Method and apparatus for displaying experimental state of biological sample, and system for analyzing biological sample
The method and system provide real-time status and tracking of biological samples in in vitro diagnostics, addressing the lack of real-time capabilities in existing instruments to enhance operational efficiency.
Patent Information
- Application Number
- JP2025010302
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-01-31
- Filing Date
- 2025-01-24
- Publication Date
- 2025-08-13
- Estimated Expiration
- 2045-01-24
AI Technical Summary
Existing in vitro diagnostics instruments lack real-time status query and tracking capabilities for biological samples, leading to prolonged processing times and inefficiencies in sample analysis.
A method and system for displaying the experimental status of biological samples in real-time, including a first display area for current status data and a second display area for tracking detailed information, using an acquisition module, data module, and display modules to provide real-time sample tracking.
Enables real-time inquiry and tracking of biological sample status, reducing processing time uncertainty and enhancing operational efficiency in sample analysis.
Smart Images

Figure 2025118540000001_ABST
Abstract
Description
[Technical Field]
[0001] The present application relates to the technical field of in vitro diagnostics, and in particular to a method, an apparatus and a system for displaying the experimental state of a biological sample. [Background technology]
[0002] Existing sample analysis instruments used in the field of in vitro diagnostics, such as biochemistry analyzers, immunoassay analyzers, and nucleic acid detection analyzers, mostly provide functions such as sample registration and sample result query. Completing an experiment with a sample analysis instrument requires multiple steps. For example, nucleic acid detection analyzers integrate functions such as nucleic acid extraction, PCR system construction, nucleic acid amplification, and detection. Completing a PCR experiment requires numerous experimental steps, such as sample transport, nucleic acid extraction, PCR system construction, and nucleic acid amplification and detection, and each of these steps can take a significant amount of time. Therefore, the time from when a sample is input into the instrument to when the results are released is generally very long. When experiments are run continuously, if there are a large number of samples waiting to be run, it can take several hours for the results to be released. The process from when a sample is input into the instrument to when the results are released is too long, and there are numerous sample processing steps. Therefore, there is a great need for real-time status query and tracking after the sample is input into the instrument. No better solution to the above problem has been proposed to date. Summary of the Invention
[0003] According to the biological sample experimental status display method, device and biological sample analysis system proposed in the embodiments of the present invention, at least the experimental status data of the target sample can be displayed in real time, and further, sub-display content and mark information corresponding to the experimental status can be displayed.
[0004] According to one aspect of the present application, a method for displaying the experimental status of a biological sample is proposed, the method including the steps of: upon receiving an experimental status inquiry command for the target sample, acquiring currently running step data for the target sample; determining experimental status data for the target sample based on preset experimental step data and the currently running step data; displaying the experimental status data using a first display area; and upon receiving a tracking display command, acquiring sub-display content corresponding to the experimental status data, generating mark information corresponding to the target sample in the sub-display content, and displaying the sub-display content and the mark information using a second display area.
[0005] According to one aspect of the present application, a biological sample experimental status display device is proposed, which includes: an acquisition module configured to acquire currently running step data of a target sample when receiving an experimental status inquiry command for the target sample; a data module configured to determine experimental status data of the target sample based on preset experimental step data and the currently running step data; a first display module configured to display the experimental status data using a first display area; and a second display module configured to acquire sub-exhibition content corresponding to the experimental status data when receiving a tracking display command, generate mark information corresponding to the target sample in the sub-exhibition content, and display the sub-exhibition content and the mark information using a second display area.
[0006] According to another aspect of the present application, a biological sample analysis system is proposed, the system including an experiment platform and a control platform, the experiment platform being communicatively connected to the control platform, the control platform including an experiment control module and an information processing module for performing the above-mentioned method.
[0007] According to another aspect of the present application, a biological sample analysis system is proposed, the system including: a detection device configured to detect a test sample liquid and obtain a sample detection result; a display; and a controller, wherein the controller controls the display to display a first display area for displaying experimental status data of the target sample when an experimental status inquiry operation of the target sample is detected; and controls the display to obtain sub-display content corresponding to the experimental status data, generate mark information corresponding to the target sample in the sub-display content, and display a second display area for displaying the sub-display content corresponding to the experimental status data of the target sample and the mark information when a tracking display inquiry operation of the target sample is detected.
[0008] According to the embodiment of the present invention, the following beneficial effects can be achieved.
[0009] In an embodiment of the present invention, when a command to inquire about the experimental status of a target sample is received, currently running step data of the target sample is obtained; experimental status data of the target sample is determined based on preset experimental step data and the currently running step data; the first display area is used to display the experimental status data; when a command to track and display is received, sub-display content corresponding to the experimental status data is obtained, and mark information corresponding to the target sample in the sub-display content is generated, and the second display area is used to display the sub-display content and the mark information. According to the present invention, the experimental status of the target sample can be displayed and tracked in real time, providing convenience for inquiring about the experimental status of biological samples.
[0010] The details of one or more embodiments of the invention are set forth in the drawings and description that follow so that other features, objects and advantages of the invention will be more clearly understood. [Brief explanation of the drawings]
[0011] In order to more clearly describe the technical means of the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly described below. Needless to say, the drawings described below are only related to some of the embodiments of the present invention, and those skilled in the art can obtain other embodiments from these drawings without any creative work. [Figure 1] 1 is a flowchart of a method for displaying an experimental state of a biological sample according to an embodiment of the present invention; [Figure 2] 10 is a flowchart illustrating querying and tracking the real-time status of a sample according to an embodiment of the present invention; [Figure 3] 1 is a diagram illustrating the overall configuration of a biological sample analysis system according to an embodiment of the present invention; [Figure 4] 1 is a schematic diagram of an electronic device according to an embodiment of the present invention; [Figure 5] 10 is a sample screen diagram for real-time status query according to an embodiment of the present invention; [Figure 6] 1 is a screen diagram for sample tracking display according to an embodiment of the present invention; [Figure 7] 2 is a screen diagram for sample tracking display according to an embodiment of the present invention; [Figure 8] 3 is a screen diagram 3 for sample tracking display according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0012] Hereinafter, embodiments of the present invention will be described in more detail with reference to the drawings. Although the drawings show several embodiments of the present invention, it is particularly important to note that the present invention can be realized in various forms and should not be construed as being limited to the embodiments described herein. On the contrary, these embodiments are provided to enable a clearer and more complete understanding of the present invention. It is particularly important to note that the drawings and embodiments of the present invention only serve as an example and do not limit the scope of protection of the present invention.
