FTTR networking quality detection management system, method, device and equipment

The FTTR network quality inspection and management system provides unified management of FTTR networks, solving the problems of incomplete inspection and decentralized management, achieving efficient and accurate FTTR network quality inspection, and improving user experience.

CN121509857APending Publication Date: 2026-02-10CHINA MOBILEHANGZHOUINFORMATION TECH CO LTD +3
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Patent Information

Application Number
CN202511761560.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-27
Publication Date
2026-02-10

AI Technical Summary

Technical Problem

Existing technologies cannot comprehensively and accurately detect the quality of FTTR networks, leading to misjudgments and poor user experience, as well as insufficient decentralized management and detection capabilities.

Method used

This paper provides an FTTR network quality testing and management system, which performs quality testing tasks on gateway devices through the management platform, including segmented speed measurement, optical power detection, master-slave gateway connection detection, and master-slave gateway distance analysis, thereby realizing unified management of FTTR master-slave gateways.

Benefits of technology

It improves the overall quality and user experience of FTTR networking, solves the problems of decentralized management and insufficient detection capabilities, and ensures the accuracy and comprehensiveness of detection results.

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Abstract

The invention relates to the technical field of network management and service support, and provides an FTTR networking quality detection management system, method, device and equipment, the system comprises a management platform end, a user end and a gateway equipment end, the management platform end is used for executing a quality detection task on the gateway equipment end according to an FTTR networking quality detection request, and sending the quality detection task to the user end; obtaining a quality detection result, and feeding back the quality detection result to the user side; and the user side is also used for obtaining an analysis result according to the quality detection result. According to the invention, unified management of the FTTR master and slave gateways is realized, the current problems of decentralized management, insufficient detection capability, incomplete test and the like are solved, and the overall quality and user experience of FTTR networking are improved.
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Description

Technical Field

[0001] This invention relates to the field of network management and service support technology, and in particular to an FTTR network quality detection and management system, method, apparatus and equipment. Background Technology

[0002] FTTR (Fiber to the Room) is a home and office network solution based on fiber optic access technology, designed to extend fiber optic cables to every room in a building. Compared to traditional Fiber to the Home (FTTH), FTTR significantly improves network performance and user experience in home and office environments, especially in scenarios with multiple devices and high concurrency. FTTR uses fiber optic cabling to connect a main gateway device to multiple secondary gateways, achieving high-speed, stable, all-optical network coverage in every room. The main gateway connects to the Fiber Optic Access Point (OLT) and is responsible for interacting with the external network, while the secondary gateways are distributed throughout the rooms, providing high-speed Wi-Fi coverage or wired connections, ensuring low latency, high bandwidth, and network stability.

[0003] Currently, the installation and maintenance quality management of FTTR networks mainly relies on the following traditional technical methods: 1. Main Gateway Quality Verification Management: Currently, FTTR main gateway devices are treated as traditional optical modem devices in network management. Management of the main gateway is achieved through the RMS (Remote Management System) platform using the TR069 protocol, primarily to test its speed measurement capabilities. While this method can achieve basic gateway management, it has limitations in coverage and accuracy because it was not originally designed for FTTR, and therefore cannot fully reflect the specific needs of FTTR networking.

[0004] 2. Slave Gateway Quality Verification Management: In FTTR networking, the slave gateway acts as an extension device, communicating with the networking platform via TCP protocol, primarily testing its speed measurement capabilities. However, this method only performs a simple speed test and fails to analyze key indicators such as the slave gateway's deployment environment and connection status with the master gateway. This simplistic speed measurement method may lead to misjudgments in practical applications and cannot accurately reflect the user's actual experience.

[0005] 3. Low Light Detection of Optical Modems: Low light detection of optical modems is performed using a PDA (Personal Digital Assistant) tool, which can detect the optical signal strength of both master and slave optical modems. However, this detection method requires manual operation by installation and maintenance personnel, which is not only time-consuming and labor-intensive, but also prone to instability in the detection results due to human factors. Furthermore, the detection range of PDA tools is limited and cannot cover all quality parameters in an FTTR network.

[0006] 4. WiFi Coverage Detection: Existing WiFi coverage detection primarily relies on networking SDKs to detect WiFi signal strength and the rationality of the network layout. However, networking SDKs can only detect the local status of devices and cannot comprehensively analyze the rationality and effectiveness of the entire network system. Furthermore, in actual installation and maintenance work, installers may conduct WiFi signal strength tests at locations close to the equipment, which can lead to distorted test results that fail to effectively reflect the user's actual usage environment. Summary of the Invention

[0007] To address the problems existing in the prior art, this invention provides an FTTR networking quality detection and management system, method, apparatus, and equipment.

