Method and configuration system
By identifying and configuring electronic system components in virtual or augmented reality displays, the problem of time-consuming and error-prone configuration of complex signaling scenarios in existing technologies is solved, achieving an efficient and accurate configuration process, reducing operating costs and improving network performance.
Patent Information
- Application Number
- CN202510633046.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Priority Date
- 2024-05-17
- Filing Date
- 2025-05-16
- Publication Date
- 2025-11-18
AI Technical Summary
Existing technologies are time-consuming, labor-intensive, and error-prone in configuring complex signaling scenarios, failing to effectively reduce the complexity of configuration and measurement settings, leading to increased operating costs and decreased network performance.
By identifying components of electronic systems in virtual or augmented reality displays, acquiring user input, and displaying configuration options, a computer system can automate the configuration process.
It improved the efficiency and accuracy of the configuration process, reduced operating costs, and enhanced network performance.
Smart Images

Figure CN120973266A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present disclosure relates to a method and a corresponding configuration system. BACKGROUND
[0002] Although applicable to the configuration of any type of configurable electronic equipment, the present disclosure will be described primarily in connection with the configuration of RF electronic equipment.
[0003] In the fast-evolving telecommunications industry, managing complex signaling scenarios has become a major challenge. Conventional methods of setting up or configuring these scenarios in electronic equipment are often time-consuming, labor-intensive and prone to errors. These methods typically involve manually configuring and calibrating such equipment, which is especially problematic in environments where signal complexity is high. Furthermore, the increasing demand for high-speed, high-capacity networks has led to the use of more complex signaling techniques, exacerbating the problem.
[0004] There is therefore a need to improve the configuration of equipment or systems of electronic equipment. SUMMARY
[0005] The above problems are solved by the features of the independent claims. It will be appreciated that an independent claim of one claim category can be formed by analogy to a dependent claim of another claim category.
[0006] There is therefore provided:
[0007] A method for configuring an electronic system, the method comprising identifying at least one component of the electronic system, displaying the identified at least one component to a user in a virtual or augmented reality display, obtaining a user input regarding content displayed in the virtual or augmented reality display, and if the user input relates to a respective component of the identified at least one component, displaying configuration options for the respective component.
[0008] There is furthermore provided:
[0009] A configuration system for configuring an electronic system, the configuration system comprising at least one virtual or augmented reality display, and a computer connected to the virtual or augmented reality display, wherein the computer is configured to identify at least one component of the electronic system, display the identified at least one component to a user in the at least one virtual or augmented reality display, obtain a user input regarding content displayed in the virtual or augmented reality display, and if the user input relates to a respective component of the electronic system, display configuration options for the respective component of the electronic system.
[0010] This disclosure is based on the finding that there is a need for a more efficient and accurate method to establish complex signaling scenarios or electronic systems and to perform measurements within such systems. Current technical solutions do not adequately address this problem because they do not effectively reduce the complexity of the configuration and measurement setup process. This leads to increased operating costs and degraded network performance.
[0011] Furthermore, in the current scenario, displaying information where needed is limited to the screen.
[0012] This disclosure acknowledges that extended reality (XR) technologies, such as virtual reality or augmented reality, can help address these challenges.
[0013] Therefore, this disclosure provides a method for configuring an electronic system. The method includes identifying at least one component of the electronic system, displaying the identified at least one component to a user in a virtual or augmented reality display, obtaining user input regarding the content displayed in the virtual or augmented reality display, and, if the user input relates to a corresponding component among the identified at least one component, displaying configuration options for that corresponding component.
[0014] The method according to this disclosure can be executed using a configuration system according to this disclosure. Such a configuration system includes a computer and at least one virtual or augmented reality display.
[0015] In this regard, the term "computer" should be understood as any type of general-purpose computing device or network that includes multiple such computing devices. Such a network may also include any other type of computing device that can provide data or any other input to perform the methods according to this disclosure.
[0016] At least one virtual or augmented reality display can be provided to at least one user. Of course, multiple virtual or augmented reality displays can be provided to multiple users simultaneously. Each virtual or augmented reality display can be controlled by a computer. In an embodiment, each virtual or augmented reality display may include a local control computer that performs motion tracking and controls the display in the virtual or augmented reality display. Such a local control computer can then interface with any other computer to receive data required to perform at least a portion of the methods according to this disclosure.
[0017] In an embodiment, such a local computer can execute the methods according to this disclosure in a self-contained manner, i.e., without needing to connect to other computers or computer systems. In such an embodiment, a corresponding application can be installed on the local control computer, the application including all necessary computer-readable instructions, i.e., software, and all necessary information, such as in a local database.
[0018] Electronic systems can include any number of different components. For example, an electronic system can include a single component, such as a microcontroller, or multiple components in a single housing, such as the internal electronics of an RF electronic device arranged in a respective housing. An electronic system can also include multiple devices, each with its own dedicated housing, which can be connected to each other wirelessly or via a cable-based connection.
[0019] This method begins with identifying at least one component of the electronic system. In this respect, identification refers to recognizing at least one of the component's type and its location.
[0020] The method also includes displaying at least one identified component to a user in a virtual or augmented reality display. In the virtual or augmented reality created for the user using the virtual or augmented reality display, the object can be placed in the virtual space at a location corresponding to its position in the real world. Alternatively, in the virtual or augmented reality, the object can be displayed at a user-configurable location.
[0021] In one embodiment, a virtual representation of an electronic system with all identified components can be created using a virtual or augmented reality display in virtual or augmented reality. The user can then freely position such a representation within the virtual or augmented space.
[0022] In another embodiment, in a virtual or augmented reality display, reality can be overlaid with a virtual representation of at least some components of an electronic system. In such an embodiment, a user can directly view reality, and the overlay can be created on, for example, a translucent surface in front of the user, or a video feed of reality can be recorded and displayed to the user on the display, wherein virtual content can be overlaid on the video feed.
[0023] In this method, user input regarding the content displayed on a virtual or augmented reality display is acquired. Such user input can be acquired in any suitable manner. For example, the user's hand can be tracked, or a suitable input device that the user can hold in their hand can be provided. Furthermore, user input can be provided as spoken words or instructions, or it can be provided using a mouse, keyboard, etc. In embodiments, any single or any combination of such user input methods can be used.
[0024] Users can, of course, perform any type of input action in a virtual or augmented reality environment. In the case of the method according to the invention, if the user performs input regarding a corresponding component of the electronic system, configuration options for that component are displayed to the user.
