WO2024102153A1 - Testing wireless network by using master-slave devices - Google Patents
Testing wireless network by using master-slave devices Download PDFInfo
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- WO2024102153A1 WO2024102153A1 PCT/US2022/054118 US2022054118W WO2024102153A1 WO 2024102153 A1 WO2024102153 A1 WO 2024102153A1 US 2022054118 W US2022054118 W US 2022054118W WO 2024102153 A1 WO2024102153 A1 WO 2024102153A1
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- electronic device
- test
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- master
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L43/00—Arrangements for monitoring or testing data switching networks
- H04L43/50—Testing arrangements
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/02—Arrangements for optimising operational condition
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/04—Arrangements for maintaining operational condition
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/10—Scheduling measurement reports ; Arrangements for measurement reports
Definitions
- the present disclosure relates to a wireless network, and more particularly to methods and systems for testing the wireless network by using master-slave devices.
- a Radio frequency (RF) drive testing is one of the useful elements in establishing a stable network for consumers.
- a cell tower signal and range measurement are done with multiple solutions.
- telecom service providers are spending ample amount of money.
- a cluster drive performed multiple scripts needs to execute on a same path for complete network analysis, in which a user (e.g., RF engineer or the like) has to spend much efforts and it happened that exact path was not captured while redriving on same path for another script.
- electronic device e.g., mobile phone or the like
- the principal object of the embodiments herein is to provide a method and a system for testing a wireless network by using master-slave devices.
- a master electronic device is connected with slave electronic devices.
- a user RF engineer or the like
- the user can check all the slave electronic device signal KPIs as well as ongoing test data on the master electronic device at a time.
- all the slave electronic device stop the test and share their results to the master electronic device.
- the user can check the slave electronic devices result on the master electronic device.
- the method can be used to execute and handle multiple scripts simultaneously for testing the wireless network by using master-slave devices with less time, less effect, low human intervention, less manual efforts, and low cost.
- the embodiment herein is to provide a method for testing a wireless network by using master-slave devices.
- the method includes establishing, by a master electronic device, a connection with a plurality of slave electronic devices using a short range communication. Further, the method includes allocating, by the master electronic device, at least one test on particular path to be performed by each slave electronic device of the plurality of slave electronic devices. Further, the method includes simultaneously starting, by the master electronic device, the at least one test on each slave electronic device of the plurality of slave electronic devices. Further, the method includes periodically receiving, by the master electronic device, key performance indicators (KPIs) information associated with the at least one test while the at least one test is on-going on the particular path by each slave electronic device of the plurality of slave electronic devices.
- KPIs key performance indicators
- the method includes displaying, by the master electronic device, the KPIs information associated with the at least one test while the at least one test on the particular path is on-going in each slave electronic device of the plurality of slave electronic devices. Further, the method includes simultaneously stopping, by the master electronic device, the at least one test on each slave electronic device of the plurality of slave electronic devices.
- the embodiment herein is to provide a system for testing a wireless network by using master-slave devices.
- the system includes a workorder management server, a network management server, a plurality of slave devices connected to the network management server, and a master electronic device connected to the workorder management server.
- the master electronic device includes a memory and a processor.
- the processor of the master electronic device establishes a connection with a plurality of slave electronic devices using a short range communication. Further, the processor of the master electronic device allocates at least one test on particular path to be performed by each slave electronic device of the plurality of slave electronic devices. Further, the processor of the master electronic device simultaneously starts the at least one test on each slave electronic device of the plurality of slave electronic devices.
- the processor of the master electronic device periodically receives KPIs information associated with the at least one test while the at least one test is on-going on the particular path by each slave electronic device of the plurality of slave electronic devices. Further, the processor of the master electronic device displays the KPIs information associated with the at least one test while the at least one test on the particular path is on-going in each slave electronic device of the plurality of slave electronic devices. Further, the processor of the master electronic device simultaneously stops the at least one test on each slave electronic device of the plurality of slave electronic devices.
