MEASURING DEVICE AND METHOD FOR DETERMINING BEAMFORMING SIGNAL QUALITY
20180076907 ยท 2018-03-15
Inventors
Cpc classification
G01R27/28
PHYSICS
H01Q3/24
ELECTRICITY
H04B1/00
ELECTRICITY
H04B2201/00
ELECTRICITY
International classification
Abstract
A measuring system for determining a beamforming quality of an antenna array signal of an antenna array of a device under test. The measuring system comprises a measuring device configured to receive an antenna array signal, and to measure the antenna array signal and to determine a beamforming signal quality thereof. The antenna array signal is wirelessly transmitted to the receiver by the antenna array of a device under test. The measuring system further comprises a positioning unit configured to position the device under test in successive predefined orientations. The measuring device is configured to receive and measure the antenna array signal successively in each of the predefined orientations.
Claims
1. A measuring system comprising: a measuring device configured to receive an antenna array signal, and to measure the antenna array signal and to determine a beamforming signal quality thereof; and wherein the antenna array signal is wirelessly transmitted to the receiver by an antenna array of a device under test.
2. The measuring system of claim 1, further comprising: a positioning unit configured to position the device under test in successive predefined orientations; and wherein the measuring device is configured to receive and measure the antenna array signal successively in each of the predefined orientations.
3. The measuring system of claim 2, wherein the positioning unit is configured to position the antenna array under test about one or more of a horizontal axis by 360 and a vertical axis by 360.
4. The measuring system of claim 1, wherein the device under test comprises: a signal generator configured to generate an antenna array input signal comprising a plurality of individual antenna signals, one for each of a plurality of antenna groups of the antenna array or for each antenna of the antenna array, and to provide the antenna array input signal to the antenna array, wherein the individual antenna signals are generated in a phase-coherent manner; and wherein the antenna array is configured to generate the antenna array signal based on the antenna array input signal, and to transmit the antenna array signal to the measuring device.
5. The measuring system of claim 2, wherein the measuring system comprises: a signal generator configured to generate an antenna array input signal comprising a plurality of individual antenna signals, one for each of a plurality of antenna groups of the antenna array or for each antenna of the antenna array, and to provide the antenna array input signal to the antenna array, wherein the individual antenna signals are generated in a phase-coherent manner; and wherein the antenna array is configured to generate the antenna array signal based on the antenna array input signal, and to transmit the antenna array signal to the measuring device.
6. The measuring system of claim 5, wherein the signal generator comprises one of a single signal generator element and a chain of synchronized signal generator elements.
7. The measuring system of claim 5, wherein the signal generator and the measuring device are connected to each other, and either the signal generator controls the measuring device and the positioning unit, or the measuring device controls the signal generator and the positioning unit.
8. The measuring system of claim 5, wherein measuring system further comprises: a controller connected to the signal generator, the measuring device and the positioning unit; and wherein the controller is configured to control the signal generator, the measuring device and the positioning unit.
9. The measuring system of claim 5, wherein the signal generator comprises: a beamforming unit configured to perform a beamforming for the antenna array signal.
10. The measuring system of claim 2, wherein the measuring device comprises: a receiver antenna configured to receive the antenna array signal.
11. The measuring system of claim 5, wherein: the signal generator is configured to generate the antenna array input signal as a continuous wave signal; the measuring device includes a power meter configured to determine a directional characteristic of the antenna array signal based on the received antenna array signal and position information provided by the positioning unit; and the measuring device is configured to determine the beamforming signal quality of the antenna array signal based at least in part on the directional characteristic.
12. The measuring system of claim 5, wherein: the signal generator is configured to generate the antenna array input signal as a modulated signal; and the measuring device includes a spectrum analyzer configured to determine the beamforming signal quality of the antenna array signal.
13. The measuring system of claim 1, further comprising: an anechoic chamber housing all other components of the measuring system and the device under test.
14. A measuring method comprising: receiving, by a measuring device, an antenna array signal, and measuring the antenna array signal and determining a beamforming quality thereof; and wherein the antenna array signal is wirelessly transmitted to the measuring device by an antenna array of a device under test.
15. The measuring method of claim 14, further comprising: positioning the device under test in successive predefined orientations; and wherein the antenna array signal is successively received and measured in each of the predefined orientations.
