Methods for displaying biological sample experimental conditions, apparatus, and biological sample analysis systems.

JP7900537B2Active Publication Date: 2026-08-04SHENZHEN NEW INDS BIOMEDICAL ENG CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
SHENZHEN NEW INDS BIOMEDICAL ENG CO LTD
Filing Date
2025-01-24
Publication Date
2026-08-04

AI Technical Summary

Benefits of technology

【0008】 本発明の実施例によれば、以下の有益な効果をもたらすことができる。

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Abstract

To provide a method and apparatus for displaying an experimental state of a biological sample, and a system for analyzing a biological sample that can display at least experimental state data of a target sample in real time, and display a display sub-content and mark information corresponding to the experimental state.SOLUTION: A method includes: in a case that an experimental state search instruction of a target sample is received, obtaining currently-executed step data of the target sample; determining experimental state data of the target sample according to preset experimental step data and the currently-executed step data; displaying the experimental state data on a first display area; and in a case that a tracking display instruction is received, obtaining a display sub-content corresponding to the experimental state data, generating mark information corresponding to the target sample in the display sub-content, and displaying the display sub-content and the mark information on a second display area.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] This application relates to the technical field of in vitro diagnosis, and particularly to a method, apparatus, and biological sample analysis system for displaying the experimental state of biological samples.

Background Art

[0002] Most of the existing sample analysis instruments used in the field of in vitro diagnosis, such as biochemical analyzers, immunoassay analyzers, nucleic acid detection analyzers, etc., provide functions such as sample registration and sample result query. To complete one experiment with a sample analysis instrument, multiple steps are required. For example, in a nucleic acid detection analyzer, functions such as nucleic acid extraction, PCR system construction, nucleic acid amplification, and detection are all integrated. To complete one PCR experiment, many experimental processes such as sample transfer, nucleic acid extraction, PCR system construction, and nucleic acid amplification detection must be passed through, and each of these experimental processes may take a large amount of time. Therefore, the time from when a sample is put into the instrument until the result is announced is generally extremely long. When experiments are continuously executed, if there are a large number of samples waiting for experiments, it may take several hours until the experimental results are announced. The process from when a sample is put into the instrument until the result is announced is too long, and the sample processing steps are extremely numerous. Therefore, it is very necessary to query and track the real-time state after the sample is put into the instrument. So far, no better solution has been proposed for the above problems.

Summary of the Invention

[0003] According to the method, apparatus, and biological sample analysis system for displaying the experimental state of biological samples proposed in the embodiments of the present invention, at least the experimental state data of the target sample can be displayed in real time, and further, the sub-display content and mark information corresponding to the experimental state can be displayed.

[0004] In one aspect of the present invention, a method for displaying the experimental status of a biological sample is proposed, which includes the steps of: receiving an experimental status inquiry command for a 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 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] In one aspect of the present invention, a display device for the experimental status of a biological sample is proposed, which includes: an acquisition module configured to acquire currently running step data of a target sample when it receives 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, 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 when it receives a tracking display command.

[0006] In another aspect of the present invention, a biological sample analysis system is proposed, which includes an experimental platform and a control platform, wherein the experimental platform is communicated with the control platform, and the control platform includes an experimental control module and an information processing module for performing the method described above.

[0007] In another aspect of the present application, a biological sample analysis system is proposed, which includes a detection device configured to detect a sample solution 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 a target sample when an experimental status inquiry operation for the target sample is detected, and controls the display to display a second display area for displaying the sub-display content corresponding to the experimental status data and the mark information in the sub-display content when a tracking display inquiry operation for the target sample is detected.

[0008] According to embodiments of the present invention, the following beneficial effects can be obtained.

[0009] In an embodiment of the present invention, when a command to inquire about the experimental status of a target sample is received, the currently executing step data of the target sample is acquired; the experimental status data of the target sample is determined based on the preset experimental step data and the currently executing step data; the experimental status data is displayed using the first display area; when a tracking display command is received, sub-display content corresponding to the experimental status data is acquired, mark information corresponding to the target sample in the sub-display content is generated, and the sub-display content and the mark information are displayed using the second display area. According to the present invention, the experimental status of a target sample can be displayed in real time or tracked, providing convenience for inquiries about the experimental status of biological samples.

[0010] Details of one or more embodiments of the present invention are shown in the following drawings and description so as to be more concise and easier to understand than other features, purposes, and advantages of the present invention. [Brief explanation of the drawing]

[0011] To provide a clearer description of the embodiments of the present invention or the technical means of 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 relate only to some embodiments of the present invention, and those skilled in the art can derive other embodiments from these drawings without any creative work. [Figure 1] This is a flowchart of a method for displaying the experimental state of biological samples according to an embodiment of the present invention; [Figure 2] This flowchart outlines the querying and tracking of the real-time status of a sample according to an embodiment of the present invention; [Figure 3] This is an overall diagram of a biological sample analysis system according to an embodiment of the present invention; [Figure 4] This is a schematic diagram of the configuration of an electronic device according to an embodiment of the present invention; [Figure 5] This is a screen diagram for real-time status inquiry of a sample according to an embodiment of the present invention; [Figure 6] This is a screen diagram 1 for a sample tracking display according to an embodiment of the present invention; [Figure 7] This is a screen diagram 2 for a sample tracking display according to an embodiment of the present invention; [Figure 8] This is a screen diagram 3 for a sample tracking display according to an embodiment of the present invention. [Modes for carrying out the invention]

[0012] The embodiments of the present invention will now be described in more detail with reference to the drawings. While the drawings show several embodiments of the present invention, it is 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. Rather, these embodiments are provided to allow for a clearer and more complete understanding of the present invention. It is important to note that the drawings and embodiments of the present invention are illustrative only and do not limit the scope of protection of the present invention.

[0013] In real-world applications, hospitals and doctors have strict requirements and control over the timing of patient sample result announcements. They need to know how long it will take for sample results to be released, as well as the current stage of processing for each sample. This can help them decide whether to adjust the experimental sequence or change instruments based on the current experimental stage of the sample. Therefore, it is essential to provide instrument software with a system for querying and tracking the real-time status of samples. Currently, most commercially available biochemical analyzers, immunoassay analyzers, and nucleic acid detection analyzers offer functions such as sample registration and sample result inquiry. However, they do not provide functions for querying and tracking the real-time status of samples during the experimental process after they have been loaded into the instrument.

