The invention relates to a calibration system and a method therefor, in particular, to a calibration and group testing system for radio frequency units and method for obtaining calibration information in a certain stimulated state of the RF unit in extreme situations where the measurement information obtained by the RF unit is lack of phase information and only has power or amplitude information.
High-frequency wireless communication requires an antenna array to increase gain, thereby compensating for losses due to electromagnetic propagation. The active antenna unit consists of an antenna and an RF transceiver module. By adjusting the amplitude and the phase outputted by the RF transceiver module, the antenna can be stimulated to generate the radiation beam. Since the inaccuracy of the measured antenna radiation pattern and the simulated antenna radiation pattern may come from the antenna, the active RF module, and the error and malfunction in the antenna manufacturing, we need to verify whether the antenna and the RF module function properly, and to correct the error caused by the antenna radiation the RF module outputting in order to obtain a good antenna radiation pattern. In addition, the inaccuracy of the measured antenna radiation pattern and the simulated antenna radiation pattern may also come from the manufacturing defects of the antenna elements themselves (including RF transceiver and radiation modules, such as millimeter-wave antennas made of microstrips), which causes the possible failure or malfunction of the antenna elements (particularly the failure of active transceiver module), and causes the measured antenna radiation pattern to be inaccurate. Such a problem especially occurs when the antenna element is an array antenna. The array antenna is composed of multiple sub-array antenna units; for example, there may be a large number of antenna elements in the Antenna-in-Package (AiP), and the failure or malfunction of any antenna unit will make the measured antenna radiation pattern inaccurate.
Further, the radiation beam of the phased array antenna is generated by a beamforming network (BFN); the phased array antenna includes active RF transceiver elements and phase shifters for stimulating the antenna array. The frequency band applied by the beamforming network has an increasing trend. Therefore, the beamforming network is prone to incur phase errors and cause beam defects, so a complicated and procedural method is required to correct the phased array antenna. The antenna calibration is achieved by adjusting the output amplitude and the output phase of the RF transceiver module. Therefore, in Taiwan Invention Patent No. I739181B (name of invention: Correction Method for Phased Array Antenna, hereinafter referred to as the patent prior art) previously applied by the inventor, the far-field radiation data and the stimulation data of the antenna element are used to satisfy Discrete Fourier Transformation Formula. Thus, Discrete Fourier Transformation Formula can be used to correct the antenna array, so that the co-polarized far-field radiation source has equal phase and amplitude in the boresight direction, whereby the digital phase shifter stores the error-corrected phase as a reference value for scanning the beam.
As an embodiment, the patent prior art corrects the error of the phase and amplitude of the antenna based on vertical orthogonal signal and Discrete Fourier Transformation Matrix. However, the process requires complicated calculation equation. In particular, in the case that the measurement signal is non-vertically orthogonal, the equipment needs to measure both the power (i.e., amplitude information) and the phase of the radiated electromagnetic field of the antenna, and the equipment such as vector network analyzer is very expensive, becoming a major burden for production lines. Therefore, it is necessary to be able to obtain the phase error information and amplitude information of the antenna in a relatively simple solution way, which can be used as the preparation and calibration information before the signal verification, can check which of the antenna elements has a failure or malfunction, and can establish BFN stimulation amplitude and phase tables.
In view of the cost problems in the prior art, an objective of the invention is to stimulate each antenna element to radiate electromagnetic waves by different and random phase and amplitude signals, to perform measurement and analysis of the radiation power by a power meter, and then, to obtain the amplitude information and phase difference information of the antenna element for further use in subsequent antenna calibration by performing iteration and convergence on the measurement results. The invention is also applicable to extreme measurement situations as follows: where the measurement information has amplitude difference information and phase difference information for calibration solution; where the measurement signal is in a non-vertical quadrature relationship for fast calibration; or where only power information or amplitude information is used while lacking phase information. The invention is also applicable to the testing of group antenna package modules or group RF modules.