[0008] This invention provides an FTTR network quality detection and management system, comprising: Gateway devices include master gateways and slave gateways; The user terminal is used to send an FTTR network quality test request to the management platform. The management platform is used to perform a quality detection task on the gateway device according to the FTTR networking quality detection request, obtain the quality detection result, and feed the quality detection result back to the user terminal; The user terminal is also used to obtain analysis results based on the quality inspection results.

[0009] According to the FTTR network quality testing and management system provided by the present invention, the management platform includes a controller module, an execution task unit, and an FTTR master-slave gateway management module, wherein: The controller module is used to schedule a quality inspection task to be performed on the gateway device by the execution task unit according to the FTTR networking quality inspection request. The task execution unit is used to send detection instructions to the FTTR master-slave gateway management module according to the quality detection task. The FTTR master-slave gateway management module is used to transmit the detection command to the gateway device and collect quality detection data to feed back to the execution task unit. The task execution unit is also used to obtain quality inspection results based on the quality inspection data and to feed the quality inspection results back to the controller module; The controller module is also used to feed back the quality inspection results to the user terminal.

[0010] According to the FTTR network quality detection and management system provided by the present invention, the quality detection tasks include segmented speed measurement, optical power detection, master-slave gateway connection detection, and master-slave gateway distance analysis. Correspondingly, the task execution unit includes a segmented speed measurement module, an optical power detection module, a master-slave connection module, and a distance analysis module, wherein: The segmented speed test module is used to determine the network speed from the main gateway to the speed test server, from the secondary gateway to the speed test server, and between the main and secondary gateways based on the quality test data, and to determine the network performance status based on the network speed. The optical power detection module is used to determine the optical power of the master gateway and slave gateway based on the quality detection data, and to determine the health status of the FTTR network links based on the optical power. The master-slave connection module is used to determine the uplink connection method of the slave gateway, the uplink connection method of the master gateway, and the negotiation rate between the master and slave gateways based on the quality test data, and to determine the reasonableness of the master-slave connection method based on the negotiation speed. The distance analysis module is used to determine the physical distance between the master and slave gateways and the physical distance between slave gateways based on the quality inspection data, and to determine the rationality of the gateway layout based on the physical distance.

[0011] According to the FTTR network quality detection and management system provided by the present invention, the quality detection data includes Wi-Fi information around the gateway. Accordingly, the distance analysis module is specifically used to: determine the Wi-Fi information of the main gateway based on the Wi-Fi information around the main gateway, determine the Wi-Fi signal strength of the main gateway based on the Wi-Fi information of the main gateway, determine the physical distance between the main and secondary gateways based on the Wi-Fi signal strength of the main gateway, and determine the rationality of the gateway layout based on the physical distance.

[0012] According to the FTTR network quality detection and management system provided by the present invention, the FTTR master-slave gateway management module is further used to establish an MQTT connection with the FTTR master-slave gateway after the broadband service activation is completed.

[0013] According to the FTTR network quality inspection and management system provided by the present invention, the user terminal is specifically used for: identifying and prompting non-compliant inspection items of FTTR network quality based on the quality inspection results, and identifying non-compliant FTTR network installation and maintenance work orders.

[0014] According to the FTTR network quality detection and management system provided by the present invention, the user terminal is further configured to: initiate an FTTR network quality detection request after detecting a signal indicating that the on-site installation and commissioning of the FTTR network is complete.

[0015] This invention also provides a method for FTTR network quality detection and management, comprising: Receive FTTR network quality test requests sent by the user terminal; Based on the FTTR network quality detection request, a quality detection task is performed on the gateway device to obtain the quality detection result, and the quality detection result is fed back to the user terminal so that the user terminal can obtain the analysis result based on the quality detection result.

[0016] According to the FTTR network quality detection management method provided by the present invention, the step of performing a quality detection task on the gateway device according to the FTTR network quality detection request, obtaining a quality detection result, and feeding back the quality detection result to the user terminal includes: Based on the FTTR networking quality detection request, schedule a quality detection task to perform quality detection on the gateway device. According to the quality inspection task, the inspection command is sent to the gateway device and the quality inspection data is collected; The quality inspection results are obtained based on the quality inspection data, and the quality inspection results are fed back to the user terminal.

[0017] According to the FTTR network quality detection and management method provided by the present invention, the quality detection task includes segmented speed measurement, optical power detection, master-slave gateway connection detection, and master-slave gateway distance analysis. Correspondingly, obtaining the quality detection result based on the quality detection data includes: The network speeds from the main gateway to the speed test server, from the secondary gateway to the speed test server, and between the main and secondary gateways are determined based on the quality test data, and the network performance status is determined based on the network speeds. The optical power of the master gateway and slave gateway is determined based on the quality test data, and the health status of the FTTR network links is determined based on the optical power. Based on the quality inspection data, determine the uplink connection method of the gateway, the uplink connection method of the master gateway, and the negotiation rate between the master and slave gateways, and determine the reasonableness of the master-slave connection method based on the negotiation speed; Based on the quality inspection data, determine the physical distance between the master and slave gateways and the physical distance between the slave gateways, and determine the rationality of the gateway layout based on the physical distance.

