Multimode communication equipment detection system, method, and storage medium

KR103003412B1Active Publication Date: 2026-08-11선전 구어디엔 테크놀로지 커뮤니케이션 컴퍼니 리미티드 +1
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Patent Information

Application Number
KR1020237042105
Authority / Receiving Office
KR · KR
Patent Type
Patents
Current Assignee / Owner
Priority Date
2023-07-03
Filing Date
2023-10-31
Publication Date
2026-08-11
Estimated Expiration
2043-10-31

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  • Figure 112023136558704-PCT00001_ABST
    Figure 112023136558704-PCT00001_ABST
Patent Text Reader

Abstract

The embodiments of this specification provide a multimode communication equipment detection system, a method, and a storage medium. The detection system includes a detection substrate, an auxiliary detection substrate connected to the detection substrate, and a detection control unit. An equipment to be detected is connected to the detection substrate, and an auxiliary detection device is connected to the auxiliary detection substrate. The detection control unit is used to determine a detection plan that includes at least a networking detection item by performing matching in a configuration file according to the equipment model information of the equipment to be detected connected to the detection substrate, and to transmit the detection plan to the detection substrate. The detection substrate is used to determine the equipment role information of the equipment to be detected according to the equipment model information, and to control the equipment to be detected and the auxiliary detection device to perform networking in at least one communication mode based on the equipment role information and the networking detection item, thereby obtaining the master-slave communication networking status of the equipment to be detected and determining the networking detection result of the equipment to be detected according to the master-slave communication networking status. In this way, the detection efficiency of multimode communication equipment can be improved.
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Description

Technology Field

[0001] The embodiments of this specification relate to the field of communication technology, and more specifically to a multi-mode communication equipment detection system, method, and storage medium. Background Technology

[0002] Driven by advancements in low-voltage power communication technology and the demand for improved power supply service quality, high-speed powerline carrier communication (HFCC) has been widely adopted in local low-voltage networks, significantly enhancing communication efficiency and quality. However, HFCC still suffers from data collection blind spots and speed bottlenecks. Consequently, to address these blind spot issues and improve communication speed and reliability, multimode communication—combining various communication technologies such as micropower wireless and Bluetooth with HFCC infrastructure—is becoming increasingly common. This has led to a gradual increase in the shipment volume of multimode communication equipment.

[0003] Currently, detection methods for multimode communication equipment are typically passive, and the detection effectiveness is relatively low. Therefore, there is a need to improve the detection efficiency of multimode communication equipment.

[0004] In this regard, various embodiments of the present specification focus on improving the detection efficiency of multimode communication equipment by providing a multimode communication equipment detection system, a method, and a storage medium.

[0005] An embodiment of the present invention provides a multi-mode communication equipment detection system. The detection system includes a detection substrate, an auxiliary detection substrate connected to the detection substrate, and a detection control unit. An equipment to be detected is connected to the detection substrate, and an auxiliary detection device is connected to the auxiliary detection substrate. The detection control unit is used to perform matching in a configuration file according to the model information of the equipment to be detected connected to the detection substrate, determine a detection plan including at least one target detection item, and transmit the detection plan to the detection substrate. Here, the configuration file includes the corresponding relationship between the model information of the equipment to be detected and the detection item. The at least one target detection item includes at least a networking detection item. The detection substrate is used to determine the role information of the equipment to be detected according to the model information of the equipment to be detected, and based on the role information of the equipment to be detected, to configure one of the equipment to be detected and the auxiliary detection device as a master node and the other as a slave node. Based on the above networking detection item, the detection device and the auxiliary detection device are controlled to perform networking in at least one communication mode to obtain the master-slave communication networking status of the detection device, and are used to determine the networking detection result of the detection device according to the master-slave communication networking status of the detection device.

[0006] Additionally, the detection system further includes a production detection management server connected to the detection control unit. The number of detection substrates and auxiliary detection substrates is multiple, and the multiple detection substrates are connected to correspond individually with the multiple auxiliary detection substrates. The detection control unit is used to determine the model information of the multiple detection equipment, acquire at least one model information of the detection equipment, and transmit a plan determination request containing the at least one model information of the detection equipment to the production detection management server. The production detection management server is used to acquire at least one detection plan by performing matching in the configuration file based on the at least one model information of the detection equipment included in the received plan determination request. Here, the at least one model information of the detection equipment corresponds individually with the at least one detection plan. The above production detection management server is further used to transmit at least one detection method to the detection control unit, and for the detection control unit to transmit the corresponding detection method to the corresponding detection substrate based on the model information of one of the detection equipment, so that the corresponding detection substrate determines the equipment detection result of the corresponding detection equipment according to the detection method.

[0007] Additionally, the detection method further includes execution sequence information corresponding to the at least one target detection item. The detection substrate is used to execute the at least one target detection item according to the execution sequence information until all of the at least one target detection items in the detection method are detected or until any one of the at least one target detection items fails to be detected, thereby obtaining a target detection result corresponding to each of at least some of the at least one target detection items and configuring the equipment detection result.

[0008] Additionally, the detection substrate is used to upload the equipment detection result to the detection control unit, so that the detection control unit displays the equipment detection result and / or the detection control unit uploads the equipment detection result to the production detection management server.

[0009] Additionally, the system further includes terminal equipment connected to the detection control unit. The detection control unit is used to determine the detection equipment model information of the detection equipment in response to a task of selecting detection equipment model information for the detection equipment connected to each of the plurality of detection substrates through the terminal equipment.

[0010] Additionally, the detection substrate is equipped with at least one detection substrate master node interface and one detection substrate slave node interface, and the equipment to be detected, which is the master node, is connected through either of the detection substrate master node interfaces. Alternatively, the equipment to be detected, which is the slave node, is connected through the detection substrate slave node interfaces. The auxiliary detection substrate is equipped with at least one auxiliary detection substrate master node interface and one auxiliary detection substrate slave node interface, and the auxiliary detection equipment, which is the master node, is connected through either of the auxiliary detection substrate master node interfaces. Alternatively, the auxiliary detection equipment, which is the slave node, is connected through the auxiliary detection substrate slave node interfaces.

[0011] In addition, the above at least one communication mode includes at least power line carrier communication and / or micropower wireless communication.

[0012] Additionally, the detection substrate includes a core board. One detection substrate carrier signal interface and one auxiliary detection substrate carrier signal interface are respectively installed on the detection substrate and the auxiliary detection substrate. The core board controls the equipment to be detected and the auxiliary detection equipment to perform power line carrier communication through the detection substrate carrier signal interface and the auxiliary detection substrate carrier signal interface.

[0013] Additionally, an RF (Radio Frequency) switch control circuit is installed on the auxiliary detection board. The RF switch control circuit is used to perform a switch between a wireless communication mode and a wireless test mode. The RF switch control circuit controls the auxiliary detection equipment and the equipment to be detected to perform micropower wireless communication in the wireless communication mode. The RF switch control circuit corrects the frequency signal of the micropower wireless communication in the wireless test mode, thereby enabling micropower wireless communication to be performed using the corrected frequency signal in the wireless communication mode.

[0014] In addition, a programmable attenuator is connected to the RF switch control circuit. The RF switch control circuit determines the wireless signal attenuation value through the programmable attenuator.

[0015] An embodiment of the present specification provides a method for detecting multimode communication equipment. The detection method is applied to a detection board of a multimode communication equipment detection system. The multimode communication equipment detection system further includes an auxiliary detection board and a detection control unit connected to the detection board. A device to be detected is connected to the detection board, and an auxiliary detection device is connected to the auxiliary detection board. The detection method comprises the steps of: receiving a detection plan transmitted from the detection control unit containing at least one target detection item; wherein the at least one target detection item is determined by performing matching in a configuration file according to the device to be detected model information of the device to be detected, the configuration file includes a correspondence relationship between the device to be detected model information and the detection item, and the at least one target detection item includes at least a networking detection item; and determining the device to be detected role information of the device to be detected based on the device to be detected model information; wherein the device to be detected role information is used to configure one of the device to be detected and the auxiliary detection device as a master node and the other as a slave node. Based on the above networking detection item, the method includes the step of controlling the equipment to be detected and the auxiliary detection equipment to perform networking in at least one communication mode to obtain the master-slave communication networking state of the equipment to be detected; and the step of determining the networking detection result of the equipment to be detected according to the master-slave communication networking state.