[0025] In the context of this disclosure, performing user input involving a component may refer to selecting a representation of that component in virtual or augmented reality. As described above, any input device suitable for use in a virtual or augmented reality environment can be used.
[0026] Users can easily view the arrangement of all components in an electronic system, or directly identify the possible configuration options for individual components, by using the methods or configuration systems disclosed herein.
[0027] In an exemplary embodiment, the electronic system may include complex electronic circuitry mounted on a circuit board or PCB, and may include multiple different components. At least some of these components are configurable. For example, a microcontroller or other logic device may include multiple configurable options. Furthermore, the different components in such an electronic system may be interconnected via analog signal lines or data connections, and exchange analog signals and digital data during operation.
[0028] By using the method or configuration system according to this disclosure, users can be provided with information on configurable parameters of components of such electronic systems, easily and directly linked to the corresponding components in space, and the corresponding scenarios can be visualized.
[0029] This method and configuration system can support or implement other user functions. For example, in one embodiment, a user can be allowed to invoke different windows containing different types of information about components or electronic systems via gestures. In another embodiment, the user can also wear haptic feedback gloves and receive feedback through these gloves.
[0030] In this embodiment, multiple users can meet in a virtual environment. While no single user, or only one or a few users, may actually have the electronic system at hand, for other users, the electronic system can be provided as a purely virtual electronic system and / or a video stream of the electronic system within this virtual environment. In an RF scenario, multiple potentially mobile electronic systems or devices of electronic systems can be displayed in such a virtual environment.
[0031] In this embodiment, a user can move within an electronic system in a virtual or augmented reality environment. Particularly in an RF scenario, the virtual or augmented reality environment may also include buildings or measurement rooms that the user can virtually enter.
[0032] Other embodiments of this disclosure are the subject of other dependent claims and the following description, with reference to the accompanying drawings.
[0033] The dependent claims that directly or indirectly reference claim 1 are described in more detail below. For the avoidance of doubt, features of dependent claims relating to independent claim 1 may be combined with each other in all variations, and the disclosure of the specification is not limited to the dependent relationships specified in the claim set. Furthermore, features of dependent claims referencing independent claim 1 may be combined with any features of other independent claims or dependent claims relating to any of other independent claims. In the corresponding methods, the corresponding method steps may perform the functions of the corresponding device elements, and in the corresponding devices, the corresponding device elements may perform the corresponding method steps.
[0034] In one embodiment (which may be combined with all other embodiments mentioned above or below), the method may further include receiving from a user a selection of at least one of the shown configuration options, receiving from the user a configuration value provided by the user for at least one of the selected shown configuration options, and storing the received configuration value provided by the user for at least one of the selected shown configuration options.
[0035] As described above, multiple configuration options are available for corresponding components of the electronic system. Users can select any of the configurable options within a virtual or augmented reality environment created using a virtual or augmented reality display, and can provide corresponding values for the configurable options. The user-provided values can then be stored.
[0036] The stored configuration values can be stored in a database, and any stored configuration values provided by the user can be used later to configure the actual components in the electronic system.
[0037] In another embodiment, which may be combined with all other embodiments mentioned above or below, configuration options may be displayed at locations corresponding to the respective components in the virtual or augmented reality display, and receiving selections and user-provided configuration values in the virtual or augmented reality display may be performed by obtaining user input for the configuration options displayed in the virtual or augmented reality display.
[0038] Configuration options can be presented, for example, in tabular form, which can float above corresponding components in the virtual or augmented reality environment created for the user. Linking graphical elements, such as arrows, can be provided between such tables and components. User input and actual values for selecting individual configuration options can be received at the table location within the virtual or augmented reality environment. The user can, for example, select a field in the table and enter the corresponding value. In other embodiments, any other graphical representation besides tables can be provided. For example, multi-level menus can be arranged in the appropriate locations.
[0039] In another embodiment that may be combined with all other embodiments mentioned above or below, the method may further include generating a computer program product that includes user-provided configuration values received from a user for operating at least one of at least one of the components.
[0040] As described above, the values provided by the user for individual configuration options can be stored for later use. One possible application of the user-provided values for configuration options includes generating a computer program product, such as firmware, for at least one component of an electronic system based on the user-provided values. The user-provided values can also be sent directly to the electronic system.
[0041] In an exemplary use of this method, components of the electronic system may include a processor or a System-on-a-Chip (SoC). User-provided values may relate to configuration options such as processor speed, input / output interface configuration, communication interface configuration, and many other configurable options that such a processor can provide.
[0042] Based on user-provided values, firmware for a processor or SoC can be configured and compiled, allowing the firmware to be loaded into or connected to the processor or SoC's memory. The processor or SoC can then execute the instructions provided in the firmware. Of course, such firmware can include not only user-provided values but also any other functionality that programmers can add to it.
[0043] In another embodiment that may be combined with all other embodiments mentioned above or below, identifying at least one component of the electronic system may include at least one of the following: visually identifying at least one component, or visually identifying the electronic system and loading information about at least one component of the electronic system from a component database, or visually identifying the location of at least one component and requesting the user to identify the corresponding type of the component.
[0044] Visual recognition refers to identifying components using a camera and corresponding artificial vision algorithms to determine the specific type of the component. The camera may, for example, record images or videos of electronic systems and corresponding components. In embodiments, the artificial vision algorithm may include OCR (Optical Character Recognition) to read markings on components. The artificial vision algorithm may also include artificial intelligence algorithms trained to identify components of electronic systems in images.
[0045] In addition to components, artificial vision algorithms can also identify the layout of components and the chipsets used in electronic systems. After identifying the layout of components, virtual or augmented versions of the components can be overlaid on the corresponding positions of the real components in a virtual or augmented reality environment.
[0046] Alternatively, or instead of directly identifying individual components of an electronic system, in one embodiment, the electronic system can be visually identified. After identifying the electronic system, further information or data about the electronic system (especially about its components) can be loaded, for example, from a database or a server provided by the component manufacturer. Such a database may include detailed information about the electronic system and all its components. If the electronic system comprises complex electronic circuits, the database may, for example, include circuit diagrams and detailed descriptions or metadata of all components in the electronic system.
[0047] If a part cannot be identified or multiple candidate parts are identified, the location of the part can be visually identified in the virtual or augmented reality environment, and thus the part can be identified, and the user can be asked to input or identify the correct type of the part.
[0048] In some embodiments, multiple electronic systems may be provided, or an electronic system may include a subsystem. In such embodiments, multiple electronic systems or subsystems may be processed simultaneously using a method or configuration system according to this disclosure.