[0013] In practical applications, hospitals and physicians have strict requirements for and control over the time it takes for patient sample results to be released. They need to know how long it will take for sample results to be released, and they also need to know the current stage of sample processing. Based on the current experimental stage of the sample, they may need to decide whether to adjust the sample experimental order or replace the instrument. Therefore, it is extremely necessary to provide a system in the instrument software for querying and tracking the real-time status of samples. Currently, most commercially available biochemistry analyzers, immunoassay analyzers, and nucleic acid detection analyzers provide functions such as sample registration and sample result query. However, they do not provide functions for querying and tracking the real-time status of samples during the experimental process after they are input into the instrument.
[0014] Based on the above, the present invention proposes a method, device, and biological sample analysis system for displaying the experimental status of a biological sample, which can realize real-time inquiry and tracking of the experimental status of a biological sample. In the present invention, a real-time sample status inquiry screen is designed to inquire about the real-time status and estimated remaining time of the sample, and samples are displayed and tracked using a sample registration screen, a result screen, and a drawing of a key component diagram corresponding to the mechanical structure of the equipment. Furthermore, by drawing a key component diagram corresponding to the mechanical structure of the equipment, it is possible to further track which mechanical component the sample is currently being processed in and track the post-processing location of the sample in real time.
[0015] In an embodiment of the present invention, a method for displaying the experimental state of a biological sample is proposed, which may be implemented in a nucleic acid detection analysis instrument or other sample analysis instrument in the field of in vitro diagnostics, such as a biochemical analysis instrument or an immunoassay instrument. Figure 1 is a flowchart of the method for displaying the experimental state of a biological sample according to an embodiment of the present invention. The steps of the method shown in Figure 1 are described below.
[0016] Step S101: When a command to inquire about the experiment status of a target sample is received, the currently executed step data of the target sample is obtained.
[0017] In the embodiments of the present invention, biological samples include, but are not limited to, samples, quality control samples, and comparative samples. Here, a quality control sample is a standard substance for calibrating the performance of an instrument, verifying the accuracy of a measurement method, and monitoring the stability of experimental results. A quality control sample typically includes a substrate component of a known concentration in a test substance or a biomimetic sample. A comparative sample is a standard substance for calibrating laboratory detection devices and determining the accuracy of a measurement system. A sample refers to an original material obtained from a living organism (including humans, animals, plants, and microorganisms) for scientific research or diagnostic purposes. A target sample refers to one or several designated biological samples. For example, it may be a urine sample from a person.
[0018] Specifically, common biological sample types include, but are not limited to, bodily fluid samples such as blood (whole blood, plasma, or serum), urine, saliva, bile, cerebrospinal fluid, semen, cervical secretions, and tears; tissue samples such as biological tissue sections (skin, muscle, fat, nerve, etc.), surgically removed tumor tissue, and normal tissue control samples; cell samples such as white blood cells, red blood cells, tissue culture cells, and primary cells; microbial samples such as bacteria, viruses, fungi, and protozoa; samples containing genetic material (genetic material can include DNA (DeoxyriboNucleic Acid) and RNA (Ribonucleic Acid)); and other biological samples such as hair, nails, teeth, feces, and exhaled breath.
[0019] The experiment status query command is used to query the experimental step in which a biological sample is located. The experiment status query command can be issued by a user in the form of human-computer interaction. When a target sample experiment status query command is received, the currently running step data for the target sample is obtained. Here, the currently running step data is data fed back from the instrument performing the biological sample experiment and describes the execution status of the current step. For example, the currently running step data may indicate that a lid-opening operation is currently being performed. In particular, the instrument stores the feedback data each time an experimental step is performed. When a target sample experiment status query command is received, the instrument retrieves the feedback data from the most recently performed experimental step corresponding to the target sample from the stored data to obtain the currently running step data. Alternatively, the instrument can directly retrieve the feedback data from the most recently performed experimental step to obtain the currently running step data. In this step, each time a target sample experiment status query command is received, the instrument initiates an operation to retrieve the currently running step data, providing data support for displaying the experimental status of the biological sample in real time.
[0020] Step S102: Determine experimental state data of the target sample based on preset experimental step data and the currently executed step data.
[0021] In the present embodiment, the preset experimental step data describes the experimental steps included in different experimental states and can be set according to actual needs, and is not specifically limited in the present embodiment. After determining the currently executing step data, the preset experimental step data can be referenced to determine the experimental state data to which the currently executing step data belongs, i.e., the experimental state data of the target sample. Here, the experimental state data describes the current progress of the experiment.
[0022] In particular, the currently executing step data describes an experimental step in code or other predetermined form, typically including one or more sets of communication commands between the controller and the experiment executor, each set including both a request and a response. Typically, the controller issues a request command to request a specific mechanical movement, the experiment executor receives the request command, performs the specific mechanical movement based on the content of the request command, and then sends a response command back to the controller. The experiment status data describes the experimental status in text and can be displayed to the user via a display device. Therefore, in this step, interaction data between devices, i.e., currently executing step data, can be converted into human-understandable data, i.e., experiment status data, based on the preset experiment step data.
[0023] Step S103: The experiment status data is displayed in a first display area.
[0024] In an embodiment of the present invention, the first display area may be the entire display screen or a designated area on the display screen, and by using the first display area to display the experiment status data, users can obtain the experiment status data in a timely manner.
[0025] Step S104: When receiving a tracking display command, obtain sub-display content corresponding to the experimental state data, generate mark information corresponding to the target sample in the sub-display content, and display the sub-display content and the mark information using a second display area.
[0026] In an embodiment of the present invention, the tracking display command is used to further query the sub-display content corresponding to the experimental status data, and the sub-display content describes detailed information about each biological sample in the experimental status, so that the user can further understand the specific situation of the current experimental status through the tracking display command.
[0027] It is particularly noted that the user can issue a tracking display command through the first display area. For example, a tracking display button is displayed in the first display area, and the user can issue a tracking display command by clicking the tracking display button.
[0028] The marking information is used to mark the location of the target sample in the sub-exhibition content. For example, the marking information can mark the specific location of the sample in the equipment structure in an equipment structure diagram; the marking information can also highlight the target sample in a sample list. The form of the marking information can be set according to actual needs. For example, in one possible embodiment, generating marking information corresponding to the target sample in the sub-exhibition content includes generating one or more combinations selected from shape data, color data, and text data corresponding to the target sample. Here, shape data includes, but is not limited to, triangles, circles, underlines, curves, five-pointed stars, etc.; color data includes, but is not limited to, red, orange, bold, etc.; and text data can be selected according to actual needs.
[0029] For example, in an embodiment of the present invention, a sample may be marked with a red five-pointed star, or any other visual effect on the software screen, such as a different background color, a different shape / icon, a bold font, etc. However, the core functions of querying the real-time status of the sample and tracking the sample transport remain unchanged.
[0030] The second exhibit area may be a separate, complete display screen that is different from the first exhibit area, or may be a separate designated area within the same display screen as the first exhibit area.
