Instruction generation method and apparatus

By acquiring the operating status information of diagnostic equipment components and generating timely operating instructions, the problem of energy waste and loss caused by idle components in diagnostic equipment is solved, and the timeliness and efficiency of testing tasks are achieved.

CN113125782BActive Publication Date: 2026-04-03CHEMCLIN DIAGNOSTICS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2019-12-31
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

In existing diagnostic equipment, a certain component needs to wait for the previous component to complete its process before it can perform the corresponding test, resulting in the component being idle, wasting electricity, and increasing equipment wear and tear.

Method used

By acquiring the target operating status information of the first diagnostic component during its operation, generating the operating instructions of the second diagnostic component according to the preset trigger conditions, and switching it to the working state, or generating the operating instructions of each diagnostic component and sending them in the order of execution when the diagnostic device is about to enter the working state.

Benefits of technology

This avoids the idleness of diagnostic components, reduces energy waste and equipment wear and tear, and ensures the timely execution of testing tasks.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application provides a method and apparatus for generating instructions. The method includes: during the operation of a first diagnostic component, acquiring target operating state information of the first diagnostic component; acquiring a second diagnostic component operating after the first diagnostic component; when the target operating state information meets a preset trigger condition, generating an operating instruction corresponding to the second diagnostic component; and sending the operating instruction to the diagnostic device, so that the diagnostic device controls the second diagnostic component to switch to a working state according to the operating instruction. This application, by generating the operating instruction of the next diagnostic component in real time based on the operating state information of the currently operating diagnostic component, avoids diagnostic components in an idle state, reduces energy waste and wear and tear on the diagnostic device, and ensures the timeliness of test task execution by generating the operating instruction in a timely manner.
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Description

Technical Field

[0001] This application relates to the field of medical technology, and in particular to a method and apparatus for generating instructions. Background Technology

[0002] With the continuous application of diagnostic equipment, the accuracy of sample test results and the efficiency of detection can be achieved.

[0003] Currently, all processes of diagnostic equipment are manually managed and controlled. Typically, when a diagnostic device is in operation, all its components are also in operation. This situation can lead to a situation where a component has to wait for the previous component to complete its process before it can perform its corresponding test. This results in some components being idle, further wasting electrical energy and increasing the wear and tear on the diagnostic equipment. Summary of the Invention

[0004] This application provides an instruction generation method and apparatus to solve the problem in the prior art where a certain component needs to wait for the previous component to finish executing before it can perform the corresponding detection, resulting in the idleness of certain components, further leading to the waste of electrical energy, and aggravating the wear and tear of diagnostic equipment.

[0005] To address the aforementioned problems, this application discloses an instruction generation method, applied to a diagnostic device or a terminal connected to the diagnostic device, comprising:

[0006] During the operation of the first diagnostic component, the target operating status information of the first diagnostic component is acquired;

[0007] Obtain the second diagnostic component that runs after the first diagnostic component;

[0008] When the target operating status information meets the preset triggering conditions, an operating instruction corresponding to the second diagnostic component is generated;

[0009] The operation command is sent to the diagnostic device, so that the diagnostic device controls the second diagnostic component to switch to the working state according to the operation command.

[0010] Optionally, before obtaining the target operating status information of the first diagnostic component, the method further includes:

[0011] Generate a preset page;

[0012] When the diagnostic device is in operation, the operating status information of each component in the diagnostic device is displayed on the preset page.

[0013] Optionally, obtaining the target operating status information of the first diagnostic component includes:

[0014] Based on the operating status information of each component displayed on the preset page, the target operating status information of the first diagnostic component is obtained.

[0015] Optionally, the target operating status information includes the remaining time of the detection item executed by the first diagnostic component, and the step of generating an operating instruction corresponding to the second diagnostic component when the target operating status information meets a preset trigger condition includes:

[0016] When the remaining time is less than the threshold time, the operation instructions for the second diagnostic component are generated.

[0017] To address the aforementioned technical problems, this application discloses an instruction generation method applied to a diagnostic device or a terminal connected to the diagnostic device, wherein the diagnostic device includes multiple diagnostic components, including:

[0018] When it is determined that the diagnostic device is about to enter the working state, the corresponding operating instructions for each diagnostic component are generated;

[0019] Obtain the execution order corresponding to each of the diagnostic components;

[0020] When the diagnostic device enters the working state, according to the execution order, each of the running instructions is sent to the diagnostic device in sequence, so that the diagnostic device controls the corresponding diagnostic component to switch to the working state according to each of the running instructions.

