Method for testing wireless communication module and electronic device including the wireless communication module
11283532 · 2022-03-22
Assignee
Inventors
Cpc classification
H01Q3/2605
ELECTRICITY
H04B7/0465
ELECTRICITY
International classification
H01Q3/26
ELECTRICITY
Abstract
A communication method and a system for converging a 4th-Generation (4G) communication system or a 5th-Generation (5G) communication system for supporting higher data rates beyond a 4th-Generation (4G) system with a technology for Internet of Things (IoT) are provided. The disclosure may be applied to intelligent services based on the 5G communication technology and the IoT-related technology, such as smart home, smart building, smart city, smart car, connected car, health care, digital education, smart retail, security and safety services. The disclosure provides an electronic device including a wireless communication module. The wireless communication module includes an antenna array including at least one antenna element, a phase shifter configured to control a phase of a beam radiating from the antenna array, a processor electrically connected to the phase shifter and configured to perform beamforming by controlling the phase shifter, and a memory including phase offset information of the wireless communication module.
Claims
1. An electronic device comprising: at least one wireless communication module, wherein each of the at least one wireless communication module comprises: an antenna array including at least one antenna element; a phase shifter configured to control a phase of a beam radiating from the antenna array; a processor connected to the phase shifter and configured to perform beamforming by controlling the phase shifter; and a memory, wherein tests for an output power and beamforming performance of a wireless communication module among the at least one wireless communication module are performed after adjusting a phase shifter of the wireless communication module, wherein the phase shifter of the wireless communication module is adjusted based on phase offset information stored in a memory of the wireless communication module, wherein the phase offset information is determined based on a phase difference between the wireless communication module and a reference wireless communication module, and wherein the phase difference is based on a relationship between a frequency output of the wireless communication module and a frequency output of the reference wireless communication module, or a relationship between an output power of the wireless communication module and an output power of the reference wireless communication module.
2. The electronic device of claim 1, wherein the phase offset information is determined based on the phase difference whereby the frequency output of the wireless communication module and the frequency output of the reference wireless communication module are in mutual constructive interference relations.
3. The electronic device of claim 1, wherein the phase offset information is determined based on the phase difference whereby the frequency output of the wireless communication module and the frequency output of the reference wireless communication module are in mutual destructive interference relations.
4. The electronic device of claim 1, wherein the phase offset information is determined based on the phase difference whereby a sum of the output power of the wireless communication module and the output power of the reference wireless communication module has a maximum value.
5. The electronic device of claim 1, wherein the phase offset information is determined based on the phase difference whereby a sum of the output power of the wireless communication module and the output power of the reference wireless communication module has a minimum value.
6. A method for testing a wireless communication module, the method comprising: determining phase offset information based on a phase difference between the wireless communication module and a reference wireless communication module; storing the phase offset information in a memory of the wireless communication module; adjusting a phase shifter of the wireless communication module based on the phase offset information; and performing tests for an output power and beamforming performance of the wireless communication module based on the adjustment of the phase shifter, wherein the phase difference is based on a relationship between a frequency output of the wireless communication module and a frequency output of the reference wireless communication module, or a relationship between an output power of the wireless communication module and an output power of the reference wireless communication module.
7. The method of claim 6, wherein the determining of the phase offset information comprises: obtaining the output power of the wireless communication module and the output power of the reference wireless communication module; and determining the phase offset information based on a sum of the output power of the wireless communication module and the output power of the reference wireless communication module.
8. The method of claim 7, wherein the determining of the phase offset information comprises: determining the phase offset information based on the phase difference whereby the sum of the output power of the wireless communication module and the output power of the reference wireless communication module has a maximum value.
9. The method of claim 7, wherein the determining of the phase offset information comprises: determining the phase offset information based on the phase difference whereby the sum of the output power of the wireless communication module and the output power of the reference wireless communication module has a minimum value.
10. The method of claim 6, wherein the determining of the phase offset information comprises: determining the phase offset information based on the phase difference whereby the frequency output of the wireless communication module and the frequency output of the reference wireless communication module are in mutual constructive interference relations.
11. The method of claim 6, wherein the determining of the phase offset information comprises: determining the phase offset information based on the phase difference whereby the frequency output of the wireless communication module and the frequency output of the reference wireless communication module are in mutual destructive interference relations.