[0031] In this embodiment of the present invention, the sub-display content and the mark information are displayed in the second display area, so that the user can easily understand the experimental state of the target sample.
[0032] In an embodiment of the present invention, when a command to inquire about the experimental status of a target sample is received, currently running step data of the target sample is obtained; experimental status data of the target sample is determined based on preset experimental step data and the currently running step data; the first display area is used to display the experimental status data; when a command to track and display is received, sub-display content corresponding to the experimental status data is obtained, and mark information corresponding to the target sample in the sub-display content is generated, and the second display area is used to display the sub-display content and the mark information. According to the present invention, the experimental status of the target sample can be displayed and tracked in real time, providing convenience for inquiring about the experimental status of biological samples.
[0033] In one possible embodiment, the preset experimental step data includes a correspondence between the currently running step data and the experimental status data, and the step of determining the experimental status data of the target sample based on the preset experimental step data and the currently running step data includes determining experimental status data corresponding to the currently running step data based on the correspondence, wherein the experimental status data includes before the experiment, during the experiment, and after the experiment, wherein the before the experiment includes at least one or more states selected from registered and applied, the during the experiment includes at least one or more states selected from opening the lid, adding a sample, adding a reagent, reacting, and detecting, and the after the experiment includes at least one or more states selected from results announced and reviewed, and setting the experimental status data corresponding to the currently running step data as the experimental status data of the target sample.
[0034] In this possible embodiment, the preset experimental step data is for determining the experimental steps that need to be performed in the biological sample experiment, and these experimental steps can be performed one by one by the device that performs the biological sample experiment. Data related to the experimental step being performed is referred to as currently-running step data. The preset experimental step data includes data on the experimental state to which each experimental step belongs, while the currently-running step data is data related to a certain experimental step. In other words, the preset experimental step data includes the correspondence between the currently-running step data and the experimental state data.
[0035] After acquiring the currently executing step data, the correspondence between the currently executing step data and the experiment status data can be inquired from the preset experiment step data, thereby acquiring the experiment status data corresponding to the currently executing step data.
[0036] In order to allow users to easily understand the current experimental stage, the experimental status data includes pre-experiment, during-experiment, and post-experiment. Here, pre-experiment indicates that the biological sample experiment is in the preparation stage, during-experiment indicates that the biological sample experiment is in progress, and post-experiment indicates that the biological sample experiment has been completed. In order to allow users to further understand the specific experimental status, pre-experiment includes at least one or more states selected from registered and applied, during experiment includes at least one or more states selected from opening the lid, adding sample, adding reagent, reacting, and detecting, and post-experiment includes at least one or more states selected from published results and reviewed.
[0037] It is particularly important to note that "before the experiment" includes at least specific states such as "registered" or "applied," where "applied" refers to the completion of item application to the LIS (Laboratory Information System). "during the experiment" includes at least specific states such as "opening the lid," "adding sample," "adding reagent," "reacting," or "detecting." "After the experiment" includes at least specific states such as "announced results" or "reviewed." Specifically, the specific state of each experimental stage can be determined according to actual needs, and is not specifically limited in the embodiments of the present invention. For example, "during the experiment" may include specific states such as "extracting."
[0038] The experiment status data corresponding to the currently executed step data is displayed to the user as the experiment status data of the target sample, so that the user can understand the current progress of the experiment.
[0039] In one possible embodiment, the experimental status data is during an experiment, and the method further includes: determining a preset total experimental time of the target sample based on preset experimental step data; determining a completed experimental time of the target sample based on the currently running step data; calculating a difference between the preset total experimental time and the completed experimental time to obtain residual experimental time data; and setting the residual experimental time data as the experimental status data of the target sample.
[0040] In this possible embodiment, when the experimental status data indicates that an experiment is in progress, a preset total experimental time for the target sample can be determined based on preset experimental step data, in order to allow the user to easily understand the remaining experimental time. The preset experimental step data includes the time required for each experimental step, and the preset total experimental time for the target sample can be obtained by adding up the time required for each step during the experiment. The currently executing step can be determined based on the currently executing step data, and the completed experimental time can be obtained by adding up the time required for each step before the currently executing step. In other words, the completed experimental time for the target sample can be determined based on the currently executing step data.
[0041] After obtaining the preset total experiment time and the completed experiment time, the difference between the preset total experiment time and the completed experiment time is calculated to obtain surplus experiment time data, and the surplus experiment time data is used as the experimental status data of the target sample.
[0042] 5, the sample number "2356564556466" is used to select the target sample, and the user inputs the sample number to send a command to select the target sample's experimental status. After selecting the target sample's experimental status data (shown as "extracting" in the figure), the screen is used to display the experimental status data, which also includes the remaining experimental time data, i.e., the estimated remaining time.
[0043] In particular, in some cases there is no jump / sample tracking functionality, only a real-time status query of the sample and estimated remaining time, or even no estimated remaining time, only a real-time status query of the sample.
[0044] In one possible embodiment, the preset experimental step data includes step execution time data, and the experimental status data is an experiment in progress, and the method further includes: determining a waiting step based on the currently executing step data; determining an execution time of the waiting step based on the preset experimental step data; summing the execution times of the waiting steps to obtain excess experimental time data; and using the excess experimental time data as experimental status data for the target sample.
[0045] In this possible embodiment, the preset experimental step data includes the time required for each experimental step, and when the experimental status data is during an experiment, to allow the user to easily understand the remaining experimental time, the waiting steps are determined based on the currently running step data, the execution times of the waiting steps are determined based on the preset experimental step data, and the execution times of the waiting steps are summed to obtain remaining experimental time data, which is used as the experimental status data of the target sample.
[0046] In one possible embodiment, the experimental status data is before the experiment, and acquiring sub-display content corresponding to the experimental status data includes acquiring registration screen information corresponding to the currently running step data, wherein the registration screen information includes sample storage location information of the biological sample experiment, and the sample storage location information includes sample rack information and sample rack position information, and displaying the sub-display content and the mark information using the second display area includes displaying the registration screen information using the second display area and using the mark information to mark the sample rack information and sample rack position information corresponding to the target sample.
[0047] In this possible embodiment, the correlation data of the screen displayed when registering experimental data for the biological sample experiment to which the currently running step data belongs is set as registration screen information corresponding to the currently running step data. If the experimental status data is before the experiment, registration screen information corresponding to the currently running step data is obtained, and the registration screen information is set as sub-display content. The registration screen information includes data displayed on the registration screen. The registration screen is a screen displayed when registering experimental data before an experiment, and may be, for example, a screen for setting the correspondence between the sample number and the mechanical / physical location where the sample is stored when the sample is input into a sample analysis device.
