A method of testing a mobile communications network

By installing data acquisition modules and wireless spectrum collectors on communication equipment, combined with positioning modules and audible and visual alarms, the on-site testing challenges of mobile communication networks were solved, enabling remote real-time monitoring and efficient maintenance, and ensuring the normal operation of communication equipment.

CN119325103BActive Publication Date: 2025-11-04CSG EHV POWER TRANSMISSION +1
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Patent Information

Application Number
CN202411322711.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-09-23
Publication Date
2025-11-04
Estimated Expiration
2044-09-23

AI Technical Summary

Technical Problem

Existing mobile communication network testing requires dispatching personnel with handheld specialized equipment for on-site testing, which cannot promptly detect the network communication status of communication equipment and cannot effectively guarantee the normal use of network communication.

Method used

By installing a data acquisition module on the communication equipment, noise and voltage data are collected and compared within the standard voltage range. Combined with a wireless spectrum collector and a positioning module, remote monitoring and positioning are performed, and an audible and visual alarm is used to assist in on-site maintenance.

Benefits of technology

It enables remote real-time monitoring and testing of communication equipment, improves the accuracy of data collection and the work efficiency of maintenance personnel, and ensures the normal use of communication equipment.

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Abstract

The application discloses a mobile communication network testing method in the technical field of mobile communication, which comprises the following steps: installing a data acquisition module on a communication device, collecting noise data and voltage data respectively, recording the noise data collected by the data acquisition module as N1, and recording the voltage data as V1; on the basis of the collected voltage data V1, V1 is kept within the range of the maximum voltage and the voltage after power-off; by comparing the collected noise data N1 with the saved noise data N0, whether the communication device is abnormal is determined according to the comparison result, the mobile communication network testing method can collect the noise data of the communication device within the standard voltage range, determine whether the network signal of the communication device is abnormal according to the change of the noise data, and can remotely and real-timely supervise and test the communication device, thereby guaranteeing the normal use of the communication device.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of mobile communication technology, in particular to a mobile communication network testing method. BACKGROUND

[0002] Mobile communication network refers to the communication medium for realizing the communication between mobile users and fixed point users or between mobile users. Mobile communication network is an important branch of communication network. Wireless communication is widely welcomed by users due to its mobility, freedom, and characteristics of not being restricted by time and place. In the modern communication field, it is one of the three important communication means together with satellite communication and optical communication.

[0003] With the development of new power systems, the construction of power communication network is particularly important, and is a necessary basis for ensuring the safe and stable operation of the power system. The real-time control business of power puts forward very high requirements on the reliability, security and time delay consistency of communication. As the largest special communication network in the world, the current power communication network in China mainly uses optical fiber communication supplemented by wireless cellular communication, which realizes the full coverage of power places.

[0004] The existing mobile communication network testing needs to dispatch personnel to hold special equipment for on-site testing and detection, which cannot detect the communication situation of the communication equipment network in time, and cannot effectively and timely ensure the normal use of network communication. Therefore, how to perform remote testing and ensure the normal use of communication equipment is a problem to be solved by technical personnel in the technical field. SUMMARY

[0005] The present application relates to the field of mobile communication technology, in particular to a mobile communication network testing method.

[0006] To achieve the above-mentioned purpose, the present application provides the following technical scheme: a mobile communication network testing method, the mobile communication network testing method comprising the following steps:

[0007] S1: collecting noise data generated by the communication equipment under maximum voltage output and noise data generated by the communication equipment after cutting off the voltage, saving the collected noise data as comparison data, denoted as N0;

[0008] S2: installing a data acquisition module on the communication equipment, collecting noise data and voltage data respectively, the noise data collected by the acquisition module is denoted as N1, and the voltage data is denoted as V1;

[0009] S3: based on the collected voltage data V1, V1 is kept in the range of the maximum voltage and the voltage after power-off, by comparing the collected noise data N1 and the saved noise data N0, whether the communication equipment is abnormal is judged by the comparison result.