[0018] According to the FTTR network quality detection and management method provided by the present invention, the quality detection data includes Wi-Fi information around the gateway. Accordingly, the step of determining the physical distance between the master and slave gateways and the physical distance between the slave gateways based on the quality detection data, and determining the reasonableness of the gateway layout based on the physical distance, includes: determining the Wi-Fi information of the master gateway based on the Wi-Fi information around the slave gateway, determining the Wi-Fi signal strength of the master gateway based on the Wi-Fi information of the master gateway, determining the physical distance between the master and slave gateways based on the Wi-Fi signal strength of the master gateway, and determining the reasonableness of the gateway layout based on the physical distance.

[0019] The present invention also provides an FTTR networking quality detection and management device, comprising: The receiving module is used to receive FTTR network quality detection requests sent by the user terminal; The management module is used to perform a quality detection task on the gateway device according to the FTTR network quality detection request, obtain the quality detection result, and feed the quality detection result back to the user terminal so that the user terminal can obtain the analysis result based on the quality detection result.

[0020] The present invention also provides an electronic device, including a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor executes the program to implement any of the FTTR network quality detection and management methods described above.

[0021] The present invention also provides a non-transitory computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, implements any of the FTTR networking quality detection and management methods described above.

[0022] The present invention also provides a computer program product, including a computer program that, when executed by a processor, implements any of the FTTR networking quality detection and management methods described above.

[0023] This invention provides an FTTR network quality testing and management system, method, apparatus, and equipment. The management platform executes quality testing tasks on the gateway devices based on FTTR network quality testing requests sent by the user terminal, obtains the quality testing results, and feeds these results back to the user terminal. The user terminal then uses these results to obtain analysis results, achieving unified management of FTTR master and slave gateways. This solves problems such as current decentralized management, insufficient testing capabilities, and incomplete testing, thereby improving the overall quality of FTTR networks and user experience. Attached Figure Description

[0024] To more clearly illustrate the technical solutions in this invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0025] Figure 1 This is a schematic diagram of the structural framework of the FTTR network quality detection and management system provided by the present invention.

[0026] Figure 2 This is a flowchart illustrating the FTTR networking quality detection and management method provided by the present invention.

[0027] Figure 3 This is a schematic diagram of the FTTR networking quality detection and management device provided by the present invention.

[0028] Figure 4 This is a schematic diagram of the structure of the electronic device provided by the present invention. Detailed Implementation

[0029] To make the objectives, technical solutions, and advantages of this invention clearer, the technical solutions of this invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this invention. All other embodiments obtained by those skilled in the art based on the embodiments of this invention without creative effort are within the scope of protection of this invention.

[0030] Figure 1 This invention illustrates an FTTR network quality detection and management system, see [link / reference]. Figure 1 The system includes a gateway device 11, a user terminal 12, and a management platform 13, wherein: Gateway devices include master gateways and slave gateways; The user terminal is used to send FTTR network quality test requests to the management platform. The management platform is used to perform quality testing tasks on the gateway device based on the FTTR networking quality testing request, obtain the quality testing results, and feed the quality testing results back to the user terminal. On the user end, it is also used to obtain analysis results based on quality inspection results.

[0031] It should be noted that in this invention, in the FTTR networking scenario, the system sets up a centralized management platform, namely the management platform end, which realizes unified management of FTTR master and slave gateways, solves the current problems of decentralized management, insufficient detection capabilities, and incomplete testing, and improves the overall quality of FTTR networking and user experience.

[0032] In this invention, the user terminal is used by personnel installing and maintaining the FTTR network. After the FTTR network installation or maintenance is completed, the personnel send an FTTR network quality test request to the management platform through the user terminal. At this time, due to the unified management of the FTTR master and slave gateways by the management platform, that is, integrating multiple detection and management functions into one platform, the platform performs quality test tasks on the gateway devices according to various preset test tasks, obtains quality test results, and feeds back the quality test results to the user terminal. The quality test tasks include segmented speed measurement, optical power detection, master and slave gateway connection detection, and master and slave gateway distance analysis.

[0033] On the user end, it is also used to obtain analysis results based on the quality inspection results. These analysis results are related to the completion level of FTTR network installation or maintenance. Specifically, this includes: identifying and alerting users to substandard FTTR network quality inspection items based on the results, and identifying unqualified FTTR network installation and maintenance work orders. In other words, it alerts users to substandard quality inspection items and forces installation and maintenance to re-initiate work orders, requiring them to resolve the quality issues on-site and re-initiate the inspection until all inspection items meet the quality standards.