[0014] Based on the above, the present invention proposes a method, apparatus, and biological sample analysis system for displaying the experimental state of a biological sample, which enable real-time inquiry and tracking of the experimental state of the biological sample. In the present invention, a real-time inquiry screen for the real-time state of a sample is designed for inquiry of the real-time state of the sample and estimated surplus time. The sample is displayed and tracked by drawing a sample registration screen, a results screen, and a diagram of key components corresponding to the mechanical structure of the equipment. Furthermore, by drawing a diagram of key components corresponding to the mechanical structure of the equipment, it is possible to further track which mechanical component is currently processing the sample and to track the post-processing position of the sample in real time.

[0015] In embodiments of the present invention, a method for displaying the experimental state of biological samples is proposed. This method may be performed using nucleic acid detection and analysis equipment, or other sample analysis equipment in the field of in vitro diagnostics, such as biochemical analysis equipment and immunoassay equipment. Figure 1 is a flowchart of the method for displaying the experimental state of biological samples according to embodiments of the present invention. The steps of the method according to Figure 1 will be described below.

[0016] Step S101: When a command to inquire about the experimental status of the target sample is received, the currently executing step data of the target sample is obtained.

[0017] In embodiments of the present invention, biological samples include, but are not limited to, samples, quality control samples, and control samples. Here, a quality control sample is a standardized substance used to calibrate the performance of an instrument, verify the accuracy of a measurement method, and monitor the stability of experimental results. A quality control sample typically contains substrate components in a known concentration of the test substance or biomimetic sample. A control sample is a standardized substance used to calibrate a laboratory detection device and determine the accuracy of a measurement system. A sample refers to a primary substance obtained from a living organism (including humans, animals, plants, and microorganisms) for scientific research or diagnostic purposes. A target sample is one or more specified biological samples. For example, it may be a urine sample from a person.

[0018] In particular, it should be noted that common types of biological samples 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 tissue sections (skin, muscle, fat, nerves, etc.), surgically excised 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 including DNA (DeoxyriboNucleic Acid) and RNA (Ribonucleic Acid)); and other biological samples such as hair, nails, teeth, feces, and breath.

[0019] The experimental status inquiry command is for inquiring about the experimental stage where the biological sample is located. The experimental status inquiry command can be issued by the user in the form of human-computer interaction. When receiving the experimental status inquiry command for the target sample, obtain the currently executing step data of the target sample. Here, the currently executing step data is the data fed back from the device performing the biological sample experiment and is used to describe the execution status of the current step. For example, the currently executing step data can indicate that the lid-opening operation is in progress. Specifically, every time an experimental step is executed by the device, the fed-back data is stored. When receiving the experimental status inquiry command for the target sample, from the stored data, obtain the data fed back from the latest executed experimental step corresponding to the target sample to obtain the currently executing step data; also, the currently executing step data can be obtained by directly acquiring the data fed back from the latest executed experimental step by the device. In this step, every time an experimental status inquiry command for the target sample is received, the acquisition operation of the currently executing step data is activated to provide data support for displaying the experimental status of the biological sample in real time.

[0020] Step S102: Based on the preset experimental step data and the currently executing step data, determine the experimental status data of the target sample.

[0021] In the embodiments of the present invention, the preset experimental step data is for describing the experimental steps included in different experimental states and can be set according to actual needs, and is not specifically limited in the embodiments of the present invention. After determining the currently executing step data, by inquiring about the preset experimental step data, the data of the experimental state to which the currently executing step data belongs, that is, the experimental status data of the target sample, can be determined. Here, the experimental status data is for describing the current progress of the experiment.

[0022] Specifically, the currently executing step data is for describing experimental steps by means of code or other predetermined forms of data, and generally includes one or more sets of communication commands between the controller and the experimenter. Each set of communication commands includes both a request and a response. Generally, the controller issues a request command to request the execution of a specific mechanical movement. The experimenter receives the request command, achieves the specific mechanical movement based on the content of the request command, and then returns a response command to the controller. The experimental state data is for describing the experimental state in words and can be presented to the user by a display device. Therefore, in this step, based on the preset experimental step data, the interaction data between devices, that is, the currently executing step data, can be converted into data that can be understood by humans, that is, the experimental state data.

[0023] Step S103: Display the experimental state data using the first display area.

[0024] In an embodiment of the present invention, the first display area may be a complete display screen or a specified area in the display screen. By displaying the experimental state data using the first display area, the user can timely obtain the experimental state data.

[0025] Step S104: When a tracking display command is received, obtain the 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 the second display area.

[0026] In an embodiment of the present invention, the tracking display command is for further querying the sub-display content corresponding to the experimental state data. The sub-display content is for describing detailed information of each biological sample in the experimental state. Therefore, with the tracking display command, the user can further understand the specific situation of the current experimental state.

[0027] One point I would like to explain in particular is that users can issue tracking display orders from the first display area. For example, the first display area displays a tracking display button, and users can issue a tracking display order by clicking this button.

[0028] The marking information is used to mark the location of the target sample within the sub-exhibition content. For example, the marking information can mark the specific location of a sample within 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 the actual needs. For example, in one possible embodiment, generating marking information corresponding to the target sample within 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, the shape data includes, but is not limited to, triangles, circles, underlines, curves, and pentagonal stars; the color data includes, but is not limited to, red, orange, and bold text; and the text data can be selected according to the actual needs.

[0029] For example, in embodiments of the present invention, when marking a sample, a red five-pointed star may be used, or any other visual effect on the software screen may be used, such as background color, other shapes / icons, or bold font. However, the core real-time sample status inquiry function and sample transport tracking function remain unchanged.

[0030] The second exhibition area may be a separate, complete display screen different from the first exhibition area, or it may be a different designated area within the same display screen as the first exhibition area.