12. A base station comprising: at least one wireless communication module, wherein each of the at least one wireless communication module comprises: an antenna array including at least one antenna element; a phase shifter configured to control a phase of a beam radiating from the antenna array; a processor connected to the phase shifter and configured to perform beamforming by controlling the phase shifter; and a memory, wherein tests for an output power and beamforming performance of a wireless communication module among the at least one wireless communication module are performed after adjusting a phase shifter of the wireless communication module, wherein the phase shifter of the wireless communication module is adjusted based on phase offset information stored in a memory of the wireless communication module, wherein the phase offset information is determined based on a phase difference between the wireless communication module and a reference wireless communication module, and wherein the phase difference is based on a relationship between a frequency output of the wireless communication module and a frequency output of the reference wireless communication module, or a relationship between an output power of the wireless communication module and an output power of the reference wireless communication module.
13. The base station of claim 12, wherein the phase offset information is determined based on the phase difference whereby the frequency output of the wireless communication module and the frequency output of the reference wireless communication module are in mutual constructive interference relations.
14. The base station of claim 12, wherein the phase offset information is determined based on the phase difference whereby the frequency output of the wireless communication module and the frequency output of the reference wireless communication module are in mutual destructive interference relations.
15. The base station of claim 12, wherein the phase offset information is determined based on the phase difference whereby a sum of the output power of the wireless communication module and the output power of the reference wireless communication module has a maximum value.
16. The base station of claim 12, wherein the phase offset information is determined based on the phase difference whereby a sum of the output power of the wireless communication module and the output power of the reference wireless communication module has a minimum value.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and other aspects, features and advantages of certain embodiments of the disclosure will be more apparent from the following description, taken in conjunction with the accompanying drawings, in which:
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(12) Throughout the drawings, like reference numerals will be understood to refer to like parts, components, and structures.
DETAILED DESCRIPTION
(13) The following description with reference to the accompanying drawings is provided to assist in a comprehensive understanding of various embodiments of the disclosure as defined by the claims and their equivalents. It includes various specific details to assist in that understanding but these are to be regarded as merely exemplary. Accordingly, those of ordinary skill in the art will recognize that various changes and modifications of the various embodiments described herein can be made without departing from the scope and spirit of the disclosure. In addition, descriptions of well-known functions and constructions may be omitted for clarity and conciseness.
(14) The terms and words used in the following description and claims are not limited to the bibliographical meanings, but, are merely used by the inventor to enable a clear and consistent understanding of the disclosure. Accordingly, it should be apparent to those skilled in the art that the following description of various embodiments of the disclosure is provided for illustration purpose only and not for the purpose of limiting the disclosure as defined by the appended claims and their equivalents.
(15) It is to be understood that the singular forms “a,” “an,” and “the” include plural referents unless the context clearly dictates otherwise. Thus, for example, reference to “a component surface” includes reference to one or more of such surfaces.
(16) For the same reason, in the accompanying drawings, sizes and relative sizes of some constituent elements may be exaggerated, omitted, or briefly illustrated. Further, sizes of the respective constituent elements do not completely reflect the actual sizes thereof. In the drawings, the same drawing reference numerals are used for the same or corresponding elements across various figures.
(17) The aspects and features of the disclosure and methods for achieving the aspects and features will be apparent by referring to the embodiments to be described in detail with reference to the accompanying drawings. However, the disclosure is not limited to the embodiments disclosed hereinafter, and it can be implemented in diverse forms. The matters defined in the description, such as the detailed construction and elements, are only specific details provided to assist those of ordinary skill in the art in a comprehensive understanding of the disclosure, and the disclosure is only defined within the scope of the appended claims. In the entire description of the disclosure, the same drawing reference numerals are used for the same elements across various figures.