[0034] In a further system of the above system, the management platform includes a controller module, an execution task unit, and an FTTR master-slave gateway management module, wherein: The controller module is used to schedule quality inspection tasks to perform quality inspection on the gateway device end to the execution task unit according to the FTTR networking quality inspection request; The task execution unit is used to send detection instructions to the FTTR master-slave gateway management module according to the quality detection task. The FTTR master-slave gateway management module is used to transmit detection commands to the gateway device and collect quality detection data to feed back to the execution task unit. The task execution unit is also used to obtain quality inspection results based on quality inspection data and to feed the quality inspection results back to the controller module; The controller module is also used to feed back the quality inspection results to the user.

[0035] It should be noted that the controller module is the core control module of the system, responsible for receiving FTTR network quality detection requests from the user end and scheduling various functional modules in the execution task unit to perform corresponding detection tasks. The controller module encapsulates a one-click detection interface, which can automatically call modules such as segmented speed measurement, optical power detection, master-slave connection, and distance analysis. Therefore, the execution task unit includes at least a segmented speed measurement module, an optical power detection module, a master-slave connection module, and a distance analysis module. In other words, the execution task unit issues detection commands adapted to various detection tasks to the FTTR master-slave gateway management module based on the quality detection task.

[0036] The FTTR master-slave gateway management module implements unified management of the FTTR master-slave gateways through the MF interface. After activating broadband services, the FTTR master-slave gateways automatically initiate a connection to the FTTR master-slave gateway management module, that is, after activating broadband services, an MQTT connection is established between the FTTR master-slave gateways and the FTTR master-slave gateway management module. This FTTR master-slave gateway management module acts as a bridge between the hardware layer and the detection module in the system, responsible for transmitting instructions issued by the controller module to the master and slave gateways and collecting quality detection data.

[0037] At this point, the task execution unit first obtains the quality inspection data, calculates the quality inspection result based on the data, and then feeds the result back to the controller module. The controller module then feeds the result back to the user terminal.

[0038] Furthermore, the execution unit includes a segmented velocity measurement module, an optical power detection module, a master-slave connection module, and a distance analysis module, wherein: The segmented speed test module is used to determine the network speed from the main gateway to the speed test server, from the secondary gateway to the speed test server, and between the main and secondary gateways based on the quality test data, and to determine the network performance status based on the network speed. The optical power detection module is used to determine the optical power of the master gateway and slave gateway based on the quality detection data, and to determine the health status of the FTTR network links based on the optical power. The master-slave connection module is used to determine the uplink connection method of the slave gateway, the uplink connection method of the master gateway, and the negotiation rate between the master and slave gateways based on the quality test data, and to determine the reasonableness of the master-slave connection method based on the negotiation speed. The distance analysis module is used to determine the physical distance between the master and slave gateways and the physical distance between slave gateways based on the quality inspection data, and to determine the rationality of the gateway layout based on the physical distance.

[0039] It should be noted that in this invention, the segmented speed measurement module is responsible for measuring the network speed from the main gateway to the speed measurement server, from the slave gateway to the speed measurement server, and between the main and slave gateways in the FTTR network. Segmented speed measurement can help locate bottleneck segments in network performance and provide data support for network optimization.

[0040] This optical power detection module is responsible for detecting the optical power of the master and slave gateways, including uplink and downlink transmit and receive optical power. These parameters are important indicators for assessing the health of FTTR network links.

[0041] This master-slave connection module is used to verify the uplink connection method of the slave gateway, the uplink connection method of the master gateway, and the negotiated rate between the master and slave gateways. This ensures that the master-slave connection method is reasonable and effective, avoiding improper connections from affecting network performance.

[0042] This distance analysis module analyzes the physical distance between master and slave gateways, and between slave gateways, to determine if the device deployment is reasonable. This module can prompt installation and maintenance personnel to adjust the device layout to avoid overly concentrated devices or overlapping signals, thereby optimizing WiFi signal coverage.

[0043] Furthermore, the quality inspection data includes Wi-Fi information around the gateway. Accordingly, the distance analysis module is specifically used to: determine the Wi-Fi information of the main gateway based on the Wi-Fi information around the main gateway, determine the Wi-Fi signal strength of the main gateway based on the Wi-Fi information of the main gateway, determine the physical distance between the main and secondary gateways based on the Wi-Fi signal strength of the main gateway, and determine the rationality of the gateway layout based on the physical distance.