[0016] Additionally, the detection method further includes execution sequence information corresponding to the at least one target detection item. The detection method further includes the step of executing the at least one target detection item according to the execution sequence information until all of the at least one target detection items among the detection methods are detected or until any one of the at least one target detection items fails to be detected, thereby obtaining a target detection result corresponding to each of at least some of the at least one target detection items and configuring an equipment detection result.

[0017] Additionally, the multi-mode communication equipment detection system further includes a production detection management server connected to the detection control unit. The detection method further includes the step of uploading the equipment detection result to the detection control unit so that the detection control unit displays the equipment detection result and / or uploads the equipment detection result to the production detection management server.

[0018] An embodiment of the present specification provides a method for detecting multimode communication equipment. The detection method is applied to a detection control unit of a multimode communication equipment detection system. The multimode communication equipment detection system further includes a detection board connected to the detection control unit and an auxiliary detection board connected to the detection board. An equipment to be detected is connected to the detection board, and an auxiliary detection equipment is connected to the auxiliary detection board. The detection method comprises the step of determining a detection plan by performing matching in the configuration file according to the equipment model information of the equipment to be detected - the detection plan includes at least one target detection item, the configuration file includes the corresponding relationship between the equipment model information and the detection item, and the at least one target detection item includes at least a networking detection item - ; The method comprises the steps of: transmitting the detection method to the detection substrate, wherein the detection substrate determines the role information of the detection device based on the model information of the detection device, wherein the role information of the detection device is used to configure one of the detection device and the auxiliary detection device as a master node and the other as a slave node, wherein the detection substrate controls the detection device and the auxiliary detection device to perform networking in at least one communication mode based on the networking detection item, thereby obtaining the master-slave communication networking state of the detection device, and wherein the detection substrate determines the networking detection result of the detection device according to the master-slave communication networking state; and receiving the networking detection result fed back by the detection substrate.

[0019] Additionally, the detection method further includes execution sequence information corresponding to the at least one target detection item. The detection method further includes the step of receiving an equipment detection result fed back by the detection substrate. Until all of the at least one target detection items in the detection method are detected or any one of the at least one target detection items fails to be detected, the detection substrate executes the at least one target detection item according to the execution sequence information, thereby obtaining a target detection result corresponding to each of at least some target detection items among the at least one target detection item and configuring the equipment detection result.

[0020] Additionally, the detection system further includes terminal equipment connected to the detection control unit and a production detection management server. The number of detection boards and auxiliary detection boards is multiple. The multiple detection boards are connected to correspond individually with the multiple auxiliary detection boards. The step of determining a detection plan by performing matching in a configuration file according to the detection equipment model information of the detection equipment is a step of determining the detection equipment model information of each of the multiple detection equipment in response to a detection equipment model information selection operation for the detection equipment connected to each of the multiple detection boards through the terminal equipment, thereby obtaining at least one detection equipment model information; a step of transmitting a plan determination request containing the at least one detection equipment model information to the production detection management server, so that the production detection management server performs matching in the configuration file based on the at least one detection equipment model information to obtain at least one detection plan—whereby the at least one detection equipment model information corresponds one-to-one with the at least one detection plan—; and a step of receiving the at least one detection plan transmitted via feedback from the production detection management server.

[0021] Additionally, the step of transmitting the detection method to the detection substrate includes transmitting a corresponding detection method among the at least one detection method to the corresponding detection substrate based on the detection device model information of any one of the plurality of detection devices, so that the detection substrate can determine the device detection result of the detection device according to the corresponding detection method.

[0022] An embodiment of the present specification provides a computer-readable storage medium in which a computer program is stored. When the computer program is executed by a processor, a multi-mode communication equipment detection method according to any one of the embodiments described above is implemented.

[0023] A plurality of embodiments provided in this specification provide a multi-mode communication equipment detection system. The detection system includes a detection board, an auxiliary detection board connected to the detection board, and a detection control unit. An equipment to be detected is connected to the detection board, and an auxiliary detection board is connected to the auxiliary detection board. The detection control unit is used to determine a detection plan that includes at least a networking detection item by performing matching in a configuration file according to the model information of the equipment to be detected connected to the detection board, and to transmit the detection plan to the detection board. The detection board is used to determine the role information of the equipment to be detected according to the model information of the equipment to be detected, and to control the equipment to be detected and the auxiliary detection board to perform networking in at least one communication mode based on the role information of the equipment to be detected and the networking detection item, thereby obtaining the master-slave communication networking status of the equipment to be detected and determining the networking detection result of the equipment to be detected according to the master-slave communication networking status. In this way, the detection efficiency of multi-mode communication equipment can be improved. Brief explanation of the drawing

[0024] FIG. 1 is a schematic diagram of a multi-mode communication equipment detection system according to an embodiment of the present specification. FIG. 2 is a schematic diagram of a multi-mode communication equipment detection system according to an embodiment of the present specification. FIG. 3 is a flowchart of a method for detecting multi-mode communication equipment according to an embodiment of the present specification. FIG. 4 is a flowchart of a multi-mode communication equipment detection method according to an embodiment of the present specification. FIG. 5 is a flowchart of a method for determining a detection method according to an embodiment of the present specification. FIG. 6 is a schematic diagram of a multi-mode communication equipment detection device according to an embodiment of the present specification. FIG. 7 is a schematic diagram of a multi-mode communication equipment detection device according to an embodiment of the present specification. FIG. 8 is a schematic diagram of computer equipment according to an embodiment of the present specification. Specific details for implementing the invention

[0025] In order to enable those skilled in the art to better understand the technical solutions of this specification, the technical solutions of the embodiments of this specification are described clearly and completely below with reference to the accompanying drawings. The described embodiments are only partial embodiments, not all, of this specification. All other embodiments obtained by those skilled in the art without creative work based on the embodiments of this specification fall within the scope of protection of this specification.

[0026] With the advancement of low-voltage power communication technology and the demand for improved power supply service quality, High Speed ​​Power Line Carrier (HPLC) communication has been widely adopted in local low-voltage communication networks, significantly improving communication efficiency and quality. However, HPLC still suffers from dead zones and speed bottlenecks. For instance, due to causes such as excessive line attenuation, there are situations in some application scenarios where data cannot be copied or communication is unstable. Therefore, to resolve dead zone issues and improve communication speed and reliability, multimode communication combining High Speed ​​Radio Frequency (HRF), Bluetooth, microwave, RF, and infrared with HPLC is becoming increasingly common. Consequently, the shipment volume of multimode communication equipment is steadily rising.

[0027] In terms of related technologies, the detection method for medium-to-multimode communication equipment is relatively monolithic. Since test functions and test equipment hardware are fundamentally bound, expansion is difficult. Consequently, if the addition of new detection items is hardware-related, the test function cannot be upgraded by simply upgrading the test software. This leads to a significant increase in the workload for subsequent maintenance. Furthermore, in related technologies, the configuration and modification of detection methods are relatively complex. Each test device must be equipped with a corresponding computer or controller to configure and modify detection methods. This results in relatively high test costs and a relatively long time required for modifications. Consequently, the efficiency of test operations is relatively low. In related technologies, there are often differences in technical specifications and type specifications among multimode communication equipment from different manufacturers. Each test device can only test multimode communication equipment from the same manufacturer, with the same technical specifications or type specifications. Therefore, detection flexibility is low, reproducibility is weak, and detection costs are high. Additionally, it is difficult to improve inspection efficiency due to poor compatibility of automated detection processes.

[0028] Therefore, it is necessary to provide a multimode communication equipment detection system. This system can be applied to multimode communication equipment of various technical specifications or type specifications. Furthermore, a corresponding detection method can be rapidly determined based on the model information of the equipment to be detected. This enables the implementation of switching tests for different multimode communication equipment. Consequently, since there is no need to modify the hardware conditions of the detection system, the adaptability and flexibility of the detection system are enhanced, and detection efficiency is improved.

[0029] An embodiment of the present specification provides a multimode communication equipment detection system. Referring to FIG. 1, FIG. 1 is a structural diagram of a multimode communication equipment detection system. The detection system may include a detection board, an auxiliary detection board connected to the detection board, and a detection control unit. Here, the equipment to be detected is connected to the detection board, and the auxiliary detection board is connected to the auxiliary detection board. The auxiliary detection equipment may be used to perform networking with the equipment to be detected.