(18) In this case, it will be understood that each block of the flowchart illustrations, and combinations of blocks in the flowchart illustrations, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general purpose computer, special purpose computer, or other programmable data processing apparatus to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing apparatus, create means for implementing the functions specified in the flowchart block or blocks. These computer program instructions may also be stored in a computer usable or computer-readable memory that can direct a computer or other programmable data processing apparatus to function in a particular manner, such that the instructions stored in the computer usable or computer-readable memory produce an article of manufacture including instruction means that implement the function specified in the flowchart block or blocks. The computer program instructions may also be loaded onto a computer or other programmable data processing apparatus to cause a series of operations to be performed on the computer or other programmable apparatus to produce a computer implemented process such that the instructions that execute on the computer or other programmable apparatus provide operations for implementing the functions specified in the flowchart block or blocks.
(19) Also, each block of the flowchart illustrations may represent a module, segment, or portion of code, which includes one or more executable instructions for implementing the specified logical function(s). It should also be noted that in some alternative implementations, the functions noted in the blocks may occur out of the order. For example, two blocks shown in succession may in fact be executed substantially concurrently or the blocks may sometimes be executed in the reverse order, depending upon the functionality involved.
(20) In this case, the term “˜unit”, as used in an embodiment, means, but is not limited to, a software or hardware component, such as field programmable gate array (FPGA) or application specific integrated circuit (ASIC), which performs certain tasks. However, “˜unit” is not meant to be limited to software or hardware. The term “˜unit” may advantageously be configured to reside on the addressable storage medium and configured to execute on one or more processors. Thus, “˜unit” may include, by way of example, components, such as software components, object-oriented software components, class components and task components, processes, functions, attributes, procedures, subroutines, segments of program code, drivers, firmware, microcode, circuitry, data, databases, data structures, tables, arrays, and variables. The functionality provided for in the components and “˜units” may be combined into fewer components and “˜units” or further separated into additional components and “˜units”. Further, the components and “˜units” may be implemented to operate one or more central processing units (CPUs) in a device or a security multimedia card. Further, in an embodiment, “˜unit” may include one or more processors.
(21)
(22) Referring to
(23) According to an embodiment, in the next-generation mobile communication system using the mm-Wave bands, a multi-chain structure may be used to minimize the gain loss of the beam. For example, as illustrated in
(24) According to various embodiments, in contrast with the wireless communication module 100 as illustrated in
(25)
(26) Referring to
(27) According to an embodiment, the second wireless communication module 220, the third wireless communication module 230, the fourth wireless communication module 240, and the fifth wireless communication module 250 may be deployed at ends of the electronic device to radiate beams to an outside of the electronic device. For example, the second wireless communication module 220, the third wireless communication module 230, the fourth wireless communication module 240, and the fifth wireless communication module 250 may be front-end chips. According to various embodiments, the second wireless communication module 220, the third wireless communication module 230, the fourth wireless communication module 240, and the fifth wireless communication module 250 may include a plurality of RF chains. In the case of using the above-described embodiment, the number of RF chains of the electronic device including the first wireless communication module 210, the second wireless communication module 220, the third wireless communication module 230, the fourth wireless communication module 240, and the fifth wireless communication module 250 may be 64 (64 RF chains=16 RF chains*4).
(28) According to an embodiment, the first wireless communication module 210 may transmit a signal having an input phase of φ.sub.1 to the second wireless communication module 220, the third wireless communication module 230, the fourth wireless communication module 240, and the fifth wireless communication module 250. According to various embodiments, based on the above-described signal, the second wireless communication module 220, the third wireless communication module 230, the fourth wireless communication module 240, and the fifth wireless communication module 250 may generate beams in a specific direction.
(29) According to an embodiment, the second wireless communication module 220 having received the signal having the phase of φ.sub.1 may change the phase of φ.sub.1 as much as Δφ.sub.2 in order to form the beam in the specific direction. According to various embodiments, the third wireless communication module 230 may change the phase of φ.sub.1 as much as Δφ.sub.3 in order to form the beam in the specific direction, and the fourth wireless communication module 240 may change the phase of φ.sub.1 as much as Δφ.sub.4 in order to form the beam in the specific direction. The fifth wireless communication module 250 may change the phase of φ.sub.1 as much as Δφ.sub.5 in order to form the beam in the specific direction.