[0010] Preferably, the collection module is a voltage sensor and a first wireless spectrum collector, respectively.

[0011] Preferably, the voltage sensor and the first wireless spectrum collector are respectively electrically connected with a processing module, the processing module is electrically connected with a storage module and a control module, for executing comparison of the collected data and the stored data, and transmitting the comparison result to the control module, and the control module outputs different control signals according to the comparison result.

[0012] Preferably, the collection module further comprises a second wireless spectrum collector, the collection component on the second wireless spectrum collector is arranged towards the communication equipment, for collecting environmental noise data, and compensating the collected noise data N1.

[0013] Preferably, the control module is embedded with a communication module, for executing remote data communication transmission.

[0014] Preferably, the control module is embedded with a positioning module, the positioning module is electrically connected with the communication module, for positioning the position of the communication equipment and transmitting the positioning information to the communication module remotely.

[0015] Preferably, the control module is embedded with an audible and visual alarm, for assisting the positioning module to mark the position of the communication equipment.

[0016] Preferably, the second wireless spectrum collector comprises the following specific operation steps:

[0017] A1: collecting environmental noise data N2 by the second wireless spectrum collector, and comparing the collected environmental noise data N2 with the collected noise data N1;

[0018] A2: eliminating the data about the environmental noise data N2 in the noise data N1 by comparing the environmental noise data N2 with the noise data N1, and reserving the noise data of the communication equipment.

[0019] Preferably, the positioning module comprises the following specific operation steps:

[0020] B1: the positioning module collects the geographic position information of the communication equipment, and transmits the geographic position information to the communication module;

[0021] B2: sending the comparison result and the geographic position information to the background database of the communication company through the communication module.

[0022] Preferably, the sound and light alarm comprises the following specific operation steps:

[0023] C1: After the communication company receives the comparison result and the geographic location information, if on-site maintenance of the communication device is needed, the communication company sends maintenance personnel to query the communication device needing maintenance according to the geographic location information;

[0024] C2: When the maintenance personnel arrive near the communication device according to the geographic location information, the communication device is quickly positioned according to the sound and light emitted by the sound and light alarm.

[0025] Compared with the prior art, the present application has the beneficial effects that:

[0026] (1) By collecting noise data of the communication device in the standard voltage range, whether the network signal of the communication device is abnormal is judged according to the change of the noise data, the communication device can be remotely supervised and tested in real time, and the normal use of the communication device is ensured;

[0027] (2) The environmental noise data collected by the second wireless spectrum collector is recorded as N2, the collected noise data N1 of the communication device is subtracted from the collected environmental noise data N2, the environmental noise data in the noise data N1 is eliminated, the collected noise data N1 is compensated, and the precision of data collection is improved;

[0028] (3) The geographic location information is collected by the positioning module, the communication device maintenance personnel position the faulty communication device according to the geographic location information, and the communication device can be further quickly positioned according to the sound and light emitted by the sound and light alarm after the maintenance personnel arrive at the scene, so as to indirectly improve the work efficiency of the maintenance personnel. BRIEF DESCRIPTION OF DRAWINGS

[0029] Figure 1 The present application is a system structure schematic diagram;

[0030] Figure 2 The present application is a system flow schematic diagram. DETAILED DESCRIPTION

[0031] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.

[0032] The application provides a mobile communication network testing method, which can remotely and real-timely supervise and test the communication equipment by collecting noise data of the communication equipment in a standard voltage range, judging whether the network signal of the communication equipment is abnormal according to the change of the noise data, and guaranteeing the normal use of the communication equipment.

