Method and device for reducing good shot playback rate, electronic equipment and storage medium

By performing the gun point qualification detection program at the end of the controllable source box, determining and re-energizing the gun points that need to be replayed, the problem of high good gun replay rate caused by poor communication in the construction of complex terrain surface areas is solved, and construction efficiency is improved.

CN120020591APending Publication Date: 2025-05-20CHINA NAT PETROLEUM CORP +1
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Patent Information

Application Number
CN202311550905.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-11-20
Publication Date
2025-05-20

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Abstract

The embodiment of the invention provides a method and device for reducing the good shot playback rate, electronic equipment and a storage medium. The method for reducing the good shot replay rate comprises the following steps: responding to a shot point replay instruction which is received from a seismic data processing equipment end and carries data information of a shot point to be replayed, and according to the data information of the shot point to be replayed, utilizing a shot point qualification detection program of external equipment installed in a vibroseis box body to replay the shot point to be replayed; determining whether the to-be-replayed shot point needs to be replayed or not; and in response to the situation that the shot point to be replayed needs to be replayed, re-exciting the shot point to be replayed by utilizing the vibroseis of the vibroseis box body.
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Description

Technical Field

[0001] The present application relates to the field of seismic acquisition technology for petroleum geophysical exploration, and in particular to a method, device, electronic device and storage medium for reducing the replay rate of good shots. Background Technology

[0002] During construction in complex terrain areas, it is often the case that the instrument cannot stimulate the vibrator to start a vibration due to poor communication between the vibrator and the instrument radio, or the relevant information after the vibrator scan cannot be transmitted back to the instrument (such as Figure 3A and 3B shown). Regardless of the above situation, the instrument cannot determine whether the shot is qualified on site. After the current wiring harness ends, it can only notify the controllable vibrator to return to the shot point to start the vibration again and replay. For earthquakes where the information is not transmitted back to the instrument after the source scan due to poor communication, most of the time it is a valid shot and does not need to be replayed. In the case of complex terrain and limited number of source groups, especially for the efficient acquisition operation of the controllable vibrator, this type of replay greatly increases the consumption of source resources, reduces the normal production time of the source, and reduces the construction efficiency.

[0003] Therefore, how to accurately and timely identify whether the shot point is effective when the communication is poor, so as to reduce the rate of good shot replay, increase the effective working time of the source, and improve the efficiency of acquisition operations, is a technical problem that needs to be solved urgently. SUMMARY OF THE INVENTION

[0004] The present application provides a method, device, electronic device and storage medium for reducing the replay rate of good shots, which are used to accurately and timely identify whether a shot point is effective when communication is poor, so as to reduce the replay rate of good shots, increase the effective working time of the source, and improve the efficiency of acquisition operations.

[0005] One of the embodiments of the present application provides a method for reducing the replay rate of good shots, which is executed at the vibrator box end, and comprises: in response to receiving a shot point replay instruction carrying data information of a shot point to be replayed from a seismic data processing device end, according to the data information of the shot point to be replayed, using a shot point qualification detection program of an external device installed in the vibrator box, determining whether the shot point to be replayed needs to be replayed; in response to the shot point to be replayed needing to be replayed, using the vibrator of the vibrator box to re-excite the shot point to be replayed.

[0006] In some embodiments, the shot point qualified detection program is obtained by the following method, including: generating qualified shot point discrimination criteria based on the data information of the shot points from the vibrator box; and developing the shot point qualified detection program based on the qualified shot point discrimination criteria.

[0007] In some embodiments, determining whether the shot point to be re-shot needs to be re-shot by using the shot point qualification detection program of the external device installed in the vibroseis box according to the data information of the shot point to be re-shot includes: using the shot point qualification detection program to confirm whether the shot point to be re-shot has been fired; in response to the shot point to be re-shot not having been fired, re-firing the shot point to be re-shot; or in response to the shot point to be re-shot having been fired, using the shot point qualification detection program to determine whether the shot point to be re-shot meets the qualified shot point discrimination criteria according to the data information of the shot point to be re-shot; in response to the shot point to be re-shot not meeting the qualified shot point discrimination criteria, re-firing the shot point to be re-shot.