[0021] To address the aforementioned problems, this application discloses an instruction generation apparatus, applied to a diagnostic device or a terminal connected to a diagnostic device, comprising:

[0022] The first state information acquisition module is used to acquire the target operating state information of the first diagnostic component during the operation of the first diagnostic component.

[0023] The second component acquisition module is used to acquire the second diagnostic component that runs after the first diagnostic component.

[0024] The operation instruction generation module is used to generate an operation instruction corresponding to the second diagnostic component when the target operation status information meets the preset triggering conditions;

[0025] The operation instruction sending module is used to send the operation instruction to the diagnostic device, so that the diagnostic device can control the second diagnostic component to switch to the working state according to the operation instruction.

[0026] Optionally, it also includes:

[0027] A preset page generation module is used to generate a preset page;

[0028] The operation status display module is used to display the operation status information of each component in the diagnostic device on the preset page when the diagnostic device is in operation.

[0029] Optionally, the first status information acquisition module includes:

[0030] The first status information acquisition submodule is used to acquire the target operating status information of the first diagnostic component based on the operating status information of each component displayed in the preset page.

[0031] Optionally, the target operating status information includes the remaining time for the detection items executed by the first diagnostic component, and the operating instruction generation module includes:

[0032] The execution instruction generation submodule is used to generate execution instructions for the second diagnostic component when the remaining time is less than a threshold time.

[0033] To address the aforementioned problems, this application discloses an instruction generation apparatus, applied to a diagnostic device or a terminal connected to the diagnostic device, wherein the diagnostic device includes multiple diagnostic components, including:

[0034] Multiple operation instruction generation modules are used to generate operation instructions corresponding to each of the diagnostic components when it is determined that the diagnostic device is about to enter the working state; an execution order acquisition module is used to acquire the execution order corresponding to each of the diagnostic components;

[0035] Multiple operation instruction sending modules are used to send each of the operation instructions to the diagnostic device in sequence according to the execution order when the diagnostic device enters the working state, so that the diagnostic device can control the corresponding diagnostic component to switch to the working state according to each of the operation instructions.

[0036] Compared with the prior art, this application has the following advantages: This application provides an instruction generation method and apparatus. During the operation of a first diagnostic component, target operating state information of the first diagnostic component is acquired, and a second diagnostic component operating after the first diagnostic component is acquired. When the target operating state information meets a preset trigger condition, an operating instruction corresponding to the second diagnostic component is generated and sent to a diagnostic device, so that the diagnostic device controls the second diagnostic component to switch to a working state according to the operating instruction. This application, by generating the operating instruction of the next diagnostic component in real time based on the operating state information of the currently operating diagnostic component, avoids idle diagnostic components, reduces energy waste and wear and tear on the diagnostic device, and ensures the timeliness of test task execution by generating the operating instruction promptly. Attached Figure Description

[0037] Figure 1This paper shows a schematic diagram of the structure of a fully automated laser chemiluminescence detector provided in an embodiment of this application;

[0038] Figure 2 This illustration shows a schematic diagram of the front structure of a fully automated laser chemiluminescence detector after removing the outer casing, according to an embodiment of this application.

[0039] Figure 3 This illustration shows a structural diagram of the reverse side of a fully automated laser chemiluminescence detector after removing the outer casing, according to an embodiment of this application.

[0040] Figure 4 This illustration shows a structural schematic diagram of a slat clamping device provided in an embodiment of this application;

[0041] Figure 5 A flowchart illustrating the steps of an instruction generation method provided in an embodiment of this application is shown.

[0042] Figure 6 A schematic diagram showing the operating status of a fully automated laser chemiluminescence detector provided in an embodiment of this application is shown;

[0043] Figure 7 A flowchart illustrating the steps of another instruction generation method provided in an embodiment of this application is shown;

[0044] Figure 8 This illustration shows a schematic diagram of the structure of an instruction generation apparatus provided in an embodiment of this application;

[0045] Figure 9 A schematic diagram of another instruction generation apparatus provided in an embodiment of this application is shown. Detailed Implementation

[0046] To make the above-mentioned objectives, features and advantages of this application more apparent and understandable, the application will be further described in detail below with reference to the accompanying drawings and specific embodiments.