[0030] In the present embodiment, the detection control unit may be used to perform matching in a configuration file according to the model information of the equipment to be detected connected to the detection board, determine a detection plan including at least one target detection item, and transmit the detection plan to the detection board. Here, the configuration file may include the corresponding relationship between the model information of the equipment to be detected and the detection item. Specifically, the configuration file may include a plurality of model information of the equipment to be detected and a plurality of detection items. Any one of the model information of the equipment to be detected in the configuration file may correspond to one or more of the detection items among the plurality of detection items. Here, at least one target detection item included in the target detection item may include at least a networking detection item. This enables the detection board to determine the networking detection result of the equipment to be detected according to the networking detection item. For example, the configuration may be configured by modifying the corresponding relationship between the model information of the equipment to be detected and the detection item included in the configuration file. For example, the detection control unit may be a host computer such as a Raspberry Pi.

[0031] In some cases, networking may be performed between the equipment to be detected and the auxiliary detection equipment. The detection board may determine the networking detection result based on the networking status of the equipment to be detected. During the networking process, role information for the master node and slave node may be defined. The master node may refer to a Central Coordinator (CCO). The master node may perform functions such as networking control and network maintenance. The corresponding equipment entity may be a concentrator local communication unit. The equipment entity corresponding to the slave node (Station, STA) may serve as a communication unit equipment mounted on an electric meter or a collector. For example, it may include an electric meter module, a Type I collector module, or a Type II collector module.

[0032] In the present embodiment, the detection board can determine whether the equipment to be detected corresponds to a master node or a slave node. Specifically, one of the equipment to be detected has corresponding equipment to be detected model information. The detection board can be used to determine the role information of the equipment to be detected based on the equipment to be detected model information. For example, based on the equipment to be detected model information, it can be determined whether the corresponding equipment to be detected is one of an electric meter module, a Type I collector module, a Type II collector module, or an IoT carrier sensing module. If so, the equipment to be detected is configured as a slave node. Additionally, based on the equipment to be detected model information, it can be further determined whether the corresponding equipment to be detected is a concentrator local communication unit. If so, the equipment to be detected can be configured as a master node.

[0033] In the present embodiment, the detection substrate may be used to configure one of the equipment to be detected and the auxiliary detection equipment as a master node and the other as a slave node, depending on the role information of the equipment to be detected. Specifically, the equipment to be detected role information of the equipment to be detected is configured as a master node or a slave node according to the model information of the equipment to be detected. Subsequently, the detection substrate may configure the auxiliary detection equipment role information of the auxiliary detection equipment according to the equipment to be detected role information. For example, the equipment to be detected may be configured as a master node and the auxiliary detection equipment as a slave node. Alternatively, the equipment to be detected may be configured as a slave node and the auxiliary detection equipment as a master node.

[0034] In this embodiment, one of the equipment to be detected and the auxiliary detection equipment is configured as a master node and the other is configured as a slave node. Subsequently, the detection board may control the equipment to be detected and the auxiliary detection equipment to perform networking in at least one communication mode according to a networking detection item, thereby acquiring the master-slave communication networking status of the equipment to be detected.

[0035] Specifically, the detection substrate can control the equipment to be detected and the auxiliary detection equipment to perform networking in at least one communication mode when a networking detection item is detected in at least one target detection item included in the detection method. For example, the equipment to be detected and the auxiliary detection equipment can be controlled to perform networking via high-speed power line carrier communication. The equipment to be detected and the auxiliary detection equipment can also be controlled to perform networking via micropower wireless communication. The equipment to be detected and the auxiliary detection equipment can also be controlled to perform networking by combining high-speed power line carrier communication and micropower wireless communication. Furthermore, the equipment to be detected and the auxiliary detection equipment can be controlled to perform converged networking by combining high-speed power line carrier communication and one or more of various wireless communications, such as micropower wireless communication, Bluetooth communication, microwave communication, RF communication, and infrared communication.

[0036] In this embodiment, the detection substrate may be used to determine the networking detection result of the equipment to be detected according to the master-slave communication networking status of the equipment to be detected.

[0037] In the above implementation method, a corresponding detection method can be rapidly determined based on the model information of the equipment to be detected through the detection control unit. This enables the implementation of switching tests for different multi-mode communication equipment. Since this eliminates the need to modify the hardware conditions of the detection system, the adaptability and flexibility of the detection system are enhanced, and detection efficiency is improved. Furthermore, the correspondence between the model information of the equipment to be detected and the detection items is pre-configured in the configuration file. This allows the target detection items among the detection methods to be increased or decreased according to actual demand, thereby reducing maintenance costs.

[0038] In some embodiments, referring to FIG. 2, FIG. 2 is a structural diagram of a multi-mode communication equipment detection system. The detection system may further include a production detection management server connected to a detection control unit. The number of detection boards and auxiliary detection boards may be multiple. Multiple detection boards may be connected to correspond individually with multiple auxiliary detection boards.

[0039] In the present embodiment, the detection control unit can determine the model information of a plurality of detection equipment and obtain at least one model information of detection equipment. Additionally, it can transmit a plan determination request containing at least one model information of detection equipment to a production detection management server.

[0040] Specifically, the model information of some of the multiple detection devices may be identical. The detection control unit and the detection substrate may determine at least one detection device model information based on the detection device model information of the detection device corresponding to the connected detection substrate. Here, any one of the at least one detection device model information is different.

[0041] For example, the detection device model information of multiple detection devices is identical. That is, multiple detection substrates can all perform detection on multiple detection devices having the same detection device model information. The detection control unit can obtain one detection device model information.

[0042] In the present embodiment, a configuration file may be stored in the production detection management server. The production detection management server may receive a plan determination request transmitted by the detection control unit. Additionally, based on at least one model information of the equipment to be detected included in the plan determination request, matching may be performed in the configuration file. Through this, at least one detection plan corresponding to at least one model information of the equipment to be detected can be obtained. Here, any one of the at least one detection plans may include at least one target detection item.

[0043] For example, the at least one target detection item may include one or more of a networking detection item, a zero-crossing detection item, a test point voltage detection item, a supercapacitor detection item, a write function detection item, etc. The target detection item is merely an exemplary target detection item. It is understood that other target detection items may be included depending on specific needs.

[0044] For example, the networking detection item may be a high-speed power line carrier communication networking detection. It may also be a micropower wireless communication networking detection, or a converged networking detection of high-speed power line carrier communication and micropower wireless communication. For example, the networking detection item may be a converged networking detection in which one or more of various wireless communications are combined, such as high-speed power line carrier communication, micropower wireless communication, Bluetooth communication, microwave communication, RF communication, and infrared communication.

[0045] For example, the production detection management server can be configured by modifying the correspondence between the detection equipment model information included in the configuration file and the detection items.

[0046] In the present embodiment, the production detection management server may transmit the at least one detection method obtained by matching to the detection control unit. Based on the detection equipment model information of one of the detection equipment, the detection control unit transmits a corresponding detection method among the received at least one detection method to a corresponding detection substrate. Additionally, the corresponding detection substrate is enabled to execute the detection method to determine the equipment detection result of the corresponding detection equipment.

[0047] In the above implementation method, the production detection management server can quickly and easily determine a detection method corresponding to each of the model information of multiple detection devices based on a method determination request from the detection control unit. Furthermore, by transmitting and executing the method to the corresponding detection board, the corresponding device detection result is obtained. In this way, mass detection and automatic detection are performed on multiple detection devices, thereby effectively improving the detection efficiency and labor costs of the detection devices.

[0048] In some embodiments, the detection method may further include execution sequence information corresponding to at least one included target detection item.

[0049] In the present embodiment, the detection substrate executes at least one target detection item according to the execution sequence information until all target detection items among the detection methods are completely detected or until any one of the at least one target detection items fails to be detected. Through this, a target detection result corresponding to each of at least some target detection items among the at least one target detection item is obtained, and an equipment detection result is constructed.