[0031] In the embodiments of the present invention, by displaying the sub-exhibit content and the mark information using the second exhibition area, users can easily understand the experimental status 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, the currently executing step data of the target sample is acquired; the experimental status data of the target sample is determined based on the preset experimental step data and the currently executing step data; the experimental status data is displayed using the first display area; when a tracking display command is received, sub-display content corresponding to the experimental status data is acquired, mark information corresponding to the target sample in the sub-display content is generated, and the sub-display content and the mark information are displayed using the second display area. According to the present invention, the experimental status of a target sample can be displayed in real time or tracked, providing convenience for inquiries 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 state data, and the step of determining the experimental state data of the target sample based on the preset experimental step data and the currently running step data includes determining the experimental state data corresponding to the currently running step data based on the correspondence, wherein the experimental state data includes pre-experiment, during experiment, and post-experiment, wherein the pre-experiment state includes at least one state selected from registered and applied, the during experiment state includes at least one state selected from lid open, sample addition, reagent addition, reaction, and detection, and the post-experiment state includes at least one state selected from results published and reviewed, and the experimental state data corresponding to the currently running step data is set as the experimental state data of the target sample.

[0034] In this possible embodiment, the pre-set experimental step data is for determining the experimental steps required to be performed in a biological sample experiment, and these experimental steps can be executed sequentially by the equipment performing the biological sample experiment. The data relating to the experimental step being executed is referred to as the currently executing step data. The pre-set experimental step data includes data on the experimental state to which each experimental step belongs, while the currently executing step data is related data for a particular experimental step; in other words, the pre-set experimental step data includes the correspondence between the currently executing step data and the experimental state data.

[0035] After obtaining the currently executing step data, the correspondence between the currently executing step data and the experimental state data can be checked using pre-configured experimental step data, thereby obtaining the experimental state data corresponding to the currently executing step data.

[0036] To allow users to easily understand the current experimental stage, the experimental status data shall include pre-experiment, during-experiment, and post-experiment states. 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. To allow users to further understand the specific details of the experimental status, pre-experiment states shall include at least one state selected from registered and submitted; during-experiment states shall include at least one state selected from lid open, sample addition, reagent addition, reaction in progress, and detection; and post-experiment states shall include at least one state selected from results published and reviewed.

[0037] In particular, the pre-experiment stage includes at least specific states such as registered or applied for, where applied for means the item application to the LIS (Laboratory Information System) system has been completed. The experiment stage includes at least specific states such as lid open, sample addition, reagent addition, reaction, or detection, and the post-experiment stage includes at least specific states such as results published or reviewed. Specifically, the specific states of each experimental stage can be determined according to actual needs, and the embodiments of this invention are not specifically limited to this; for example, the experiment stage may include specific states such as extraction.

[0038] By displaying the experimental status data corresponding to the currently executing step data to the user as the experimental status data for the target sample, the user can understand the current progress of the experiment.

[0039] In one possible embodiment, the experimental status data is "in progress," and the method further includes: determining a predetermined total experimental time for the target sample based on predetermined experimental step data; determining the completed experimental time for the target sample based on currently running step data; calculating the difference between the predetermined total experimental time and the completed experimental time to obtain surplus experimental time data, and using the surplus experimental time data as the experimental status data for the target sample.

[0040] In this possible embodiment, if the experimental status data indicates that an experiment is in progress, the pre-set total experimental time for the target sample can be determined based on pre-set experimental step data so that the user can easily understand the surplus experimental time. The pre-set experimental step data includes the time required for each experimental step, and the pre-set total experimental time for the target sample can be obtained by summing the times required for each step during the experiment. The currently running step can be determined based on the currently running step data, and the completed experimental time can be obtained by summing the times required for each step prior to the currently running step. In other words, the completed experimental time for the target sample can be determined based on the currently running step data.

[0041] After obtaining the pre-set total experiment time and the completed experiment time, the difference between the pre-set total experiment time and the completed experiment time is calculated to obtain surplus experiment time data, and this surplus experiment time data is used as the experimental status data for the target sample.

[0042] Referring to the screen diagram for real-time status inquiry of a sample shown in Figure 5, the sample number "2356564556466" in the diagram is used to determine the target sample. The user sends a command to inquire about the experimental status of the target sample by entering this sample number. After determining the experimental status data of the target sample (displayed as "Extracting" in the diagram), the experimental status data is displayed using the screen, and this experimental status data also includes surplus experimental time data, i.e., estimated surplus time.

[0043] In particular, I want to explain that in some cases, there is no jump / sample tracking function, only real-time sample status inquiry and estimated surplus time, and even worse, there is no estimated surplus time, only real-time sample status inquiry.

[0044] In one possible embodiment, the preset experimental step data includes step execution time data, the experimental status data is "experiment in progress," and the method further includes determining a waiting step based on the currently executing step data, determining the execution time of the waiting step based on the preset experimental step data, obtaining surplus experimental time data by summing the execution times of the waiting steps, and using the surplus experimental time data as the experimental status data for the target sample.

[0045] In this possible embodiment, the pre-set experimental step data includes the time required for each experimental step. If the experimental status data indicates that an experiment is in progress, in order to allow the user to easily understand the surplus experimental time, the waiting steps are determined based on the currently running step data, the execution time of the waiting steps is determined based on the pre-set experimental step data, the execution times of the waiting steps are totaled to obtain surplus experimental time data, and the surplus experimental time data is used as the experimental status data for the target sample.

[0046] In one possible embodiment, the experimental state data is pre-experiment, and obtaining sub-exhibition content corresponding to the experimental state data includes obtaining registration screen information corresponding to the currently executing step data, the registration screen information includes sample storage location information for the biological sample experiment, the sample storage location information includes sample rack information and sample rack location information, and displaying the sub-exhibition content and mark information using a second exhibition area includes displaying the registration screen information using the second exhibition area and marking the sample rack information and sample rack location information corresponding to the target sample using the mark information.

[0047] In this possible embodiment, the correlation data of the screen displayed when registering experimental data for a 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 pre-experiment, the registration screen information corresponding to the currently running step data is obtained, and this 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 contained when a sample is loaded into a sample analysis instrument.

[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 tracking display content, and referring to the screen for sample tracking display shown in Figure 6, Figure 1 shows that the sample storage location information includes quality control room information and sample room information, where the quality control room includes sample racks number 1 and number 2, and the sample room includes sample racks number 3 through 11, with sample rack number 6 marked with a star-shaped mark. In other words, sample rack number 6 is the sample rack where the target sample is located.