[0049] As mentioned above, users can be tracked. If components, especially their layout, are identified, warnings can also be issued to users based on user tracking if they are about to touch potentially damaged points or components of the electronic system.
[0050] In another embodiment that may be combined with all other embodiments mentioned above or below, at least one configuration option may include at least one of hardware configuration options, communication interface configuration options, software configuration options, and the location of at least one component in the electronic system.
[0051] In embodiments that can be combined with all other embodiments mentioned above or below, the electronic system may include at least two components. The method may also include indicating the connection between the at least two components in a virtual or augmented reality display.
[0052] If an electronic system contains multiple components, at least some of these components can be interconnected. In virtual or augmented reality, this connection can be visualized, for example, by lines connecting the components to each other.
[0053] This visual connection in virtual or augmented reality environments helps users identify signal and data paths in electronic systems.
[0054] In another embodiment, which may be combined with all other embodiments mentioned above or below, indicating a connection may include visually connecting at least two components based on received user-provided configuration values.
[0055] The values provided by the user for different configuration options can affect the data signals transmitted between two components of an electronic system.
[0056] Users can, for example, configure data transmission or signal generation parameters of an electronic system. Users can, for example, configure an SPI bus between two components of an electronic system. Visual indications of the connections between these components can reflect the fact that the bus is an SPI bus. These visual connections can also reflect the bus configuration, such as the clock frequency configured for the bus. Typically, visual indications can indicate not only the type of connection but also, if appropriate, any metadata related to that connection.
[0057] In another embodiment that may be combined with all other embodiments mentioned above or below, indicating a connection may include visually connecting at least two components according to the component layout of the electronic system.
[0058] As mentioned above, if a circuit diagram or schematic is available, the connecting lines can follow a trajectory in a real electronic system or in a virtual or augmented reality environment. This will help users map information from the virtual or augmented reality environment to the real or actual electronic system.
[0059] In embodiments that can be combined with all other embodiments mentioned above or below, indicating a connection may include displaying a warning along with the connection when a user-provided incompatible configuration value for the corresponding configuration option is received from the user.
[0060] As described above, an electronic system may include interconnected components capable of outputting and receiving signals or digital data. If the signal or data generation and receiving components are configurable by the user, the user may provide inappropriate or incompatible configurations. Such configurations may be indicated by warnings (e.g., corresponding symbols) in a virtual or augmented reality environment.
[0061] For example, in the SPI bus example above, if two components connected to the SPI bus are configured with different SPI parameters, and the two components are not allowed to exchange data through such an SPI bus, a warning may be displayed.
[0062] Providing a warning if the user provides incompatible settings is a form of static analysis. If measurements are taken within an electronic system, dynamic analysis of the electronic system can be performed, for example, using real-time data.
[0063] In another embodiment that may be combined with all other embodiments mentioned above or below, at least one configuration option may include at least one of at least one antenna definition and at least one location of at least one antenna component in the electronic system, wherein the method may further include displaying a radiation pattern of at least one antenna component in a virtual or augmented reality display.
[0064] Antenna definitions can define the types of antennas provided in an electronic system. Furthermore, or alternatively, the location of an antenna defined by an antenna definition, or another predefined or identified antenna in the electronic system, can be defined by the user.
[0065] This method may include simulating or calculating or loading a radiation pattern of an antenna from a server and displaying that radiation pattern in a virtual or augmented reality environment. This can be performed for multiple antennas in an electronic system.
[0066] Antenna or radiation patterns can also be viewed as a connection shown in a virtual or augmented reality environment.
[0067] As described above, the method can include indications of connection and metadata used for connection. Therefore, along with the antenna's radiation pattern, additional information can be displayed to the user. This additional information may refer to the RF standard used by the antenna to transmit or receive data, such as LTE, Wi-Fi, or Bluetooth. The RF standard can be represented, for example, as text or by coloring the radiation pattern accordingly.
[0068] When using a configurable beamforming antenna, the currently configured beam pattern can be displayed to the user. For other components, the current settings or signal direction of the bidirectional data port can be displayed. Therefore, RF debugging can be performed.
[0069] By utilizing multiple antennas in an electronic system (e.g., a UE or mobile phone), graphical indications related to the currently used antennas can be given or displayed.
[0070] Any type of metadata displayed in a virtual or augmented reality environment can be displayed as text, symbols, or correspondingly colored elements in the virtual or augmented reality environment for any component or connection.
[0071] In embodiments, such as as described below, the method may include performing measurements or simulations of an electronic system and displaying the results of the measurements or simulations in a virtual or augmented reality environment. Analog signals or data streams may be displayed independently or superimposed on each other.
[0072] If the electronic system is a user equipment (UE) used for communication in cellular telephones and data networks, the UE can, for example, freely select an uplink path. This selected uplink path can be displayed to the user in virtual or augmented reality surrounding the user. Furthermore, the currently used channel can be displayed, or the channel changes over time can be displayed in a historical format.
[0073] In the case of a UE, if the UE performs WIFI offload, it can also be displayed in a virtual or augmented reality environment.
[0074] In embodiments where RF signals (analog or measured) are displayed in a virtual or augmented reality environment, the user can position their viewport at any suitable location, for example, in the presence of multiple UEs, not only the location of the UEs but also the location of the receiving base station. This allows the user to view the beam as it travels from the UE to the base station.
[0075] In another embodiment that may be combined with all other embodiments mentioned above or below, displaying at least one identified component in a virtual or augmented reality display may include at least one of the following: displaying a recorded image of the component, displaying a virtual image of the component, and overlaying a virtual image of the component at a location in the virtual or augmented reality display corresponding to the location of the component in the electronic system.
[0076] If the recorded image of the display component is shown, a realistic image of the actual electronic system is presented to the user, which helps the user map the virtual or augmented reality environment to the real world.
[0077] By displaying virtual images or representations of components, a more structured view can be presented to the user because the level of detail can be adjusted within the virtual image. For example, a virtual image of a microcontroller might only show the pins currently in use or connected to traces on the circuit board.
[0078] It's not just about displaying virtual images of individual components. Instead, virtual images can be generated for the entire electronic system. Virtual images can also be overlaid on recorded images. By overlaying at least one virtual component onto a recorded image of an electronic system, an X-ray view can be provided. For example, a UE or cellular phone might be viewed as having its back facing up. On a recorded image of the UE, virtual components can be overlaid so that the back of the UE appears open, allowing the user to view the UE's interior, i.e., its components, without actually opening the UE. The user can also manipulate the virtual representation of the UE, such as moving or turning it around. These functionalities, exemplarily explained here for a UE, can certainly be applied to any other type of electronic system.