[0047] The diagnostic device in this application embodiment can be described as a fully automated photo-induced chemiluminescence detector as an example. Next, in conjunction with… Figure 1 , Figure 2 , Figure 3 and Figure 4 The structure of the fully automated laser chemiluminescence detector is described as follows.

[0048] like Figure 1 , 2As shown in Figures 3 and 4, the fully automated photo-induced chemiluminescence detector may include: a plate holder module 83, a pushing device 84, a sample loading arm module 4, a sample loading module 85, a sample rack module 86, an incubation module 87, a reagent module 5, and a detection module 88. The plate strip 3 on the plate holder module 83 is pushed onto the sample loading module 85 by the pushing device 84. The sample and reagent are added to the reaction cup on the plate strip on the sample loading module 85 by the sample loading arm module 4. The plate strip on the sample loading module 85 is pushed into the incubation module 87 by the pushing device 84. After the incubation is completed, it enters the detection module 88 for detection.

[0049] The plate-retrieving module 83 is located at the front of the frame 2, and a housing 1 is provided outside the frame 2. The turntable is located behind the plate-retrieving module 83, and the incubation module 87 is located on one side of the turntable. The sample rack module 86 and the reagent module 5 are located on both sides of the plate-retrieving module 83, respectively. The pushing device 84 includes an X-axis pushing mechanism 6 and a Y-axis pushing mechanism 7. The strips on the plate-retrieving module 83 are pushed onto the turntable 19 through the Y-axis pushing mechanism 7, and the strips 3 on the turntable 19 are pushed into the incubation module 87 through the X-axis pushing mechanism 6. After the incubation is completed, they enter the detection module 88 for detection.

[0050] The incubation module 87 includes an incubation plate 8 and a first sliding mechanism. The incubation plate 8 is slidably connected to the frame 2 through the first sliding mechanism. The incubation plate 8 is provided with a strip clamping device 90.

[0051] The incubation module 87 includes two incubation plates 8 arranged parallel to each other, which are slidably connected to the frame 2 through a first sliding mechanism. The first sliding mechanism includes a first motor 9 and a first slide rail 10. The incubation plate 8 is disposed on the first slide rail 10. The first motor 9 is connected to the incubation plate 8 through a first synchronous belt 11. The rotation of the first motor 9 drives the incubation plate 8 to slide along the first slide rail 10.

[0052] The incubation is carried out by two incubation plates 87, which can be used to incubate for different times. The speed of rotation of the first motor 9 can determine the speed at which the incubation plates 8 move back and forth, thereby achieving different degrees of oscillation and mixing, making the operation more flexible and versatile.

[0053] Next, the instruction generation method provided in this application will be described in detail with reference to specific embodiments.

[0054] Reference Figure 5 The diagram illustrates a flowchart of an instruction generation method according to an embodiment of this application. This instruction generation method can be applied to diagnostic devices or terminals connected to diagnostic devices, and specifically includes the following steps:

[0055] Step 101: During the operation of the first diagnostic component, acquire the target operating status information of the first diagnostic component.

[0056] In this application embodiment, the terminal can be a mobile electronic device such as a mobile phone or a PAD (Portable Android Device), or a PC (Personal Computer) such as a desktop computer or a laptop computer. Specifically, it can be determined according to business needs, and this application embodiment does not limit it.

[0057] Diagnostic equipment can be used for medical diagnosis or testing, including but not limited to: biochemical analyzers, chemiluminescence immunoassay analyzers, fluorescence immunoassay analyzers, immunoturbidimetric analyzers, integrated biochemical immunoassay analyzers, and gene sequencers. This application uses a fully automated photo-induced chemiluminescence detector to describe this embodiment in detail.

[0058] A communication connection is pre-established between the terminal and the fully automated photo-induced chemiluminescence detector. Specifically, the terminal can connect to the detector via a Controller Area Network (CAN) bus or a network cable. The CAN bus principle involves connecting the CAN bus, sensors, controllers, and actuators via serial data lines. It's not merely about connecting cables in a tree structure; its communication protocol is equivalent to the data link layer in the ISO / OSI reference model. The network can detect and correct data errors caused by electromagnetic interference during data transmission according to the protocol.

[0059] After the terminal establishes a communication connection with the fully automated photo-induced chemiluminescence detector via CAN bus or network cable, data exchange between the terminal and the fully automated photo-induced chemiluminescence detector can be realized.