- FIG. 1 is an overview of a system for testing a wireless network by using master-slave devices, according to the embodiments as disclosed herein;
- FIG. 2 shows various hardware components of a master electronic device, according to the embodiments as disclosed herein;
- FIG. 3 shows various hardware components of a slave electronic device, according to the embodiments as disclosed herein;
- FIG. 4 is a flow chart illustrating a method, implemented by the master electronic device, for testing the wireless network by using the master-slave devices, according to the embodiments as disclosed herein;
- FIG. 5A-FIG. 5c are example flow charts illustrating a method, implemented by the master electronic device, for testing the wireless network by using the master-slave devices, according to the embodiments as disclosed herein;
- FIG. 6 is a flow chart illustrating a method, implemented by the slave electronic device, for testing the wireless network by using the master-slave devices, according to the embodiments as disclosed herein;
- FIG. 7 is an example illustration in which a list of recipe is depicted, according to the embodiments as disclosed herein.
- FIG. 8 is an example illustration in which one or more recipes selected from the list of recipe is depicted, according to the embodiments as disclosed herein.
- circuits constituting a block may be implemented by dedicated hardware, or by a processor (e.g., one or more programmed microprocessors and associated circuitry), or by a combination of dedicated hardware to perform some functions of the block and a processor to perform other functions of the block.
- a processor e.g., one or more programmed microprocessors and associated circuitry
- Each block of the embodiments may be physically separated into two or more interacting and discrete blocks without departing from the scope of the disclosure.
- the blocks of the embodiments may be physically combined into more complex blocks without departing from the scope of the disclosure.
- the embodiment herein is to provide a method for testing a wireless network by using master-slave devices.
- the method includes establishing, by a master electronic device, a connection with a plurality of slave electronic devices using a short range communication. Further, the method includes allocating, by the master electronic device, at least one test on particular path to be performed by each slave electronic device of the plurality of slave electronic devices. Further, the method includes simultaneously starting, by the master electronic device, the at least one test on each slave electronic device of the plurality of slave electronic devices. Further, the method includes periodically receiving, by the master electronic device, KPIs information associated with the at least one test while the at least one test is on-going on the particular path by each slave electronic device of the plurality of slave electronic devices.
- the method includes displaying, by the master electronic device, the KPIs information associated with the at least one test while the at least one test on the particular path is on-going in each slave electronic device of the plurality of slave electronic devices. Further, the method includes simultaneously stopping, by the master electronic device, the at least one test on each slave electronic device of the plurality of slave electronic devices.
- the master electronic device is connected with the slave electronic devices.
- a user RF engineer or the like
- the user can check all the slave electronic device signal KPIs as well as ongoing test data on the master electronic device at a time.
- all the slave electronic device stop the test and share their results to the master electronic device.
- the user can check the slave electronic devices result on the master electronic device.
- the method can be used to execute and handle multiple scripts simultaneously for testing the wireless network by using master-slave devices with less time, less effect, low human intervention, less manual efforts, and low cost.
- FIGS. 1 through 8 where similar reference characters denote corresponding features consistently throughout the figures, there are shown preferred embodiments.
- FIG. 1 is an overview of a system (1000) for testing a wireless network by using master-slave devices, according to the embodiments as disclosed herein.
- the wireless network can be, for example, but not limited to, a fourth generation network, a fifth generation network, an open radio access network (ORAN) network or the like.
- the system (1000) includes a master electronic device (100), a plurality of slave electronic devices (200a-200n), a workorder management server (300) and a network management server (400).
- the label of the slave electronic device is (200).
- the plurality of slave devices (200) is connected to the network management server (400) and the master electronic device (100) is connected to the workorder management server (300).
- the master electronic device (100) and slave electronic device (200) can be, for example, but not limited to a cellular phone, a smart phone, a Personal Digital Assistant (PDA), a tablet computer, a laptop computer, an Internet of Things (loT), embedded systems, edge devices, a vehicle to everything (V2X) device or the like.