[0044] The specific steps are as follows: 1) Obtain Wi-Fi information from the surrounding area of ​​the device; 2) Remove colons from the MAC addresses of nearby Wi-Fi networks and convert them to uppercase; 3) Since the surrounding Wi-Fi networks detect the MAC addresses of virtual network adapters, which differ somewhat from the main gateway's MAC address, a fuzzy matching method is used. If nine or more of the 12-bit MAC addresses match, it is considered to be the main gateway's MAC address. This method is used to find the main gateway's Wi-Fi information.

[0045] 4) Further filter the main gateway Wi-Fi information and determine the signal strength of the main gateway Wi-Fi 2.4G.

[0046] 5) If the signal is too strong (greater than -30dBm is recommended), it is identified as the master and slave being too close.

[0047] 6) If the signal strength is normal (recommended to be less than -30dBm), it is considered that the distance is normal.

[0048] Furthermore, after the FTTR master and slave gateways complete the broadband service activation, they establish an MQTT connection with the FTTR master and slave gateways, following these steps: (1) The FTTR master gateway requests the management platform to create an MQTT connection.

[0049] (2) The management platform responds to the connection request, and the MQTT connection is successfully created.

[0050] (3) The FTTR main gateway subscribes to and registers MQTT topic messages such as responses and operation requests.

[0051] (4) The FTTR main gateway sends a registration request to the management platform.

[0052] (5) The management platform responds to the registration request, and the management channel is officially established and maintained.

[0053] (6) When the management platform sends a message, it obtains the unique corresponding device MQTT long connection based on the device identifier and sends the message.

[0054] (7) The management platform sends a management operation request message.

[0055] (8) The FTTR device sends a response message for management operations.

[0056] Furthermore, the interaction between the management platform and the FTTR master-slave gateway is as follows: The management platform's function to query FTTR master gateway information, assuming a normal MQTT connection, involves sending an MQTT operation request message with the command word GET_MFU_INFO to query the information of a specified FTTR master gateway. This information includes basic details and operational status of the master gateway. This interface is primarily used to check whether the master gateway's uplink connection method meets the requirements.

[0057] This function queries the connection information of all slave gateways under the FTTR master gateway. Assuming a normal MQTT connection is established, the management platform sends an MQTT operation request message with the command word GET_SFU_INFO to query information about all slave gateways under the specified FTTR master gateway. This includes basic information and connection status of the slave gateways. This interface is primarily used to detect the master-slave connection method and whether the master-slave connection negotiation rate meets the requirements.

[0058] The function to query the negotiation rate of all slave gateways connected to the FTTR master gateway is implemented by the management platform sending an MQTT operation request message with the command word GET_STA_INFO to query the negotiation rate and access method information of all slave gateways connected to the specified FTTR master gateway. This interface is used to detect the negotiation rate and access method.

[0059] The function to query the optical power information of the FTTR master gateway, assuming a normal MQTT connection is established, queries the optical module information of the specified FTTR master gateway by sending an MQTT operation request message with the command word GET_MFU_UPPON_INFO. This information includes the operating status of the master gateway's optical modules and uplink optical port power information. This interface primarily checks whether the master gateway's uplink optical power meets the standards.

[0060] The function to query the downlink optical port information of the FTTR main gateway, assuming a normal MQTT connection is established, queries detailed information about the specified downlink optical port of the FTTR main gateway by sending an MQTT operation request message with the command word GET_MFU_DOWNPON_INFO. This primarily includes the optical power information of the optical module of the main gateway's downlink optical port. This interface is mainly used to check whether the status of the main gateway's downlink optical module meets the standards.

[0061] The function to query detailed information of a specific slave gateway under the FTTR master gateway, assuming a normal MQTT connection is established, allows the management platform to query detailed information of a specific slave gateway under the FTTR master gateway by sending an MQTT operation request message with the command word GET_SFU_UPPON_INFO. This information includes the uplink PON connection information of the slave gateway. This interface is mainly used to check whether the status of the uplink optical module of the slave gateway meets the requirements.

[0062] This function triggers FTTR segmented channel speed testing for master and slave gateways, including uplink / downlink speeds and latency for each segment: master gateway to master gateway, master gateway to the Internet, and slave gateway to the Internet. The management platform terminal initiates the speed test via the START_SEGMENT_SPEED command and queries the test results via the GET_SEGMENT_SPEED_RESULT command. This interface is primarily used to check whether the master and slave speeds are normal.

[0063] This triggers the FTTR master and slave gateways to query surrounding Wi-Fi interference. Assuming a normal MQTT connection is established, the management platform can send an MQTT operation request message with the command word GET_WIFI_NEIGHBOR to query the surrounding Wi-Fi interference of the FTTR master gateway. The master and slave gateways should respond and return the SSID and frequency band information of the surrounding Wi-Fi networks. This interface is used to detect and identify whether the master and slave are too close together.