[0048] The registration screen information includes sample storage location information for biological sample experiments, and the sample storage location information includes sample rack information and sample rack location information. When this technical means is specifically implemented, the registration screen information is used as the tracking display content. Referring to the screen diagram 1 for sample tracking display shown in Figure 6, the sample storage location information includes quality control room information and sample room information, where the quality control room includes sample rack No. 1 and sample rack No. 2, the sample room includes sample rack No. 3 to No. 11, and sample rack No. 6 is marked with star mark information. In other words, sample rack No. 6 is the sample rack where the target sample is located.
[0049] On the right side of Figure 6, sample rack position information is displayed, specifically including positions 6-1 to 6-16, and the first sample rack position, i.e., 6-1, is marked with star-shaped mark information, which is the position of the sample rack where the target sample is located.
[0050] It should be particularly noted that the registration screen information may include data such as sample type, test tube specifications, second-class sample number, and LIS (Laboratory Information System) application status, and the data content in the registration screen information can be determined according to actual needs, and is not specifically limited in the embodiments of the present invention.
[0051] By using the second display area to display the registration screen information and using the mark information to mark the sample rack information and sample rack position information corresponding to the target sample, the user can quickly understand the processing progress of the target sample before the experiment.
[0052] In one possible embodiment, the experimental status data indicates that an experiment is in progress, acquiring sub-display content corresponding to the experimental status data includes acquiring part diagram information corresponding to a biological sample experiment, the part diagram information including image information of parts for performing the biological sample experiment, generating mark information corresponding to the target sample in the sub-display content includes generating mark information of image information of parts where the target sample is currently located in the part diagram information, and displaying the sub-display content and the mark information using a second display area includes displaying the part diagram information using the second display area and marking the position of the part corresponding to the target sample using the mark information.
[0053] In this possible embodiment, when the experimental status data indicates that an experiment is in progress, component diagram information corresponding to the biological sample experiment is obtained, and the component diagram information is used as a sub-display content corresponding to the experimental status data. The component diagram information includes image information of components used to perform the biological sample experiment. It is particularly important to note that the component diagram is drawn based on the actual mechanical component structure of the sample analysis device, and some important components in the diagram (components through which the sample is transported) can be updated in real time by software, and can be marked. In short, it is a layout diagram of mechanical components with partially changeable display content.
[0054] Mark information is generated for the image information of the parts where the target sample is currently located in the part diagram information, and the part diagram information is displayed in a second display area. The position of the parts corresponding to the target sample is marked using the mark information, thereby highlighting the position of the parts where the target sample is located, and the user can intuitively understand the transport status of the biological sample among the mechanical parts.
[0055] Referring to the screen image 2 for sample tracking display shown in FIG. 7, shapes with different sizes and different grayscales represent different parts. In this figure, the position of the part where the target sample is located is marked with star-shaped mark information, and if there are any aliquots of the target sample, the positions of the parts where each aliquot is located are also marked with a star.
[0056] In particular, in the figure, several rectangular positions have black vertical lines in the lower right corner, and when such positions are clicked with a mouse, experimental information such as the experimental batch, experimental lot number, and experimental item is displayed. When a sample is transferred between components, the rectangular positions with black vertical lines in the lower right corner are visually surrounded by a dashed line, allowing the user to easily understand the sample transfer status between components. In one possible embodiment, displaying the component diagram information using the second display area further includes, when a component detail display command is received, displaying component name information corresponding to the component detail display command and experimental information corresponding to the target sample.
[0057] In this possible embodiment, the detail display command is for further displaying detailed information of the part drawing, including but not limited to part name information and experimental information, and experimental information including but not limited to experimental item information and / or experimental batch information. The detail display command can be issued by a user, and the specific issuing method can be set according to actual needs. For example, if the second display area is a touch screen, the user can issue the part detail display command by touching a part on the screen with their finger; if the second display area is a display, the user can issue the part detail display command by clicking a part on the screen with a mouse or by holding the mouse over a part on the screen for a predetermined period of time, or by selecting a part in the form of voice and issuing the detail display command.
[0058] In some cases, when the same sample is introduced into an instrument and subjected to detection, multiple specimens may need to be detected. The sample may be divided and subjected to different processes using different laboratory consumables. In this case, different aliquots from the same sample may be simultaneously transferred between multiple machine components in the part diagram. Therefore, when tracking the current transfer position of the sample in the part diagram, multiple marks may be present, indicating the transfer status of different aliquots from the sample. Moreover, the multiple marks may be the same or different and are used to track the transfer status of each of the different aliquots. Based on this, in one possible embodiment, the target sample includes multiple aliquot samples, and generating mark information for image information of the parts currently containing the target sample in the part diagram information includes generating mark information for image information of the parts currently containing the aliquot samples, and marking the positions of the parts corresponding to the target sample using the mark information includes marking the positions of the parts corresponding to the aliquot samples using the mark information for the aliquot samples.
[0059] In this possible embodiment, during the processing of a biological sample, it may be necessary to separate the biological sample into different components by physical or chemical methods, and each such component is called a separated sample. A plurality of separated samples can be obtained from a target sample. Therefore, to allow a user to easily understand the experimental status of each separated sample, when generating mark information for image information of the component currently located in the target sample in the component diagram information, mark information for image information of the component currently located in each separated sample can be generated, and the position of each component corresponding to the separated sample can be marked using the mark information for the separated sample, thereby highlighting the transfer status of each separated sample within the component.
[0060] In one possible embodiment, the experimental status data is after the experiment, and obtaining sub-display content corresponding to the experimental status data includes obtaining result screen information corresponding to the currently running step data, and the result screen information includes sample result information of a biological sample experiment, and the sample result information includes sample basic information and test subject result information, and using a second display area to display the sub-display content and the mark information includes displaying the result screen information using the second display area and marking the sample result information corresponding to the target sample using the mark information.
[0061] In this possible embodiment, the correlation data of the screen displayed when registering the experimental results for the biological sample experiment to which the currently running step data belongs is set as the result screen information corresponding to the currently running step data. If the experimental status data is post-experiment, the result screen information corresponding to the currently running step data is obtained, and the result screen information is set as the sub-display content. The result screen information includes the data displayed on the result screen. The result screen is a screen displayed when registering the experimental results after the experiment, and may be, for example, a screen for displaying the sample detection results of a sample analysis device. On this screen, the user can view the detection result information for some or all of the test samples.
[0062] The result screen information includes sample result information of a biological sample experiment, and the sample result information includes basic sample information and test object result information. When this technical means is specifically implemented, the result screen information is used as the tracking display content. Referring to Figure 3 for sample tracking display shown in Figure 8, the basic sample information displayed in the figure includes the experiment item, experiment status, experiment mark and / or experiment batch ID (identity), etc., and the test object result information displayed in the figure includes the sample number, attribute, overall result, test object, and detection result corresponding to the test object.