[0060] The first diagnostic component refers to a component on a fully automated photo-induced chemiluminescence detector. The first diagnostic component can be, for example... Figures 1-4 Any one of the modules shown above, such as plate picker module 83, pusher device 84, sample arm module 4, sample loading module 85, sample rack module 86, incubation module 87, reagent module 5, and detection module 88, can be specifically determined according to the actual situation, and the embodiments of this application do not limit this.

[0061] The target operating status information refers to the current operating status of the first diagnostic component, such as information on what is currently running, the running time, the remaining running time, etc. Specifically, it can be determined according to business needs, and this application embodiment does not impose any restrictions on it.

[0062] The target operating status information can be obtained by displaying the operating status information of each component on the fully automatic photo-induced chemiluminescence detector on a preset page. The operating status of the first diagnostic component can be obtained through the preset page.

[0063] In one specific implementation of this application, before step 101 above, the following may also be included:

[0064] Step A1: Generate a preset page.

[0065] In this application embodiment, the preset page refers to a page created on the terminal side for managing and controlling the various modules of the fully automated photochemiluminescence detector. In this application, the preset page aims to realize the management and control of the samples to be tested.

[0066] The preset page can be an HTML page or a web page, depending on the business requirements. This application embodiment does not impose any restrictions on this.

[0067] After generating a preset page, proceed to step A2.

[0068] Step A2: When the diagnostic device is in working condition, display the operating status information of each component in the diagnostic device on the preset page.

[0069] When it is necessary to perform background management and control of the test samples on the fully automated photoluminescence immunoassay analyzer, a preset page can be created in advance on the terminal side. This preset page can then display the operating status information of each component of the fully automated photoluminescence immunoassay analyzer, such as... Figure 6 As shown, the sample rack module, incubation module, reagent module, etc. can be displayed on the preset page. The status information such as the operating temperature required for each component can be displayed, as well as the operating time information and remaining operating time information of each component (not shown in the figure).

[0070] It is understood that the above examples are examples listed for understanding the technical solutions of the embodiments of this application, and are not intended to be the only limitation on the embodiments of this application.

[0071] After displaying the operating status information of each component on the preset page, the target operating status information of the first diagnostic component can be obtained based on the operating status information of each component displayed on the preset page.

[0072] During the operation of the first diagnostic component, after obtaining the target operating status information of the first diagnostic component, step 102 is executed.

[0073] Step 102: Obtain the second diagnostic component that runs after the first diagnostic component.

[0074] The second diagnostic component refers to the detector component that runs after the first diagnostic component on a fully automated photochemiluminescence detector. For example, the components on a fully automated photochemiluminescence detector include component A, component B, and component C. After component A is run, component B is run, and after component B is run, component C is run. When the first diagnostic component is component A, the second diagnostic component is component B; and when the first diagnostic component is component B, the second diagnostic component is component C.

[0075] It is understood that the above examples are merely examples listed for the purpose of better understanding the technical solutions of the embodiments of this application, and are not intended to be the only limitation on the embodiments of this application.

[0076] During the operation of the first diagnostic component, the second diagnostic component, which operates after the first diagnostic component, can be acquired.

[0077] After obtaining the second diagnostic component, proceed to step 103.

[0078] Step 103: When the target running status information meets the preset triggering conditions, generate the running instruction corresponding to the second diagnostic component.

[0079] Preset trigger conditions refer to the conditions set in advance by business personnel to trigger the generation of the running instructions for the second diagnostic component.

[0080] The preset trigger condition can be the remaining running time of the first diagnostic component. For example, when the remaining running time of the first diagnostic component is 5 seconds, the running instruction of the second diagnostic component can be generated.

[0081] The run command refers to the command that starts the second diagnostic component.

[0082] When the target operating status information meets the preset triggering conditions, the corresponding operating instructions for the second diagnostic component can be generated. Specifically, the following detailed implementation method can be described in detail.

[0083] In one specific implementation of this application, the target operating status information includes the remaining time of the detection item executed by the first diagnostic component, and step 103 may include:

[0084] Sub-step B1: When the remaining time is less than the threshold time, generate the running instructions for the second diagnostic component.

[0085] In this embodiment, the threshold time refers to the threshold value corresponding to the remaining running time of the detection instrument component, which is preset by the business personnel. The threshold time can be 5s, 8s, 4s, etc. Specifically, it can be determined according to business needs, and this embodiment does not limit it.

[0086] When obtaining the remaining time for the detection item of the first diagnostic component, the remaining time is compared with the threshold time.

[0087] If the remaining time is less than the threshold time, the command to generate the second diagnostic component can be triggered.