[0064] The FTTR network quality testing and management system provided by this invention performs quality testing tasks on gateway devices based on FTTR network quality testing requests sent by user terminals through the management platform, obtains quality testing results, and feeds the results back to the user terminal. The user terminal then obtains analysis results based on the quality testing results, realizing unified management of FTTR master and slave gateways. This solves the problems of current decentralized management, insufficient testing capabilities, and incomplete testing, thereby improving the overall quality of FTTR networks and user experience.

[0065] The FTTR network quality detection and management method provided by the present invention is described below. The FTTR network quality detection and management method described below can be referred to in correspondence with the FTTR network quality detection and management system described above.

[0066] Figure 2 This diagram illustrates a flowchart of an FTTR network quality detection and management method provided by the present invention. (See attached diagram.) Figure 2 The method includes the following steps: Step 21: Receive the FTTR network quality test request sent by the user terminal.

[0067] Step 22: Based on the FTTR network quality test request, perform a quality test task on the gateway device, obtain the quality test results, and feed back the quality test results to the user terminal so that the user terminal can obtain analysis results based on the quality test results.

[0068] In a further step of the above method, based on the FTTR network quality inspection request, a quality inspection task is performed on the gateway device to obtain the quality inspection result, and the quality inspection result is fed back to the user terminal, including: Based on the FTTR networking quality inspection request, schedule a quality inspection task to perform quality inspection on the gateway device. According to the quality inspection task, the inspection command is sent to the gateway device and the quality inspection data is collected; The quality inspection results are obtained based on the quality inspection data and then fed back to the user.

[0069] In a further step of the above method, obtaining the quality inspection result based on the quality inspection data includes: The network speeds from the main gateway to the speed test server, from the secondary gateway to the speed test server, and between the main and secondary gateways are determined based on the quality test data, and the network performance status is determined based on the network speeds. The optical power of the master gateway and slave gateway is determined based on the quality test data, and the health status of the FTTR network links is determined based on the optical power. Based on the quality inspection data, determine the uplink connection method of the gateway, the uplink connection method of the master gateway, and the negotiation rate between the master and slave gateways, and determine the reasonableness of the master-slave connection method based on the negotiation speed; Based on the quality inspection data, determine the physical distance between the master and slave gateways and the physical distance between the slave gateways, and determine the rationality of the gateway layout based on the physical distance.

[0070] In a further step of the above method, the quality detection data includes Wi-Fi information around the gateway. Accordingly, the physical distance between the master and slave gateways and the physical distance between the slave gateways are determined based on the quality detection data, and the reasonableness of the gateway layout is determined based on the physical distance. This includes: determining the Wi-Fi information of the master gateway based on the Wi-Fi information around the slave gateway, determining the Wi-Fi signal strength of the master gateway based on the Wi-Fi information of the master gateway, determining the physical distance between the master and slave gateways based on the Wi-Fi signal strength of the master gateway, and determining the reasonableness of the gateway layout based on the physical distance.

[0071] Since the method in this embodiment of the invention is based on the same principle as the method in the above embodiments, more detailed explanations will not be repeated here.

[0072] It should be noted that, in the embodiments of the present invention, the relevant functional modules can be implemented by a hardware processor.

[0073] The FTTR network quality detection and management method provided by this invention performs quality detection tasks on the gateway device according to the FTTR network quality detection request sent by the user terminal, obtains the quality detection results, and feeds the quality detection results back to the user terminal. The user terminal then obtains analysis results based on the quality detection results, realizing unified management of FTTR master and slave gateways, solving the problems of current decentralized management, insufficient detection capabilities, and incomplete testing, and improving the overall quality of FTTR networking and user experience.

[0074] Figure 3 This diagram illustrates the structure of an FTTR network quality detection and management device provided by the present invention. (See attached diagram.) Figure 3 The device includes a receiving module 31 and a management module 32, wherein: The receiving module is used to receive FTTR network quality detection requests sent by the user terminal; The management module is used to perform quality testing tasks on the gateway device according to the FTTR network quality testing request, obtain the quality testing results, and feed back the quality testing results to the user terminal so that the user terminal can obtain analysis results based on the quality testing results.

[0075] Since the method in this embodiment of the invention is based on the same principle as the method in the above embodiments, more detailed explanations will not be repeated here.

[0076] It should be noted that, in the embodiments of the present invention, the relevant functional modules can be implemented by a hardware processor.

[0077] The FTTR network quality detection and management device provided by this invention performs quality detection tasks on the gateway device according to the FTTR network quality detection request sent by the user terminal, obtains the quality detection results, and feeds back the quality detection results to the user terminal. The user terminal then obtains the analysis results based on the quality detection results, realizing unified management of FTTR master and slave gateways, solving the problems of current decentralized management, insufficient detection capabilities, and incomplete testing, and improving the overall quality of FTTR networking and user experience.