[0008] In some embodiments, the method further includes: in response to the shot point to be re-shot not needing to be re-shot, returning the data information of the shot point to be re-shot to the seismic data processing device end so that the seismic data processing device end can enter the data information of the shot point to be re-shot.

[0009] One embodiment of the present application provides a method for reducing the re-shot rate of good shots. The method is executed at the seismic data processing device end. The method includes: determining the shot points to be re-shot among the shot points collected by the front beam according to the data information of the shot points collected by the front beam; sending a shot point re-shot instruction carrying the data information of the shot points to be re-shot to the vibroseis box corresponding to the shot points to be re-shot so that the vibroseis box can determine whether the shot points to be re-shot need to be re-shot according to the data information of the shot points to be re-shot and re-fire the shot points to be re-shot that need to be re-shot.

[0010] In some embodiments, the method further includes: in response to receiving the data information of the shot points to be re-shot that do not need to be re-shot from the vibroseis box end, entering the data information of the shot points to be re-shot; and determining the shot points exempt from re-shot among the shot points collected by the front beam according to the data information of the shot points to be re-shot.

[0011] One embodiment of the present application provides a device for reducing the re-shot rate of good shots. The device is arranged at the vibroseis box end. The device includes: a determination module, configured to determine whether the shot points to be re-shot need to be re-shot by using the shot point qualification detection program of the external device installed in the vibroseis box according to the data information of the shot points to be re-shot in response to receiving a shot point re-shot instruction carrying the data information of the shot points to be re-shot from the seismic data processing device end; an excitation module, configured to re-fire the shot points to be re-shot by using the vibroseis of the vibroseis box in response to the shot points to be re-shot needing to be re-shot.

[0012] One embodiment of the present application provides a device for reducing the good shot replay rate. The device is arranged at the seismic data processing equipment end and includes: a determination module, configured to determine the to-be-replayed shot points among the shot points collected by the front beam according to the data information of the shot points collected by the front beam; a sending module, configured to send a shot replay instruction carrying the data information of the to-be-replayed shot points to the vibroseis box body corresponding to the to-be-replayed shot points, so that the vibroseis box body determines whether the to-be-replayed shot points need to be replayed according to the data information of the to-be-replayed shot points, and re-excites the to-be-replayed shot points that need to be replayed.

[0013] An embodiment of the present application provides an electronic device, which includes a memory and a processor. The memory stores a computer program, and when the processor runs the program, it executes the method described above.

[0014] An embodiment of the present application provides a storage medium for storing a computer-readable program, which, when run, executes the method described above.

[0015] The above technical solutions provided by the embodiments of the present application have at least the following advantages compared with the prior art:

[0016] In the embodiment provided by the present application, in response to receiving a shot replay instruction carrying the data information of the to-be-replayed shot points from the seismic data processing equipment end, according to the data information of the to-be-replayed shot points, using the shot qualification detection program of the external device installed in the vibroseis box body, it is determined whether the to-be-replayed shot points need to be replayed; in response to the to-be-replayed shot points needing to be replayed, using the vibroseis of the vibroseis box body, the to-be-replayed shot points are re-excited. Thus, it is possible to accurately and timely identify whether the shot points are valid in case of poor communication, so as to reduce the ratio of good shot replay, increase the effective working time of the vibroseis, and improve the acquisition operation efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] The present application will be further described by way of exemplary embodiments, which will be described in detail through the drawings. These embodiments are not restrictive. In these embodiments, the same numbers represent the same structures, where:

[0018] Figure 1 is an exemplary flowchart of a method for reducing the good shot replay rate executed at the vibroseis box body end according to some embodiments of the present application;

[0019] Figure 2 is an exemplary flowchart of a method for reducing the good shot replay rate executed at the seismic data processing equipment end according to some embodiments of the present application;

[0020] Figure 3AIt is an exemplary schematic diagram of a qualified single shot where the vibrator information shown in some embodiments of the present application is not transmitted back to the instrument;