(30) According to an embodiment, the phase value Δφ.sub.2 intended to be changed through the second wireless communication module 220 may be different from the phase value being actually changed by the second wireless communication module 220. For example, the phase value intended to be changed through the second wireless communication module 220 may be 30°, whereas the phase value being actually changed by the second wireless communication module 220 may be 20°. According to various embodiments, the difference between the above-described phase values may be caused by process dispersion occurring in the process of manufacturing the wireless communication module. For example, due to the difference between values of elements, such as transistors, capacitors, and inductors, included in the wireless communication module, there may be the difference between the phase value intended to be changed through the wireless communication modules and the phase value being actually changed.
(31) According to an embodiment, the difference between the phase value intended to be changed through the wireless communication modules and the phase value being actually changed may be increased as the frequency band intended to be radiated through the wireless communication module becomes heightened. For example, in the mm-Wave frequency bands being used in the next-generation mobile communication system, the difference between the phase values may be increased in comparison with an LTE communication system. According to various embodiments, as the number of blocks cascaded in the wireless communication module or the number of functions of the wireless communication module becomes larger, the difference between the phase values may become greater.
(32) According to an embodiment, in all of the second wireless communication module 220, the third wireless communication module 230, the fourth wireless communication module 240, and the fifth wireless communication module 250 included in the electronic device, the difference between the phase value intended to be changed through the wireless communication module and the phase value being actually changed by the wireless communication module may exist. According to various embodiments, the electronic device may perform an accurate beamforming operation by identifying the difference between the phase value intended to be changed through each wireless communication module and the phase value being actually changed by each wireless communication module.
(33)
(34) Referring to
(35) According to an embodiment, the wireless communication module 310 may include an antenna array 320 including at least one antenna element, a phase shifter 330 configured to control a phase of a beam radiating from the antenna array 320, a processor 340 electrically connected to the phase shifter 330 and configured to perform beamforming by controlling the phase shifter 330, and a memory 350 including phase offset information of the wireless communication module 310.
(36) According to an embodiment, the phase offset information of the wireless communication module stored in the memory 350 may be determined based on a phase difference between the wireless communication module 310 and a reference wireless communication module. According to various embodiments, the reference wireless communication module may have the characteristic that is equal or similar to the characteristic of the wireless communication module 310 (even if the reference wireless communication module and the wireless communication module are manufactured to have the same characteristic, the characteristics of both the modules may be different from each other due to semiconductor process dispersion).
(37) According to an embodiment, it is possible to test the performance of the wireless communication module based on the phase offset information stored in the memory 350. According to various embodiments, by testing the performance of the wireless communication module through acquisition of the phase offset information stored in the memory 350, the time and costs required to test the wireless communication module can be reduced.
(38) On the other hand,
(39)
(40) Referring to
(41) According to an embodiment, in order to identify the phase difference between the wireless communication module 410 and the reference wireless communication module 420, a signal generator 430 may transmit the same signal f.sub.1 to the wireless communication module 410 and the reference wireless communication module 420. According to various embodiments, the wireless communication module 410 and the reference wireless communication module 420 may receive a local oscillator (LO) signal for changing the phase of the f.sub.1 signal received from the signal generator 430 from a local oscillator (LO) generator 450.
(42) According to an embodiment, the wireless communication module 410 may output an f.sub.3 signal based on the f.sub.1 signal and the LO signal. For example, there may be a difference as much as φ.sub.1 between the phase of the f.sub.3 signal and the phase of the f.sub.1 signal. According to various embodiments, the reference wireless communication module 420 may output an f.sub.2 signal based on the f.sub.1 signal and the LO signal. For example, there may be a difference as much as φ.sub.2 between the phase of the f.sub.2 signal and the phase of the f.sub.1 signal.
(43) According to an embodiment, even if the wireless communication module 410 and the reference wireless communication module 420 are manufactured to have the same characteristic, the phase of φ.sub.1 that is changed by the wireless communication module 410 and the phase of φ.sub.2 that is changed by the reference wireless communication module 420 may have different values due to the semiconductor process dispersion. Accordingly, in order to accurately test the performance of the wireless communication module 410, it is necessary to know the phase dispersion occurring in the wireless communication module 410 due to the semiconductor process dispersion.