[0078] Figure 4 An example is a schematic diagram of the physical structure of an electronic device, such as... Figure 4 As shown, the electronic device may include a processor 41, a communication interface 42, a memory 43, and a communication bus 44. The processor 41, communication interface 42, and memory 43 communicate with each other via the communication bus 44. The processor 41 can call logical instructions in the memory 43 to execute an FTTR network quality detection management method. This method includes: receiving an FTTR network quality detection request sent by a user terminal; performing a quality detection task on the gateway device according to the FTTR network quality detection request, obtaining the quality detection result, and feeding back the quality detection result to the user terminal so that the user terminal can obtain analysis results based on the quality detection result.

[0079] Furthermore, the logical instructions in the aforementioned memory 43 can be implemented as software functional units and, when sold or used as independent products, can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present invention, or the part that contributes to the prior art, or a part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of the present invention. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.

[0080] On the other hand, the present invention also provides a computer program product, which includes a computer program that can be stored on a non-transitory computer-readable storage medium. When the computer program is executed by a processor, the computer can execute an FTTR network quality detection and management method. The method includes: receiving an FTTR network quality detection request sent by a user terminal; performing a quality detection task on a gateway device according to the FTTR network quality detection request, obtaining a quality detection result, and feeding back the quality detection result to the user terminal so that the user terminal can obtain an analysis result based on the quality detection result.

[0081] In another aspect, the present invention also provides a non-transitory computer-readable storage medium having a computer program stored thereon. When executed by a processor, the computer program implements an FTTR network quality detection management method, the method comprising: receiving an FTTR network quality detection request sent by a user terminal; performing a quality detection task on a gateway device according to the FTTR network quality detection request, obtaining a quality detection result, and feeding back the quality detection result to the user terminal so that the user terminal can obtain an analysis result based on the quality detection result.

[0082] The device embodiments described above are merely illustrative. The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the modules can be selected to achieve the purpose of this embodiment according to actual needs. Those skilled in the art can understand and implement this without any creative effort.

[0083] Through the above description of the embodiments, those skilled in the art can clearly understand that each embodiment can be implemented by means of software plus necessary general-purpose hardware platforms, and of course, it can also be implemented by hardware. Based on this understanding, the above technical solutions, in essence or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product can be stored in a computer-readable storage medium, such as ROM / RAM, magnetic disk, optical disk, etc., and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute the methods described in the various embodiments or some parts of the embodiments.

[0084] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. An FTTR network quality inspection and management system, characterized in that, include: Gateway devices include master gateways and slave gateways; The user terminal is used to send an FTTR network quality test request to the management platform. The management platform is used to perform a quality detection task on the gateway device according to the FTTR networking quality detection request, obtain the quality detection result, and feed the quality detection result back to the user terminal; The user terminal is also used to obtain analysis results based on the quality inspection results.

2. The FTTR network quality detection and management system according to claim 1, characterized in that, The management platform includes a controller module, an execution task unit, and an FTTR master-slave gateway management module, wherein: The controller module is used to schedule a quality inspection task to be performed on the gateway device by the execution task unit according to the FTTR networking quality inspection request. The task execution unit is used to send detection instructions to the FTTR master-slave gateway management module according to the quality detection task. The FTTR master-slave gateway management module is used to transmit the detection command to the gateway device and collect quality detection data to feed back to the execution task unit. The task execution unit is also used to obtain quality inspection results based on the quality inspection data and to feed the quality inspection results back to the controller module; The controller module is also used to feed back the quality inspection results to the user terminal.

3. The FTTR network quality detection and management system according to claim 2, characterized in that, The quality inspection task includes segmented speed measurement, optical power detection, master-slave gateway connection detection, and master-slave gateway distance analysis. Correspondingly, the task execution unit includes a segmented speed measurement module, an optical power detection module, a master-slave connection module, and a distance analysis module, wherein: The segmented speed test module is used to determine the network speed from the main gateway to the speed test server, from the secondary gateway to the speed test server, and between the main and secondary gateways based on the quality test data, and to determine the network performance status based on the network speed. The optical power detection module is used to determine the optical power of the master gateway and slave gateway based on the quality detection data, and to determine the health status of the FTTR network links based on the optical power. The master-slave connection module is used to determine the uplink connection method of the slave gateway, the uplink connection method of the master gateway, and the negotiation rate between the master and slave gateways based on the quality test data, and to determine the reasonableness of the master-slave connection method based on the negotiation speed. The distance analysis module is used to determine the physical distance between the master and slave gateways and the physical distance between slave gateways based on the quality inspection data, and to determine the rationality of the gateway layout based on the physical distance.