[0063] It should be particularly noted that the result screen information may also include data such as reaction curves and / or temperature curves, and the data content in the result screen information can be determined according to actual needs, and the embodiments of the present invention are not specifically limited thereto.
[0064] The second display area is used to display the result screen information, and the mark information is used to mark the sample result information corresponding to the target sample, so that the user can timely understand the processing progress of the target sample after the experiment. For example, in Figure 8, the experimental result of sample number "2356564556466" is marked with a star-shaped mark information.
[0065] The implementation of this method will be described below using a specific example.
[0066] The method can be implemented by a biological sample analysis system. In an embodiment of the present invention, FIG. 3 shows an overall block diagram of a biological sample analysis system, which includes an experiment platform and a control platform. The experiment platform includes one or more mechanical components for performing specific experimental operations. These components cooperate with each other to perform sample detection experiments, and samples or sample extracts are transferred between these mechanical components. The control platform includes an experiment control module and an information processing module. The experiment control module generates and sends control commands to the experiment platform to control the movement of each mechanical component in the experiment platform to achieve the experimental process. The information processing module manages sample registration information and sample result information within the device, and draws / displays a key component diagram corresponding to the device's mechanical structure. For convenience of description, the key component diagram corresponding to the device's mechanical structure is abbreviated to a component diagram.
[0067] Data can be exchanged between the experimental platform and the control platform using various existing data communication methods, including, but not limited to, network connections such as LAN (Local Area Network), VPN (Virtual Private Network), intranet, and the Internet, serial connections, USB (Universal Serial Bus) connections, and wireless network connections.
[0068] The real-time status inquiry and tracking of the sample can be realized through the sample registration information, sample result information and part diagram in the information processing module. The specific method is as follows:
[0069] 1) A real-time sample status inquiry screen is set up, and when the user enters the sample number that needs to be inquired on this screen, the inquiry operation will be executed.
[0070] 2) Based on the sample number entered by the user, sample registration information, sample result information, and part drawings are searched to obtain the real-time status of the sample, estimated remaining time, and the machine location where the sample is currently located.
[0071] 3) The real-time sample status inquiry screen displays text information about the current real-time status of the sample (e.g., registered, applied for, sample being added, reagent being added, reaction in progress, detection in progress, results announced, etc.) and the estimated remaining time. In addition, a jump function is provided, allowing users to jump directly to the sample registration screen / results screen / parts diagram screen and inquire about the current status and location information of the sample.
[0072] 4) The specific screen to jump to must be determined based on the current state of the sample. Generally, before sample processing begins, the sample registration screen is selected; after sample processing begins but before the results are released, the experiment is in progress, so the part diagram is selected; after the experiment is completed, the experiment is completed, so the result screen is selected. Therefore, the real-time status of a sample is broadly divided into three categories: before the experiment, during the experiment, and after the experiment. Each category includes one or more subcategories. For example, before the experiment, the status is classified as registered or applied for; during the experiment, the status is classified as opening the lid, adding the sample, adding the reagent, reacting, detecting, etc.; and after the experiment, the status is classified as announced or reviewed, etc.
[0073] 5) After jumping to the specific screen, a mark is added to highlight the location / record of the retrieved sample. In particular, if the sample is undergoing an experiment, a mark is added to the location of the relevant part in the part diagram to highlight the current transfer location of the retrieved sample until the detection experiment on the sample is completed, and the mark information is transferred and displayed to each part along with the sample as the experiment progresses. A flowchart of the specific sample real-time status inquiry and tracking is shown in Figure 2.
[0074] A specific embodiment of the present invention will be described below using a nucleic acid detection and analysis instrument as an example. As shown in Figure 5, a sample real-time status inquiry screen is designed. This screen includes a sample number input box (e.g., the sample number input box in the figure), an inquiry button (e.g., for inquiring about the sample with sample number 2356564556466 in the figure), text information about the current status of the sample (e.g., the current status of the sample in the figure is "extracting"), the estimated remaining time of the sample (e.g., the estimated remaining time of the sample in the figure is "00:26:11"), a jump / sample tracking button (for jumping through the screen to further inquire about the sample rack location / component location / result record where the sample is located), and a return button (for terminating the sample status inquiry process).
[0075] If the sample is in the "Pre-Experiment" stage, when you click the Jump / Sample Tracking button, the software will automatically navigate to the Sample Registration screen and mark the corresponding sample location. A red five-pointed star marks the sample rack and location where the sample is located, as shown in Figure 6.
[0076] If the sample is in the "Experiment" stage, when you click the Jump / Sample Tracking button, the software will automatically navigate to the part diagram screen and mark the currently transferred part of the sample. As shown in Figure 7, a red five-pointed star will mark the machine part where the sample is located, and the mark will automatically appear on the next machine part along with the sample.
[0077] If the sample status is in the "Post-Experiment" stage, when you click the Jump / Sample Tracking button, the software will automatically navigate to the Results screen, automatically search for the sample's result record, and mark it. As shown in Figure 8, the sample result record is marked with a red five-pointed star.
[0078] Based on the above-mentioned method proposed in an embodiment of the present invention, an embodiment of the present invention further proposes a biological sample experimental status display device, which includes: an acquisition module configured to acquire currently running step data of the target sample when receiving an experimental status inquiry command for the target sample; a data module configured to determine experimental status data of the target sample based on preset experimental step data and the currently running step data; a first display module configured to display the experimental status data using a first display area; and a second display module configured to acquire sub-display content corresponding to the experimental status data when receiving a tracking display command, generate mark information corresponding to the target sample in the sub-display content, and display the sub-display content and the mark information using a second display area.
[0079] In one possible embodiment, the preset experimental step data includes a correspondence between the currently running step data and the experimental status data, and the step of determining the experimental status data of the target sample based on the preset experimental step data and the currently running step data includes determining experimental status data corresponding to the currently running step data based on the correspondence, wherein the experimental status data includes before the experiment, during the experiment, and after the experiment, wherein the before the experiment includes at least one or more states selected from registered and applied, the during the experiment includes at least one or more states selected from opening the lid, adding a sample, adding a reagent, reacting, and detecting, and the after the experiment includes at least one or more states selected from results announced and reviewed, and setting the experimental status data corresponding to the currently running step data as the experimental status data of the target sample.
[0080] In one possible embodiment, the experimental status data is during an experiment, and the method further includes: determining a preset total experimental time of the target sample based on preset experimental step data; determining a completed experimental time of the target sample based on the currently running step data; calculating a difference between the preset total experimental time and the completed experimental time to obtain residual experimental time data; and setting the residual experimental time data as the experimental status data of the target sample.
[0081] In one possible embodiment, the preset experimental step data includes step execution time data, and the experimental status data is an experiment in progress, and the method further includes: determining a waiting step based on the currently executing step data; determining an execution time of the waiting step based on the preset experimental step data; summing the execution times of the waiting steps to obtain excess experimental time data; and using the excess experimental time data as experimental status data for the target sample.