[0021] Figure 3B It is another exemplary schematic diagram of a qualified single shot where the vibrator information shown in some embodiments of the present application is not transmitted back to the instrument;

[0022] Figure 4 It is an exemplary schematic diagram of the qualified shot bin data information shown in some embodiments of the present application;

[0023] Figure 5 It is an exemplary schematic diagram of the data integrity discrimination of the data information of the re-shot point to be re-shot shown in some embodiments of the present application;

[0024] Figure 6 It is an exemplary schematic diagram of a device for reducing the re-shot rate of good shots shown in some embodiments of the present application;

[0025] Figure 7 It is another exemplary schematic diagram of a device for reducing the re-shot rate of good shots shown in some embodiments of the present application;

[0026] Figure 8 It is an exemplary structural schematic diagram of an electronic device shown in some embodiments of the present application. Detailed implementation manners

[0027] To more clearly illustrate the technical solutions of the embodiments of the present application, the accompanying drawings required for the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings in the following description are only some examples or embodiments of the present application. For those of ordinary skill in the art, without creative efforts, the present application can also be applied to other similar scenarios based on these drawings. Unless obvious from the language context or otherwise stated, the same reference numerals in the figures represent the same structure or operation.

[0028] It should be understood that the "system", "device", "unit" and / or "module" used herein is a method for distinguishing different components, elements, parts, portions or assemblies at different levels. However, if other words can achieve the same purpose, the words can be replaced by other expressions.

[0029] As shown in the present application and the claims, unless the context clearly indicates an exception, words such as "a", "an", "one" and / or "the" are not specifically singular and may also include the plural. Generally speaking, the terms "comprising" and "including" only indicate the inclusion of the steps and elements that have been clearly identified, and these steps and elements do not constitute an exclusive list. The method or device may also include other steps or elements.

[0030] In this application, flowcharts are used to illustrate the operations performed by the system according to the embodiments of this application. It should be understood that the operations before or after do not necessarily need to be executed precisely in sequence. On the contrary, the steps can be processed in reverse order or simultaneously. At the same time, other operations can also be added to these processes, or one or more steps can be removed from these processes.

[0031] For ease of understanding, the technical solutions of this application will be introduced below in conjunction with the accompanying drawings and embodiments.

[0032] Figure 1 is an exemplary flowchart of a method for reducing the good shot replay rate executed at the vibroseis cabinet end according to some embodiments of this application. As Figure 1 shown, it includes the following steps:

[0033] Step S110, in response to receiving a shot replay instruction carrying data information of the shot to be replayed from the seismic data processing device end, according to the data information of the shot to be replayed, use the shot qualification detection program of the external device installed in the vibroseis cabinet to determine whether the shot to be replayed needs to be replayed.

[0034] The method for reducing the good shot replay rate provided by this application is applied during or after the cable harness acquisition process. Cable harness acquisition is a seismic exploration method mainly used to obtain the propagation and reflection data of seismic waves in seismic exploration to help determine the properties and distribution of underground rock formations.

[0035] Seismic cable harness acquisition usually uses seismic exploration instruments to collect seismic wave data. These instruments can include geophones, seismic transmitters (such as vibroseis), and seismic data processing devices, etc. In seismic exploration, the seismic transmitter generates seismic waves and sends them underground, the geophones record the propagation and reflection data of the seismic waves, and the seismic data processing device processes and analyzes the data collected by the geophones to extract information about the underground rock formations.

[0036] The vibroseis cabinet is a device specifically used for seismic exploration, which contains a vibroseis and related electronic control systems. The vibroseis can generate controllable seismic waves with a certain amplitude and frequency, and the electronic control system can precisely control and adjust these seismic waves. In seismic exploration, the vibroseis cabinet is placed on the ground of the exploration area.

[0037] The shot to be replayed is a shot that cannot be determined whether it is qualified due to communication problems between the vibroseis cabinet and the seismic data processing device end, which is screened out by the seismic data processing device end according to the data information of each shot during or after the current cable harness acquisition process.