[0050] In the above implementation method, target detection items included in the detection plan are executed according to the execution sequence information. If any one target detection item fails to detect, detection is stopped, and target detection results corresponding to each of at least some target detection items are obtained, and equipment detection results are constructed. In this way, since the equipment detection results of the equipment to be detected can be determined immediately, the detection efficiency of the equipment to be detected can be effectively improved.

[0051] In some embodiments, the detection substrate can upload equipment detection results to the detection control unit. This allows the detection control unit to display the equipment detection results and / or to upload the equipment detection results to the production detection management server. This enables real-time monitoring of the equipment detection results of the equipment under detection and facilitates the observation of abnormalities in the equipment under detection.

[0052] In some embodiments, referring further to FIG. 2, the detection system may further include terminal equipment connected to a detection control unit.

[0053] In some cases, the model information of the equipment to be detected can be determined through the terminal equipment.

[0054] In the present embodiment, the detection control unit may respond to a task of selecting detection equipment model information for detection equipment connected to each of a plurality of detection substrates via terminal equipment. Through this, detection equipment model information of the detection equipment can be determined. Specifically, the terminal equipment may be a display screen or a touch display screen.

[0055] In the above-described embodiment, the device can respond to a task of selecting detection device model information for a detection device connected to each of a plurality of detection boards via a terminal device. Through this, the detection device model information of the corresponding detection device can be quickly determined.

[0056] In some embodiments, the detection substrate may be equipped with at least one detection substrate master node interface and one detection substrate slave node interface. A device to be detected, which is a master node, may be connected through either of the detection substrate master node interfaces, or a device to be detected, which is a slave node, may be connected through either of the detection substrate slave node interfaces. An auxiliary detection substrate may be equipped with at least one auxiliary detection substrate master node interface and one auxiliary detection substrate slave node interface. An auxiliary detection device, which is a master node, may be connected through either of the auxiliary detection substrate master node interfaces, or an auxiliary detection device, which is a slave node, may be connected through either of the auxiliary detection substrate slave node interfaces.

[0057] In some cases, when performing detection on multimode communication equipment produced by different manufacturers, the technical specifications of the different manufacturers often differ. Consequently, the interface specifications of multimode communication equipment produced by different manufacturers may also differ. Typically, the interface specifications between multimode communication equipment that can be used as master nodes from different manufacturers—that is, CCOs—often differ. On the other hand, the interface specifications between multimode communication equipment that can be used as slave nodes from different manufacturers—that is, STAs—often are based on the same interface specifications. In other words, while the interface specifications of master nodes from different manufacturers often differ, the interface specifications of slave nodes are typically identical.

[0058] In the present embodiment, at least one detection substrate master node interface installed on the detection substrate can support at least one master node interface specification. Here, the at least one detection substrate master node interface corresponds one-to-one with the at least one master node interface specification.

[0059] Accordingly, in the present embodiment, the at least one auxiliary detection substrate master node interface installed on the auxiliary detection substrate may also support the at least one master node interface specification. Here, the at least one auxiliary detection substrate master node interface may correspond one-to-one with the at least one master node interface specification.

[0060] Specifically, the detection substrate slave node interface of the detection substrate can be communicated in series with at least one auxiliary detection substrate master node interface of the auxiliary detection substrate. At least one detection substrate master node interface of the detection substrate can be communicated in series with the auxiliary detection substrate slave node interface of the auxiliary detection substrate.

[0061] For example, HPLC+HRF dual-mode communication equipment among multi-mode communication equipment is described as an example. The dual-mode communication equipment, which is the equipment to be detected or the auxiliary detection equipment, may be a concentrator local dual-mode communication unit that can be used as a master node. Alternatively, it may be a single-phase power meter dual-mode module, a three-phase power meter dual-mode module, a Type I collector dual-mode module, a Type II collector dual-mode module, a PLC-IOT IoT carrier module single-phase meter detection module, or a PLC-IOT IoT carrier module three-phase meter detection module that can be used as a slave node. Here, the detection board master node interface existing on the detection board conforms to the master node interface specifications of the equipment to be detected that can be used as a master node. The auxiliary detection board master node interface existing on the auxiliary detection board conforms to the master node interface specifications of the auxiliary detection equipment that can be used as a master node. The detection board slave node interface existing on the detection board conforms to the slave node interface specifications of the equipment to be detected that can be used as a slave node. The auxiliary detection substrate slave node interface present on the auxiliary detection substrate is suitable for the slave node interface specifications of the equipment to be detected that can be used as a slave node.

[0062] In the above embodiment, a plurality of interfaces supporting different interface specifications are installed on the detection substrate and the auxiliary detection substrate. That is, they can be compatible with the pin boards of different equipment to be detected. Therefore, the scalability of detection is improved, and thus the flexibility of detection is enhanced.

[0063] In some embodiments, the detection substrate may include a core board which is a control core of the detection substrate. A detection substrate and an auxiliary detection substrate are each equipped with one detection substrate carrier signal interface and one auxiliary detection substrate carrier signal interface.

[0064] In the present embodiment, the core board can control the equipment to be detected and the auxiliary detection equipment to perform power line carrier communication through the detection board carrier signal interface and the auxiliary detection board carrier signal interface. For example, the core board may adopt an AT91SAM9X25 core board. This can be connected to the detection board through two rows of 30x2 pins. Specifically, if the core board includes a high-speed power line carrier networking detection item in the networking detection item, it can perform high-speed power line carrier communication networking with the auxiliary detection board. For example, the high-speed power line carrier networking detection item may include high-speed power line carrier networking parameters. High-speed power line carrier communication networking can be performed based on the high-speed power line carrier networking parameters.

[0065] Specifically, the number of detection board master node interfaces is 4, each consisting of an A-phase line, a B-phase line, a C-phase line, and a neutral line N. The number of auxiliary detection board master node interfaces is 4, each consisting of an A-phase line, a B-phase line, a C-phase line, and a neutral line N. The A-phase line, B-phase line, C-phase line, and neutral line N of the detection board master node interfaces are connected to correspond one-to-one with the A-phase line, B-phase line, C-phase line, and neutral line N of the auxiliary detection board master node interfaces.

[0066] In some embodiments, the detection board may include an EMI interface circuit. The core board controls the signal attenuation of high-speed power line carrier communication through the EMI interface circuit, thereby supporting different high-speed power line carrier signal attenuation values.

[0067] In some embodiments, the detection substrate may further include a supercapacitor charge / discharge control interface. This can be used to perform charging and discharging on the supercapacitor and to collect voltage values ​​across the supercapacitor.

[0068] In some embodiments, the detection substrate may further include a voltage acquisition interface. The voltage acquisition interface may be used to collect the voltage of a test point of the equipment to be detected and to detect whether there is an abnormality in the voltage of the equipment to be detected.

[0069] In some embodiments, the detection substrate may further include a power supply circuit that is a power source for the detection substrate. Specifically, the power supply circuit may be connected to an external 24V switch power supply.

[0070] In some embodiments, the detection board may include a DC-DC power conversion circuit. The DC-DC power conversion circuit can convert 24V power to 12V, 5V, 3.3V, etc., and supply stable power to each circuit module of the detection board.

[0071] In some embodiments, the detection substrate may include a strong electrical insulation control circuit. Specifically, the strong electrical insulation control circuit may be a 380V strong electrical insulation control circuit. By controlling the application of strong electricity to the detection substrate and auxiliary detection substrate only during the detection process through the strong electrical insulation control circuit, the risk of electric shock during the detection process is prevented.

[0072] In some embodiments, the detection board may further include a TTL (Transistor-Transistor Logic) external serial port. This can be used to extend communication with other equipment.

[0073] In some embodiments, the detection substrate may further include a detection control circuit. This is used to activate detection. In the detection control circuit, the normal state may be a high level, and when a low level is detected, the detection method is executed.

[0074] In some embodiments, the detection board may further include a reset circuit. This controls the core board to perform a reset, making it easy to restart the core board.

[0075] In some embodiments, the detection substrate may further include a debugging serial port. This makes it easy to perform debugging and print debugging information for each interface of the detection substrate.

[0076] In some embodiments, the detection substrate may further include a backup battery interface. This is used to supply power to a backup area. For example, the detection substrate can supply power to a clock chip to ensure the normal operation of the clock chip.