[0082] In one possible embodiment, the experimental status data is before the experiment, and acquiring sub-display content corresponding to the experimental status data includes acquiring registration screen information corresponding to the currently running step data, wherein the registration screen information includes sample storage location information of the biological sample experiment, and the sample storage location information includes, but is not limited to, sample rack information and sample rack position information; and displaying the sub-display content and the mark information using the second display area includes displaying the registration screen information using the second display area and marking sample rack information and sample rack position information corresponding to the target sample using the mark information.
[0083] In one possible embodiment, the experimental status data indicates that an experiment is in progress, acquiring sub-display content corresponding to the experimental status data includes acquiring part diagram information corresponding to the biological sample experiment, wherein the part diagram information includes image information of parts for performing the biological sample experiment, generating mark information corresponding to the target sample in the sub-display content includes generating mark information of image information of parts where the target sample is currently located in the part diagram information, and displaying the sub-display content and the mark information using a second display area includes displaying the part diagram information using the second display area and marking the position of the part corresponding to the target sample using the mark information.
[0084] In one possible embodiment, displaying the part diagram information using the second display area further includes, when a part detail display command is received, displaying part name information corresponding to the part detail display command and experimental information corresponding to the target sample.
[0085] In one possible embodiment, the target sample includes a plurality of separated liquid samples, and generating mark information for image information of parts currently located in the target sample in the part drawing information includes generating mark information for image information of parts currently located in the separated liquid samples, respectively, and marking the positions of parts corresponding to the target sample using the mark information includes marking the positions of parts corresponding to the separated liquid samples, respectively.
[0086] In one possible embodiment, the experimental status data is after the experiment, and obtaining sub-display content corresponding to the experimental status data includes obtaining result screen information corresponding to the currently running step data, wherein the result screen information includes sample result information of the biological sample experiment, and the sample result information includes sample basic information and test subject result information, and using a second display area to display the sub-display content and the mark information includes displaying the result screen information using the second display area and marking the sample result information corresponding to the target sample using the mark information.
[0087] In one possible embodiment, generating mark information corresponding to the target sample in the sub-exhibition content includes generating one or more combinations selected from shape data, color data, and character data corresponding to the target sample.
[0088] Based on the above-mentioned method proposed in an embodiment of the present invention, an embodiment of the present invention further proposes a biological sample analysis system, which includes an experiment platform and a control platform, wherein the experiment platform is communicatively connected with the control platform, and the control platform includes an experiment control module and an information processing module for performing the above-mentioned method.
[0089] In an embodiment of the present invention, the experiment control module of the control platform can send experiment execution step data to the experiment platform, and at the same time, the information processing module of the control platform records the experiment execution step data. The experiment platform may include multiple instruments for performing biological sample experiments, and the experiment platform receives the experiment execution step data. The received experiment execution step data can guide the instruments for performing biological sample experiments in the experiment platform to achieve specific mechanical movements. After the mechanical movements are completed, the experiment platform feeds back the execution status of the corresponding experimental step to the experiment control module of the control platform, and the information processing module obtains currently executed step data from the experiment control module, and the currently executed step data is for describing the execution status of the current step.
[0090] The experiment control module repeats the above process, continuously sending the next experiment execution step data, and drives the sample experiment forward.
[0091] Based on the above-mentioned method proposed in an embodiment of the present invention, an embodiment of the present invention further proposes a biological sample analysis system, which includes a detection device configured to detect a test sample liquid and obtain a sample detection result, a display, and a controller, wherein the controller controls the display to display a first display area for displaying experimental status data of the target sample when an experimental status inquiry operation of the target sample is detected, and controls the display to obtain sub-display content corresponding to the experimental status data, generate mark information corresponding to the target sample in the sub-display content, and display a second display area for displaying the sub-display content corresponding to the experimental status data of the target sample and the mark information when a tracking display inquiry operation of the target sample is detected.
[0092] In an embodiment of the present invention, the detection device may be a biological sample analysis instrument, which refers to an instrument for detecting and analyzing a test sample to obtain a detection result of the test sample, and specifically may be a biological sample analysis instrument such as a nucleic acid detection analysis instrument, a biochemical analysis instrument, an immunoassay instrument, etc. The biological sample analysis instrument includes at least a consumable loading module, a sample injection module, a reagent injection module, a reaction module, and a measurement module.
[0093] The biological sample analysis system further includes a display device, or display, for providing a human-computer interaction screen, which may be located on the same device as the components of the biological sample analysis device or may be located outside the device in which the components of the biological sample analysis device are located and communicatively connected to those components.
[0094] The interactive screen provided by the display device can display information such as the parameter values of each detection indicator, device status, consumable status, sample detection status, etc. To issue commands to the biological sample analysis system, the user can input related operations on the human-computer interaction screen, such as mouse operations, touch operations, or keyboard input.
[0095] In one possible embodiment, the preset experimental step data includes a correspondence between the currently running step data and the experimental status data, and the step of determining the experimental status data of the target sample based on the preset experimental step data and the currently running step data includes determining experimental status data corresponding to the currently running step data based on the correspondence, wherein the experimental status data includes before the experiment, during the experiment, and after the experiment, wherein the before the experiment includes at least one or more states selected from registered and applied, the during the experiment includes at least one or more states selected from opening the lid, adding a sample, adding a reagent, reacting, and detecting, and the after the experiment includes at least one or more states selected from results announced and reviewed, and setting the experimental status data corresponding to the currently running step data as the experimental status data of the target sample.
[0096] In one possible embodiment, the experimental status data is during an experiment, and the method further includes: determining a preset total experimental time of the target sample based on preset experimental step data; determining a completed experimental time of the target sample based on the currently running step data; calculating a difference between the preset total experimental time and the completed experimental time to obtain residual experimental time data; and setting the residual experimental time data as the experimental status data of the target sample.
[0097] In one possible embodiment, the preset experimental step data includes step execution time data, and the experimental status data is an experiment in progress, and the method further includes: determining a waiting step based on the currently executing step data; determining an execution time of the waiting step based on the preset experimental step data; summing the execution times of the waiting steps to obtain excess experimental time data; and using the excess experimental time data as experimental status data for the target sample.
[0098] In one possible embodiment, the experimental status data is before the experiment, and acquiring sub-display content corresponding to the experimental status data includes acquiring registration screen information corresponding to the currently running step data, wherein the registration screen information includes sample storage location information of the biological sample experiment, and the sample storage location information includes, but is not limited to, sample rack information and sample rack position information; and displaying the sub-display content and the mark information using the second display area includes displaying the registration screen information using the second display area and marking sample rack information and sample rack position information corresponding to the target sample using the mark information.