[0038] The data information of the shot point to be re-shot includes, but is not limited to: the vibration source group number, the box number, the shot line number, the stake number, the vibration count, the starting vibration time, etc.

[0039] In some embodiments, the shot point qualification detection program can be obtained in the following manner: according to the data information of the shot point from the vibroseis box, generate the qualification criteria for qualified shot points; according to the qualification criteria for qualified shot points, develop the shot point qualification detection program.

[0040] Such as Figure 4 As shown, the data information of the shot point can include, but is not limited to: acquisition type, shot point line number, stake number, vibration count, vibration source group number, box number, GPS accuracy information, TB time, scan length, vibration source attributes corresponding to the scan time samples, hoist-lower-Ready mark time, etc.

[0041] In the specific implementation process, taking accuracy and integrity as the criteria, according to the data information of the qualified shot points, determine the qualified thresholds of the various data included in the data information of the shot point; according to the qualified thresholds of the various data, generate the qualification criteria for qualified shot points.

[0042] Only as an example, the vibration count (such as Figure 4 SweepCounter in) can be determined according to the sweep frequency interval length and exploration requirements. Assuming that the numerical range of the vibration count of the qualified shot points is 50 - 5000, then the lower limit of the qualified threshold of the vibration count can be set to 50, and the upper limit to 5000; the discrimination criterion for the vibration count is: less than 50 or greater than 5000, unqualified.

[0043] In the specific implementation process, the shot point qualification detection program can be written using a variety of programming languages, not limited by the description in this specification.

[0044] In the specific implementation process, the developed shot point qualification detection program can be implanted into the external device of the vibroseis box.

[0045] In the specific implementation process, the shot point qualification detection program can be used to confirm whether the shot point to be re-shot has been excited. The operator of the vibroseis box can input the data information of the shot point to be re-shot into the shot point qualification detection program installed in the external device of the vibroseis box, and the shot point qualification detection program outputs the detection result as shown in Figure 5 shown.

[0046] Step S120, in response to the need to re-shot the shot point to be re-shot, use the vibroseis of the vibroseis box to re-excite the shot point to be re-shot.

[0047] In some embodiments, when the detection result in step S110 is that the shot point to be re-shot has not been excited, the operator of the vibroseis box re-excites the shot point to be re-shot.

[0048] In some embodiments, when the shot point to be replayed has been fired, a shot point qualification detection program is used to determine whether the shot point to be replayed meets the qualified shot point identification criteria based on the data information of the shot point to be replayed. In response to the shot point to be replayed not meeting the qualified shot point identification criteria, the operator of the controllable source box re-stimulates the shot point to be replayed.

[0049] In some embodiments, in response to the shot point to be replayed not needing to be replayed, the data information of the shot point to be replayed is returned to the seismic data processing device end so that the seismic data processing device end performs statistics and inputs the data information of the shot point to be replayed.

[0050] Quality control personnel at the seismic data processing equipment end can further analyze the data information of the shot points that do not need to be replayed, and exempt such shot points from inspection during the wire harness batch processing.

[0051] In the embodiment provided by the present application, according to the data information of the shot point to be replayed, the shot point qualification detection program of the external device installed in the controllable source box is used to determine whether the shot point to be replayed needs to be replayed; in response to the shot point to be replayed needing to be replayed, the controllable source of the controllable source box is used to re-stimulate the shot point to be replayed. Since the shot points that need to be replayed notified by the seismic data processing device end are identified at the source end, it can be timely determined whether the shot points to be replayed need to be replayed, avoiding the replay of qualified shot points, effectively reducing the replay ratio of good shots, and improving the effective working time of the source and the overall construction efficiency.

[0052] Figure 2 is an exemplary flow chart of a method for reducing the good shot replay rate executed on a seismic data processing device according to some embodiments of the present application. Figure 2 As shown, the method comprises the following steps:

[0053] Step S210, determining the shot points to be replayed among the shot points collected by the front beam according to the data information of the shot points collected by the front beam.