[0049] On the right side of Figure 6, sample rack location information, including specific positions 6-1 to 6-16, is displayed. The first sample rack position, i.e., 6-1, is marked with a star-shaped symbol, and this position is the location of the sample rack where the target sample is located.

[0050] In particular, it should be noted that the registration screen information may include data such as sample type, test tube specifications, Class 2 sample number, and LIS (Laboratory Information System) application status. The content of the data in the registration screen information can be determined according to actual needs, and the embodiments of the present invention are not specifically limited to this.

[0051] By displaying the registration screen information in the second exhibition area and marking the sample rack information and sample rack position information corresponding to the target sample using the mark information, users can quickly understand the processing progress of the target sample before the experiment.

[0052] In one possible embodiment, the experimental state data is "in progress," and acquiring sub-exhibition content corresponding to the experimental state data includes acquiring part drawing information corresponding to a biological sample experiment, the part drawing information includes image information of parts for performing the biological sample experiment, generating mark information corresponding to the target sample in the sub-exhibition content includes generating mark information of the image information of the currently located part of the target sample in the part drawing information, and displaying the sub-exhibition content and the mark information using a second exhibition area includes displaying the part drawing information using the second exhibition area and marking the position of the part corresponding to the target sample using the mark information.

[0053] In this possible embodiment, if the experimental status data indicates that an experiment is in progress, component diagram information corresponding to the biological sample experiment is acquired, and this component diagram information is used as sub-display content corresponding to the experimental status data. The component diagram information includes image information of the components necessary to perform the biological sample experiment. It should be particularly noted that the component diagram is drawn based on the actual mechanical component structure of the sample analysis instrument, and several important components in the diagram (components through which the sample is transported) are permitted to have their content updated and marked in real time by the software. In short, it is a layout diagram of mechanical components with partially changeable display content.

[0054] By generating mark information for the image information of the part where the target sample is currently located in the part drawing information, displaying the part drawing information using the second display area, and marking the position of the part corresponding to the target sample using the mark information, the position of the part where the target sample is located can be highlighted, allowing the user to intuitively understand the transfer status of the biological sample in the mechanical part.

[0055] Referring to the screen diagram 2 for the sample tracking display shown in Figure 7, shapes with different sizes and different grayscales represent different parts. In the diagram, the location of the part where the target sample is located is marked with a star-shaped mark, and if a separatory sample of the target sample exists, the location of the part where each separatory sample is located is similarly marked with a star.

[0056] Of particular note is that in the figure, there are black vertical lines in the lower right corner of several rectangular positions, and when these positions are clicked with the mouse, experimental information such as the experimental batch, experimental lot number, and experimental item will be displayed. When a sample is transferred between parts, the rectangular positions with the black vertical lines in the lower right corner will display a visual effect such as being enclosed in a dashed frame, thereby allowing the user to easily understand the transfer status of the sample between parts. In one possible embodiment, displaying the part drawing information using the second display area further includes displaying the name information of the part corresponding to the part detail display command and the experimental information corresponding to the target sample when a part detail display command is received.

[0057] In this possible embodiment, detail display commands are for displaying further details of a 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. Detail display commands can be issued by the user, and the specific method of issuance can be set according to the actual needs. For example, if the second display area is a touchscreen, the user can issue a 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 a 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 time, or by selecting a part in voice format and issuing a detail display command.

[0058] In some cases, when the same sample is placed in an instrument for detection, it may be necessary to detect multiple test subjects. In such cases, the sample may be separated and subjected to different processing with different experimental consumables. In this case, different separatory liquids from the same sample may be simultaneously transferred between multiple machine parts in the part drawing. Therefore, when tracking the current transfer location of a sample in the part drawing, there may be multiple marks, and these multiple marks indicate the transfer status of different separatory liquids from the sample. Moreover, these multiple marks may be the same or different, and are used to track the transfer status of each different separatory liquid. Based on this, in one possible embodiment, the target sample includes multiple separatory samples, and generating mark information for the image information of the part where the target sample is currently located in the part drawing information includes generating mark information for the image information of the part where each of the separatory samples is currently located, and marking the position of the part corresponding to the target sample using the mark information includes marking the position of the part corresponding to the separatory sample using the mark information of the separatory sample.

[0059] In this possible embodiment, during the process of processing a biological sample, it may be necessary to separate it into different components by physical or chemical means, and each such component is called a separatory sample. Multiple separatory samples can be obtained from the target sample. Therefore, in order for the user to easily understand the experimental state of each separatory sample, when generating mark information for the image information of the part where the target sample is currently located in the part diagram information, mark information for the image information of the part where the separatory sample is currently located is also generated, and further, the position of the part corresponding to the separatory sample is marked using the mark information of the separatory sample, thereby highlighting the transfer status of each separatory sample within the part.

[0060] In one possible embodiment, the experimental status data is post-experiment, and obtaining the sub-exhibition content corresponding to the experimental status data includes obtaining result screen information corresponding to the currently executing step data, the result screen information includes sample result information for a biological sample experiment, the sample result information includes basic sample information and subject result information, and displaying the sub-exhibition content and the mark information using the second exhibition area includes displaying the result screen information using the second exhibition 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 experimental results for a 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 this 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 experimental results after an experiment, and may be, for example, a screen for displaying the sample detection results of a sample analysis instrument. On this screen, the user can inquire about the detection result information for some / all of the tested sample.

[0062] The results screen information includes sample result information for biological sample experiments, and this sample result information includes basic sample information and test subject result information. When this technical means is specifically implemented, the results screen information is used as the tracking display content, and referring to the screen for sample tracking display shown in Figure 8 (Figure 3), the basic sample information displayed in the figure includes experimental items, experimental status, experimental marks and / or experimental batch ID (Identity, identity mark), and the test subject result information displayed in the figure includes the sample number, attributes, overall results, test subject, and detection results corresponding to the test subject.

[0063] In particular, it should be noted that the results screen information may also include data such as reaction curves and / or temperature curves, and the content of the data in the results screen information can be determined according to actual needs. The embodiments of the present invention are not specifically limited to this.

[0064] By displaying the results screen information in the second exhibition area and marking the sample result information corresponding to the target sample using the mark information, users can understand the processing progress of the target sample after the experiment in a timely manner. For example, in Figure 8, the experimental results of the sample with sample number "2356564556466" are marked with a star-shaped mark.