[0099] In one possible embodiment, the experimental status data indicates that an experiment is in progress, acquiring sub-display content corresponding to the experimental status data includes acquiring part diagram information corresponding to the biological sample experiment, wherein the part diagram information includes image information of parts for performing the biological sample experiment, generating mark information corresponding to the target sample in the sub-display content includes generating mark information of image information of parts where the target sample is currently located in the part diagram information, and displaying the sub-display content and the mark information using a second display area includes displaying the part diagram information using the second display area and marking the position of the part corresponding to the target sample using the mark information.
[0100] In one possible embodiment, displaying the part diagram information using the second display area further includes, when a part detail display command is received, displaying part name information corresponding to the part detail display command and experimental information corresponding to the target sample.
[0101] In one possible embodiment, the target sample includes a plurality of separated liquid samples, and generating mark information for image information of parts currently located in the target sample in the part drawing information includes generating mark information for image information of parts currently located in the separated liquid samples, respectively, and marking the positions of parts corresponding to the target sample using the mark information includes marking the positions of parts corresponding to the separated liquid samples, respectively.
[0102] In one possible embodiment, the experimental status data is after the experiment, and obtaining sub-display content corresponding to the experimental status data includes obtaining result screen information corresponding to the currently running step data, and the result screen information includes sample result information of a biological sample experiment, and the sample result information includes sample basic information and test subject result information. Using a second display area to display the sub-display content and the mark information includes using the second display area to display the result screen information and mark the sample result information corresponding to the target sample using the mark information.
[0103] In one possible embodiment, generating mark information corresponding to the target sample in the sub-exhibition content includes generating one or more combinations selected from shape data, color data, and character data corresponding to the target sample.
[0104] An embodiment of the present invention further provides an electronic device, the electronic device including at least one processor and a memory communicatively coupled to the at least one processor, the memory storing a computer program executable by the at least one processor, the computer program, when executed by the at least one processor, causing the electronic device to perform a method according to an embodiment of the present invention.
[0105] An embodiment of the present invention further provides a non-transitory computer-readable medium having a computer program stored thereon, the computer program causing the computer to perform a method according to an embodiment of the present invention when executed by a processor of a computer.
[0106] In accordance with an embodiment of the present invention, there is further provided a computer program product comprising a computer program, which, when run on a processor of a computer, causes the computer to perform a method according to an embodiment of the present invention.
[0107] Referring to FIG. 4, a block diagram of an electronic device capable of functioning as a server or client according to an embodiment of the present invention is described. Such an electronic device is an example of a hardware device applicable to each aspect of the present invention. The electronic device is intended to represent various forms of digital electronic computing devices, such as laptop computers, desktop computers, workbenches, personal digital assistants, servers, blade servers, mainframes, and other suitable computers. The electronic device may also be various forms of mobile devices, such as personal digital assistants, cellular mobile phones, smartphones, wearable devices, and other similar computing devices. The components, their connections and relationships, and their functions shown herein are merely exemplary and are not intended to limit the practice of the present invention as described and / or claimed herein.
[0108] 4, the electronic device includes a computing unit 401 that can perform various appropriate operations and processes in accordance with a computer program stored in a read-only memory (ROM) 402 or loaded from a storage unit 408 into a random access memory (RAM) 403. The RAM 403 can also store various programs and data necessary for the operation of the electronic device. The computing unit 401, the ROM 402, and the RAM 403 are connected to each other via a bus 404. An input / output (I / O) interface 405 is also connected to the bus 404.
[0109] The I / O interface 405 is connected to several components of the electronic device, such as an input unit 406, an output unit 407, a storage unit 408, and a communication unit 409. The input unit 406 is any type of device capable of inputting information into the electronic device, receiving input numeric or character information, and generating key signal inputs related to user settings and / or function control of the electronic device. The output unit 407 is any type of device capable of presenting information, including, but not limited to, a display, a speaker, a video / audio output terminal, a vibrator, and / or a printer. The storage unit 408 includes, but is not limited to, a magnetic disk and an optical disk. The communication unit 409 allows the electronic device to exchange information / data with other devices via a computer network such as the Internet and / or various telecommunication networks, and includes, but is not limited to, a modem, a network card, an infrared communication device, a wireless communication transceiver, and / or a chipset such as a Bluetooth device, a WiFi device, a WiMax device, a cellular communication device, and / or the like.
[0110] The computing unit 401 may be any of a variety of general-purpose and / or special-purpose processing components having processing and computational capabilities. Some examples of the computing unit 401 include, but are not limited to, a CPU, a graphics processing unit (GPU), various dedicated artificial intelligence (AI) computing chips, various computing units on which machine learning models and algorithms are executed, a digital signal processor (DSP), and any suitable processor, controller, microcontroller, etc. The computing unit 401 performs the methods and processes described above. For example, in some embodiments, method embodiments of the present invention may be embodied as a computer program tangibly embodied in a machine-readable medium, such as the storage unit 408. In some embodiments, some or all of the computer program may be loaded and / or installed into an electronic device via the ROM 402 and / or the communication unit 409. In some embodiments, the computing unit 401 may be configured to perform the methods described above in any other suitable manner (e.g., via firmware).
[0111] Computer programs for implementing methods according to embodiments of the present invention can be written in any combination of one or more programming languages. These program codes are provided to a processor or controller of a general-purpose computer, a special-purpose computer, or other programmable data processing device, such that, when the computer program is executed by the processor or controller, the functions / operations specified in the flowcharts and / or block diagrams are performed. The computer program may be executed in whole or in part on the device, or as a separate software package, partly on the device and partly on a remote device, or entirely on a remote device or server.
[0112] In the context of embodiments of the present invention, a machine-readable medium may be a tangible medium capable of containing or storing a program used by or in connection with an instruction execution system, apparatus, or device. A machine-readable medium may be a machine-readable signal medium or a machine-readable storage medium. Examples of machine-readable signal media include, but are not limited to, electronic, magnetic, optical, electromagnetic, infrared, or semiconductor systems, apparatus, or devices, or any suitable combination of the foregoing. More specific examples of machine-readable storage media include an electrical connection of one or more wires, a portable computer disk, a hard disk, a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or flash memory), an optical fiber, a portable compact disk read-only memory (CD-ROM), an optical storage device, a magnetic storage device, or any suitable combination of the foregoing.
[0113] It is particularly important to note that the term "comprises" and variations thereof, when used in connection with embodiments of the present invention, are intended to be open inclusive, i.e., "including, but not limited to." The term "based on" means "based at least in part on." The term "in one embodiment" refers to "at least one embodiment"; the term "in another embodiment" refers to "at least one other embodiment." The term "some embodiments" refers to "at least some embodiments." Those skilled in the art will appreciate that the modifiers "one" and "multiple" used in reference to embodiments of the present invention are exemplary rather than limiting, and should be understood as "one or more" unless the context clearly dictates otherwise.