[0079] In addition, additional information can be overlaid on the recorded image or virtual image.
[0080] As shown below, when combined with measurements, a thermal image can be overlaid on a recorded or virtual image. This thermal image can indicate the measured heat value. Thermal images can also be derived from other data, such as data rates on a bus or within communication components. The power consumption of a single component can also be overlaid on the recorded or virtual image.
[0081] As measurements are performed, anomalies in the signals or data transmitted within the electronic system can be visually indicated at the corresponding fault locations within the system. The location of the error can be magnified within the user's virtual or augmented reality environment, and the corresponding error can be recorded.
[0082] In addition, it can show which protocols are implemented or used on which interfaces of the electronic system.
[0083] In one embodiment that can be combined with all other embodiments described above or below, the method may further include displaying at least one system value in a virtual or augmented reality display at a location corresponding to the occurrence of at least one system value in the electronic system.
[0084] System values can include physical values, particularly electrophysical, magnetic, or electromagnetic values. Other values, such as temperature and pressure, are also possible. These physical values can be measured by appropriate sensors or provided by electronic systems.
[0085] In this embodiment, the measurement application device may be a subsystem of an electronic system, or it may be another electronic system in a multi-electronic system environment. In such an embodiment, user input, particularly user-provided values of configuration options, may also relate to the configuration and control of the measurement application device.
[0086] When a measurement application device is part of an electronic system, a representation of the measurement signal can be displayed to a user in a virtual or augmented reality environment. For example, a virtual screen of the measurement application device can be displayed in a virtual or augmented reality environment at a location associated with the trace carrying the corresponding signal. Multiple displays of the measurement signal can be provided simultaneously.
[0087] In one embodiment, the currently measured signal can be displayed in real time. In other examples, stored measurements can be displayed, and users can be allowed to scroll through the stored measurements, or replay the stored measurements at the original speed or at a reduced speed, or progressively traverse time slices of the stored signal.
[0088] In this embodiment, the measurement values of the corresponding measurement application device or the virtual screen are displayed only when the user activates the corresponding screen, for example by clicking on the corresponding port or component in the virtual or augmented reality environment.
[0089] Furthermore, when the measurement application is part of an electronic system, the user can be instructed on the correct wiring from the measurement application to other components (e.g., the device under test as a subsystem of the electronic system). The method may also include, and the configuration system may be configured to, identify the wiring, for example, through a camera system operated by the user in a real electronic system, and visually indicate potential errors in a virtual or augmented reality display. Additionally, a warning may be issued to the user before wiring that could damage the corresponding component is installed.
[0090] If a specific test sequence is performed using a measurement application device and rewiring is required, the user may receive instructions for the required rewiring in a virtual or augmented reality environment. For example, the corresponding ports or connectors of the device under test and the measurement application device can be labeled.
[0091] Furthermore, when the measurement application device is part of an electronic system, the method can be performed at least in part by the measurement application device, which can be a configuration system according to this disclosure.
[0092] System values can also include data values, especially data values of data streams transmitted in electronic systems.
[0093] In another embodiment that may be combined with all other embodiments mentioned above or below, the method may further include at least one of the following: measuring at least one physical value in the electronic system and simulating at least one physical value.
[0094] As mentioned above, measurement application equipment can be provided as part of an electronic system or as a subsystem of an electronic system.
[0095] Measurement application devices according to this disclosure may include any device that can be used in a measurement application to acquire input signals or generate output signals, or to perform additional or supporting functions in a measurement application. Measurement application devices may also include or be implemented as one or more program applications, also referred to as one measurement program application or multiple measurement program applications, which can be executed on a computer device and can communicate with other measurement application devices to perform measurement tasks. Measurement applications, also referred to as measurement setups, may, for example, include at least one or more different measurement application devices for performing electrical, magnetic, or electromagnetic measurements, particularly on a single device under test. Such electrical, magnetic, or electromagnetic measurements may be performed, for example, in a measurement laboratory or a production facility on a corresponding production line. Exemplary measurement applications or measurement setups can be used to identify a single device under test, i.e., to determine the correct electrical operation of the corresponding device under test.
[0096] Therefore, the measurement application device may include at least one signal acquisition section for acquiring electrical, magnetic, or electromagnetic signals to be measured from the device under test (DUT), or at least one signal generation section for generating electrical, electromagnetic, or electromagnetic signals that can be provided to the DUT. Such a signal acquisition section may include, but is not limited to, a front-end for acquiring, filtering, attenuating, or amplifying electrical signals. The signal generation section may include, but is not limited to, various signal generators, amplifiers, and filters. In embodiments, signal acquisition is performed via the signal acquisition section in a wired or contact-based manner or method. For this purpose, corresponding measurement probes can be connected to the measurement application device via corresponding cables. In embodiments, signal generation and transmission are performed via the signal generation section in a wired or contact-based manner or method. For this purpose, corresponding signal output probes can be connected to the measurement application device via corresponding cables, or the signal can be directly output via a cable, for example, to the DUT.
[0097] Furthermore, when acquiring signals, the measurement application device may include a signal processing section capable of processing the acquired signals. Processing may include converting the acquired signal from an analog signal to a digital signal, as well as any other type of digital signal processing, such as converting the signal from the time domain to the frequency domain.
[0098] The measurement application equipment may also include a user interface for displaying the acquired signals to the user and allowing the user to control the measurement application equipment. Of course, a housing containing the components of the measurement application equipment can be provided. It is understood that other components, such as power supply circuitry and communication interfaces, can also be provided.
[0099] Measurement application equipment can be a standalone device that operates without any other components in the measurement application to test the device under test. Alternatively, it can be equipped with communication capabilities to interact with other measurement application equipment.
[0100] Measurement application equipment may include, for example, signal acquisition devices such as oscilloscopes, particularly digital oscilloscopes, spectrum analyzers, or vector network analyzers. Such measurement application equipment may also include signal generation devices, such as signal generators, particularly arbitrary signal generators, also known as arbitrary waveform generators or vector signal generators. Other possible measurement application equipment includes devices such as calibration standards or measurement probe tips.
[0101] Of course, at least some possible functions, such as signal acquisition and signal generation, can be combined in a single measurement application device.