[0065] The implementation of this method will be explained below using specific examples.

[0066] This method can be implemented by a biological sample analysis system. In an embodiment of the present invention, Figure 3 shows an overall diagram of a biological sample analysis system, which includes an experimental platform and a control platform. The experimental platform includes one or more mechanical components, which are used to achieve specific experimental operations, and the components cooperate with each other to achieve a sample detection experiment, and the sample or sample extract is transferred between these mechanical components. The control platform includes an experimental control module and an information processing module. The experimental control module controls the movement of each mechanical component in the experimental platform so that the experimental process can be realized by generating and transmitting control commands to the experimental platform. The information processing module manages sample registration information and sample result information within the instrument and draws / displays a diagram of key components corresponding to the mechanical structure of the instrument. For convenience of description, the diagram of key components corresponding to the mechanical structure of the instrument is abbreviated as a component diagram.

[0067] Data can be interacted 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, as well as serial connections, USB (Universal Serial Bus) connections, and wireless network connections.

[0068] Real-time status inquiry and tracking of samples can be achieved using the sample registration information, sample result information, and part drawings in the information processing module. The specific method is as follows.

[0069] 1) A real-time status inquiry screen for samples will be set up, and when a user enters the sample number to be inquired about on this screen, the inquiry operation will be executed.

[0070] 2) Based on the sample number entered by the user, the system searches for sample registration information, sample result information, and part drawings to obtain the real-time status of the sample, estimated surplus time, and the current machine location of the sample.

[0071] 3) The real-time sample status inquiry screen displays text information about the current real-time status of the sample (e.g., registered, submitted, sample being added, reagent being added, reaction in progress, detection in progress, results published, etc.) and estimated remaining time. In addition, a jump function is provided, allowing users to directly jump to the sample registration screen / results screen / parts drawing screen to inquire about the current status and location information of the sample.

[0072] 4) The specific screen to jump to must be determined according to the current state of the sample. Generally, before sample processing begins, it belongs to the pre-experiment stage, so the user jumps to the sample registration screen; from the start of sample processing until the results are published, it belongs to the "in-experiment" stage, so the user jumps to the parts diagram screen; and after the experiment is completed, it belongs to the "post-experiment" stage, so the user jumps to the results screen. Therefore, the real-time status of the sample is also broadly divided into three categories: pre-experiment, in-experiment, and post-experiment. Each broad category includes one or more subdivided states. For example, pre-experiment is classified into registered, submitted items, etc., in-experiment is classified into lid opening, sample addition, reagent addition, reaction in progress, detection in progress, etc., and post-experiment is classified into results published, reviewed, etc.

[0073] 5) After jumping to a specific screen, the location / record of the searched sample is highlighted by adding a mark. In particular, if the sample is in experimentation, the current transport location of the searched sample is highlighted by adding a mark to the location of the relevant part in the parts diagram until the detection experiment on the sample is completed, and this mark information is transferred and displayed to each part along with the sample as the experimental process progresses. A flowchart for real-time status inquiry and tracking of a specific sample is shown in Figure 2.

[0074] Specific embodiments 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 real-time sample status inquiry screen is designed. Such a screen includes a sample number input box (for example, the sample number input box shown), an inquiry button (for example, for inquirying the sample with sample number 2356564556466 shown), text information of the sample's current status (for example, the current status of the sample shown is "Extracting"), the estimated remaining time for the sample (for example, the estimated remaining time for the sample shown is "00:26:11"), a jump / sample tracking button (for jumping on the screen to further inquire about the sample rack location / part location / result record where the sample is located), and a return button (for ending the sample status inquiry process).

[0075] If the sample is in the "pre-experiment" stage, clicking the Jump / Sample Tracking button will automatically navigate the software to the sample registration screen, where the location of the corresponding sample will be marked. As shown in Figure 6, the sample rack and location where the sample is located are marked with a red five-pointed star.

[0076] When the sample is in the "Experimental" stage, clicking the Jump / Sample Tracking button automatically navigates the software to the parts diagram screen, and a mark is added to the part the sample is currently being transported to. As shown in Figure 7, the machine part where the sample is located is marked with a red five-pointed star, and this mark automatically appears on the next machine part accompanying the sample.

[0077] When the sample is in the "post-experiment" stage, clicking the Jump / Sample Tracking button automatically navigates the software to the results screen, where it automatically searches for and marks the sample's results record. As shown in Figure 8, the sample results record is marked with a red five-pointed star.

[0078] Based on the method described above as proposed in the embodiments 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 a target sample when it receives an experimental status inquiry command for a 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, 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 when it receives a tracking display command.

[0079] In one possible embodiment, the preset experimental step data includes a correspondence between the currently running step data and the experimental state data, and the step of determining the experimental state data of the target sample based on the preset experimental step data and the currently running step data includes determining the experimental state data corresponding to the currently running step data based on the correspondence, wherein the experimental state data includes pre-experiment, during experiment, and post-experiment, wherein the pre-experiment state includes at least one state selected from registered and applied, the during experiment state includes at least one state selected from lid open, sample addition, reagent addition, reaction, and detection, and the post-experiment state includes at least one state selected from results published and reviewed, and the experimental state data corresponding to the currently running step data is set as the experimental state data of the target sample.

[0080] In one possible embodiment, the experimental status data is "in progress," and the method further includes: determining a predetermined total experimental time for the target sample based on predetermined experimental step data; determining the completed experimental time for the target sample based on currently running step data; calculating the difference between the predetermined total experimental time and the completed experimental time to obtain surplus experimental time data, and using the surplus experimental time data as the experimental status data for the target sample.

[0081] In one possible embodiment, the preset experimental step data includes step execution time data, the experimental status data is "experiment in progress," and the method further includes determining a waiting step based on the currently executing step data, determining the execution time of the waiting step based on the preset experimental step data, obtaining surplus experimental time data by summing the execution times of the waiting steps, and using the surplus experimental time data as the experimental status data for the target sample.

[0082] In one possible embodiment, the experimental status data is pre-experiment, and obtaining the sub-exhibition content corresponding to the experimental status data includes obtaining registration screen information corresponding to the currently executing step data, the registration screen information includes sample storage location information for the biological sample experiment, and the sample storage location information includes, but is not limited to, sample rack information and sample rack location information, and 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 the sample rack information and sample rack location information corresponding to the target sample using the mark information.