[0077] In some embodiments, the detection board may further include an indicator interface circuit. This can be used to display the communication status of each circuit module of the detection board, and the target detection result or the equipment detection result.

[0078] In some embodiments, the detection board may further include a USB interface. This can be used to perform system mirror burning on the core board. It may also be used to communicate with a code scanner USB port.

[0079] In some embodiments, the detection substrate may include an Ethernet interface. It may also provide a three-path Ethernet connection. This can be used to communicate with a detection control unit.

[0080] In some embodiments, for some detection equipment, taking a Type II collector as an example, to improve detection accuracy, the detection substrate may further include an infrared interface, an RS485 circuit interface, and a Type II collector power supply interface. These are used to connect the Type II collector infrared head, the Type II collector RS485 interface, and the Type II collector power supply interface, respectively, to detect the Type II collector.

[0081] In some embodiments, an RF switch control circuit may be installed on the auxiliary detection board. The RF switch control circuit can perform switching between a wireless communication mode and a wireless test mode.

[0082] Specifically, the RF switch control circuit can control the auxiliary detection equipment and the equipment to be detected to perform micropower wireless communication in wireless communication mode. Specifically, if the networking detection item includes a micropower wireless networking detection item, the core board of the detection board communicates with the auxiliary detection board and can adjust the RF switch control circuit to wireless communication mode. Thus, the auxiliary detection equipment and the equipment to be detected can be controlled to perform micropower wireless communication. For example, the micropower wireless networking detection item may include micropower wireless networking parameters. Micropower wireless communication can be performed based on the micropower wireless networking parameters.

[0083] Specifically, the RF switch control circuit can calibrate the frequency signal of micropower wireless communication in wireless test mode. This allows micropower wireless communication to be performed on the calibrated frequency signal in wireless communication mode.

[0084] In some embodiments, a programmable attenuator may be connected to the RF switch control circuit. The RF switch control circuit can determine different radio signal attenuation values ​​through the programmable attenuator.

[0085] In some embodiments, the auxiliary detection board may further include a 12V power supply circuit that is a power source for the auxiliary detection board. This allows power to be supplied to each circuit module of the auxiliary detection board.

[0086] In some embodiments, a shielding box may be further installed on the auxiliary detection substrate. This shields electromagnetic interference to the auxiliary detection module or prevents electromagnetic interference to the module to be detected.

[0087] In some embodiments, a detection box may be further installed on the detection substrate and used to prevent electromagnetic interference with the module to be detected.

[0088] The embodiments of this specification provide a method for detecting multimode communication equipment. Referring to FIG. 3, FIG. 3 is a flowchart of a method for detecting multimode communication equipment according to the present embodiment. The present embodiment provides operation steps such as the method in the flowchart. However, more or fewer operation steps may be included based on general or non-creative labor. The order of steps listed in the embodiment is merely one of many execution orders and does not represent the only execution order. When an actual system or server product is executed, the steps may be executed sequentially or in parallel according to the method described in the embodiment (e.g., in a parallel processor or multi-threaded processing environment). The detection method may be applied to a detection system of a multimode communication equipment detection system. Specifically, as illustrated in FIG. 3, the detection method may include the following steps.

[0089] Step S310: Receive a detection plan transmitted from a detection control unit containing at least one target detection item. Here, the at least one target detection item is determined by performing matching in a configuration file according to the detection equipment model information of the detection equipment. The configuration file contains the correspondence relationship between the detection equipment model information and the detection items. At least one target detection item includes a networking detection item.

[0090] Specifically, the configuration file may include multiple detection equipment model information and multiple detection items. Any one of the detection equipment model information in the configuration file may correspond to one or more of the multiple detection items.

[0091] Step S320: Based on the model information of the equipment to be detected, the role information of the equipment to be detected is determined. Here, the role information of the equipment to be detected is used to configure one of the equipment to be detected and the auxiliary detection equipment as a master node and the other as a slave node.

[0092] In some cases, networking can be performed between the equipment to be detected and the auxiliary detection equipment. This allows the networking detection result to be determined based on the networking status of the equipment to be detected. During the networking process, role information for the master node and slave node can be defined. The master node may refer to a Central Coordinator (CCO). The master node can perform functions such as networking control and network maintenance. The corresponding equipment entity may be a local communication unit of a concentrator. The equipment entity corresponding to the slave node (Station, STA) may serve as a communication unit installed in an electric meter or a collector. For example, it may include an electric meter module, a Type I collector module, or a Type II collector module.

[0093] In the present embodiment, the detection board can determine the role information of the equipment to be detected as a master node or a slave node based on the model information of the equipment to be detected. Specifically, the role information of the equipment to be detected can be determined based on the model information of the equipment to be detected. For example, based on the model information of the equipment to be detected, it can be determined whether the corresponding equipment to be detected is an electric energy meter module, a Type I collector module, a Type II collector module, or an IoT carrier sensing module. If so, the equipment to be detected can be configured as a slave node. Based on the model information of the equipment to be detected, it can be further determined whether the corresponding equipment to be detected is a concentrator local communication unit. If so, the equipment to be detected can be configured as a master node.

[0094] Accordingly, the detection board may configure either the equipment to be detected or the auxiliary detection equipment as a master node and the other as a slave node, depending on the role information of the equipment to be detected. Specifically, the equipment to be detected's role information is configured as either a master node or a slave node according to the model information of the equipment to be detected. Subsequently, the auxiliary detection equipment's role information can be configured according to the equipment to be detected's role information. For example, the equipment to be detected can be configured as a master node, and then the auxiliary detection equipment can be configured as a slave node. Alternatively, the equipment to be detected can be configured as a slave node, and then the auxiliary detection equipment can be configured as a master node.

[0095] Step S330: Based on the networking detection item, control the equipment to be detected and the auxiliary detection equipment to perform networking in at least one communication mode, thereby obtaining the master-slave communication networking status of the equipment to be detected.

[0096] Specifically, the detection board can control the equipment to be detected and the auxiliary detection equipment to perform networking via high-speed power line carrier communication according to the networking detection item. It can also control the equipment to be detected and the auxiliary detection equipment to perform networking via micropower wireless communication. Furthermore, it can control the equipment to be detected and the auxiliary detection equipment to perform networking by combining high-speed power line carrier communication and micropower wireless communication. Finally, it can control the equipment to be detected and the auxiliary detection equipment to perform converged networking by combining high-speed power line carrier communication with one or more of various wireless communications, such as micropower wireless communication, Bluetooth communication, microwave communication, RF communication, and infrared communication.

[0097] Step S340: Determine the networking detection result of the detected equipment based on the master-slave communication networking status.

[0098] Specifically, the detection device and the auxiliary detection device are controlled to perform networking or fused networking in at least one communication mode. Then, the master-slave communication networking status of the detection device is queried, and the networking detection result of the detection device can be determined based on the master-slave communication networking status.

[0099] In the above implementation method, a detection method corresponding to the detection equipment model information of the detection equipment transmitted by the detection control unit is received. Through this, switching tests for different multi-mode communication equipment can be implemented. This improves the adaptability and flexibility of the detection system and enhances detection efficiency.

[0100] In some embodiments, the detection method may further include execution sequence information corresponding to at least one target detection item. The detection method may further include the following steps. That is, at least one target detection item is executed according to the execution sequence information until all at least one target detection item among the detection methods is completely detected or until any one of the at least one target detection item fails to be detected. Through this, target detection results corresponding to each of at least some target detection items among the at least one target detection item are obtained, and equipment detection results are constructed. Thus, when the detection of any one target detection item fails, detection is stopped, and target detection results corresponding to each of at least some target detection items are obtained. Through this, the equipment detection results of the equipment to be detected can be determined immediately, thereby effectively improving the detection effect of the equipment to be detected.

[0101] In some embodiments, the multimode communication equipment detection system may further include a production detection management server connected to a detection control unit. The detection method may further include the following step: uploading the equipment detection result to the detection control unit so that the detection control unit displays the equipment detection result and / or uploads the equipment detection result to the production detection management server. This allows the equipment detection result of the equipment to be detected to be monitored in real time, and makes it easy to observe abnormalities in the equipment to be detected.

[0102] An embodiment of the present specification provides a method for detecting multimode communication equipment. The multimode communication equipment detection method may be applied to a detection control unit of a multimode communication equipment detection system. Referring to FIG. 4, the detection method may include the following steps.

