitro diagnostic devices entering the test state in the pipeline within a preset historical time period, and obtain a third time set containing the N times; M and N are both integers greater than 0, and N is less than or equal to M; Based on the third time set, determine the preset power-on time for turning on all in vitro diagnostic devices in the pipeline; Obtain the Q time points corresponding to the last Q in vitro diagnostic devices that exit the test state in the pipeline within the preset historical time period, and obtain a fourth time point set containing the Q time points; wherein, Q is an integer greater than 0 and Q is less than or equal to M; Based on the fourth time set, a preset shutdown time is determined to shut down all in vitro diagnostic devices in the pipeline.
33. The method according to claim 27, characterized in that, The preset time includes a preset power-on time. If the current time reaches the preset power-on time, the processor controls the in vitro diagnostic device to power on and perform a fluid circuit cleaning operation. Wherein, the preset time of all in vitro diagnostic devices in the production line is the same time; or, the preset time of at least two in vitro diagnostic devices in the production line is different time.
34. The method according to claim 27, characterized in that, At least one in vitro diagnostic device in the production line is manually controlled by the user to enter the preset mode.
35. The method according to claim 34, characterized in that, The user manually controls at least one pusher in the production line to enter the shutdown mode.
36. An in vitro diagnostic automated system, characterized in that, The in vitro diagnostic pipeline includes at least a plurality of in vitro diagnostic devices and a host, wherein the host is used to receive test results returned by each in vitro diagnostic device; The host computer is also used to uniformly control the opening and closing of the multiple in vitro diagnostic devices; Each in vitro diagnostic device further includes a processor for implementing the method of any one of claims 1 to 35.
37. A computer storage medium, characterized in that, The computer storage medium stores a program that, when executed by a processor, implements the method of any one of claims 1 to 35.
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