[0088] The preset page allows you to pre-set the trigger buttons for the operation commands of each component of the fully automatic photo-induced chemiluminescence detector. When it is necessary to start the second diagnostic component, the page administrator of the preset page can generate the operation command for the second diagnostic component by clicking the trigger button corresponding to the second diagnostic component.

[0089] Of course, this is not the only way. In the specific implementation process, other methods can be used to generate the running instructions of the second diagnostic component. Specifically, it can be determined according to business needs, and the embodiments of this application do not limit this.

[0090] After generating the running instructions corresponding to the second diagnostic component, step 104 is executed.

[0091] Step 104: Send the running instruction to the diagnostic device so that the diagnostic device can control the second diagnostic component to switch to the working state according to the running instruction.

[0092] After generating the corresponding operating instructions for the second diagnostic component, the operating instructions can be sent to the fully automated photo-induced chemiluminescence detector. The fully automated photo-induced chemiluminescence detector will then control the second diagnostic component to switch to the working state according to the operating instructions, so that the second diagnostic component can complete the next step of the test.

[0093] This application embodiment generates the operation command for the next detection instrument component in real time based on the operating status information of the currently operating detection instrument component. This avoids the detection instrument components being idle, reduces the waste of electrical energy and the wear and tear of the fully automatic photo-induced chemiluminescence detector, and ensures the timeliness of test task execution by generating the operation command in a timely manner.

[0094] The instruction generation method provided in this application obtains the target operating state information of the first diagnostic component during its operation, obtains the second diagnostic component running after the first diagnostic component, and generates an operating instruction corresponding to the second diagnostic component when the target operating state information meets a preset trigger condition. The operating instruction is then sent to the diagnostic device, which controls the second diagnostic component to switch to a working state based on the operating instruction. This application embodiment generates the operating instruction for the next diagnostic component in real time based on the operating state information of the currently running diagnostic component, avoiding idle diagnostic components, reducing energy waste and wear and tear on the diagnostic device. Furthermore, timely generation of operating instructions ensures the timeliness of test task execution.

[0095] Reference Figure 7 The flowchart illustrates the steps of an instruction generation method provided in an embodiment of this application, such as... Figure 7 As shown, this instruction generation method can be applied to diagnostic devices or terminals connected to diagnostic devices. The diagnostic device may include multiple diagnostic components, and the instruction generation method may specifically include the following steps:

[0096] Step 201: When it is determined that the diagnostic device is about to enter the working state, generate the corresponding running instructions for each of the diagnostic components.

[0097] In this application embodiment, the terminal can be a mobile electronic device such as a mobile phone or a PAD (Portable Android Device), or a PC (Personal Computer) such as a desktop computer or a laptop computer. Specifically, it can be determined according to business needs, and this application embodiment does not limit it.

[0098] Diagnostic equipment can be used for medical diagnosis or testing, including but not limited to: biochemical analyzers, chemiluminescence immunoassay analyzers, fluorescence immunoassay analyzers, immunoturbidimetric analyzers, integrated biochemical immunoassay analyzers, and gene sequencers. This application uses a fully automated photo-induced chemiluminescence detector to describe this embodiment in detail.

[0099] A communication connection is pre-established between the terminal and the fully automated photo-induced chemiluminescence detector. Specifically, the terminal can connect to the detector via a Controller Area Network (CAN) bus or a network cable. The CAN bus principle involves connecting the CAN bus, sensors, controllers, and actuators via serial data lines. It's not merely about connecting cables in a tree structure; its communication protocol is equivalent to the data link layer in the ISO / OSI reference model. The network can detect and correct data errors caused by electromagnetic interference during data transmission according to the protocol.

[0100] After the terminal establishes a communication connection with the fully automated photo-induced chemiluminescence detector via CAN bus or network cable, data exchange between the terminal and the fully automated photo-induced chemiluminescence detector can be realized.

[0101] Diagnostic components refer to the parts on a diagnostic device used to perform corresponding operations. For example, a fully automated photochemiluminescence detector includes modules such as a plate rack module 83, a pusher device 84, a sample loading arm module 4, a sample loading module 85, a sample rack module 86, an incubation module 87, a reagent module 5, and a detection module 88. These modules constitute multiple diagnostic components.