(44) According to an embodiment, in order to acquire the phase dispersion occurring in the wireless communication module 410, the f.sub.3 signal output from the wireless communication module 410 and the f.sub.2 signal output from the reference wireless communication module 420 may be added and transmitted to a spectrum analyzer 440. According to various embodiments, by adjusting a phase shifter included in the wireless communication module 410, the phase dispersion of the wireless communication module 410 may be identified based on the characteristic of the (f.sub.2+f.sub.3) signal being analyzed by the spectrum analyzer 440.
(45) According to an embodiment, the output signal f.sub.2 of the wireless communication module 410 and the output signal f.sub.3 of the reference wireless communication module 420 may act mutually as constructive interferences through adjustment of the phase shifter included in the wireless communication module 410. According to various embodiments, it may be identified through the spectrum analyzer 440 whether the f.sub.2 signal and the f.sub.3 signal act mutually as constructive interferences.
(46) According to an embodiment, if the sum of the f.sub.2 signal and the f.sub.3 signal being identified through the spectrum analyzer 440 has the maximum value, it can be identified that the f.sub.2 signal and the f.sub.3 signal act mutually as the constructive interferences. According to various embodiments, if the f.sub.2 signal and the f.sub.3 signal act mutually as the constructive interferences, the phase dispersion value of the wireless communication module 410 may be determined based on the phase change value by the phase shifter of the wireless communication module 410. For example, the phase dispersion of the wireless communication module 410 may be determined based on Equation 1 below.
Δφ=−φ.sub.PS Equation 1
(47) Here, Δφ denotes phase dispersion of the wireless communication module, and Φ.sub.PS denotes a phase change value by the phase shifter of the wireless communication module.
(48) According to an embodiment, the output signal f.sub.2 of the wireless communication module 410 and the output signal f.sub.3 of the reference wireless communication module 420 may act mutually as destructive interferences through adjustment of the phase shifter included in the wireless communication module 410. According to various embodiments, it may be identified through the spectrum analyzer 440 whether the f.sub.2 signal and the f.sub.3 signal act mutually as destructive interferences.
(49) According to an embodiment, if the sum of the f.sub.2 signal and the f.sub.3 signal being identified through the spectrum analyzer 440 has the minimum value, it can be identified that the f.sub.2 signal and the f.sub.3 signal act mutually as the destructive interferences. According to various embodiments, if the f.sub.2 signal and the f.sub.3 signal act mutually as the destructive interferences, the phase dispersion value of the wireless communication module 410 may be determined based on the phase change value by the phase shifter of the wireless communication module 410. For example, the phase dispersion of the wireless communication module 410 may be determined based on Equation 2 below.
Δφ=180°−φ.sub.PS Equation 2
(50) Here, Δφ denotes phase dispersion of the wireless communication module, and Φ.sub.PS denotes a phase change value by the phase shifter of the wireless communication module.
(51) According to an embodiment, The phase dispersion value of the wireless communication module 410 may be determined based on the Equation 1 or 2. According to various embodiments, the determined phase dispersion value may be stored in a memory of the wireless communication module or a register provided inside the processor, and the stored phase dispersion value may be used in a performance test of the wireless communication module.
(52)
(53) Referring to
(54) According to an embodiment, at operation S520, a phase shifter of the wireless communication module may be adjusted based on the phase offset information. For example, if the phase offset information is +10°, the phase dispersion value of the wireless communication module including the phase offset information may be +10°. In this case, if it is intended to form a beam in the direction of +40° through the wireless communication module, the phase shifter may be adjusted as much as +30° in consideration of the phase dispersion value of +10°.
(55) According to an embodiment, at operation S530, the output power or beamforming performance of the wireless communication module may be tested. According to various embodiments, at operation S530, the beamforming performances of a plurality of wireless communication modules included in the electronic device may be tested.
(56)
(57) Referring to
(58) According to an embodiment, at operation S620, phase offset information of the wireless communication module may be determined based on the sum of the output power of the wireless communication module and the output power of the reference wireless communication module. The detailed explanation of operation S620 will be described later with reference to
(59) According to an embodiment, at operation S630, the determined phase offset information may be stored in a memory of the wireless communication module. For example, the phase offset information may be stored in a register included in a wireless communication module processor. According to various embodiments, the phase offset information may be the phase dispersion value of the wireless communication module.