16. The measuring method of claim 14, further comprising: generating an antenna array input signal comprising a plurality of individual antenna signals, one for each of a plurality of antenna groups of the antenna array or for each antenna of the antenna array, and providing the antenna array input signal to the antenna array, wherein the individual antenna signals are generated in a phase-coherent manner; generating, by the antenna array, the antenna array signal based on the antenna array input signal, and transmitting the antenna array signal to the measuring device.
17. The measuring method of claim 15, further comprising: generating an antenna array input signal comprising a plurality of individual antenna signals, one for each of a plurality of antenna groups of the antenna array or for each antenna of the antenna array, and providing the antenna array input signal to the antenna array, wherein the individual antenna signals are generated in a phase-coherent manner; generating, by the antenna array, the antenna array signal based on the antenna array input signal, and transmitting the antenna array signal to the measuring device.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Embodiments of the present invention are illustrated by way of example, and not by way of limitation, in the figures of the accompanying drawings, in which like reference numerals refer to similar elements, and in which:
[0024]
[0025]
[0026]
DETAILED DESCRIPTION
[0027] Approaches for measuring systems and associated methods for measuring the beamforming quality in a communications system via a low complexity, efficient and quick manner, are described. It is apparent, however, that embodiments of the present invention may be practiced without these specific details or with an equivalent arrangement. In other instances, well-known structures and devices are shown in block diagram form in order to avoid unnecessarily obscuring the invention.
[0028] As will be appreciated, a module or component (as referred to herein) may be composed of software component(s), which are stored in a memory or other computer-readable storage medium, and executed by one or more processors or CPUs of the respective devices. As will also be appreciated, however, a module may alternatively be composed of hardware component(s) or firmware component(s), or a combination of hardware, firmware and/or software components. Further, with respect to the various example embodiments described herein, while certain of the functions are described as being performed by certain components or modules (or combinations thereof), such descriptions are provided as examples and are thus not intended to be limiting. Accordingly, any such functions may be envisioned as being performed by other components or modules (or combinations thereof), without departing from the spirit and general scope of the present invention. Moreover, the methods, processes and approaches described herein may be processor-implemented using processing circuitry that may comprise one or more microprocessors, application specific integrated circuits (ASICs), field programmable gate arrays (FPGAs), or other devices operable to be configured or programmed to implement the systems and/or methods described herein. For implementation on such devices that are operable to execute software instructions, the flow diagrams and methods described herein may be implemented in processor instructions stored in a computer-readable medium, such as executable software stored in a computer memory store.
[0029] Further, terminology referring to computer-readable media or computer media or the like as used herein refers to any medium that participates in providing instructions to the processor of a computer or processor module or component for execution. Such a medium may take many forms, including but not limited to non-transitory non-volatile media and volatile media. Non-volatile media include, for example, optical disk media, magnetic disk media or electrical disk media (e.g., solid state disk or SDD). Volatile media include dynamic memory, such random access memory or RAM. Common forms of computer-readable media include, for example, floppy or flexible disk, hard disk, magnetic tape, any other magnetic medium, CD ROM, CDRW, DVD, any other optical medium, random access memory (RAM), programmable read only memory (PROM), erasable PROM, flash EPROM, any other memory chip or cartridge, or any other medium from which a computer can read data.
[0030] Various forms of computer-readable media may be involved in providing instructions to a processor for execution. For example, the instructions for carrying out at least part of the present invention may initially be borne on a magnetic disk of a remote computer. In such a scenario, the remote computer loads the instructions into main memory and sends the instructions over a telephone line using a modem. A modem of a local computer system receives the data on the telephone line and uses an infrared transmitter to convert the data to an infrared signal and transmit the infrared signal to a portable computing device, such as a personal digital assistance (PDA) and a laptop. An infrared detector on the portable computing device receives the information and instructions borne by the infrared signal and places the data on a bus. The bus conveys the data to main memory, from which a processor retrieves and executes the instructions. The instructions received by main memory may optionally be stored on storage device either before or after execution by processor.
[0031] Different embodiments of measuring systems according to aspects of the present invention are first described with reference to
[0032]
[0033] For performing a measurement, the measuring device 14b controls the signal generator 11 to generate an antenna array input signal and provide it to the antenna array 12 within the device under test 16.
[0034] By way of example, the antenna array input signal comprises a number of individual antenna signals. In this context, an individual antenna signal may be provided to each individual antenna of the antenna array 12. Alternatively, an individual antenna signal may be provided to a plurality of antenna groups comprising more than one antenna, each. This reduces the number of necessary output ports of the signal generator 11.