[0102] In a practical implementation, the administrator of the fully automated photo-induced chemiluminescence detector can send a notification to the terminal administrator indicating that the detector is about to enter the working state. For example, when the detector administrator is about to start the fully automated photo-induced chemiluminescence detector, a notification can be sent to the terminal administrator so that the terminal can confirm that the fully automated photo-induced chemiluminescence detector is about to enter the working state.

[0103] Of course, this is not the only method. In practical applications, other methods can be used to determine whether the fully automatic photo-induced chemiluminescence detector is about to enter the working state. Specifically, it can be determined according to business needs, and this application embodiment does not limit this.

[0104] The running instructions refer to the instructions generated to run each diagnostic component. When it is determined that the diagnostic equipment is about to enter the working state, the running instructions corresponding to each diagnostic component can be generated. For example, the diagnostic components include: component 1, component 2, component 3 and component 4. When the diagnostic equipment is about to enter the working state, the running instruction 1 corresponding to component 1 can be generated, the running instruction 2 corresponding to component 2 can be generated, the running instruction 3 corresponding to component 3 can be generated, and the running instruction 4 corresponding to component 4 can be generated.

[0105] It is understood that the above examples are merely examples listed for the purpose of better understanding the technical solutions of the embodiments of this application, and are not intended to be the only limitation on the embodiments of this application.

[0106] Of course, in this embodiment, a preset page can be generated in advance, and each diagnostic component of the diagnostic device can be drawn on the preset page. In addition, a button to generate the running instructions corresponding to each diagnostic component can be added in advance on the preset page. When the page administrator triggers the button to generate the running instructions, the running instructions corresponding to each diagnostic component can be generated.

[0107] After determining that the diagnostic equipment is about to enter the working state, and generating the corresponding operating instructions for each diagnostic component, step 202 is executed.

[0108] Step 202: Obtain the execution order corresponding to each diagnostic component.

[0109] The execution order refers to the order in which each diagnostic component is executed after the diagnostic device enters the working state. For example, the diagnostic device may include diagnostic component 1, diagnostic component 2, and diagnostic component 3. After the diagnostic device enters the working state, the execution order of these diagnostic components is as follows: diagnostic component 2, diagnostic component 1, and diagnostic component 3.

[0110] In practice, the execution order of multiple diagnostic components can be manually added to a preset page, allowing the execution order of each component to be found from the preset page. Alternatively, the execution order of each diagnostic component can be determined manually according to the diagnostic equipment's instruction manual and saved in a preset file, from which the execution order can be retrieved.

[0111] After obtaining the execution order of each diagnostic component, proceed to step 203.

[0112] Step 203: When the diagnostic device enters the working state, according to the execution order, each of the running instructions is sent to the diagnostic device in sequence, so that the diagnostic device controls the corresponding diagnostic component to switch to the working state according to each of the running instructions.

[0113] When the diagnostic equipment enters the working state, each execution command can be sent to the diagnostic equipment sequentially according to the execution order. The diagnostic equipment can then control the corresponding diagnostic components to switch to the working state according to each execution command. Specifically, according to the execution order, the execution command of the first executed diagnostic component can be sent to the diagnostic equipment to control the first executed diagnostic component to enter the working state; when the first executed diagnostic component is about to complete its execution, the execution command of the second executed diagnostic component can be sent to the diagnostic equipment to control the second executed diagnostic component to enter the working state; when the second executed diagnostic component is about to complete its execution, the execution command of the third executed diagnostic component can be sent to the diagnostic equipment to control the third executed diagnostic component to enter the working state; and so on, until all execution commands are sent to the diagnostic equipment, completing the diagnostic process.

[0114] This application reduces the number of diagnostic components that are idle by pre-generating operating instructions for each diagnostic component and executing these instructions sequentially, thereby reducing energy waste and wear and tear on the diagnostic equipment.

[0115] The instruction generation method provided in this application generates operating instructions for each diagnostic component when it is determined that the diagnostic device is about to enter a working state. It also obtains the execution order of each diagnostic component and, when the diagnostic device enters a working state, sends each operating instruction to the diagnostic device sequentially according to the execution order. The diagnostic device then controls the corresponding diagnostic component to switch to a working state based on each operating instruction. By pre-generating operating instructions for each diagnostic component and executing them sequentially, this application avoids idle diagnostic components, reducing energy waste and wear and tear on the diagnostic device.

[0116] For the foregoing method embodiments, in order to simplify the description, they are all described as a series of actions. However, those skilled in the art should understand that this application is not limited to the described order of actions, because according to this application, some steps can be performed in other orders or simultaneously. Furthermore, those skilled in the art should also understand that the embodiments described in the specification are all preferred embodiments, and the actions and modules involved are not necessarily essential to this application.