(60) Operations S640, S650, and S660 as illustrated in
(61)
(62) Referring to
(63) According to an embodiment, at operation S720, it may be identified whether the sum of the output power of the wireless communication module and the output power of the reference wireless communication module has the maximum value. According to various embodiments, if the sum of the output power of the wireless communication module and the output power of the reference wireless communication module has the maximum value, the adjustment of the phase shifter may be stopped, and at operation S730, phase offset information of the wireless communication module may be determined. According to an embodiment, if the sum of the output power of the wireless communication module and the output power of the reference wireless communication module does not have the maximum value, the operation returns to the operation S710, and the sum of the output power of the wireless communication module and the output power of the reference wireless communication module may be identified through adjustment of the phase shifter of the wireless communication module.
(64) According to an embodiment, at operation S730, the phase offset information of the wireless communication module may be determined based on the phase value of the phase shifter of the wireless communication module whereby the sum of the output power of the wireless communication module and the output power of the reference wireless communication module has the maximum value. For example, the phase offset information of the wireless communication module may be determined based on Equation 3 below.
Δφ=−φ.sub.PS Equation 3
(65) Here, Δφ denotes phase offset information of the wireless communication module, and Φ.sub.PS denotes a phase value of the phase shifter of the wireless communication module if the sum of the output power of the wireless communication module and the output power of the reference wireless communication module has the maximum value.
(66)
(67) Referring to
(68) According to an embodiment, at operation S820, it may be identified whether the sum of the output power of the wireless communication module and the output power of the reference wireless communication module has the minimum value. According to various embodiments, if the sum of the output power of the wireless communication module and the output power of the reference wireless communication module has the minimum value, the adjustment of the phase shifter may be stopped, and at operation S830, phase offset information of the wireless communication module may be determined. According to an embodiment, if the sum of the output power of the wireless communication module and the output power of the reference wireless communication module does not have the minimum value, the operation returns to the operation S810, and the sum of the output power of the wireless communication module and the output power of the reference wireless communication module may be identified through adjustment of the phase shifter of the wireless communication module.
(69) According to an embodiment, at operation S830, the phase offset information of the wireless communication module may be determined based on the phase value of the phase shifter of the wireless communication module whereby the sum of the output power of the wireless communication module and the output power of the reference wireless communication module has the minimum value. For example, the phase offset information of the wireless communication module may be determined based on Equation 4 below.
Δφ=180°−φ.sub.PS Equation 4
(70) Here, Δφ denotes phase offset information of the wireless communication module, and φ.sub.PS denotes a phase value of the phase shifter of the wireless communication module if the sum of the output power of the wireless communication module and the output power of the reference wireless communication module has the minimum value.
(71)
(72) Referring to
(73) According to an embodiment, at operation S920, phase offset information may be determined based on a phase value of the phase shifter whereby the frequency output of the wireless communication module and the frequency output of the reference wireless communication module are in mutual constructive interference relations. For example, the phase offset information of the wireless communication module may be determined based on Equation 5 below.
Δφ=−φ.sub.PS Equation 5
(74) Here, Δφ denotes phase offset information of the wireless communication module, and φ.sub.PS denotes a phase value of the phase shifter of the wireless communication module if the frequency output of the wireless communication module and the frequency output of the reference wireless communication module are mutual constructive interferences.
(75)
(76) Referring to
(77) According to an embodiment, at operation S1020, phase offset information may be determined based on a phase value of the phase shifter whereby the frequency output of the wireless communication module and the frequency output of the reference wireless communication module are in mutual destructive interference relations. For example, the phase offset information of the wireless communication module may be determined based on Equation 6 below.
Δφ=180°−φ.sub.PS Equation 6
(78) Here, Δφ denotes phase offset information of the wireless communication module, and φ.sub.PS denotes a phase value of the phase shifter of the wireless communication module if the frequency output of the wireless communication module and the frequency output of the reference wireless communication module are mutual constructive interferences.
(79) The disclosure provides an electronic device including a wireless communication module, wherein the wireless communication module includes an antenna array including at least one antenna element, a phase shifter configured to control a phase of a beam radiating from the antenna array, a processor electrically connected to the phase shifter and configured to perform beamforming by controlling the phase shifter, and a memory including phase offset information of the wireless communication module.