According to the objective of the invention, a calibration and group measurement system for radio frequency (RF) units, comprising a control device; a signal source device, connected with the control device, the signal source device outputting a microwave signal source according to signal source information emitted by the control device; a test platform, connected with the control device and the signal source device, the test platform being provided to place N RF units and performing M times of stimulations, wherein during each of the stimulation, the test platform transforms the microwave signal source into N random microwave signals, the RF units respectively output n random microwave signals, and the random microwave signals being superimposed to form a measurement signal; and a measurement device, connected with the control device, wherein the measurement device receives M times of the measurement signal to generate M pieces of measurement information respectively, and the measurement device transmits the M pieces of measurement information to the control device; the control device solves the signal according to the M times of the M pieces of measurement information and the M times of the N random microwave signals, and performs iterative and convergence calculation on all solution results to obtain amplitude information and phase difference information of the RF units; wherein the N and the M are positive integer.
In summary, without any phase information, the invention can achieve signal solution through the measurement information and the random microwave signal, perform iteration and convergence calculation on all of the solution results to obtain the amplitude information and phase difference information of each of the antenna elements to be tested for prepared calibration information before the verification of the signals. The invention can also check which RF unit or individual RF unit of the antenna elements has a defective or faulty antenna element. Moreover, requiring no phase information means that the invention only requires a single signal source device to measure at least one RF unit, thereby reducing the measurement cost.
Embodiments of the invention will be further explained with the help of the related drawings below. Wherever possible, in the drawings and the description, the same reference numbers refer to the same or similar components. In the drawings, shapes and thicknesses may be exaggerated for simplicity and convenience. It should be understood that the elements not particularly shown in the drawings or described in the specification have forms known to those skilled in the art. Those skilled in the art can make various changes and modifications based on the content of the invention.
With reference to
During each of the tests, the measurement device 4 receives the random microwave signals emitted by the RF units 5. The random microwave signals are superimposed to form a measurement signal in a measurement environment. The measurement device 4 receives M times of the measurement signal to generate M pieces of measurement information respectively. Then, the measurement device 4 transmits the M pieces of measurement information to the control device 1 The control device 1 solves the signal according to the M pieces of measurement information of the M times of measurements and the random microwave signals, and performs iterative and convergence calculation on all solution results to obtain amplitude information and phase difference information of the RF units 5 in a certain stimulation state as a reference for calibration.
In the invention, the RF units 5 may be a radio frequency chip (RFIC), an antenna in package (AiP), or an antenna element, respectively. Also, the antenna element may be a dipole antenna, a monopole antenna, a loop antenna, a planar inverted-F antenna (PIFA), a patch antenna, a microstrip antenna, array antenna, and so on. Further, the antenna in package is formed by combining the radio frequency chip (RFIC) and the antenna element.
When the N RF units 5 are N antennas in package or N antenna elements, the N random microwave signals are radiated into a measurement environment by the N antennas in packages (AiP) or the N antenna elements, and electromagnetic waves formed in the measurement environment are naturally superimposed to form the measurement signal. When the N RF units 5 are the radio frequency chips, and group testing is performed on the radio frequency chips (RFIC), then the antenna does not exist, and the radio frequency chip uses the radio frequency circuit to superimpose the measurement signals through a power combiner.
What needs to be specifically stated here is that the invention only needs a single signal source device to measure more than one RF unit 5, and the test platform 3 is not limited to placing the same RF unit 5; for example, two different RF chips and five patch antennas are placed on the test platform 3, and the antennas connected to the RF chips may also be excited to radiate RF signals into the air; during the measurement, two different RF chips and five patch antennas are considered as the aforementioned N RF elements (or even virtual array antennas) to perform the solution, and obtain them through appropriate measurement information, so that the respective amplitude information and phase difference information of the two RF chips and the five patch antennas may still be obtained.
Further, the invention is derived from the concept of phase array, and may be applied to the group test and correction for multiple antenna elements or multiple antennas in a package, or to the group test for multiple RF chips, or to the group test and correction for mixed antenna elements, antenna array package modules and RF chips. For example, when the test and correction are performed for multiple antenna elements or the antenna array package modules, the measurement information is measured by the RF instrument. When the test and correction are performed for multiple RF chips, the array layout and connection are performed by the RF circuit of the RF chip, and then the measurement information is obtained from the measurement of the RF instrument after combining with the power combiner, so as to test the output characteristics and reliability of antenna elements, antenna package modules or RF transceiver modules.
In summary, under the premise of lacking phase information, the invention only needs power information or amplitude information, i.e., parameters for correcting the RF unit, and does not need to use expensive instruments to obtain the amplitude and phase difference of the radiation field at the same time.