[0102] In embodiments, the measurement application device may include a pure data acquisition device capable of acquiring input signals and providing the acquired input signals as digital input signals to a corresponding data storage or application server. Such a pure data acquisition device does not necessarily include a user interface or display. Instead, such a pure data acquisition device can be remotely controlled, for example, through a suitable data interface, such as a network interface or a USB interface. The same applies to pure signal generation devices that generate output signals without including any user interface or configuration input elements. Instead, such signal generation devices can be operated remotely via a data connection. Attached Figure Description
[0103] To gain a more complete understanding of this disclosure and its advantages, reference is now made to the following description in conjunction with the accompanying drawings. The disclosure is explained in more detail below using exemplary embodiments specified in the schematic diagrams of the drawings, wherein:
[0104] Figure 1 A flowchart illustrating an embodiment of the method according to this disclosure is shown;
[0105] Figure 2 A flowchart of another embodiment of the method according to this disclosure is shown;
[0106] Figure 3 A flowchart of another embodiment of the method according to this disclosure is shown;
[0107] Figure 4 A block diagram of an embodiment of a configuration system according to the present disclosure is shown;
[0108] Figure 5 Block diagrams showing embodiments of a measurement application device that can be used with the methods according to this disclosure; and
[0109] Figure 6 A block diagram of another embodiment of a measurement application device that can be used with the method according to this disclosure is shown.
[0110] In the figures, unless otherwise specified, the same reference numerals denote the same elements. Detailed Implementation
[0111] Figure 1 A flowchart of a method for configuring an electronic system is shown. The method includes identifying at least one component of the electronic system in step S1, displaying the identified at least one component to a user in a virtual or augmented reality display in step S2, obtaining user input in step S3 regarding the content displayed in the virtual or augmented reality display, and displaying configuration options for the corresponding component if the user input relates to a corresponding component among the identified at least one component in step S4.
[0112] Figure 2A flowchart of another method according to this disclosure is shown, which is based on Figure 1 The method is shown. Although not shown, the dashed arrow indicating step S5 points to the correct path. Figure 2 The methods also include Figure 1 All steps of the method.
[0113] also, Figure 2 The method includes receiving from the user S5 a selection of at least one of the shown configuration options, receiving from the user S6 a configuration value provided by the user for at least one of the selected configuration options, and storing the configuration value provided by the user for at least one of the selected configuration options received S7.
[0114] Figure 3 A flowchart of another method according to this disclosure is shown, which is based on Figure 1 The method shown. Therefore, Figure 3 The method includes identifying at least one component of the electronic system in S1, displaying the identified at least one component to a user in a virtual or augmented reality display in S2, obtaining user input in S3 regarding the content displayed in the virtual or augmented reality display, and displaying configuration options for the corresponding component in S4 if the user input relates to a corresponding component among the identified at least one component.
[0115] The method further includes displaying at least one system value in a virtual or augmented reality display at a location corresponding to the occurrence of at least one system value in the electronic system.
[0116] The system value may be loaded, for example, from a server. Although not explicitly shown, the method may also include measuring at least one system value as a physical value in the electronic system, or simulating at least one system value as a physical value.
[0117] Figure 4 A block diagram of a configuration system 100 is shown. The configuration system 100 includes at least one virtual or augmented reality display 102-1, 102-2, and a computer 101 connected to the virtual or augmented reality displays 102-1, 102-2. Additionally, a UE or cellular phone 199 is shown as a possible electronic system. Finally, a sensor (shown as camera 103) is provided and connected to the computer 101.
[0118] Camera 103 is used to monitor the user's movement, record images from the cellular phone 199, and typically provide feedback about the user's real-world environment. Although not shown, other input devices may be provided, such as a keyboard, mouse, touchscreen, voice input interface, and virtual or augmented reality input devices.
[0119] Computer 101 is configured to: identify at least one component of an electronic system, display the identified at least one component to a user in at least one virtual or augmented reality display, obtain user input regarding the content displayed in the virtual or augmented reality display, and, if the user input relates to a corresponding component of the electronic system, display configuration options for that corresponding component of the electronic system.
[0120] Typically, computer 101 is configured to perform any step of the method according to this disclosure.
[0121] Computer 101 can be configured to: control a virtual or augmented reality display to display configuration options at a location corresponding to a corresponding component, and receive selected and user-provided configuration values via the virtual or augmented reality display by obtaining user input regarding the configuration options shown in the virtual or augmented reality display.
[0122] Furthermore, the computer 101 may be further configured to generate a computer 101 program product, which includes user-provided configuration values received from the user for operating at least one component of the electronic system.
[0123] Computer 101 can be configured to: identify at least one component of an electronic system by at least one of the following methods: visually identifying at least one component; visually identifying the electronic system and loading information about at least one component of the electronic system from a component database; visually identifying the location of at least one component and requesting a user to identify the corresponding type of the component.
[0124] At least one configuration option may include at least one of hardware configuration options, communication interface configuration options, software configuration options, and the location of at least one component in the electronic system.
[0125] The electronic system may further include at least two components, and the computer 101 may be further configured to control a virtual or augmented reality display to indicate the connection between the at least two components based on configuration values received from the user for the respective configuration options.
[0126] Computer 101 can be configured to control a virtual or augmented reality display to perform at least one of the following: visually connecting at least two components according to configuration values provided by a received user, and visually connecting at least two components according to the component layout of an electronic system.
[0127] Computer 101 may be further configured to control a virtual or augmented reality display to display a warning along with the connection when it receives incompatible configuration values from the user for the corresponding configuration options.
[0128] At least one configuration option may include the location of at least one antenna component in the electronic system, and the computer 101 may be further configured to control a virtual or augmented reality display to display the radiation pattern of at least one antenna component in the virtual or augmented reality display.
[0129] When at least one identified component is displayed in a virtual or augmented reality display, the computer 101 may be further configured to perform at least one of the following steps: displaying a recorded image of the component, displaying a virtual image of the component, and overlaying a virtual image of the component in the virtual or augmented reality display at a location corresponding to the component's position in the electronic system.
[0130] The computer 101 may be further configured to control a virtual or augmented reality display to display at least one system value at a location in the virtual or augmented reality display corresponding to the occurrence of at least one system value in the electronic system.
[0131] The configuration system may further include at least one of a measurement application device configured to measure at least one physical value in an electronic system and a simulator configured to simulate at least one physical value.
[0132] Figure 5 A block diagram of an oscilloscope OSC1 is shown, which can be used with an embodiment of a configuration system according to the present disclosure, or can perform measurements or at least some steps of a method according to the present disclosure.
[0133] The oscilloscope OSC1 includes a housing HO that houses four measurement input ports MIP1, MIP2, MIP3, and MIP4. These four measurement input ports are connected to a signal processor SIP for processing any measurement signals. The signal processor SIP is connected to a display DISP1 for displaying the measured signals to the user.