4. The FTTR network quality inspection and management system according to claim 3, characterized in that, The quality detection data includes Wi-Fi information around the gateway. Accordingly, the distance analysis module is specifically used to: determine the Wi-Fi information of the main gateway based on the Wi-Fi information around the main gateway, determine the Wi-Fi signal strength of the main gateway based on the Wi-Fi information of the main gateway, determine the physical distance between the main and secondary gateways based on the Wi-Fi signal strength of the main gateway, and determine the rationality of the gateway layout based on the physical distance.

5. The FTTR network quality inspection and management system according to claim 3 or 4, characterized in that, The FTTR master-slave gateway management module is also used to establish an MQTT connection with the FTTR master-slave gateway after the broadband service activation is completed.

6. The FTTR network quality detection and management system according to claim 1, characterized in that, The user terminal is specifically used to: identify and prompt non-compliant test items in the FTTR network quality based on the quality inspection results, and to determine whether the FTTR network installation and maintenance work order is unqualified.

7. The FTTR network quality detection and management system according to claim 1, characterized in that, The user terminal is also used to: initiate an FTTR network quality detection request after detecting a signal that the on-site installation and commissioning of the FTTR network is complete.

8. A method for quality detection and management of FTTR networks, characterized in that, include: Receive FTTR network quality test requests sent by the user terminal; According to the FTTR network quality detection request, a quality detection task is performed on the gateway device to obtain the quality detection result, and the quality detection result is fed back to the user terminal so that the user terminal can obtain the analysis result based on the quality detection result; the quality detection task includes segmented speed measurement, optical power detection, master-slave gateway connection detection, and master-slave gateway distance analysis.

9. The FTTR networking quality detection and management method according to claim 8, characterized in that, The step of performing a quality detection task on the gateway device according to the FTTR network quality detection request, obtaining the quality detection result, and feeding back the quality detection result to the user terminal includes: Based on the FTTR networking quality detection request, schedule a quality detection task to perform quality detection on the gateway device. According to the quality inspection task, the inspection command is sent to the gateway device and the quality inspection data is collected; The quality inspection results are obtained based on the quality inspection data, and the quality inspection results are fed back to the user terminal.

10. The FTTR networking quality detection and management method according to claim 8, characterized in that, The process of obtaining the quality inspection result based on the quality inspection data includes: The network speeds from the main gateway to the speed test server, from the secondary gateway to the speed test server, and between the main and secondary gateways are determined based on the quality test data, and the network performance status is determined based on the network speeds. The optical power of the master gateway and slave gateway is determined based on the quality test data, and the health status of the FTTR network links is determined based on the optical power. Based on the quality inspection data, determine the uplink connection method of the gateway, the uplink connection method of the master gateway, and the negotiation rate between the master and slave gateways, and determine the reasonableness of the master-slave connection method based on the negotiation speed; Based on the quality inspection data, determine the physical distance between the master and slave gateways and the physical distance between the slave gateways, and determine the rationality of the gateway layout based on the physical distance.

11. The FTTR networking quality detection and management method according to claim 10, characterized in that, The quality detection data includes Wi-Fi information around the gateway. Accordingly, determining the physical distance between the master and slave gateways and the physical distance between the slave gateways based on the quality detection data, and determining the reasonableness of the gateway layout based on the physical distance, includes: determining the master gateway's Wi-Fi information based on the Wi-Fi information around the slave gateway, determining the master gateway's Wi-Fi signal strength based on the master gateway's Wi-Fi information, determining the physical distance between the master and slave gateways based on the master gateway's Wi-Fi signal strength, and determining the reasonableness of the gateway layout based on the physical distance.

12. An FTTR network quality detection and management device, characterized in that, include: The receiving module is used to receive FTTR network quality detection requests sent by the user terminal; The management module is used to perform quality detection tasks on the gateway device according to the FTTR networking quality detection request, obtain quality detection results, and feed back the quality detection results to the user terminal so that the user terminal can obtain analysis results based on the quality detection results; the quality detection tasks include segmented speed measurement, optical power detection, master-slave gateway connection detection, and master-slave gateway distance analysis.

13. An electronic device comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, characterized in that, When the processor executes the program, it implements the FTTR networking quality detection and management method as described in any one of claims 8-11.

14. A non-transitory computer-readable storage medium having a computer program stored thereon, characterized in that, When the computer program is executed by the processor, it implements the FTTR networking quality detection and management method as described in any one of claims 8-11.

15. A computer program product, comprising a computer program, characterized in that, When the computer program is executed by the processor, it implements the FTTR networking quality detection and management method as described in any one of claims 8-11.

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