(80) The phase offset information may be determined based on a phase difference between the wireless communication module and a reference wireless communication module.
(81) If the beam radiating through the wireless communication module and a beam radiating through a reference wireless communication module act mutually as constructive interferences, the phase offset information may be determined based on a phase value being controlled by a phase shifter included in the wireless communication module.
(82) If the beam radiating through the wireless communication module and a beam radiating through a reference wireless communication module act mutually as destructive interferences, the phase offset information may be determined based on a phase value being controlled by a phase shifter included in the wireless communication module.
(83) If a sum of a power of the beam radiating through the wireless communication module and a power of a beam radiating through a reference wireless communication module has a maximum value, the phase offset information may be determined based on a phase value being controlled by a phase shifter included in the wireless communication module.
(84) If a sum of a power of the beam radiating through the wireless communication module and a power of a beam radiating through a reference wireless communication module has a minimum value, the phase offset information may be determined based on a phase value being controlled by a phase shifter included in the wireless communication module.
(85) The disclosure provides a method for testing a wireless communication module which includes acquiring phase offset information stored in a memory of the wireless communication module, adjusting a phase shifter of the wireless communication module based on the phase offset information, and testing an output power and beamforming performance of the wireless communication module.
(86) The method may include acquiring the output power of the wireless communication module and an output power of a reference wireless communication module before acquiring the phase offset information, determining the phase offset information based on a sum of the output power of the wireless communication module and the output power of the reference wireless communication module, and storing the determined phase offset information in the memory.
(87) Determining the phase offset information may include identifying a sum of the output power of the wireless communication module and the output power of the reference wireless communication module by adjusting the phase shifter, and determining the phase offset information based on a phase value of the phase shifter whereby the sum of the output power of the wireless communication module and the output power of the reference wireless communication module has a maximum value.
(88) Determining the phase offset information may include identifying a sum of the output power of the wireless communication module and the output power of the reference wireless communication module by adjusting the phase shifter, and determining the phase offset information based on a phase value of the phase shifter whereby the sum of the output power of the wireless communication module and the output power of the reference wireless communication module has a minimum value.
(89) Determining the phase offset information may include identifying correlations between a frequency output of the wireless communication module and a frequency output of the reference wireless communication module by adjusting the phase shifter, and determining the phase offset information based on a phase value of the phase shifter whereby the frequency output of the wireless communication module and the frequency output of the reference wireless communication module are in mutual constructive interference relations.
(90) Determining the phase offset information may include identifying correlations between a frequency output of the wireless communication module and a frequency output of the reference wireless communication module by adjusting the phase shifter, and determining the phase offset information based on a phase value of the phase shifter whereby the frequency output of the wireless communication module and the frequency output of the reference wireless communication module are in mutual destructive interference relations.
(91) The disclosure provides a base station including a wireless communication module, wherein the wireless communication module includes an antenna array including at least one antenna element, a phase shifter configured to control a phase of a beam radiating from the antenna array, a processor electrically connected to the phase shifter and configured to perform beamforming by controlling the phase shifter, and a memory including phase offset information of the wireless communication module.
(92) The phase offset information may be determined based on a phase difference between the wireless communication module and a reference wireless communication module.
(93) If the beam radiating through the wireless communication module and a beam radiating through a reference wireless communication module act mutually as constructive interferences, the phase offset information may be determined based on a phase value being controlled by a phase shifter included in the wireless communication module.
(94) If the beam radiating through the wireless communication module and a beam radiating through a reference wireless communication module act mutually as destructive interferences, the phase offset information may be determined based on a phase value being controlled by a phase shifter included in the wireless communication module.
(95) If a sum of a power of the beam radiating through the wireless communication module and a power of a beam radiating through a reference wireless communication module has a maximum value, the phase offset information may be determined based on a phase value being controlled by a phase shifter included in the wireless communication module.
(96) If a sum of a power of the beam radiating through the wireless communication module and a power of a beam radiating through a reference wireless communication module has a minimum value, the phase offset information may be determined based on a phase value being controlled by a phase shifter included in the wireless communication module.
(97) While the disclosure has been shown and described with reference to various embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the disclosure as defined by the appended claims and their equivalents.