[0103] Step S410: A detection method is determined by performing matching in a configuration file based on the detection equipment model information of the detection equipment. The detection method includes at least one target detection item. The configuration file includes the correspondence between the detection equipment model information and the detection items. At least one target detection item includes at least a networking detection item.

[0104] Specifically, the detection control unit can perform matching in the configuration file by performing a decision with the detection equipment model information of the detection equipment connected to the configuration file. Through this, a detection method including at least one target detection item can be determined. Here, the configuration file may include the correspondence relationship between the detection equipment model information and the detection item. Specifically, the configuration file may include multiple detection equipment model information and multiple detection items. Any one of the detection equipment model information in the configuration file may correspond to one or more of the multiple detection items. Here, at least one target detection item included in the target detection item may include at least a networking detection item. This enables the detection board to determine the networking detection result of the detection equipment according to the networking detection item. For example, the detection control unit may be a host computer such as a Raspberry Pi.

[0105] Step S420: A detection method is transmitted to the detection board so that the detection board determines the role information of the equipment to be detected based on the model information of the equipment to be detected. Here, the role information of the equipment to be detected is used to configure one of the equipment to be detected and the auxiliary detection equipment as a master node and the other as a slave node. Based on the networking detection item, the detection board controls the equipment to be detected and the auxiliary detection equipment to perform networking in at least one communication mode so that the master-slave communication networking status of the equipment to be detected is obtained. The detection board determines the networking detection result of the equipment to be detected according to the master-slave communication networking status.

[0106] Step S430: Receive the networking detection result fed back by the detection substrate.

[0107] In the above implementation method, a corresponding detection method can be rapidly determined based on the model information of the equipment to be detected through the detection control unit. This enables the implementation of switching tests for different multi-mode communication equipment. Since this eliminates the need to modify the hardware conditions of the detection system, the adaptability and flexibility of the detection system are enhanced, and detection efficiency is improved.

[0108] In some embodiments, the detection method further includes execution sequence information corresponding to at least one target detection item. The detection method may further include the following step: receiving equipment detection results fed back by the detection substrate. Here, until at least one target detection item among the detection methods is completely detected or any one of the at least one target detection item fails to detect, the detection substrate executes at least one target detection item according to the execution sequence information, thereby obtaining target detection results corresponding to each of at least some target detection items among the at least one target detection item, and constructing equipment detection results. In this way, when the detection of any one target detection item fails, the detection substrate stops the detection and immediately obtains target detection results corresponding to each of at least some target detection items. Through this, the equipment detection results of the equipment to be detected can be determined immediately, thereby effectively improving the detection effect on the equipment to be detected.

[0109] In some embodiments, the detection system may further include terminal equipment connected to a detection control unit and a production detection management server. The number of detection boards and auxiliary detection boards is multiple. Multiple detection boards may be connected to correspond individually with multiple auxiliary detection boards. Referring to FIG. 5, a detection method is determined by performing matching in a configuration file according to the detection equipment model information of the equipment to be detected. This may include the following steps.

[0110] Step S510: In response to a task to select detection equipment model information for detection equipment connected to each of a plurality of detection boards via terminal equipment, detection equipment model information for each of the plurality of detection equipment is determined, and at least one detection equipment model information is obtained.

[0111] Step S520: A request for determining a solution containing at least one model information of equipment to be detected is transmitted to the production detection management server. Based on the at least one model information of equipment to be detected, the production detection management server performs matching in the configuration file to obtain at least one detection solution. Here, the at least one model information of equipment to be detected corresponds one-to-one with at least one detection solution.

[0112] In some cases, a configuration file may be stored on the production detection management server. Specifically, the configuration file may include multiple detection equipment model information and multiple detection items. Any of the detection equipment model information in the configuration file may correspond to one or more of the multiple detection items.

[0113] For example, the production detection management server can be configured by modifying the correspondence between the detection equipment model information included in the configuration file and the detection items.

[0114] Step S530: Receive at least one detection plan transmitted via feedback from the production detection management server.

[0115] In some cases, the production detection management server may transmit the at least one detection method obtained by matching to the detection control unit.

[0116] In the present embodiment, the detection control unit may receive at least one detection method transmitted via feedback from a production detection management server. Additionally, based on the model information of a detection device of any one detection device, it may transmit a corresponding detection method among the received at least one detection method to a corresponding detection substrate. By doing so, the corresponding detection substrate is enabled to execute the detection method, thereby determining the equipment detection result of the corresponding detection device.

[0117] In the above implementation method, information on the model of the equipment to be detected is transmitted to the production detection management server. This enables the corresponding detection method to be quickly determined through the production detection management server.

[0118] In some embodiments, a detection method is transmitted to a detection substrate. This may include the following steps. Based on the model information of one of the multiple detection devices, a corresponding detection method among at least one detection method is transmitted to a corresponding detection substrate. This enables the detection substrate to determine the equipment detection result of the detection device according to the corresponding detection method. In this way, mass detection and automatic detection can be performed on multiple detection devices. This can effectively improve the detection efficiency and labor costs of the detection devices.

[0119] In an embodiment of the present application, the detection substrate, the auxiliary detection substrate connected to the detection substrate, and the detection control unit may each be one or more processors, controllers, or chips capable of implementing a communication protocol having a communication interface. If necessary, these may include memory and other related interfaces, a system transmission bus, etc. The processor, controller, or chip implements corresponding functions by executing program-related code.

[0120] An embodiment of the present specification provides a multimode communication equipment detection device. The multimode communication equipment detection device may be applied to a detection substrate of a multimode communication equipment detection system. Referring to FIG. 6, the detection device may include a detection plan receiving module (610), a role information determination module (620), a detection plan execution module (630), and a detection result determination module (640).

[0121] The detection plan receiving module (610) is used to receive a detection plan transmitted from a detection control unit that includes at least one target detection item. Here, at least one target detection item is determined by performing matching in a configuration file according to the detection equipment model information of the detection equipment. The configuration file includes the correspondence relationship between the detection equipment model information and the detection items. At least one target detection item includes at least a networking detection item.

[0122] The role information determination module (620) is used to determine the role information of the equipment to be detected based on the equipment to be detected model information. Here, the equipment to be detected role information is used to configure one of the equipment to be detected and the auxiliary detection equipment as a master node and the other as a slave node.

[0123] The detection method execution module (630) is used to obtain the master-slave communication networking status of the equipment to be detected by controlling the equipment to be detected and the auxiliary equipment to perform networking in at least one communication mode based on the networking detection item.

[0124] The detection result determination module (640) is used to determine the networking detection result of the equipment to be detected according to the master-slave communication networking status.

[0125] An embodiment of the present specification provides a multimode communication equipment detection device. The multimode communication equipment detection device may be applied to a detection control unit of a multimode communication equipment detection system. Referring to FIG. 7, the detection device may include a detection plan determination module (710), a detection plan transmission module (720), and a detection result receiving module (730).

[0126] The detection method determination module (710) is used to obtain a detection method by performing matching in a configuration file according to the detection device model information of the detection device. Here, the detection method includes at least one target detection item. The configuration file includes the correspondence relationship between the detection device model information and the detection item. At least one target detection item includes at least a networking detection item.

[0127] The detection plan transmission module (720) is used to transmit a detection plan to the detection board so that the detection board determines the detection equipment role information of the detection equipment based on the detection equipment model information. Here, the detection equipment role information is used to configure one of the detection equipment and the auxiliary detection equipment as a master node and the other as a slave node. The detection board controls the detection equipment and the auxiliary detection equipment to perform networking in at least one communication mode based on the networking detection item, thereby obtaining the master-slave communication networking status of the detection equipment. The detection board determines the networking detection result of the detection equipment according to the master-slave communication networking status.

[0128] The detection result receiving module (730) is used to receive networking detection results fed back from the detection substrate.

[0129] Specific functions and effects regarding the implementation of the detection device can be interpreted by comparison with reference to other embodiments of this specification. Therefore, they are not described repeatedly here. Each module of the detection device may be implemented wholly or partially through software, hardware, or a combination thereof. Each module may be embedded in the processor of a computer device in the form of hardware or exist independently. Additionally, it may be stored in the memory of a computer device in the form of software to facilitate the execution of operations corresponding to each module when called by the processor.