- PDA Personal Digital Assistant
- LoT Internet of Things
- V2X vehicle to everything
- the master electronic device (100) establishes a connection with the plurality of slave electronic devices (200) using a short range communication (e.g., Bluetooth communication, infrared communication, near-field communication, an ultra-band communication, an ultrawide band (UWB) communication, Zigbee or the like).
- a short range communication e.g., Bluetooth communication, infrared communication, near-field communication, an ultra-band communication, an ultrawide band (UWB) communication, Zigbee or the like.
- the master electronic device (100) discovers the plurality of slave electronic devices (200) using the short range communication.
- the master electronic device (100) establishes the connection with the plurality of slave electronic devices (200).
- the master electronic device (100) stores the information about the plurality of slave electronic devices (200).
- the master electronic device (100) displays the information about the plurality of slave electronic devices (200) connected to the master electronic device (100).
- the master electronic device (100) allocates at least one test on particular path to be performed by each slave electronic device of the plurality of slave electronic devices (200).
- the test can be, for example, but not limited to a download test, an upload test, an attach operation, a detach operation, a browse operation, a http link validation, a calling operation, a ping operation, a SMS, a video, an application test, a Volte enable operation, a VoLTE disable operation, a packet download operation or the like.
- the master electronic device (100) retrieves a list of workorders from the workorder server (300), wherein each workorder comprises a plurality of receipes and each receipe comprises the at least one test to the performed.
- the recipe is combination of test which user wants to execute.
- a list of recipe (700) is depicted in the FIG. 7.
- the list of recipe (700) includes various recipe names (702) (e.g., internal use, test, data ED, demo or the like), a recipe ID (704) corresponding to the various recipe names (702), recipe types (706) corresponding to the various recipe names (702) and categories (708) corresponding to the various recipe names (702).
- One or more recipes (800) selected from the list of recipe is depicted in FIG. 8.
- the master electronic device (100) detects a workorder selected from the list of workorders from a user of the master electronic device (100). Further, the master electronic device (100) assigns one or more receipes of the plurality of receipes from the selected workorder to each slave device of the plurality of slave devices (200).
- the at least one test allocated to all the slave electronic devices (200) is same when a network operator is same for the at least one test to be performed on the particular path. In another embodiment, the at least one test allocated to slave electronic device of the plurality of slave electronic devices (200) is different from each other when the network operator is different for the at least one test to be performed on the particular path. In another embodiment, the at least one test allocated to slave electronic device of the plurality of slave electronic devices (200) is different from each other when the network operator is same for the at least one test to be performed on the particular path.
- the master electronic device (100) simultaneously starts the at least one test on each slave electronic device of the plurality of slave electronic devices (200).
- the master electronic device (100) receives an input to start the at least one test on each slave electronic device of the plurality of slave electronic devices (200).
- the master electronic device (100) sends a start command to each slave electronic device of the plurality of slave electronic devices (200).
- the at least one test is started simultaneously in each slave electronic device of the plurality of slave electronic devices (200).
- the master electronic device (100) periodically receives KPIs information associated with the at least one test while the at least one test is on-going on the particular path by each slave electronic device of the plurality of slave electronic devices (200). The period is defined by the user of the master electronic device (100). Further, the master electronic device (100) displays the KPIs information associated with the at least one test while the at least one test on the particular path is on-going in each slave electronic device of the plurality of slave electronic devices (200).
- the master electronic device (100) simultaneously stops the at least one test on each slave electronic device of the plurality of slave electronic devices (200).
- the master electronic device (100) receives an input to stop the at least one test on each slave electronic device of the plurality of slave electronic devices (200).
- the master electronic device (100) sends a stop command to each slave electronic device of the plurality of slave electronic devices (200).
- the at least one test is stopped simultaneously in each slave electronic device of the plurality of slave electronic devices (200).
- the master electronic device (100) displays a test result of the at least one test performed on the particular path by each slave electronic device of the plurality of slave electronic devices (200).
- the test result includes the KPIs information, information about the at least one test, the information about the slave electronic device, and information about the path covered during the at least one test.