With reference to
Further, the radio frequency control device 34 may be RFIC and includes a power divider 340 and N digital phase shifters 342, wherein the power divider 340 distributes the microwave signal source to each of the digital phase shifters 342 with the same power level, and the digital phase shifters 342 are connected with the random control device 32 to generate N random phase and amplitude information according to the random control signals of the random control device 32 for further emitting RF signals with different phases from the digital phase shifters 342 respectively. The signal modulation device 30 sends out N microwave modulation signals according to the modulation information, and each of the couplers couples one of the N radio frequency signals and one of the N microwave modulation signals into a random microwave signal so that each of the random microwave signals has its own different phase and amplitude.
In the invention, taking the radio frequency unit as the active array antenna as an example, a relationship between the excitation coefficients of the radio frequency unit (e.g., amplitude, phase and position of the antenna unit) and the radiation is expressed as follows:
In the formula (2), Enet(
In the invention, when the test is performed with the radio frequency unit being the radio frequency chip (RFIC), the antenna does not exist, and the radio frequency chip is obtained by the output of the circuit of the active radio frequency module through the power combiner; then, the abovementioned radiated electromagnetic field is replaced by the current or voltage in the circuit, and the expression of this formula will not be changed.
When the RF unit has an error or is disabled, its changes appear in the changes of En(
Wherein when the RF unit is the antenna element,
in the formula (3) is the error in the radio frequency path to which the antenna element belongs; when the RF unit is the antenna in package, all possible sources, such as active radio frequency modules and transmission lines are further included, which are summarized in this parameter. During the correction procedure, our goal is to find the parameters
in the brackets of the above formula (3), because for the array antennas with the same antenna unit type, En(
and the excitation coefficients (An,φn) of the RF unit may be adjusted to obtain the best matching antenna gain. If the parameter value
is too small and lower than a normal operating value, it can be judged that the function of the elements in the corresponding radio frequency path is invalid.
In the execution procedure, we first select a measurement orientation
gm=|fm|=|[Rmn][en]| (1)
wherein fm is the measurement information of the m-th time in the M times of measurements, gm is the amplitude information in the m-th time of the measurements; Rmn are the random microwave signals of the n-th antenna of the m-th time (i.e., Anejφ
of the n-th radio frequency and the antenna elements in the N antennas, which has nothing to do with the excitation coefficients of the antenna elements, but only with the measurement orientation, the radiation of the RF unit and the error in the radio frequency path. After the measurement information is obtained, it can be used to determine the antenna characteristics in the RF unit, or perform compensation to obtain the correction in the highest antenna gain, or determine the validity and error of the RF unit on the radio frequency path to which the antenna belongs.
When the highest gain of the antenna is used as a reference situation, the parameter values of different output states of the active radio frequency module in each of the RF units may be corrected. Multiple sets of measurement information satisfying the above formula (1) may be obtained by using the solution required for the M-th time of the measurement information. When the M sets of measurement signals have N ranks, the multiple sets of solutions will converge to a single set to satisfy all the measurement information.
Also, formula (2) may be simplified into the following formula, wherein after the factor of the measurement distance r is removed, it becomes a wave function. In terms of the electric field component of the same polarization, its waveform in the direction of (θ0, ϕ0) is:
Fcol(θ0,ϕ0)=
Wherein ê is the polarization vector in the co-polarization direction, An is the amplitude of the random microwave signal, αn is the phase of the random phase microwave, αn=Δn+φn and Δn is the phase error caused by the channel mismatch of the RF unit 5; φn are phases generated by the radio frequency control device 34 according to the microwave signal source and the random phase as well as the amplitude information, and the digital shifter in the radio frequency control device 34 generates the random phases according to the random phase and the amplitude information.
Further, for the results of convergence obtained by multiple iterations to solve, successive projection method (SPM) may be used to obtain the solution of the shortest error distance in the form of vertical orthogonal projection for each of the measurement information, i.e., using the solution obtained from the vertical projection of the previous measurement information as the initial excitation coefficient value for the solution of the next measurement information and then performing the solution of the next projection. An iteration calculation formula of each of the solution results is as follows, and the m-th time of the measurement information is used to solve the u-th projection:
wherein is the vector of [en], which is represented by (=[e1, e2, . . . ]); u is the number of times of iterations; u,m is the value of the previous iteration; gm is the amplitude of measurement information fm; m is the vector representation of [Rmn]; m* is the conjugate vector of m. The iteration sequence is performed sequentially with the measurement information of different orders. After all of the measurement information is used, the previous measurement information may be recycled, because in the iteration process, the error will gradually converge to the minimum value , which is the best value satisfying all the measurement information. In the above formula, fm is the m-th time of the measurement information, which may be in the form of the power formed by the superposition of antenna radiation, or the complex electromagnetic field value including power and phase. Different projections and convergence speeds are produced according to different information provided. That is to say, the invention only needs the power information to obtain the parameters of the antenna correction, and does not need to use expensive instruments to obtain the amplitude and phase of the radiation field at the same time.