[0130] Referring to FIG. 8, some embodiments may provide computer equipment. This includes memory and a processor. A computer program is stored in the memory. When the processor executes the computer program, a detection method according to the embodiment is implemented.

[0131] An embodiment of the present specification further provides a computer-readable storage medium, wherein a computer program is stored. When the computer program is executed by a computer, the computer executes a detection method according to any one of the embodiments.

[0132] An embodiment of the present invention further provides a computer program product containing instructions. When the instructions are executed by a computer, the computer executes a detection method according to any one of the embodiments.

[0133] In one embodiment, computer equipment is provided. The computer equipment may be a terminal, and its internal structure may be as illustrated in FIG. 8. The computer equipment includes a processor, memory, and a communication interface connected by a system bus. Here, the processor of the computer equipment is used to provide computing and control capabilities. The memory of the computer equipment includes a non-volatile storage medium and an embedded memory. An operating system and a computer program are stored in the non-volatile storage medium. The embedded memory provides an environment for the operation of the operating system and the computer program on the non-volatile storage medium. The communication interface of the computer equipment is used to perform wired or wireless communication with an external terminal. The wireless method may be implemented via WIFI, a carrier network, NFC (Near Field Communication), or other technologies. When the computer program is executed by the processor, a detection method is implemented.

[0134] It will be understood that the specific examples in this specification are intended only to help those skilled in the art better understand the methods of implementation of this specification and do not limit the scope of the invention.

[0135] In the various embodiments of this specification, the size of the serial number of each process does not imply an execution order, and the execution order of each process must be determined according to its function and internal logic. It should be noted that the implementation process of the embodiments of this specification cannot be arbitrarily limited.

[0136] The various embodiments described in this specification may be implemented individually or in combination. It should be noted that the embodiments of this specification are not limiting.

[0137] Unless otherwise defined, all technical and scientific terms used in the embodiments of this specification have the same meaning as commonly understood by those skilled in the art to which this specification pertains. The terms used in this specification are for the purpose of describing specific embodiments and should not be understood as limiting the scope of this specification. The term "and / or" used in this specification includes any combination of one or more related items. Unless otherwise indicated in the context, the singular forms of "a kind," "above," and "corresponding" used in the embodiments of this specification and the appended claims also include the plural forms.

[0138] It is understood that the processor in the embodiments of this specification may be an integrated circuit chip with signal processing capabilities. In the course of implementation, each step of the embodiments of the method may be completed through an integrated logic circuit in the hardware or an instruction in the form of software of the processor. The processor may be a general-purpose processor, a Digital Signal Processor (DSP), an Application Specific Integrated Circuit (ASIC), a Field Programmable Gate Array (FPGA) or other programmable logic device, a discrete gate or transistor logic device, a discrete hardware component, etc. Each method, step, and logic block diagram disclosed in the embodiments of this specification may be implemented or executed. The general-purpose processor may be a microprocessor, and the processor may be any general-purpose processor, etc. The step of combining the method disclosed in the embodiments of this specification may be directly implemented by a hardware decoding processor or executed by a combination of hardware and software modules of the decoding processor. The software module may be located on a storage medium known in the art, such as random access memory, flash memory, read-only memory, programmable read-only memory, electrically eraseable and programmable memory, or registers. The storage medium is located in memory, and the processor reads the information in memory and combines it with the hardware to complete the steps of the method.

[0139] In the embodiments of this specification, the memory may be volatile memory or non-volatile memory. Or it may be understood that it may include both volatile memory and non-volatile memory. Here, the non-volatile memory may be read-only memory (ROM), programmable read-only memory (programmable ROM, PROM), erasable and programmable read-only memory (erasable PROM, EPROM), electrically erasable and programmable read-only memory (EEPROM), or flash memory. The volatile memory may be random access memory (RAM). It should be noted that the memory of the system and method described herein includes, but is not limited to, these and any other suitable type of memory.

[0140] Those skilled in the art to which the present invention pertains will understand that the exemplary units and algorithm steps described in combination with the embodiments disclosed herein may be implemented by electronic hardware or by a combination of computer software and electronic hardware. Whether such functions are implemented by hardware or software depends on the specific application and design constraints of the technical solution. Those skilled in the art may implement the described functions using different methods for each specific application, but such implementations should not be construed as being outside the scope of this specification.

[0141] Those skilled in the art will understand that, for the sake of convenience and brevity of explanation, the specific working processes of the systems, devices, and units described above are not repeated here, as they can be referred to in the corresponding processes in the implementation of the methods described above.

[0142] It should be understood that in some of the embodiments provided herein, the disclosed systems, devices, and methods may be implemented in other ways. For example, the device embodiments described above are merely examples. For example, the division of the unit is merely a logical functional division, and in actual implementation, there may be other division methods, for example, a plurality of units or components may be combined or integrated into other systems, some features may be omitted, or not implemented. Also, the mutual coupling or direct coupling or communication connection shown or discussed may be an indirect coupling or communication connection of some interfaces, devices, or units, and may be electrical, mechanical, or of other forms.

[0143] The unit described as a separated member may be physically separated. The member indicated as a unit may not be a physical unit. That is, it may be located at a single point or distributed across multiple network units. Depending on actual needs, some or all of the units may be selected to achieve the purpose of the technical solution according to this embodiment.

[0144] Additionally, each functional unit in each embodiment of this specification may be integrated into a single processing unit. Furthermore, each unit may exist physically independently, or two or more units may be integrated into a single unit.

[0145] When the above function is implemented in the form of a software function unit and sold or used as an independent product, it may be stored on a single computer-readable storage medium. Based on this understanding, the technical solution of the present invention may be implemented in the form of a software product, either in essence or in part contributing to the prior art, or in part of the technical solution. The computer software product is stored on a single storage medium. It may contain various instructions to enable a single computer device (which may be a personal computer, a server, or network equipment, etc.) to execute all or part of the steps of the method according to each embodiment of this specification. The aforementioned storage medium includes various media capable of storing program code, such as U disks, mobile hard disks, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.

[0146] The above description is merely a specific embodiment of the present specification, and the scope of protection of the present invention is not limited thereto. Those skilled in the art may readily conceive of modifications or substitutions within the technical scope disclosed in the present specification, all of which fall within the scope of protection of the present specification. Accordingly, the scope of protection of the present invention is based on the scope of protection of the above claims.