[0134] Although not explicitly shown, it should be understood that the oscilloscope OSC1 may also include a signal output port. This signal output port can, for example, be used to output a calibration signal. This calibration signal allows the measurement settings to be calibrated before any measurement is performed. The process of calibrating and correcting any measurement signal based on calibration can also be referred to as de-embedding and may include applying a corresponding algorithm to the measurement signal.
[0135] In the oscilloscope OSC1, a signal processor SIP or additional processing element can perform the functions of a computer according to this disclosure, or the method can be implemented. Of course, a communication interface can be provided in the oscilloscope OSC1 for communicating with other measurement application devices.
[0136] Figure 6A block diagram of an oscilloscope OSC is shown. The oscilloscope OSC may be an implementation of a measurement application device used with the methods or configuration system according to this disclosure, or it may implement at least some of the functions of the methods according to this disclosure. The oscilloscope OSC is implemented as a digital oscilloscope. However, this disclosure can also be implemented with any other type of oscilloscope.
[0137] An oscilloscope OSC typically comprises five general sections: the vertical system (VS), the trigger section (TS), the horizontal system (HS), the processing section (PS), and the display section (DISP). It is understood that this division into five general sections is a logical arrangement and does not in any way limit the arrangement and implementation of any components of the oscilloscope OSC.
[0138] Vertical systems (VS) are primarily used to offset, attenuate, and amplify the signal being acquired. For example, the signal can be modified to fit the available space on the display DISP, or to include a user-configured vertical dimension.
[0139] To this end, the vertical system (VS) includes a signal conditioning section (SC) with an attenuator (ATT) and a digital-to-analog converter (DAC), which are connected to an amplifier (AMP). The amplifier AMP is connected to a filter FI1, which, in the example shown, is provided as a low-pass filter. The vertical system (VS) also includes an analog-to-digital converter (ADC), which receives the output from the filter FI1 and converts the received analog signal into a digital signal.
[0140] The attenuator (ATT) and amplifier (AMP) are used to scale the amplitude of the signal to be acquired to match the operating range of the analog-to-digital converter (ADC). The digital-to-analog converter (DAC) is used to modify the DC component of the input signal to be acquired to match the operating range of the ADC. Filter FI1 is used to filter out unwanted high-frequency components from the signal to be acquired.
[0141] The trigger section TS operates on the signal provided by the amplifier AMP. The trigger section TS includes a filter FI2, which in this embodiment is implemented as a low-pass filter. The filter FI2 is connected to the trigger system TS1.
[0142] The trigger section (TS) is used to capture predefined signal events and allows the horizontal system (HS) to display, for example, a stable view of a repetitive waveform, or simply a portion of the waveform including the corresponding signal event. It should be understood that the predefined signal events can be configured by the user via user input on the oscilloscope's OSC.
[0143] Possible predefined signal events may include, for example, when a signal crosses a predefined trigger threshold in a predefined direction (i.e., with an ascending or descending slope). This triggering condition is also known as edge triggering. Another triggering condition is called "glitch triggering," which is triggered when a pulse with a width greater than or less than a predefined time value appears in the signal to be acquired.
[0144] To allow the trigger event to precisely match the waveform displayed on the display DISP, a common time base can be provided for the analog-to-digital converter (ADC) and the trigger system TS1.
[0145] It should be understood that, although not explicitly shown, the triggering system TS1 may include at least one of a configurable voltage comparator for setting the trigger threshold voltage, a fixed voltage source for setting the desired slope, various logic gates such as an XOR gate, and a flip-flop for generating the trigger signal.
[0146] The trigger section TS is provided, exemplarily, as an analog trigger section. It is understood that the oscilloscope OSC can also be equipped with a digital trigger section. This digital trigger section operates not on the analog signal provided by the amplifier AMP, but on the digital signal provided by the analog-to-digital converter ADC.
[0147] The digital triggering section may include processing elements, such as processors, DSPs, CPLDs, ASICs, or FPGAs, to implement digital algorithms for detecting valid triggering events.
[0148] The horizontal system HS is connected to the output of the trigger system TS1 and is mainly used for positioning and horizontal scaling of the signal to be acquired on the display DISP.
[0149] The oscilloscope OSC also includes a processing section (PS) that performs digital signal processing and data storage. The processing section (PS) includes an acquisition processing element (ACP) connected to the output of the analog-to-digital converter (ADC) and the output of the leveling system (HS), as well as connections to the memory (MEM) and the post-processing element (PPE).
[0150] The acquisition processing element (ACP) manages the acquisition of digital data from the analog-to-digital converter (ADC) and the storage of the data in the memory (MEM). The acquisition processing element (ACP) may, for example, include a processing element having a digital interface to the ADC2 and a digital interface to the memory (MEM). The processing element may, for example, include a microcontroller, DSP, CPLD, ASIC, or FPGA with the corresponding interfaces. In a microcontroller or DSP, the functionality of the acquisition processing element (ACP) can be implemented as computer-readable instructions executed by the CPU. In a CPLD or FPGA, the functionality of the acquisition processing element (ACP) can be configured within the CPLD or FPGA, rather than as software executed by a processor.
[0151] The processing unit PS also includes a communication processor CP and a communication interface COM.
[0152] The communication processor (CP) can be a device that manages data transfer between the oscilloscope and the oscilloscope's OSC. The communication interface (COM) is compatible with any suitable communication standard, such as Ethernet, Wi-Fi, Bluetooth, NFC, infrared communication standards, and visible light communication standards.
[0153] The communication processor CP is connected to the memory MEM, and the memory MEM can be used to store and retrieve data.
[0154] Of course, the communication processor CP can also be connected to any other component of the oscilloscope OSC to retrieve device data or provide device data received from the management server.
[0155] The post-processing element (PPE) can be controlled by the acquisition and processing element (ACP) and can access the memory (MEM) to retrieve data to be displayed on the display (DISP). The PPE can adjust the data stored in the memory (MEM) so that the display (DISP) can display data, such as waveforms, to the user. The PPE can also perform analytical functions such as cursor manipulation, waveform measurement, histogram manipulation, or mathematical functions.
[0156] The Display Display Service (DISP) controls all aspects of presenting signals to the user, and although not explicitly shown, it may include any components required to receive data to be displayed and control the display device to display the data on demand.
[0157] It is understood that, even if not shown, an oscilloscope OSC may include a user interface for user interaction with the OSC. Such a user interface may include dedicated input elements such as knobs and switches. At least in part, the user interface may also be provided as a touch-sensitive display device.