[0083] In one possible embodiment, the experimental status data is "in progress," and acquiring sub-exhibition content corresponding to the experimental status data includes acquiring part drawing information corresponding to the biological sample experiment, the part drawing information includes image information of parts for performing the biological sample experiment, generating mark information corresponding to the target sample in the sub-exhibition content includes generating mark information of the image information of the currently located part of the target sample in the part drawing information, and displaying the sub-exhibition content and the mark information using a second exhibition area includes displaying the part drawing information using the second exhibition 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 drawing information using a second display area further includes, when a part detail display command is received, displaying the name information of the part 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 separatory samples, and generating mark information for the image information of the currently located part of the target sample in the part drawing information includes generating mark information for the image information of the currently located part of each of the separatory samples, and marking the position of the part corresponding to the target sample using the mark information includes marking the position of the part corresponding to each of the separatory samples using the mark information of the separatory samples.

[0086] In one possible embodiment, the experimental status data is post-experiment, and obtaining the sub-exhibition content corresponding to the experimental status data includes obtaining result screen information corresponding to the currently executing step data, the result screen information includes sample result information for the biological sample experiment, the sample result information includes basic sample information and subject result information, and displaying the sub-exhibition content and the mark information using the second exhibition area includes displaying the result screen information using the second exhibition 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 method described above as proposed in the embodiments of the present invention, a biological sample analysis system is further proposed in the embodiments of the present invention, which includes an experimental platform and a control platform, wherein the experimental platform is communicated with the control platform, and the control platform includes an experimental control module and an information processing module for performing the method described above.

[0089] In embodiments of the present invention, the experimental control module of the control platform can transmit experimental execution step data to the experimental platform, and simultaneously, the information processing module of the control platform records the experimental execution step data. The experimental platform may include multiple instruments for performing biological sample experiments, and the experimental platform receives the experimental execution step data, which can be used to guide the instruments in the experimental platform for performing biological sample experiments to achieve specific mechanical movements. After the mechanical movements are completed, the experimental platform feeds back the execution status of the corresponding experimental step to the experimental control module of the control platform, and the information processing module obtains currently running step data from the experimental control module, which describes the execution status of the current step.

[0090] The experiment control module repeats the process described above, continuously transmitting data for the next experiment execution step, thereby driving the sample experiment forward.

[0091] Based on the methods described above as proposed in the embodiments of the present invention, a biological sample analysis system is further proposed in the embodiments of the present invention, which includes a detection device configured to detect a sample solution 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 a target sample when an experimental status inquiry operation for a target sample is detected, and when a tracking display inquiry operation for a target sample is detected, it obtains sub-display content corresponding to the experimental status data, generates mark information corresponding to the target sample in the sub-display content, and controls the display to display a second display area for displaying the sub-display content and the mark information corresponding to the experimental status data of the target sample.

[0092] In embodiments 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 and obtaining the detection result of the test sample, and specifically may be a biological sample analysis instrument such as a nucleic acid detection analyzer, a biochemical analyzer, or an immunoassay analyzer. 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, i.e., a display. The display device is for providing a human-computer interaction screen and may be located in the same device as the components of the biological sample analysis instrument, or it may be located outside the device where the components of the biological sample analysis instrument are located and communicated with said components.

[0094] The interactive screen provided by the display device can show information such as parameter values ​​for each detection indicator, device status, consumable status, and sample detection status. Users can input relevant operations on the human-computer interaction screen to issue commands to the biological sample analysis system, including 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 state data, and the step of determining the experimental state data of the target sample based on the preset experimental step data and the currently running step data includes determining the experimental state data corresponding to the currently running step data based on the correspondence, wherein the experimental state data includes pre-experiment, during experiment, and post-experiment, wherein the pre-experiment state includes at least one state selected from registered and applied, the during experiment state includes at least one state selected from lid open, sample addition, reagent addition, reaction, and detection, and the post-experiment state includes at least one state selected from results published and reviewed, and the experimental state data corresponding to the currently running step data is set as the experimental state data of the target sample.

[0096] In one possible embodiment, the experimental status data is "in progress," and the method further includes: determining a predetermined total experimental time for the target sample based on predetermined experimental step data; determining the completed experimental time for the target sample based on currently running step data; calculating the difference between the predetermined total experimental time and the completed experimental time to obtain surplus experimental time data, and using the surplus experimental time data as the experimental status data for the target sample.

[0097] In one possible embodiment, the preset experimental step data includes step execution time data, the experimental status data is "experiment in progress," and the method further includes determining a waiting step based on the currently executing step data, determining the execution time of the waiting step based on the preset experimental step data, obtaining surplus experimental time data by summing the execution times of the waiting steps, and using the surplus experimental time data as the experimental status data for the target sample.

[0098] In one possible embodiment, the experimental status data is pre-experiment, and obtaining the sub-exhibition content corresponding to the experimental status data includes obtaining registration screen information corresponding to the currently executing step data, the registration screen information includes sample storage location information for the biological sample experiment, and the sample storage location information includes, but is not limited to, sample rack information and sample rack location information, and 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 the sample rack information and sample rack location information corresponding to the target sample using the mark information.

[0099] In one possible embodiment, the experimental status data is "in progress," and acquiring sub-exhibition content corresponding to the experimental status data includes acquiring part drawing information corresponding to the biological sample experiment, the part drawing information includes image information of parts for performing the biological sample experiment, generating mark information corresponding to the target sample in the sub-exhibition content includes generating mark information of the image information of the currently located part of the target sample in the part drawing information, and displaying the sub-exhibition content and the mark information using a second exhibition area includes displaying the part drawing information using the second exhibition 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 drawing information using a second display area further includes, when a part detail display command is received, displaying the name information of the part 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 separatory samples, and generating mark information for the image information of the currently located part of the target sample in the part drawing information includes generating mark information for the image information of the currently located part of each of the separatory samples, and marking the position of the part corresponding to the target sample using the mark information includes marking the position of the part corresponding to each of the separatory samples using the mark information of the separatory samples.