Claims

Claim 1 In a multimode communication equipment detection system, the detection system comprises a detection board, an auxiliary detection board connected to the detection board, and a detection control unit, wherein the detection board is connected to an equipment to be detected, and the auxiliary detection board is connected to an auxiliary detection board, and the detection control unit is used to perform matching in a configuration file according to the model information of the equipment to be detected connected to the detection board, determine a detection plan including at least one target detection item, and transmit the detection plan to the detection board, wherein the configuration file includes a correspondence relationship between the model information of the equipment to be detected and a detection item, and the at least one target detection item includes at least a networking detection item, and the detection board is used to determine the role information of the equipment to be detected according to the model information of the equipment to be detected, and based on the role information of the equipment to be detected, to configure one of the equipment to be detected and the auxiliary detection equipment as a master node and the other as a slave node; A detection system characterized by controlling the equipment to be detected and the auxiliary detection equipment to perform networking in at least one communication mode based on the above networking detection item, acquiring the master-slave communication networking status of the equipment to be detected, and using the master-slave communication networking status of the equipment to be detected to determine the networking detection result of the equipment to be detected according to the above networking detection item. Claim 2 In claim 1, the detection system further includes a production detection management server connected to the detection control unit, the number of the detection board and the auxiliary detection board is a plurality, and the plurality of detection boards are connected to correspond one-to-one with the plurality of auxiliary detection boards, the detection control unit is used to determine the detection equipment model information of the plurality of detection equipment to obtain at least one detection equipment model information, and to transmit a plan determination request containing the at least one detection equipment model information to the production detection management server, the production detection management server is used to obtain at least one detection plan by performing matching in the configuration file based on the at least one detection equipment model information included in the received plan determination request, wherein the at least one detection equipment model information corresponds individually with the at least one detection plan, the production detection management server transmits the at least one detection plan to the detection control unit, and the detection control unit transmits the corresponding detection plan to the corresponding detection board based on the detection equipment model information of one of the detection equipment to the corresponding detection board, and the corresponding detection board corresponds according to the detection plan. A detection system characterized by being further used to determine the equipment detection result of the equipment to be detected. Claim 3 A detection system according to paragraph 2, wherein the detection method further includes execution sequence information corresponding to at least one target detection item, and the detection substrate executes the at least one target detection item according to the execution sequence information until all of the at least one target detection item in the detection method is detected or until any one of the at least one target detection item fails to be detected, thereby obtaining a target detection result corresponding to each of at least some target detection items among the at least one target detection item, and is used to construct the equipment detection result. Claim 4 A detection system according to paragraph 3, wherein the detection substrate is used to upload the equipment detection result to the detection control unit, so that the detection control unit displays the equipment detection result and / or the detection control unit uploads the equipment detection result to the production detection management server. Claim 5 A detection system according to paragraph 2, wherein the system further comprises terminal equipment connected to the detection control unit, and the detection control unit is used to determine the detection equipment model information of the detection equipment in response to a detection equipment model information selection operation for the detection equipment connected to each of the plurality of detection substrates through the terminal equipment. Claim 6 A detection system according to claim 1, wherein at least one detection substrate master node interface and one detection substrate slave node interface are installed on the detection substrate, so that when the equipment to be detected is used as a master node, the equipment to be detected as a master node is connected through one of the detection substrate master node interfaces, or when the equipment to be detected is used as a slave node, the equipment to be detected as a slave node is connected through the detection substrate slave node interfaces, and wherein at least one auxiliary detection substrate master node interface and one auxiliary detection substrate slave node interface are installed on the auxiliary detection substrate, so that when the auxiliary detection equipment is used as a master node, the auxiliary detection equipment to be detected as a master node is connected through one of the auxiliary detection substrate master node interfaces, or when the auxiliary detection equipment is used as a slave node, the auxiliary detection equipment to be detected as a slave node is connected through the auxiliary detection substrate slave node interfaces. Claim 7 A detection system according to claim 1, wherein at least one communication mode comprises power line carrier communication and / or micropower wireless communication. Claim 8 A detection system according to claim 7, wherein the detection substrate includes a core board, and the detection substrate and the auxiliary detection substrate are each equipped with a detection substrate carrier signal interface and an auxiliary detection substrate carrier signal interface, and the core board controls the equipment to be detected and the auxiliary detection equipment to perform power line carrier communication through the detection substrate carrier signal interface and the auxiliary detection substrate carrier signal interface. Claim 9 A detection system according to claim 7, wherein an RF switch control circuit is installed on the auxiliary detection board, the RF switch control circuit is used to perform a switch between a wireless communication mode and a wireless test mode, the RF switch control circuit controls the auxiliary detection equipment and the equipment to be detected to perform micropower wireless communication in the wireless communication mode, and the RF switch control circuit corrects the frequency signal of the micropower wireless communication in the wireless test mode to perform micropower wireless communication with the corrected frequency signal in the wireless communication mode. Claim 10 A detection system according to claim 9, wherein a programmable attenuator is connected to the RF switch control circuit, and the RF switch control circuit determines a wireless signal attenuation value through the programmable attenuator. Claim 11 In a method for detecting multimode communication equipment, the detection method is applied to a detection board of a multimode communication equipment detection system, and the multimode communication equipment detection system further includes an auxiliary detection board and a detection control unit connected to the detection board, wherein the detection board is connected to the equipment to be detected and the auxiliary detection board is connected to the auxiliary detection board, and the detection method comprises the step of receiving a detection plan transmitted from the detection control unit containing at least one target detection item - wherein the at least one target detection item is determined by performing matching in a configuration file according to the model information of the equipment to be detected, and the configuration file includes the corresponding relationship between the model information of the equipment to be detected and the detection item, and the at least one target detection item includes at least a networking detection item -; the step of determining the role information of the equipment to be detected based on the model information of the equipment to be detected - wherein the role information of the equipment to be detected is used to configure one of the equipment to be detected and the auxiliary detection equipment as a master node and the other as a slave node -; wherein, based on the networking detection item, the equipment to be detected and the auxiliary detection equipment network in at least one communication mode A detection method characterized by comprising: a step of controlling to perform to obtain a master-slave communication networking state of the equipment to be detected; and a step of determining a networking detection result of the equipment to be detected according to the master-slave communication networking state. Claim 12 In claim 11, the detection method further comprises execution sequence information corresponding to at least one target detection item, and the detection method further comprises the step of executing at least one target detection item according to the execution sequence information until all of the at least one target detection item among the detection methods is detected or any one of the at least one target detection item fails to be detected, thereby obtaining a target detection result corresponding to each of at least some target detection items among the at least one target detection item and configuring an equipment detection result. Claim 13 In claim 12, the multi-mode communication equipment detection system further includes a production detection management server connected to the detection control unit, and the detection method further includes the step of uploading the equipment detection result to the detection control unit so that the detection control unit displays the equipment detection result and / or uploads the equipment detection result to the production detection management server. Claim 14 In a method for detecting multimode communication equipment, the detection method is applied to a detection control unit of a multimode communication equipment detection system, and the multimode communication equipment detection system further includes a detection board connected to the detection control unit and an auxiliary detection board connected to the detection board, wherein the detection board is connected to an equipment to be detected and the auxiliary detection board is connected to an auxiliary detection board, and the detection method comprises the step of determining a detection plan by performing matching in a configuration file according to the equipment to be detected model information of the equipment to be detected - wherein the detection plan includes at least one target detection item, the configuration file includes a correspondence relationship between the equipment to be detected model information and the detection item, and the at least one target detection item includes at least a networking detection item -; transmitting the detection plan to the detection board so that the detection board determines the equipment to be detected role information of the equipment to be detected based on the equipment to be detected model information - wherein the equipment to be detected role information is used to configure one of the equipment to be detected and the auxiliary detection equipment as a master node and the other as a slave node - and the detection board, based on the networking detection item, the equipment to be detected A detection method characterized by comprising: a step of controlling the equipment and the auxiliary detection equipment to perform networking in at least one communication mode to obtain a master-slave communication networking state of the equipment to be detected, and the step of the detection substrate determining a networking detection result of the equipment to be detected according to the master-slave communication networking state; and a step of receiving the networking detection result fed back by the detection substrate. Claim 15 In claim 14, the detection method further includes execution sequence information corresponding to at least one target detection item, and the detection method further includes the step of receiving an equipment detection result fed back by the detection substrate, and until all of the at least one target detection item among the detection method is detected or any one of the at least one target detection item fails to be detected, the detection substrate executes the at least one target detection item according to the execution sequence information to obtain a target detection result corresponding to each of at least some target detection items among the at least one target detection item and to construct an equipment detection result. Claim 16 In claim 15, the detection system further comprises terminal equipment connected to the detection control unit and a production detection management server, wherein the number of detection boards and auxiliary detection boards is multiple, and the multiple detection boards are connected to correspond one-to-one with the multiple auxiliary detection boards, and the step of determining a detection plan by performing matching in a configuration file according to the detection equipment model information of the detection equipment is: a step of determining the detection equipment model information of each of the multiple detection equipment in response to a detection equipment model information selection operation for the detection equipment connected to each of the multiple detection boards through the terminal equipment, thereby obtaining at least one detection equipment model information; a step of transmitting a plan determination request containing the at least one detection equipment model information to the production detection management server, so that the production detection management server performs matching in the configuration file based on the at least one detection equipment model information to obtain at least one detection plan - the at least one detection equipment model information corresponds one-to-one with the at least one detection plan -; A detection method characterized by including the step of receiving at least one detection method transmitted via feedback from the production detection management server. Claim 17 In claim 16, the step of transmitting the detection plan to the detection substrate comprises the step of transmitting a corresponding detection plan among at least one detection plan to the corresponding detection substrate based on the detection device model information of any one of the plurality of detection devices, so that the detection substrate can determine the equipment detection result of the detection device according to the corresponding detection plan. Claim 18 A computer-readable storage medium in which a computer program is stored, wherein when the computer program is executed by a processor, a detection method according to any one of claims 11 to 17 is implemented.

Citation Information

Patent Citations

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    CN110868328A