[0033] Embodiment 1

[0034] The device comprises a collecting module, a storage module, a processing module and a control module, wherein the collecting module comprises a voltage sensor and a first wireless frequency spectrum collector, the voltage sensor is used for collecting voltage input data of the communication equipment, the data collecting end of the first wireless frequency spectrum collector corresponds to the communication equipment and is used for collecting noise data N1 generated by the communication equipment under normal voltage input, the storage module stores comparison data N0, that is, noise data N0 of the communication equipment under maximum voltage input 0-1 and noise data N0 of the communication equipment under power-off 0-2 , the processing module is used for comparing the noise data N1 and the comparison data N0 and outputting a comparison result, and the control module is used for receiving the comparison result and outputting different control signals according to the comparison result.

[0035] S1: collecting noise data generated by the communication equipment under maximum voltage output and noise data generated by the communication equipment after the voltage is cut off, saving the collected noise data as comparison data, denoted as N0;

[0036] S2: installing a data collecting module on the communication equipment, collecting noise data and voltage data respectively, denoting the noise data collected by the data collecting module as N1 and the voltage data as V1;

[0037] S3: based on the collected voltage data V1, V1 is kept in the range of maximum voltage and voltage after power-off, comparing the collected noise data N1 and the saved noise data N0, and judging whether the communication equipment is abnormal according to the comparison result;

[0038] When the voltage data V1 is between the maximum voltage and 0, N 0-2 <N1<N 0-1 , which indicates that the network transmission of the communication equipment is normal, when N1 is closer to N 0-2 , which indicates that the network signal is better, when N1 is closer to N 0-1 , which indicates that the network signal is worse, when N1 is lower than N 0-2 or higher than N 0-1 , which indicates that the communication equipment is abnormal and needs to be repaired in time.

[0039] Embodiment 2

[0040] The collection module further comprises a second wireless spectrum collector, and a collection component on the second wireless spectrum collector is arranged towards the communication device for collecting environmental noise data, since the wireless spectrum collector is affected by environmental noise when collecting noise data, the collected data is not accurate enough, therefore, the application further comprises a plurality of second wireless spectrum collectors for collecting environmental noise, the collected environmental noise is denoted as N2, the noise data N1 of the communication device is subtracted by the collected environmental noise data N2 to eliminate the environmental noise data in the noise data N1, thereby compensating the collected noise data N1 to improve the accuracy of data collection, and the specific steps include the following steps:

[0041] A1: collecting environmental noise data through the second wireless spectrum collector, denoted as N2, and comparing the collected environmental noise data N2 with the collected noise data N1;

[0042] A2: eliminating the data related to the environmental noise data N2 in the noise data N1 by comparing the environmental noise data N2 with the noise data N1, and retaining the noise data of the communication device;

[0043] The wireless spectrum collector is affected by environmental noise when collecting noise data.

[0044] Embodiment 3

[0045] The control module is embedded with a communication module for performing remote data communication transmission, the control module is embedded with a positioning module, the positioning module is electrically connected with the communication module, for positioning the position of the communication device and transmitting the positioning information to the communication module, the control module is embedded with an audible and visual alarm for assisting the positioning module to mark the position of the communication device;

[0046] The specific operation steps include the following steps:

[0047] B1: the positioning module collects the geographical position information of the communication device and transmits the geographical position information to the communication module;

[0048] B2: the communication module sends the comparison result and the geographical position information to the background database of the communication company;

[0049] B3: after the communication company receives the comparison result and the geographical position information, if it is necessary to maintain the communication device on site, the communication company sends maintenance personnel to the communication device according to the geographical position information;

[0050] B4: when the maintenance personnel arrive at the vicinity of the communication device according to the geographical position information, the audible and visual alarm is used to further quickly position the communication device, thereby indirectly improving the work efficiency of the maintenance personnel.

[0051] Although the present application has been described with reference to the embodiments above, various changes and modifications can be suggested to one skilled in the art, and it is intended that the present application encompass such changes and modifications as fall within the scope of the appended claims. Particularly, each feature of the disclosed embodiments can be combined with each other feature, provided that the structure does not contradict itself, and that the combination is not explicitly excluded by the claims. Thus, the present application is not intended to be limited to the particular embodiments disclosed in the specification, but it is intended to cover all the technical possibilities falling within the scope of the claims.