[0102] In one possible embodiment, the experimental status data is post-experiment, and obtaining the sub-exhibition content corresponding to the experimental status data includes obtaining result screen information corresponding to the currently executing step data, the result screen information includes sample result information for a biological sample experiment, the sample result information includes basic sample information and subject result information, and displaying the sub-exhibition content and the mark information using the second exhibition area includes displaying the result screen information using the second exhibition area and marking 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 which includes at least one processor and a memory that is communicated with the at least one processor. The memory stores a computer program that can be executed on the at least one processor, and when the computer program is executed on the at least one processor, the method according to an embodiment of the present invention is executed on the electronic device.

[0105] In embodiments of the present invention, a non-temporary computer-readable medium on which a computer program is stored is further provided, and when the computer program is executed on the computer's processor, the method according to the embodiment of the present invention is executed on the computer.

[0106] In an embodiment of the present invention, a computer program product is provided which includes a computer program, and when the computer program is executed on the processor of a computer, the method according to the embodiment of the present invention is executed on the computer.

[0107] Referring to Figure 4, a block diagram of a configuration of an electronic device that can be a server or client according to an embodiment of the present invention is described, and such an electronic device is an example of a hardware device applicable to each aspect of the present invention. The electronic device represents various forms of digital electronic computer devices, such as laptop computers, desktop computers, workbenches, personal digital assistants, servers, blade servers, mainframe computers, 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 shown herein, their connections and relationships, and their functions are for illustrative purposes only and are not intended to limit the implementation of the present invention as described and / or required herein.

[0108] As shown in Figure 4, the electronic device includes a computing unit 401 that can perform various appropriate operations and processes according to a computer program stored in a read-only memory (ROM) 402 or a computer program 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, ROM 402, and 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 in an 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 numerical 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, and includes, but is not limited to, displays, speakers, video / audio output terminals, vibrators, and / or printers. The storage unit 408 includes, but is not limited to, magnetic disks and optical disks. The communication unit 409 allows for information / data exchange between the electronic device and other devices via computer networks such as the Internet and / or various telecommunication networks, and includes, but is not limited to, modems, network cards, infrared communication devices, wireless communication transceivers, and / or chipsets such as Bluetooth devices, WiFi devices, WiMAX devices, cellular communication devices, and / or similar devices.

[0110] The computing unit 401 is a variety of general-purpose and / or dedicated processing components having processing and computing 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 each of the methods and processes described above. For example, in some embodiments, the method embodiments of the present invention may be embodied as a computer program tangibly contained in a machine-readable medium such as a storage unit 408. In some embodiments, part or all of the computer program may be loaded and / or installed into an electronic device via a ROM 402 and / or a communication unit 409. In some embodiments, the computing unit 401 may be configured to perform the methods described above by any other suitable method (e.g., via firmware).

[0111] Computer programs for carrying out the 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, application-specific computer, or other programmable data processing device, so that when the computer program is executed on the processor or controller, the functions / operations specified in the flowchart and / or block diagram are performed. The computer program may run in whole or in part on the device, or as a standalone 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 that contains or stores a program used by or in combination 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. Machine-readable signal mediums include, but are not limited to, electronic, magnetic, optical, electromagnetic, infrared, or semiconductor systems, apparatus, or devices, or any suitable combination of the above. More specific examples of machine-readable storage mediums include electrical connections by one or more wires, portable computer disks, hard disks, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or flash memory), optical fibers, portable compact disk read-only memory (CD-ROM), optical storage devices, magnetic storage devices, or any suitable combination of the above.

[0113] In particular, it should be noted that the term "including" and its variations used in the embodiments of the present invention are open inclusions, meaning "including, but not limited to, ...". The term "based on" means "based at least partially on". The term "one embodiment" means "at least one embodiment"; the term "another embodiment" means "at least one other embodiment". The term "several embodiments" means "at least several embodiments". It should be understood by those skilled in the art that the modifiers "one" and "plural" used to refer to embodiments of the present invention are not restrictive but schematic, and should be understood as "one or more" unless otherwise specified in the context.

[0114] User information (including, but not limited to, user device information and user personal information) and data (including, but not limited to, data for analysis, stored data, and displayed data) relating to 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 the relevant data must be carried out in accordance with the relevant laws, regulations, and standards of the relevant countries and regions, and a corresponding operational portal is provided for the user to choose to allow or deny.

[0115] Each step described in the embodiments of the method provided in the embodiments of the present invention may be performed in a different order and / or in parallel. Furthermore, embodiments of the method may include additional steps and / or steps that are omitted. The scope of protection of the present invention is not limited in this respect.

[0116] The term “Example” in this specification means that any specific features, configurations, or characteristics described in relation to an Example may be included in at least one example of the present invention. The fact that the term appears in various parts of the specification does not necessarily mean the same Example, nor does it mean that it is exclusive, independent, or selectable from other Examples. Each Example in this specification is described in relation to others, and the same or similar parts of each Example are referenced to one another. Examples of apparatus, devices, and systems are described in particular briefly because they are fundamentally similar to the Examples of Methods. Their relevance can be found in the description of the Examples of Methods.

[0117] The above-described embodiments illustrate only a few of the present invention, and while the descriptions are specific and detailed, they should not be understood as limiting the scope of the patent. In particular, it should be noted that those skilled in the art can make various further modifications and improvements as long as they do not deviate from the concept of the present invention, and all of these fall within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be in accordance with the attached claims.

Claims

1. Performed using a sample analysis instrument, When a command to inquire about the experimental status of a target sample is received, the step of obtaining the currently executing step data of the target sample, wherein the currently executing step data is for describing the experimental step using data in a predetermined format, A step of determining experimental state data of the target sample based on pre-set experimental step data and the currently running step data, wherein the pre-set experimental step data includes a correspondence between the currently running step data and the experimental state data. The steps include: displaying the experimental state data using the first exhibition area; The process includes the steps of: receiving a tracking display order, 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, wherein the mark information is for marking the position of the target sample in the sub-display content; The step of determining the experimental state data of the target sample based on pre-set experimental step data and the currently running step data is: Based on the aforementioned correspondence, the experimental state data corresponding to the currently executing step data is determined, This includes setting the experimental status data corresponding to the currently executing step data as the experimental status data of the target sample, The aforementioned experimental status data is from the ongoing experiment. Acquiring sub-exhibition content corresponding to the experimental state data includes acquiring component drawing information corresponding to the biological sample experiment, and the component drawing information includes image information of the components for performing the biological sample experiment. Generating mark information corresponding to the target sample in the sub-exhibition content includes generating mark information for the image information of the part where the target sample is currently located in the part drawing information. A method for displaying the experimental state of a biological sample, characterized in that displaying the sub-exhibition content and the mark information using the second exhibition area includes displaying the part drawing information using the second exhibition area and marking the position of the part corresponding to the target sample using the mark information.