[0158] In an oscilloscope OSC, any of the processing elements in the processing section PS or additional processing elements can perform the functions of a configuration system (especially a computer) according to this disclosure, or can implement at least some functions of the methods according to this disclosure.
[0159] It is understood that all components performing digital data processing in an oscilloscope OSC can be provided as dedicated components. Alternatively, at least some of the functions described above can be implemented in a single hardware component, such as a microcontroller, DSP, CPLD, or FPGA. Typically, the aforementioned logic functions can be implemented in any suitable hardware component of the oscilloscope OSC and do not necessarily need to be divided into the different parts described above.
[0160] The processes, methods, or algorithms disclosed herein can be delivered to or implemented by a processing device, controller, or computer, which may include any existing programmable electronic control unit or dedicated electronic control unit. Similarly, these processes, methods, or algorithms can be stored in various forms as controller- or computer-executable data and instructions, including but not limited to information permanently stored on non-writable storage media such as ROM devices, and information reproducibly stored on writable storage media such as floppy disks, magnetic tapes, CDs, RAM devices, and other magnetic and optical media. These processes, methods, or algorithms can also be implemented as software executable objects. Alternatively, these processes, methods, or algorithms can be implemented, in whole or in part, using suitable hardware components such as application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), state machines, controllers, or other hardware components or devices, or a combination of hardware, software, and firmware components.
[0161] While exemplary embodiments have been described above, it is not intended that these embodiments describe all possible forms covered by the claims. The terms used in this specification are descriptive rather than limiting, and it should be understood that various changes may be made without departing from the spirit and scope of this disclosure. As previously stated, features of various embodiments may be combined to form further embodiments of the invention that may not be explicitly described or shown. While various embodiments may be described as providing an advantage or superiority over other embodiments or prior art implementations in one or more desired characteristics, those skilled in the art will recognize that one or more features or characteristics may be compromised to achieve desired overall system properties, depending on the specific application and implementation. These properties may include, but are not limited to, cost, strength, durability, lifecycle cost, merchantability, appearance, packaging, size, availability, weight, manufacturability, ease of assembly, etc. Therefore, if any embodiment is described as less desirable than other embodiments or prior art implementations in one or more features, such embodiments are outside the scope of this disclosure and may be suitable for a particular application.
[0162] Regarding the processes, systems, methods, heuristics, etc., described herein, it should be understood that although the steps of these processes, etc., are described as occurring in a certain order, these processes may also be performed in a different order than that described herein. It is also understood that some steps may be performed simultaneously, other steps may be added, or some steps described herein may be omitted. In other words, the process descriptions provided herein are for illustrative purposes and should in no way be construed as limiting the claims.
[0163] Therefore, it should be understood that the above description is intended to be illustrative rather than limiting. Many embodiments and applications beyond the examples provided will become apparent after reading the above description. The scope should not be determined by reference to the above description, but rather by reference to the appended claims and the full scope of their equivalents. It is anticipated and intended that the technology discussed herein will evolve in the future, and the disclosed systems and methods will be incorporated into these future embodiments. In conclusion, it should be understood that this application is capable of modifications and variations.
[0164] Unless expressly indicated otherwise herein, all terms used in the claims are intended to be given their broadest reasonable construction and ordinary meaning as understood by one skilled in the art described herein. In particular, the use of singular articles such as “a,” “the,” and “said” should be interpreted as referring to one or more of the indicated elements, unless the claims expressly limit to the contrary.
[0165] This abstract of the disclosure is provided to allow the reader to quickly determine the nature of the technical disclosure. It is argued under this understanding that the abstract should not be used to interpret or limit the scope or meaning of the claims. Furthermore, in the above detailed description, it can be seen that various features have been combined in various embodiments to simplify the disclosure. This method of disclosure should not be construed as reflecting an intention that the claimed embodiments require more features than expressly referenced in each claim. Rather, as reflected in the following claims, the inventive subject matter lies in fewer than all features of a single disclosed embodiment. Therefore, the following claims are incorporated into the detailed description, each claim existing independently as a separately claimed subject matter.
[0166] While exemplary embodiments have been described above, it is not intended that these embodiments describe all possible forms of the invention. Rather, the terms used in this specification are descriptive rather than limiting, and it should be understood that various changes can be made without departing from the spirit and scope of the invention. Furthermore, features of various embodiments can be combined to form further embodiments of the invention.
[0167] List of reference numerals
[0168] S1, S2, S3, S4, S5, S6, S7, S8 Method Steps 100 System Configuration
[0169] 101 Computer
[0170] 102-1, 102-2 Virtual or Augmented Reality Displays
[0171] 103 cameras
[0172] 199 Electronic Systems
[0173] OSC1 Oscilloscope
[0174] HO shell
[0175] MIP1, MIP2, MIP3, MIP4 Measurement Input Ports
[0176] SIP signal processing
[0177] DISP1 monitor
[0178] OSC Oscilloscope
[0179] VS Vertical System
[0180] SC signal conditioning
[0181] ATT Attenuator
[0182] DAC1 Analog-to-Digital Converter
[0183] AMP amplifier
[0184] FI 1 filter
[0185] DAC (Digital-to-Analog Converter)
[0186] ADC (Analog-to-Digital Converter)
[0187] TS trigger section
[0188] AMP2 amplifier
[0189] FI 2 filter
[0190] TS1 Triggering System
[0191] HS Level System
[0192] PS processing section
[0193] ACP Acquisition and Processing Components
[0194] MEM memory
[0195] PPE post-processing components
[0196] DISP monitor
Claims
1. A method for configuring an electronic system (199), the method comprising: Identify (S1) at least one component of the electronic system (199); The at least one component identified is displayed to the user in a virtual or augmented reality display (102-1, 102-2) (S2); (S3) Obtain user input regarding the content displayed on the virtual or augmented reality displays (102-1, 102-2); as well as If the user input relates to a corresponding component among the at least one identified component, configuration options for that corresponding component are displayed (S4).
2. The method according to claim 1, further comprising: The user receives (S5) a selection of at least one of the shown configuration options; Receive from the user (S6) a configuration value provided by the user for at least one of the selected configuration options; as well as The storage (S7) receives the configuration values provided by the user for at least one of the selected configuration options.
3. The method according to claim 2, wherein, The configuration options are displayed (S4) at the position corresponding to the corresponding component in the virtual or augmented reality display (102-1, 102-2); as well as Specifically, by obtaining user input for the configuration options displayed in the virtual or augmented reality displays (102-1, 102-2), receiving (S5) the selection and receiving (S6) the configuration value provided by the user are performed in the virtual or augmented reality displays (102-1, 102-2).