[0054] For detailed description of the front line collection, the data information of the shot point, and the shot point to be replayed, please refer to the relevant content in step S110, which will not be repeated here.

[0055] In the specific implementation process, the seismic data processing device can screen out the shot points to be replayed that cannot be determined to be qualified due to communication problems between the controllable vibrator box and the seismic data processing device based on the data information of each shot point collected.

[0056] ​Step S220: Send a shot replay instruction carrying the data information of the shot to be replayed to the vibroseis box corresponding to the shot to be replayed, so that the vibroseis box determines whether the shot to be replayed needs to be replayed according to the data information of the shot to be replayed, and re-excites the shot to be replayed that needs to be replayed.

[0057] In some embodiments, after the seismic data processing device sends a shot replay instruction carrying the data information of the shot to be replayed to the vibroseis box corresponding to the shot to be replayed, in response to receiving the data information of the shot to be replayed that does not need to be replayed from the vibroseis box, the data information of the shot to be replayed is entered; and according to the data information of the shot to be replayed, the shots that are exempt from replay among the shots collected by the front beam are determined.

[0058] In the embodiments provided in the present application, the seismic data processing device screens out the shots to be replayed and sends their data information to the vibroseis box. The vibroseis box determines whether the shots to be replayed need to be replayed according to the data information of the shots to be replayed, and re-excites the shots to be replayed that need to be replayed, thereby effectively reducing the good shot replay rate caused by communication problems.

[0059] Figure 6 It is an exemplary schematic diagram of a device for reducing the good shot replay rate according to some embodiments of the present application.

[0060] As Figure 6 shown, the device for reducing the good shot replay rate includes: a determination module 610 and an excitation module 620.

[0061] The determination module 610 is configured to, in response to receiving a shot replay instruction carrying the data information of the shot to be replayed from the seismic data processing device, determine whether the shot to be replayed needs to be replayed according to the data information of the shot to be replayed by using a shot qualification detection program of an external device installed in the vibroseis box.

[0062] The excitation module 620 is configured to, in response to the shot to be replayed needing to be replayed, re-excite the shot to be replayed by using the vibroseis of the vibroseis box.

[0063] In the embodiments of the above device for reducing the good shot replay rate, the specific processing of each module and the technical effects brought thereby can be respectively referred to the relevant descriptions in the corresponding method embodiments, and will not be elaborated here.

[0064] Figure 7 It is another exemplary schematic diagram of a device for reducing the good shot replay rate according to some embodiments of the present application.

[0065] As Figure 7As shown in the figure, the device for reducing the replay rate of good shots includes a determination module 710 and a transmission module 720.

[0066] The determination module 710 is configured to determine the shots to be replayed among the shots collected by the front beam according to the data information of the shots collected by the front beam.

[0067] The transmission module 720 is configured to send a shot replay instruction carrying the data information of the shots to be replayed to the controllable vibration source box corresponding to the shots to be replayed, so that the controllable vibration source box determines whether the shots to be replayed need to be replayed according to the data information of the shots to be replayed, and re-excites the shots to be replayed that need to be replayed.

[0068] In the embodiments of the above device for reducing the replay rate of good shots, the specific processing of each module and the technical effects brought by it can be respectively referred to the relevant descriptions in the corresponding method embodiments, which will not be elaborated here.

[0069] Figure 8 It is an exemplary structural schematic diagram of an electronic device according to some embodiments of the present application.

[0070] As Figure 8 shown, the electronic device includes: at least one processor 801, at least one communication interface 802, at least one memory 803, and at least one communication bus 804; optionally, the communication interface 802 may be an interface of a communication module, such as an interface of a GSM module; the processor 801 may be a processor CPU, or a specific integrated circuit ASIC (Application Specific Integrated Circuit), or one or more integrated circuits configured to implement the embodiments of the present invention. The memory 803 may include a high-speed RAM memory, and may also include a non-volatile memory, such as at least one disk memory. Among them, the memory 803 stores a program, and the processor 801 calls the program stored in the memory 803 to execute the above-mentioned partial or all method embodiments.