In the invention, each of the measurement information measured by the measurement device 4 is represented by the following formula:
Wherein cost(u) represents the cost function, u represents a first calculation number. The cost difference is according to Δcost=cost(u+1)−cost(u). And a calculation number of the cost difference or the cost value currently calculated are used as the convergence conditions.
With reference to
In the invention, with reference to
u,m accumulatively, the second default number of times is a part of the test parameter configured by the control device, and the second default number of times is a positive integer.
In summary, the definition of the convergence condition includes the following:
In the invention, M is greater than N; M may also be greater than or equal to three times N, so that better solution results where the rank of the measurement information is as great as possible may be obtained.
In order to further understand the solution results, the iteration convergence, the amplitude information, and the phase difference information of the invention, five embodiments are given below for illustration:
In a first embodiment, the number of the RF units 5 is 32, the number of times of measurement is 96, and a 3-bit digital phase shifter is used. With reference to
In a second embodiment, the number of the RF units 5 is 32, the number of times of measurement is 96, and a 6-bit digital phase shifter is used. With reference to
In a third embodiment, the number of the RF units 5 is 32, the number of times of test and measurement is 96, a 6-bit digital phase shifter is used, and a phase error angle of the measurement device 4 is 3 degrees without any noises. With reference to
In a fourth embodiment, the number of the RF units 5 is 100, the number of times of measurement is 300, a 3-bit digital phase shifter is used, and a phase error angle of the measurement device 4 is 3 degrees without any noise. With reference to
In a fifth embodiment, the number of the RF units 5 is 4, the number of times of measurement is 12, a 6-bit digital phase shifter is used, and a phase error angle of the measurement device 4 is 3 degrees without any noise. With reference to
In summary, without any phase information, the invention may achieve signal solution through the measurement information and the random microwave signal, and perform iteration and convergence calculation on all of the solution results to obtain the amplitude information and phase difference information of each of the RF units 5 for prepared correction information before the verification of the signals. The number of RF units 5 that may be measured by the invention is not limited; according to the invention, the measured amplitude information or phase difference information may be compared with the amplitude information or phase difference information of original test respectively to screen out the RF units 5 that may be damaged. In addition, requiring no phase information means that the invention only requires a single signal source device 2 to measure multiple antenna elements, antenna array elements, or antenna-in-package, thereby reducing the measurement cost.
The above description is only to illustrate the preferred implementation mode of the invention, and is not intended to limit the scope of implementation. All simple replacements and equivalent changes made according to the patent scope of the invention and the content of the patent specification all belong to the scope of the patent application of the invention.
This application claims priority of U.S. Provisional Application No. 63/284,727 filed on 1 Dec. 2021 under 35 U.S.C. § 119(e); the entire contents of all of which are hereby incorporated by reference.
Number | Name | Date | Kind |
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7167133 | Nagashima | Jan 2007 | B2 |
9678126 | Huynh | Jun 2017 | B2 |
20170279544 | Noda | Sep 2017 | A1 |
Number | Date | Country |
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I739181 | Sep 2021 | TW |
Entry |
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First Examination Report mailed to Corresponding Japanese Patent Application No. 2022-187906 dated Apr. 16, 2024. |
English Translation of First Examination Report mailed to Corresponding Japanese Patent Application No. 2022-187906 dated Apr. 16, 2024. |
Keiji Tatsumi; Masao Fukushima, “Backpropagation as a Successive Projection Method”, Transactions of the Institute of Systems, Control and Information Engineers, May 15, 1995, vol. 8, No. 5, pp. 204-211, https://doi.org/10.5687/iscie.8.204. |
Number | Date | Country | |
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20230168289 A1 | Jun 2023 | US |
Number | Date | Country | |
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63284727 | Dec 2021 | US |