[0117] Reference Figure 8 The diagram shows a schematic of an instruction generation device according to an embodiment of this application. This instruction generation device can be applied to diagnostic equipment or a terminal connected to diagnostic equipment, and may specifically include the following modules:

[0118] The first state information acquisition module 310 is used to acquire the target operating state information of the first diagnostic component during the operation of the first diagnostic component.

[0119] The second component acquisition module 320 is used to acquire the second diagnostic component that runs after the first diagnostic component.

[0120] The running instruction generation module 330 is used to generate a running instruction corresponding to the second diagnostic component when the target running status information meets the preset triggering conditions;

[0121] The operation instruction sending module 340 is used to send the operation instruction to the diagnostic device, so that the diagnostic device can control the second diagnostic component to switch to the working state according to the operation instruction.

[0122] Optionally, it also includes:

[0123] A preset page generation module is used to generate a preset page;

[0124] The operation status display module is used to display the operation status information of each component in the diagnostic device on the preset page when the diagnostic device is in operation.

[0125] Optionally, the first status information acquisition module 310 includes:

[0126] The first status information acquisition submodule is used to acquire the target operating status information of the first diagnostic component based on the operating status information of each component displayed in the preset page.

[0127] Optionally, the target operating status information includes the remaining time of the detection items executed by the first diagnostic component, and the operating instruction generation module 330 includes:

[0128] The execution instruction generation submodule is used to generate execution instructions for the second diagnostic component when the remaining time is less than a threshold time.

[0129] The instruction generation device provided in this application obtains the target operating status information of the first diagnostic component during its operation, and then obtains the second diagnostic component running after the first diagnostic component. When the target operating status information meets a preset trigger condition, it generates an operating instruction corresponding to the second diagnostic component and sends the operating instruction to the diagnostic device, so that the diagnostic device can control the second diagnostic component to switch to the working state according to the operating instruction. This application embodiment generates the operating instruction of the next diagnostic component in real time based on the operating status information of the currently running diagnostic component, avoiding idle diagnostic components, reducing energy waste and wear and tear on the diagnostic device, and ensuring the timeliness of test task execution by generating the operating instruction in a timely manner.

[0130] Reference Figure 9 The diagram illustrates a schematic of an instruction generation device according to an embodiment of this application. This instruction generation device can be applied to diagnostic equipment or a terminal connected to diagnostic equipment. The diagnostic equipment may include multiple diagnostic devices. Specifically, the instruction generation device may include the following modules:

[0131] Multiple operation instruction generation module 410 is used to generate operation instructions corresponding to each of the diagnostic components when it is determined that the diagnostic device is about to enter the working state;

[0132] The execution order acquisition module 420 is used to acquire the execution order corresponding to each of the diagnostic components;

[0133] Multiple operation instruction sending modules 430 are used to send each of the operation instructions to the diagnostic device in sequence according to the execution order when the diagnostic device enters the working state, so that the diagnostic device can control the corresponding diagnostic component to switch to the working state according to each of the operation instructions.

[0134] The instruction generation device provided in this application generates operating instructions for each diagnostic component when it is determined that the diagnostic device is about to enter the working state, obtains the execution order of each diagnostic component, and sends each operating instruction to the diagnostic device sequentially according to the execution order when the diagnostic device enters the working state. The diagnostic device then controls the corresponding diagnostic component to switch to the working state according to each operating instruction. By pre-generating operating instructions for each diagnostic component and executing them sequentially, this application avoids idle diagnostic components, reducing energy waste and wear and tear on the diagnostic device.

[0135] Additionally, this application also provides an electronic device, including: a processor, a memory, and a computer program stored in the memory and executable on the processor, wherein the processor executes the program to implement the above-described instruction generation method.

[0136] This application also provides a computer-readable storage medium storing a computer program thereon, which, when executed by a processor, implements the above-described instruction generation method.

[0137] The various embodiments in this specification are described in a progressive manner, with each embodiment focusing on the differences from other embodiments. The same or similar parts between the various embodiments can be referred to each other.

[0138] Finally, it should be noted that in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, 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. Without further limitations, 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 said element.