[0071] The present application relates to a storage medium for storing a computer-readable program, and when the computer-readable program is run, it executes the above-mentioned partial or all method embodiments.

[0072] Optionally, the storage medium may be a non-temporary computer-readable storage medium. For example, the non-temporary computer-readable storage medium may be a ROM, a random access memory (RAM), a CD-ROM, a magnetic tape, a floppy disk, and an optical data storage device, etc.

[0073] Based on the same inventive concept, an embodiment of the present application also provides a computer program product, including a computer program, which when executed by a processor implements some or all of the above method embodiments.

[0074] The basic concepts have been described above. Obviously, for those skilled in the art, the above detailed disclosure is only an example and does not constitute a limitation to the present application. Although not explicitly stated here, those skilled in the art may make various modifications, improvements, and corrections to the present application. Such modifications, improvements, and corrections are proposed in the present application, so such modifications, improvements, and corrections still fall within the spirit and scope of the exemplary embodiments of the present application.

[0075] Meanwhile, the present application uses specific terms to describe the embodiments of the present application. Such as "an embodiment", "one embodiment", and / or "some embodiments" mean a certain feature, structure, or characteristic related to at least one embodiment of the present application. Therefore, it should be emphasized and noted that "an embodiment" or "one embodiment" or "an alternative embodiment" mentioned twice or more at different positions in the present application does not necessarily refer to the same embodiment. In addition, certain features, structures, or characteristics in one or more embodiments of the present application can be appropriately combined.

[0076] In addition, unless clearly stated in the claims, the order of the processing elements and sequences, the use of numerical letters, or the use of other names in the present application is not used to limit the order of the processes and methods of the present application. Although some currently considered useful inventive embodiments are discussed through various examples in the above disclosure, it should be understood that such details only serve the purpose of illustration, and the appended claims are not limited to the disclosed embodiments. On the contrary, the claims are intended to cover all modifications and equivalent combinations that conform to the essence and scope of the embodiments of the present application. For example, although the system components described above can be implemented by hardware devices, they can also be implemented only through software solutions, such as installing the described system on existing servers or mobile devices.

[0077] Similarly, it should be noted that, in order to simplify the expression of the disclosure of the present application and thus help the understanding of one or more inventive embodiments, in the foregoing description of the embodiments of the present application, sometimes multiple features are merged into one embodiment, drawing, or description thereof. However, this disclosure method does not mean that the features required by the subject matter of the present application are more than those mentioned in the claims. In fact, the features of the embodiment are less than all the features of the single embodiment disclosed above.

[0078] In some embodiments, numbers are used to describe components and the quantity of attributes. It should be understood that such numbers used in the description of embodiments are, in some examples, modified by the modifiers "about", "approximate" or "substantially". Unless otherwise specified, "about", "approximate" or "substantially" indicate that the stated number allows a variation of ±20%. Accordingly, in some embodiments, the numerical parameters used in the specification and claims are approximate values, which may vary according to the characteristics required by individual embodiments. In some embodiments, the numerical parameters should consider the specified significant digits and adopt the method of retaining the general number of digits. Although the numerical ranges and parameters used in some embodiments of the present application to confirm the breadth of their scope are approximate values, in specific embodiments, such numerical settings are as precise as possible within the feasible range.

[0079] For each patent, patent application, patent application publication and other materials cited in the present application, such as articles, books, specifications, publications, documents, etc., their entire contents are hereby incorporated into the present application by reference. Except for the application history documents that are inconsistent with or conflict with the content of the present application, and also except for the documents that limit the broadest scope of the claims of the present application (currently or subsequently attached to the present application). It should be noted that if there are inconsistencies or conflicts between the descriptions, definitions, and / or uses of terms in the attached materials of the present application and the content described in the present application, the descriptions, definitions, and / or uses of terms in the present application shall prevail.

[0080] Finally, it should be understood that the embodiments described in the present application are only used to illustrate the principles of the embodiments of the present application. Other variations may also fall within the scope of the present application. Therefore, by way of example and not limitation, alternative configurations of the embodiments of the present application may be considered to be consistent with the teachings of the present application. Accordingly, the embodiments of the present application are not limited to the embodiments explicitly introduced and described in the present application.