4. The method according to any one of claims 2 and 3 further comprises: Generate a computer program product, the computer program product including the configuration values received from the user and provided by the user for operating at least one of the at least one components.
5. The method according to any one of the preceding claims, wherein, Identifying (S1) at least one component of the electronic system (199) includes at least one of the following: Perform visual recognition on at least one of the components; Visual recognition is performed on the electronic system (199), and information (199) about at least one component of the electronic system is loaded from the component database; The location of at least one component is visually identified, and the user is asked to identify the corresponding type of the component.
6. The method according to any one of the preceding claims, wherein, The at least one configuration option includes at least one of the following: Hardware configuration options; Communication interface configuration options; Software configuration options; and The location of the at least one component in the electronic system (199).
7. The method according to any one of claims 2 to 6, wherein the electronic system (199) comprises at least two components, and the method further comprises: The connection between the at least two components is indicated in the virtual or augmented reality display (102-1, 102-2).
8. The method according to claim 7, wherein, The indicated connection includes at least one of the following: Based on the configuration values received from the user, the at least two components are visually connected; as well as The at least two components are visually connected according to the component layout of the electronic system (199).
9. The method according to any one of claims 7 and 8, wherein, The connection indication includes: if the user receives an incompatible configuration value for the corresponding configuration option from the user, a warning is displayed along with the connection.
10. The method according to any one of the preceding claims, wherein, The at least one configuration option includes at least one of the following: at least one antenna definition and the location of at least one antenna component in the electronic system (199); and The method further includes displaying the radiation pattern of the at least one antenna component in the virtual or augmented reality display (102-1, 102-2).
11. The method according to any one of the preceding claims, wherein the at least one component identified in the display (S2) on the virtual or augmented reality display (102-1, 102-2) comprises at least one of the following: Display the recorded image of the component; Displaying a virtual image of the component; and A virtual image of the component is superimposed on the virtual or augmented reality display (102-1, 102-2) at a position corresponding to the position of the component in the electronic system (199).
12. The method according to any one of the preceding claims further comprises: The at least one system value is displayed (S8) at a position in the virtual or augmented reality display (102-1, 102-2) corresponding to the occurrence of at least one system value in the electronic system (199).
13. The method of claim 12, further comprising at least one of the following: Measure the at least one system value as a physical value in the electronic system (199); and Simulate at least one system value as a physical value.
14. A configuration system (100) for configuring an electronic system (199), the configuration system (100) comprising: At least one virtual or augmented reality display (102-1, 102-2); as well as A computer (101) connected to the virtual or augmented reality displays (102-1, 102-2), wherein the computer (101) is configured to: Identify at least one component of the electronic system (199); The identified at least one component is displayed to the user in the at least one virtual or augmented reality display (102-1, 102-2); Obtain user input regarding the content displayed on the virtual or augmented reality displays (102-1, 102-2); as well as If the user input relates to a corresponding component of the electronic system (199), the configuration options (199) of the corresponding component of the electronic system are displayed.
15. The configuration system (100) according to claim 14, wherein the computer (101) is further configured to: The user receives a selection for at least one of the shown configuration options; Receive configuration values provided by the user for at least one of the selected configuration options; and Store the configuration values received from the user for at least one of the selected configuration options shown.
16. The configuration system (100) according to any one of claims 14 to 15, wherein the computer (101) is configured to: Control the virtual or augmented reality displays (102-1, 102-2) to display the configuration options at the positions corresponding to the respective components; and The selection and the configuration value provided by the user are received via the virtual or augmented reality display (102-1, 102-2) by acquiring user input for the configuration options displayed in the virtual or augmented reality display (102-1, 102-2).
17. The configuration system (100) according to any one of claims 15 to 16, wherein the computer (101) is further configured to: Generate a computer (101) program product, the computer program product including configuration values received from the user and provided by the user for operating at least one component of the electronic system (199).
18. The configuration system (100) according to any one of claims 14 to 17, wherein the computer (101) is configured to identify at least one component of the electronic system (199) by at least one of the following: Visual recognition is performed on at least one component; Visual recognition is performed on the electronic system (199), and information (199) about at least one component of the electronic system is loaded from the component database; The location of at least one component is visually identified, and the user is asked to identify the corresponding type of the component.
19. The configuration system (100) according to any one of claims 14 to 18, wherein, The at least one configuration option includes at least one of the following: Hardware configuration options; Communication interface configuration options; Software configuration options; and The location of the at least one component in the electronic system (199).
20. The configuration system (100) according to any one of claims 16 to 19, wherein the electronic system (199) comprises at least two components, and wherein the computer (101) is further configured to: Control the virtual or augmented reality displays (102-1, 102-2) to indicate the connection between the at least two components based on the configuration values received from the user for the respective configuration options.
21. The configuration system (100) according to claim 20, wherein, The computer (101) is configured to control the virtual or augmented reality display (102-1, 102-2) to perform at least one of the following: Based on the configuration values received from the user, the at least two components are visually connected; and The at least two components are visually connected according to the component layout of the electronic system (199).
22. The configuration system (100) according to any one of claims 20 to 21, wherein the computer (101) is further configured to control the virtual or augmented reality display (102-1, 102-2) and the connection to display a warning if it receives from the user an incompatible configuration value for the corresponding configuration option provided by the user.
23. The configuration system (100) according to any one of claims 14 to 22, wherein, The at least one configuration option includes the location of at least one antenna component within the electronic system (199); and The computer (101) is further configured to control the virtual or augmented reality displays (102-1, 102-2) to display the radiation pattern of the at least one antenna component in the virtual or augmented reality displays (102-1, 102-2).
24. The configuration system (100) according to any one of claims 14 to 23, wherein, When the at least one identified component is displayed in the virtual or augmented reality display (102-1, 102-2), the computer (101) is also configured to perform at least one of the following: Display the recorded image of the component; Displaying a virtual image of the component; and A virtual image of the component is superimposed on the virtual or augmented reality display (102-1, 102-2) at a position corresponding to the position of the component in the electronic system (199).
25. The configuration system (100) according to any one of claims 14 to 24, wherein the computer (101) is further configured to control the virtual or augmented reality displays (102-1, 102-2) to: The at least one system value is displayed in the virtual or augmented reality display (102-1, 102-2) at a position corresponding to the occurrence of at least one system value in the electronic system (199).
26. The configuration system (100) according to claim 25, further comprising at least one of the following: A measurement application device configured to measure at least one physical value in the electronic system (199); and A simulator configured to simulate the at least one physical value.