[0035] By way of further example, the signal generator 11 comprises a single signal generator or a plurality of synchronized signal generators. Further, the individual antenna signal may be generated in a phase-coherent manner. In case of the signal generator 11 comprising a plurality of signal generators, the individual antenna signals are synchronized, for example, by using an identical local oscillator signal for producing a phase coherent output.
[0036] The antenna array input signal is provided to the antenna array 12. Based on the provided antenna array input signal, the antenna array 12 then generates an antenna array signal and transmits it over the air. The antenna array signal is received by the receiver antenna 14a and handed on to the measuring device 14b. The measuring device 14b measures the signal.
[0037] After the signal has been measured for a present orientation of the device under test 16, the measuring device 14b instructs the positioning unit 13 to position or orient the device under test 12 into a new position or orientation of a predefined number of positions or orientations. The previously described measurement is repeated for this new orientation. The described process is repeated for all predefined orientations of the device under test 12. By way of example, the positioning unit 12 can be a simple turntable, which allows an orientation of the device under test 12 around a vertical axes by for example 360. Alternatively, the positioning unit 13 can also orient the device under test 12 around a horizontal axis, for example by 360. Also an orientation around both axes is possible.
[0038] In the example of
[0039] According to one embodiment, the antenna array input signal may comprise a continuous wave signal. In this context, the measuring device 14b may comprise a power meter configured to measure a received power of the antenna array signal for each of the different desired or predefined orientations. Then, a directional characteristic of the antenna array signal can be determined based on the measurements of the power meter. Ultimately, the beamforming signal quality can be determined from the directional characteristic of the antenna. For example, this can be accomplished by comparing the measured directional characteristic to a desired directional characteristic.
[0040] According to an alternative embodiment, the antenna array input signal may comprise a modulated signal. In this context, in order to process the modulated antenna array signal, the measuring device 14b may comprise a spectrum analyzer. The spectrum analyzer can then receive and demodulate the modulated signal. Further, the system may then also process the phase information.
[0041]
[0042] When performing a measurement in this embodiment, the controller 15 instructs the device under test 26, especially the signal generator 21 within the device under test 26 to generate an antenna array input signal and provide it to the antenna array 22. The signal generation by the signal generator 21 is comparable to the signal generation by the signal generator 11 of
[0043] The antenna array input signal is handed to the antenna array 22 and emitted over the air as antenna array signal, which is received by the receiver antenna 14a and processed by the measuring device 14b. In this embodiment, the processing of the measuring result is also performed by the controller 15. Therefore, the controller 15 also determines the beamforming signal quality.
[0044] Alternatively, the controller 15 may be eliminated, and the device under test can be directly connected to the measuring device 14b. In this case, the measuring device 14b would control the positioning unit 13 and the signal generation by the signal generator 21 of the device under test 26.
[0045]
[0046] In step 102, an antenna array input signal is provided to the antenna array of the device under test. In step 103, the antenna array signal is transmitted by the device under test (e.g., by the antenna array). In step 104, the antenna array signal is received by a receiver. In step 105, the device under test is positioned in a new orientation. The steps 102-105 are repeated for all desired or predefined orientations of the device under test. In step 106, the beamforming signal quality is determined from the received antenna array signals.
[0047] The embodiments of the present invention can be implemented by hardware, software, or any combination thereof. Various embodiments of the present invention may be implemented by one or more application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable gate arrays (FPGAs), processors, controllers, microcontrollers, microprocessors, or the like.
[0048] Various embodiments of the present invention may also be implemented in the form of software modules, processes, functions, or the like which perform the features or operations described above. Software code can be stored in a memory unit so that it can be executed by a processor. The memory unit may be located inside or outside the processor and can communicate date with the processor through a variety of known means.
[0049] The invention is not limited to the examples and especially not to a specific type of device under test. The device under test can be a communications device such as a mobile telephone or a machine type communications device. Also it can be a base station. The characteristics of the exemplary embodiments can be used in any advantageous combination.
[0050] Although the present invention and its advantages have been described in detail, it should be understood, that various changes, substitutions and alterations can be made herein without departing from the spirit and scope of the invention as defined by the appended claims.
[0051] While various embodiments of the present invention have been described above, it should be understood that they have been presented by way of example only, and not for limitation. Numerous changes to the disclosed embodiments can be made in accordance with the disclosure herein without departing from the spirit or scope of the invention. Thus, the breadth and scope of the present invention should not be limited by any of the above-described embodiments. Rather, the scope of the invention should be defined in accordance with the following claims and their equivalents.