Claims

1. A method for reducing the replay rate of good shots, characterized in that: The method is performed at the controllable vibrator box end, and the method comprises: In response to receiving a shot point replay instruction carrying data information of a shot point to be replayed from a seismic data processing device, determining whether the shot point to be replayed needs to be replayed based on the data information of the shot point to be replayed and using a shot point qualification detection program of an external device installed in the vibrator box; In response to the need to replay the shot point, the shot point to be replayed is re-excited using the vibrator of the vibrator box.

2. The method according to claim 1, characterized in that The shot point qualified detection procedure is obtained by the following method, including: Generate qualified shot point identification criteria based on shot point data information from the vibrator box; According to the qualified shot point identification standard, the qualified shot point detection program is developed.

3. The method according to claim 2, characterized in that The method of determining whether the shot point to be replayed needs to be replayed based on the data information of the shot point to be replayed and utilizing a shot point qualification detection program of an external device installed in the vibrator box includes: Using the shot point qualification detection program, confirm whether the shot point to be replayed has been fired; In response to the shot point to be replayed not having been fired, re-firing the shot point to be replayed; or In response to the shot point to be replayed having been fired, using the shot point qualification detection program to determine whether the shot point to be replayed meets the qualified shot point identification criteria according to the data information of the shot point to be replayed; In response to the shot point to be replayed not meeting the qualified shot point identification criteria, the shot point to be replayed is reactivated.

4. The method according to claim 1, characterized in that The method further comprises: In response to the shot point to be replayed not needing to be replayed, the data information of the shot point to be replayed is returned to the seismic data processing device end so that the seismic data processing device end enters the data information of the shot point to be replayed.

5. A method for reducing the replay rate of good shots, characterized in that: The method is executed on a seismic data processing device, and comprises: Determining the shot points to be replayed among the shot points collected by the front beam according to the data information of the shot points collected by the front beam; A shot point replay instruction carrying the data information of the shot point to be replayed is sent to the controllable source box corresponding to the shot point to be replayed, so that the controllable source box determines whether the shot point to be replayed needs to be replayed based on the data information of the shot point to be replayed, and re-stimulates the shot point to be replayed that needs to be replayed.

6. The method according to claim 2, characterized in that The method further comprises: In response to receiving data information of a shot point to be replayed that does not need to be replayed from the vibrator box end, entering the data information of the shot point to be replayed; and According to the data information of the shot points to be replayed, the shot points exempted from replay among the shot points collected by the front harness are determined.

7. A device for reducing the replay rate of good shots, characterized in that: The device is arranged at the end of the controllable vibrator box, and comprises: a determination module, for responding to a shot point replay instruction carrying data information of a shot point to be replayed received from a seismic data processing device, and determining whether the shot point to be replayed needs to be replayed according to the data information of the shot point to be replayed and using a shot point qualification detection program of an external device installed in the vibrator box; The exciting module is used for re-exciting the shot point to be replayed by utilizing the vibrator of the vibrator box in response to the shot point to be replayed needing to be replayed.

8. A device for reducing the replay rate of good shots, characterized in that: The device is arranged at the end of the seismic data processing equipment, and the device comprises: A determination module, for determining the shot points to be replayed among the shot points collected by the front line beam according to the data information of the shot points collected by the front line beam; The sending module is used to send a shot point replay instruction carrying the data information of the shot point to be replayed to the controllable source box corresponding to the shot point to be replayed, so that the controllable source box determines whether the shot point to be replayed needs to be replayed based on the data information of the shot point to be replayed, and re-stimulates the shot point to be replayed that needs to be replayed.

9. An electronic device, comprising a memory and a processor, wherein the memory stores a computer program, and the processor executes the method according to any one of claims 1 to 6 when running the program.

10. A storage medium for storing a computer-readable program, wherein when the computer-readable program is executed, the method according to any one of claims 1 to 6 is executed.

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