- the master electronic device (100) receives an input to upload the test result stored at each slave electronic device of the plurality of slave electronic devices (200) to the network management server (400) and sends an upload command to each slave electronic device of the plurality of slave electronic devices (200).
- the test result is uploaded simultaneously by each slave electronic device of the plurality of slave electronic devices (200) to the network management server (400).
- the master electronic device (100) receives the test results uploaded by each slave electronic device of the plurality of slave electronic devices (200). Further, the master electronic device (100) performs a network optimization operation based on the test result.
- the network optimization operation can be, for example, but not limited to benchmarking an network operator, analysis of network performance, regulating configurations of network devices, and controlling coverage range of network devices.
- the slave electronic device (200) receives the at least one test to be performed on the particular path from the master electronic device (100). Further, the slave electronic device (200) simultaneously starts the at least one test on the particular path upon receiving a start command from the master electronic device (100). Further, the slave electronic device (200) periodically sends the KPIs information associated with the at least one test to the master electronic device (100) while the at least one test is on-going on the particular path by each slave electronic device of the plurality of slave electronic devices (200). Further, the slave electronic device (200) simultaneously stops the at least one test upon receiving a start command from the master electronic device (100).
- the slave electronic device (200) stores a test result of the at least one test performed on the particular path by each slave electronic device of the plurality of slave electronic devices (200). Further, the slave electronic device (200) receives an upload command from the master electronic device (100) to upload the stored test result to a network management server (400). In response to receiving the upload command form the master electronic device (100), the slave electronic device (200) simultaneously uploads the test result to the network management server (400).
- FIG. 2 shows various hardware components of the master electronic device (100), according to the embodiments as disclosed herein.
- the master electronic device (100) includes a processor (110), a communicator (120), a memory (130) and a master network test controller (140).
- the processor (110) is coupled with the communicator (120), the memory (130) and the master network test controller (140).
- the master network test controller (140) establishes the connection with the plurality of slave electronic devices (200) using the short range communication.
- the master network test controller (140) discovers the plurality of slave electronic devices (200) using the short range communication.
- the master network test controller (140) establishes the connection with the plurality of slave electronic devices (200).
- the master network test controller (140) stores the information about the plurality of slave electronic devices (200) connected to the master electronic device (100).
- the master network test controller (140) displays the information about the plurality of slave electronic devices (200) connected to the master electronic device (100).
- the master network test controller (140) allocates the at least one test on the particular path to be performed by each slave electronic device of the plurality of slave electronic devices (200).
- the master network test controller (140) retrieves the list of workorders from the workorder server (300). Each workorder includes a plurality of receipes and each receipe includes the at least one test to the performed. Further, the master network test controller (140) detects the workorder selected from the list of workorders from the user of the master electronic device (100). Further, the master network test controller (140) assigns one or more receipes of the plurality of receipes from the selected workorder to each slave device of the plurality of slave devices.
- the master network test controller (140) simultaneously starts the at least one test on each slave electronic device of the plurality of slave electronic devices (200).
- the master network test controller (140) receives the input to start the at least one test on each slave electronic device of the plurality of slave electronic devices (200).
- the master network test controller (140) sends the start command to each slave electronic device of the plurality of slave electronic devices (200).
- the at least one test is started simultaneously in each slave electronic device of the plurality of slave electronic devices (200) upon receiving the start command.
- the master network test controller (140) periodically receives the KPIs information associated with the at least one test while the at least one test is on-going on the particular path by each slave electronic device of the plurality of slave electronic devices (200). Further, the master network test controller (140) displays the KPIs information associated with the at least one test while the at least one test on the particular path is on-going in each slave electronic device of the plurality of slave electronic devices (200).
- the master network test controller (140) simultaneously stop the at least one test on each slave electronic device of the plurality of slave electronic devices (200).
- the master network test controller (140) receives the input to stop the at least one test on each slave electronic device of the plurality of slave electronic devices (200).