Claims

1. A mobile communication network testing method, characterized in that: The mobile communication network testing method includes the following steps: S1: Collect noise data generated by the communication device under maximum voltage output and noise data generated by the communication device after voltage cutoff. Save the collected noise data as comparison data, denoted as S1. ; S2: Install a data acquisition module on the communication equipment to collect noise data and voltage data respectively. The noise data collected by the acquisition module is denoted as... Voltage data is ; S3: Based on the collected voltage data Based on, Maintaining the voltage within the range of maximum voltage and voltage after power failure, by analyzing the collected noise data. and saved noise data A comparison is performed to determine if there are any abnormalities in the communication equipment. Noise data of the communication equipment is set under maximum voltage input conditions. And noise data of communication equipment during power outages. When voltage data Between the maximum voltage and 0 < < This indicates that the network transmission of the communication equipment is normal. The closer The closer the signal, the better the network signal and the closer the location. When the signal is weaker, it indicates a poorer network signal. Below or higher If this occurs, it indicates that there is an abnormality in the communication equipment, and the equipment needs to be repaired promptly.

2. The mobile communication network testing method according to claim 1, characterized in that: The acquisition modules are a voltage sensor and a first wireless spectrum acquisition device.

3. The mobile communication network testing method according to claim 2, characterized in that: The voltage sensor and the first wireless spectrum collector are electrically connected to a processing module. The processing module is electrically connected to a storage module and a control module. It is used to compare the collected data and the stored data, and send the comparison result to the control module. The control module outputs different control signals according to the comparison result.

4. The mobile communication network testing method according to claim 1, characterized in that: The acquisition module also includes a second wireless spectrum acquisition unit. The acquisition components of the second wireless spectrum acquisition unit are positioned facing the communication device and are used to acquire environmental noise data. Compensation will be provided.

5. A mobile communication network testing method according to claim 3, characterized in that: The control module has an embedded communication module for performing remote data communication transmission.

6. A mobile communication network testing method according to claim 5, characterized in that: The control module has a built-in positioning module, which is electrically connected to the communication module. The positioning module is used to locate the position of the communication device and remotely transmit the positioning information through the communication module.

7. A mobile communication network testing method according to claim 6, characterized in that: The control module has an embedded audible and visual alarm, which is used to assist the positioning module in marking the location of the communication equipment.

8. A mobile communication network testing method according to claim 4, characterized in that: The second wireless spectrum collector includes the following specific operating steps: A1: Environmental noise data is collected using a second wireless spectrum collector, denoted as... And collect environmental noise data With the collected noise data Perform a comparison; A2: By comparing environmental noise data and noise data Eliminate noise data Data on environmental noise in China The data retains the noise data of the communication equipment.

9. A mobile communication network testing method according to claim 6, characterized in that: The positioning module includes the following specific operating steps: B1: The positioning module collects the geographical location information of the communication device and transmits the geographical location information to the communication module; B2: The comparison results and geographical location information are sent to the telecommunications company's backend database via the communication module.

10. A mobile communication network testing method according to claim 7, characterized in that: The audible and visual alarm device includes the following specific operating steps: C1: After receiving the comparison results and geographical location information, if the telecommunications operator needs to perform on-site maintenance on the communication equipment, the telecommunications operator will dispatch maintenance personnel to query the communication equipment that needs maintenance based on the geographical location information; C2: When maintenance personnel arrive near the communication equipment based on the geographical location information, they can quickly locate the communication equipment based on the sound and light emitted by the sound and light alarm.

Citation Information

Patent Citations

  • Transformer monitoring system and monitoring method

    CN107272486A

  • System and method for testing communication performance of information acquisition system based on high-speed carrier waves

    CN114050847A