[0139] The above provides a detailed description of the instruction generation method and the instruction generation apparatus provided in this application. Specific examples have been used to illustrate the principles and implementation methods of this application. The description of the above embodiments is only for the purpose of helping to understand the method and its core ideas. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of this application. Therefore, the content of this specification should not be construed as a limitation of this application.

Claims

1. A method for generating instructions, applied to a diagnostic device or a terminal connected to the diagnostic device, characterized in that, The diagnostic equipment is used in medical diagnosis or testing, including: During the operation of the first diagnostic component, target operating status information of the first diagnostic component is acquired; the target operating status information includes remaining operating time information. Obtain the second diagnostic component that runs after the first diagnostic component; When the target operating status information meets the preset triggering condition, an operating instruction corresponding to the second diagnostic component is generated; the preset triggering condition is the remaining operating time condition of the first diagnostic component. The operation command is sent to the diagnostic device, so that the diagnostic device controls the second diagnostic component to switch from an idle state to a working state according to the operation command.

2. The method according to claim 1, characterized in that, Before obtaining the target operating status information of the first diagnostic component, the method further includes: Generate a preset page; When the diagnostic device is in operation, the operating status information of each component in the diagnostic device is displayed on the preset page.

3. The method according to claim 2, characterized in that, The step of obtaining the target operating status information of the first diagnostic component includes: Based on the operating status information of each component displayed on the preset page, the target operating status information of the first diagnostic component is obtained.

4. The method according to claim 1, characterized in that, The target operating status information includes the remaining time of the detection items executed by the first diagnostic component. When the target operating status information meets a preset trigger condition, generating an operating instruction corresponding to the second diagnostic component includes: When the remaining time is less than the threshold time, the operation instructions for the second diagnostic component are generated.

5. An instruction generation method, applied to a diagnostic device or a terminal connected to the diagnostic device, the diagnostic device comprising multiple diagnostic components, characterized in that, The diagnostic equipment is used in medical diagnosis or testing, including: When it is determined that the diagnostic device is about to enter the working state, the corresponding operating instructions for each diagnostic component are generated; Obtain the execution order corresponding to each of the diagnostic components; When the diagnostic device enters the working state, according to the execution order, each of the running instructions is sent to the diagnostic device in sequence, so that the diagnostic device controls the corresponding diagnostic component to switch from the idle state to the working state according to each of the running instructions.

6. An instruction generation apparatus, applied to a diagnostic device or a terminal connected to a diagnostic device, characterized in that, The diagnostic equipment is used in medical diagnosis or testing, including: The first status information acquisition module is used to acquire the target operating status information of the first diagnostic component during the operation of the first diagnostic component; the target operating status information includes the remaining operating time information. The second component acquisition module is used to acquire the second diagnostic component that runs after the first diagnostic component. The operation instruction generation module is used to generate an operation instruction corresponding to the second diagnostic component when the target operation status information meets a preset trigger condition; the preset trigger condition is the remaining operation time condition of the first diagnostic component. The operation instruction sending module is used to send the operation instruction to the diagnostic device, so that the diagnostic device can control the second diagnostic component to switch from an idle state to a working state according to the operation instruction.

7. The apparatus according to claim 6, characterized in that, Also includes: A preset page generation module is used to generate a preset page; The operation status display module is used to display the operation status information of each component in the diagnostic device on the preset page when the diagnostic device is in operation.

8. The apparatus according to claim 7, characterized in that, The first status information acquisition module includes: The first status information acquisition submodule is used to acquire the target operating status information of the first diagnostic component based on the operating status information of each component displayed in the preset page.

9. The apparatus according to claim 6, characterized in that, The target operating status information includes the remaining time for the detection items executed by the first diagnostic component, and the operating instruction generation module includes: The execution instruction generation submodule is used to generate execution instructions for the second diagnostic component when the remaining time is less than a threshold time.

10. An instruction generation apparatus, applied to a diagnostic device or a terminal connected to the diagnostic device, the diagnostic device comprising a plurality of diagnostic components, characterized in that, The diagnostic equipment is used in medical diagnosis or testing, including: Multiple operation instruction generation modules are used to generate operation instructions corresponding to each of the diagnostic components when it is determined that the diagnostic device is about to enter the working state; An execution order acquisition module is used to acquire the execution order corresponding to each of the diagnostic components; Multiple operation instruction sending modules are used to send each of the operation instructions to the diagnostic device in sequence according to the execution order when the diagnostic device enters the working state, so that the diagnostic device can control the corresponding diagnostic component to switch from the idle state to the working state according to each of the operation instructions.

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