- the master network test controller (140) sends the stop command to each slave electronic device of the plurality of slave electronic devices (200).
- the at least one test is stopped simultaneously in each slave electronic device of the plurality of slave electronic devices (200) upon receiving the start command.
- the master network test controller (140) displays the test result of the at least one test performed on the particular path by each slave electronic device of the plurality of slave electronic devices (200). Further, the master network test controller (140) receives the input to upload the test result stored at each slave electronic device of the plurality of slave electronic devices (200) to the network management server (400) and sends the upload command to each slave electronic device of the plurality of slave electronic devices (200), wherein the test result is uploaded simultaneously by each slave electronic device of the plurality of slave electronic devices (200) to the network management server (400). [0042] Further, the master network test controller (140) receives the test results uploaded by each slave electronic device of the plurality of slave electronic devices (200). Further, the master network test controller (140) performs a network optimization operation based on the test result.
- the master network test controller (140) is implemented by analog and/or digital circuits such as logic gates, integrated circuits, microprocessors, the processor (110), microcontrollers, memory circuits, passive electronic components, active electronic components, optical components, hardwired circuits and the like, and may optionally be driven by firmware.
- the processor (110) is configured to execute instructions stored in the memory (130) and to perform various processes.
- the communicator (120) is configured for communicating internally between internal hardware components and with external devices via one or more networks.
- the memory (130) also stores instructions to be executed by the processor (110).
- the memory (130) may include nonvolatile storage elements. Examples of such non-volatile storage elements may include magnetic hard discs, optical discs, floppy discs, flash memories, or forms of electrically programmable memories (EPROM) or electrically erasable and programmable (EEPROM) memories.
- EPROM electrically programmable memories
- EEPROM electrically erasable and programmable
- the memory (130) may, in some examples, be considered anon- transitory storage medium.
- non-transitory may indicate that the storage medium is not embodied in a carrier wave or a propagated signal. However, the term “non-transitory” should not be interpreted that the memory (230) is non-movable.
- a non-transitory storage medium may store data that can, over time, change (e.g., in Random Access Memory (RAM) or cache).
- RAM Random Access Memory
- FIG. 2 shows various hardware components of the master electronic device (100) but it is to be understood that other embodiments are not limited thereon.
- the master electronic device (100) may include less or more number of components.
- the labels or names of the components are used only for illustrative purpose and does not limit the scope of the invention.
- One or more components can be combined together to perform same or substantially similar function in the master electronic device (100).
- FIG. 3 shows various hardware components of the slave electronic device (200), according to the embodiments as disclosed herein.
- the slave electronic device (200) includes a processor (210), a communicator (220), a memory (230) and a slave network test controller (240).
- the processor (210) is coupled with the communicator (220), the memory (230) and the slave network test controller (240).
- the slave network test controller (240) receives the at least one test to be performed on the particular path from the master electronic device (100). Further, the slave network test controller (240) simultaneously starts the at least one test on the particular path upon receiving the start command from the master electronic device (100). Further, the slave network test controller (240) periodically sends the KPIs information associated with the at least one test to the master electronic device (100) while the at least one test is on-going on the particular path by each slave electronic device of the plurality of slave electronic devices (200). Further, the slave network test controller (240) simultaneously stops the at least one test upon receiving the stop command from the master electronic device (100).
- the slave network test controller (240) stores the test result of the at least one test performed on the particular path by each slave electronic device of the plurality of slave electronic devices (200). [0049] Further, the slave network test controller (240) receives the upload command from the master electronic device (100) to upload the stored test result to a network management server (400). Further, the slave network test controller (240) simultaneously uploads the test result to the network management server (400) in response to receiving the upload command form the master electronic device (100).
- the slave network test controller (240) is implemented by analog and/or digital circuits such as logic gates, integrated circuits, microprocessors, the processor (210), microcontrollers, memory circuits, passive electronic components, active electronic components, optical components, hardwired circuits and the like, and may optionally be driven by firmware.
- the processor (210) is configured to execute instructions stored in the memory (230) and to perform various processes.