[0114] The user information (including but not limited to user device information, user personal information, etc.) and data (including but not limited to data for analysis, stored data, displayed data, etc.) in the embodiments of the present invention are all information and data authorized by the user or fully authorized by each party, and the collection, use and processing of related data must be carried out in accordance with the relevant laws, regulations and standards of the relevant countries and regions, and a corresponding operation portal is provided for users to select permission or denial.
[0115] The steps described in the method embodiments provided in the examples of the present invention may be performed in different orders and / or in parallel. Furthermore, the method embodiments may include additional steps and / or omitted steps. The scope of protection of the present invention is not limited in this respect.
[0116] The term "embodiment" as used herein means that a specific feature, configuration, or characteristic described in connection with an embodiment may be included in at least one embodiment of the present invention. Although the term appears in various places in the specification, it does not necessarily refer to the same embodiment, nor does it imply exclusive, independent, or alternative features of other embodiments. Each embodiment in this specification is described in relation to the others, and the same or similar parts of each embodiment are referred to by reference. In particular, apparatus, device, and system embodiments are briefly described because they are essentially similar to method embodiments. Reference can be made to the description of the method embodiments for their related points.
[0117] The above examples only describe some embodiments of the present application, and although the description is specific and detailed, it should not be understood as limiting the scope of the patent. It is particularly noted that those skilled in the art can make various modifications and improvements without departing from the concept of the present application, and all of these fall within the scope of protection of the present application. Therefore, the scope of protection of the present application should be governed by the appended claims.
Claims
1. When receiving an experiment status inquiry command for a target sample, acquiring currently executed step data for the target sample; determining experimental state data for the target sample based on preset experimental step data and the currently executing step data; displaying the experiment status data using a first display area; When a tracking display command is received, a sub-exhibition content corresponding to the experimental state data is obtained, mark information corresponding to the target sample in the sub-exhibition content is generated, and the sub-exhibition content and the mark information are displayed in a second display area.
2. the preset experiment step data includes a correspondence between the currently executed step data and the experiment status data; The step of determining experimental state data of the target sample based on preset experimental step data and the currently executed step data includes: determining experimental status data corresponding to the currently executing step data based on the correspondence relationship, the experimental status data including before the experiment, during the experiment, and after the experiment, the before the experiment including at least one or more states selected from registered and applied, the during the experiment including at least one or more states selected from opening the lid, adding a sample, adding a reagent, reacting, and detecting, and the after the experiment including at least one or more states selected from results announced and reviewed; and determining the experimental state data corresponding to the currently executing step data as the experimental state data of the target sample.
3. the experimental status data is an experiment in progress; The method comprises: determining a predetermined total experiment time for the target sample based on predetermined experiment step data; determining a completed experimental time for the target sample based on the currently running step data; 3. The method of claim 2, further comprising: calculating a difference between the preset total experiment time and the executed experiment time to obtain surplus experiment time data; and setting the surplus experiment time data as experiment status data of the target sample.
4. the preset experiment step data includes step execution time data, and the experiment status data is during an experiment; The method comprises: determining a step waiting to be executed based on the currently executed step data; determining an execution time of the execution waiting step based on the preset experimental step data; The method of claim 2 , further comprising: summing up execution times of the execution waiting steps to obtain excess experiment time data; and setting the excess experiment time data as experiment status data for the target sample.
5. the experimental state data is before the experiment; acquiring sub-exhibition content corresponding to the experiment status data includes acquiring registration screen information corresponding to the currently executed step data, the registration screen information including sample storage location information of a biological sample experiment, and the sample storage location information including sample rack information and sample rack location information; The method of claim 2, characterized in that displaying the sub-exhibition content and the mark information using the second exhibition area includes displaying the registration screen information using the second exhibition area, and marking sample rack information and sample rack position information corresponding to the target sample using the mark information.
6. the experimental status data is an experiment in progress; acquiring sub-exhibition content corresponding to the experiment status data includes acquiring component diagram information corresponding to a biological sample experiment, the component diagram information including image information of components for performing the biological sample experiment; generating mark information corresponding to the target sample in the sub-exhibition content includes generating mark information of image information of a part where the target sample is currently located in the part diagram information; 3. The method of claim 2, wherein displaying the sub-exhibition content and the mark information using a second exhibition area includes displaying the part diagram information using the second exhibition area and marking the position of the part corresponding to the target sample using the mark information.
7. 7. The method of claim 6, wherein displaying the part diagram information using the second display area further comprises, when a part detail display command is received, displaying part name information corresponding to the part detail display command and experimental information corresponding to the target sample.
8. the target sample comprises a plurality of aliquot samples; generating mark information of image information of the component currently located in the component diagram information includes generating mark information of image information of the component currently located in the separated sample, respectively; 7. The method of claim 6, wherein marking the positions of parts corresponding to the target samples using the mark information includes marking the positions of parts corresponding to the aliquot samples using mark information of the aliquot samples, respectively.
9. the experimental state data is post-experiment; Obtaining sub-display content corresponding to the experiment status data includes obtaining result screen information corresponding to the currently executed step data, the result screen information including sample result information of a biological sample experiment, and the sample result information including sample basic information and test subject result information; The method of claim 2, wherein displaying the sub-display content and the mark information using the second display area includes displaying the result screen information using the second display area and marking sample result information corresponding to the target sample using the mark information.
10. The method of claim 1, characterized in that generating mark information corresponding to the target sample in the sub-exhibition content includes generating one or more combinations selected from shape data, color data, and character data corresponding to the target sample.
11. an acquisition module configured to acquire currently running step data of the target sample when receiving an experiment status inquiry command of the target sample; a data module configured to determine experimental state data for the target sample based on preset experimental step data and the currently running step data; a first display module configured to display the experiment status data using a first display area; and a second display module configured to, upon receiving a tracking display command, obtain sub-exhibition content corresponding to the experimental state data, generate mark information corresponding to the target sample in the sub-exhibition content, and display the sub-exhibition content and the mark information using a second display area.
12. Includes an experimental platform and a control platform. the experimentation platform is in communication with the control platform; 11. A biological sample analysis system, characterized in that the control platform comprises an experiment control module and an information processing module for carrying out the method of any one of claims 1 to 10.
13. a detection device configured to detect the test sample liquid and obtain a sample detection result; The display and a controller; When an experiment status inquiry operation for the target sample is detected, the controller controls the display to display a first display area for displaying the experiment status data for the target sample; When a tracking display inquiry operation of the target sample is detected, the controller obtains sub-exhibition content corresponding to the experimental status data, generates mark information corresponding to the target sample in the sub-exhibition content, and controls the display to display a second display area for displaying the sub-exhibition content corresponding to the experimental status data of the target sample and the mark information.
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