2. The method according to Claim 1, characterized in that the experimental state data includes pre-experiment, during experiment, and post-experiment, the pre-experiment state includes at least one state selected from registered and applied for, the during experiment state includes at least one state selected from lid opening, sample addition, reagent addition, reaction in progress and detection, and the post-experiment state includes at least one state selected from results published and reviewed.

3. The aforementioned experimental status data is from the ongoing experiment. The aforementioned method, The predetermined total experimental time for the target sample is determined based on the predetermined experimental step data, The execution time of the target sample is determined based on the currently running step data, The method according to claim 2, further comprising: calculating the difference between the pre-set total experiment time and the completed experiment time to obtain surplus experiment time data; and using the surplus experiment time data as the experimental status data of the target sample.

4. The aforementioned pre-set experimental step data includes step execution time data, and the aforementioned experimental status data is in the middle of the experiment. The aforementioned method, The currently executing step data is used to determine the step that is awaiting execution, The execution time of the execution waiting step is determined based on the aforementioned pre-set experimental step data, The method according to claim 2, further comprising: summing the execution times of the execution waiting steps to obtain surplus experimental time data; and using the surplus experimental time data as experimental state data for the target sample.

5. The aforementioned experimental state data was obtained before the experiment. Acquiring sub-exhibition content corresponding to the experimental status data includes acquiring registration screen information corresponding to the currently executing step data, 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. The method according to 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 the sample rack information and sample rack position information corresponding to the target sample using the mark information.

6. The method according to claim 1, characterized in that, when a part detail display command is received, displaying the part drawing information using the second display area further includes displaying the name information of the part corresponding to the part detail display command and experimental information corresponding to the target sample.

7. The aforementioned sample includes multiple liquid-liquid samples, Generating mark information for the image information of the currently located part of the target sample in the part drawing information includes generating mark information for the image information of the currently located part of the liquid separatory sample, The method according to claim 1, characterized in that marking the position of a component corresponding to the target sample using the mark information includes marking the position of each component corresponding to the separatory sample using the mark information of the separatory sample.

8. The aforementioned experimental state data was obtained after the experiment. Acquiring sub-exhibition content corresponding to the experimental status data includes acquiring result screen information corresponding to the currently executing step data, the result screen information includes sample result information for biological sample experiments, and the sample result information includes basic sample information and subject result information. The method according to the present invention, wherein displaying the sub-exhibition content and the mark information using the second exhibition area includes displaying the result screen information using the second exhibition area and marking the sample result information corresponding to the target sample using the mark information.

9. The method according to 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.

10. An acquisition module configured to acquire currently executing step data of a target sample when it receives an experimental status inquiry command for the target sample, wherein the currently executing step data is for describing the experimental step using data in a predetermined format, A data module configured to determine experimental state data of a target sample based on pre-set experimental step data and currently running step data, wherein the pre-set experimental step data includes a data module that includes the correspondence between the currently running step data and the experimental state data. A first exhibition module configured to display the experimental state data using the first exhibition area, A second display module is configured to receive a tracking display command, acquire sub-display content corresponding to the experimental status 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, wherein the mark information is for marking the position of the target sample in the sub-display content. Determining the experimental status data of the target sample based on pre-set experimental step data and the currently running step data is: Based on the aforementioned correspondence, the experimental state data corresponding to the currently executing step data is determined, This includes setting the experimental status data corresponding to the currently executing step data as the experimental status data of the target sample, The aforementioned experimental status data is from the ongoing experiment. Acquiring sub-exhibition content corresponding to the experimental state data includes acquiring component drawing information corresponding to the biological sample experiment, and the component drawing information includes image information of the components for performing the biological sample experiment. Generating mark information corresponding to the target sample in the sub-exhibition content includes generating mark information for the image information of the part where the target sample is currently located in the part drawing information. Displaying the sub-exhibit content and mark information using the second exhibition area includes displaying the part drawing information using the second exhibition area and marking the position of the part corresponding to the target sample using the mark information, characterized in that it is a display device for the experimental state of a biological sample.

11. Includes experimental platform and control platform, The experimental platform is connected to the control platform via communication, A biological sample analysis system characterized in that the control platform includes an experimental control module and an information processing module for performing the method according to any one of claims 1 to 9.

12. A detection device configured to detect a test sample solution and obtain a sample detection result, The display and Includes the controller, When an operation to inquire about the experimental status of a target sample is detected, the controller controls the display to show a first display area for displaying the experimental status data of the target sample. The experimental status data of the target sample is determined based on pre-set experimental step data and the currently running step data of the target sample, the currently running step data is for describing the experimental step using data in a predetermined format, the pre-set experimental step data includes a correspondence between the currently running step data and the experimental status data, the experimental status data corresponding to the currently running step data is determined based on the correspondence, and the experimental status data corresponding to the currently running step data is set as the experimental status data of the target sample. When a tracking display inquiry operation for the target sample is detected, the controller acquires sub-display content corresponding to the experimental status data, generates mark information corresponding to the target sample in the sub-display content, and controls the display to show a second display area for displaying the sub-display content and the mark information corresponding to the experimental status data of the target sample, wherein the mark information is for marking the position of the target sample in the sub-display content. The aforementioned experimental status data is from the ongoing experiment. Acquiring sub-exhibition content corresponding to the experimental state data includes acquiring component drawing information corresponding to the biological sample experiment, and the component drawing information includes image information of the components for performing the biological sample experiment. Generating mark information corresponding to the target sample in the sub-exhibition content includes generating mark information for the image information of the part where the target sample is currently located in the part drawing information. A biological sample analysis system characterized in that the display of the sub-exhibition content and the mark information using the second exhibition area includes displaying the part drawing information using the second exhibition area and marking the position of the part corresponding to the target sample using the mark information.