- the communicator (220) is configured for communicating internally between internal hardware components and with external devices via one or more networks.
- the memory (230) also stores instructions to be executed by the processor (210).
- the memory (130) may include nonvolatile storage elements. Examples of such non-volatile storage elements may include magnetic hard discs, optical discs, floppy discs, flash memories, or forms of electrically programmable memories (EPROM) or electrically erasable and programmable (EEPROM) memories.
- EPROM electrically programmable memories
- EEPROM electrically erasable and programmable
- the memory (230) may, in some examples, be considered a non- transitory storage medium.
- non-transitory may indicate that the storage medium is not embodied in a carrier wave or a propagated signal. However, the term “non-transitory” should not be interpreted that the memory (230) is non-movable. In certain examples, a non-transitory storage medium may store data that can, over time, change (e.g., in Random Access Memory (RAM) or cache).
- RAM Random Access Memory
- FIG. 3 shows various hardware components of the slave electronic device (200) but it is to be understood that other embodiments are not limited thereon. In other embodiments, the slave electronic device (200) may include less or more number of components. Further, the labels or names of the components are used only for illustrative purpose and does not limit the scope of the invention. One or more components can be combined together to perform same or substantially similar function in the slave electronic device (200).
- FIG. 4 is a flow chart (S400) illustrating a method, implemented by the master electronic device (100), for testing the wireless network by using master-slave devices, according to the embodiments as disclosed herein.
- the operations (S402-S412) are handled by the master network test controller (140).
- the method includes establishing the connection with the plurality of slave electronic devices (200) using the short range communication.
- the method includes allocating the at least one test on the particular path to be performed by each slave electronic device of the plurality of slave electronic devices (200).
- the method includes simultaneously starting the at least one test on each slave electronic device of the plurality of slave electronic devices (200).
- the method includes periodically receiving the KPIs information associated with the at least one test while the at least one test is on-going on the particular path by each slave electronic device of the plurality of slave electronic devices (200).
- the method includes displaying the KPIs information associated with the at least one test while the at least one test on the particular path is on-going in each slave electronic device of the plurality of slave electronic devices (200).
- the method includes simultaneously stopping the at least one test on each slave electronic device of the plurality of slave electronic devices (200).
- the master electronic device (100) is connected with the slave electronic devices (200). After connection, the user (RF engineer or the like) can assign workorders to the slave electronic devices (200) from the master electronic device (100). When the test start from the mater electronic device (100), all the connected slave electronic device (200) start drive execution at the same time.
- the user can check all the slave electronic device signal KPIs as well as ongoing test data on the master electronic device (100) at a time.
- the user stops the test from the master electronic device (100) then all the slave electronic devices stop the test and share their results to the master electronic device (100).
- the user can check the slave electronic devices (200) result on the master electronic device (100).
- the method can be used to execute and handle multiple scripts simultaneously for testing the wireless network by using master-slave devices with less time, less effect, low human intervention, less manual efforts, and low cost.
- FIG. 5A-FIG. 5c are example flow charts (S500) illustrating a method, implemented by the master electronic device (100), for testing the wireless network by using master-slave devices, according to the embodiments as disclosed herein.
- the operations (S502-S542) are handled by the master network test controller (140).
- the method includes opening the drive application running on the master electronic device (100) or the slave electronic device (200).
- the method includes selecting the master electronic device (100) and the one or more slave electronic devices (200).
- the method includes establishing the connection between the master electronic device (100) and the one or more slave electronic devices (200) using the short range communication.
- the method includes selecting a benchmark drive from the workorder section available from the worder management server (300).
- the method includes fetching the workorder from the worder management server (300), wherein the workorder is saved at a database (not shown).
- the method includes clicking on the receipe of the workorder.
- the method includes assigning the one by one recipe to the slave electronic devices (200).
- the method includes clicking on a start test button in the master electronic device (100).
- the method includes starting the recipe.
- the method includes determining whether warning up is there? If warning up is not there, then the method again performs the operation S518.
- the method includes testing the drive running on the master electronic device (100), where the master electronic device (100) shows the data of the slave electronic devices (200).
- the method includes clicking on a stop button or a back button on the master electronic device (100).
- the method includes determining whether the test drive is stopped? If the test drive is not stopped then, then the method again performs the operation S522. If the test drive is stopped then, at S528, the master electronic device (100) sends the message to the slave electronic devices (200) and stops the test drive running on the slave electronic devices (200), where the master electronic device (100) waits the results from the slave electronic device (200).
- the method includes launching the test result page on the master electronic device (100).
- the method includes checking the results of the slave electronic devices (200).
- the method includes clicking on the end task.
- the method includes upload the file upon clicking on the end task.
- the method includes starting the files upload from the slave electronic devices (200).
- the method includes determining whether all files are uploaded? If all files are not uploaded then, at S536, the method includes upload the files. If all files are uploaded then, At S542, the method includes stopping the test drive on all slave electronic device (200).
- FIG. 6 is a flow chart (600) illustrating a method, implemented by the slave electronic device (200), for testing the wireless network by using master-slave devices, according to the embodiments as disclosed herein.
- the operations (S602-S608) are handled by the slave network test controller (240).
- the method includes receiving the at least one test to be performed on the particular path from the master electronic device (100).
- the method includes simultaneously starting the at least one test on the particular path upon receiving the start command from the master electronic device (100).
- the method includes periodically sending the KPIs information associated with the at least one test to the master electronic device (100) while the at least one test is on-going on the particular path by each slave electronic device of the plurality of slave electronic devices (200).
- the method includes simultaneously stopping the at least one test upon receiving a stop command from the master electronic device (100).
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| Application Number | Priority Date | Filing Date | Title |
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| US18/041,508 US12598127B2 (en) | 2022-11-11 | 2022-12-28 | Testing wireless network by using master-slave devices |
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| IN202221064597 | 2022-11-11 | ||
| IN202221064597 | 2022-11-11 |
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| US20240284298A1 (en) * | 2023-02-16 | 2024-08-22 | Verizon Patent And Licensing Inc. | Systems and methods for traffic steering in radio access network based on transport network and core network information |
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| US6085244A (en) * | 1997-03-17 | 2000-07-04 | Sun Microsystems, Inc. | Dynamic test update in a remote computer monitoring system |
| US20150023188A1 (en) * | 2013-07-16 | 2015-01-22 | Azimuth Systems, Inc. | Comparative analysis of wireless devices |
| US20170366441A1 (en) * | 2016-06-16 | 2017-12-21 | Oracle International Corporation | Transmitting test traffic on a communication link |
| US20180131596A1 (en) * | 2016-11-10 | 2018-05-10 | Contec, Llc | Systems and methods for testing electronic devices using master-slave test architectures |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| EP4020758A1 (en) * | 2020-12-22 | 2022-06-29 | ElectDis AB | System, master test device, a slave test device and method for testing of wireless power transfer equipment having a plurality of wireless power transmitters |
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- 2022-12-28 US US18/041,508 patent/US12598127B2/en active Active
- 2022-12-28 WO PCT/US2022/054118 patent/WO2024102153A1/en not_active Ceased
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US6085244A (en) * | 1997-03-17 | 2000-07-04 | Sun Microsystems, Inc. | Dynamic test update in a remote computer monitoring system |
| US20150023188A1 (en) * | 2013-07-16 | 2015-01-22 | Azimuth Systems, Inc. | Comparative analysis of wireless devices |
| US20170366441A1 (en) * | 2016-06-16 | 2017-12-21 | Oracle International Corporation | Transmitting test traffic on a communication link |
| US20180131596A1 (en) * | 2016-11-10 | 2018-05-10 | Contec, Llc | Systems and methods for testing electronic devices using master-slave test architectures |
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|---|---|
| US12598127B2 (en) | 2026-04-07 |
| US20250080446A1 (en) | 2025-03-06 |
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