Beamforming array antenna control system and method for beamforming using the same
09787000 · 2017-10-10
Assignee
Inventors
- Ki Jin Kim (Gwangju-si, KR)
- Kwang Ho AHN (Yongin-si, KR)
- Sanghoon Park (Seoul, KR)
- Jong-Won Yu (Daejeon, KR)
- Hyun Sung Tae (Daejeon, KR)
Cpc classification
H01Q25/00
ELECTRICITY
International classification
H01Q3/00
ELECTRICITY
H01Q3/12
ELECTRICITY
Abstract
A control system connected to a plurality of array antenna performs beamforming. The control system comprises a beam radiation controller for requesting a predetermined first antenna group to radiate beams and requesting a second antenna group including the first antenna group to radiate beams to an optimized sector, a beam receiver for receiving response beams from the first antenna group and the second antenna group, and a sector selector for setting up an optimized sector based on the received beams for the first antenna group, and transmitting information on the optimized sector to the beam radiation controller in order to control the second antenna group to radiate beams to the optimized sector.
Claims
1. A control system for controlling beamforming by being connected to a plurality of array antennas, the control system comprising: a beam radiation controller for requesting a predetermined first antenna group to radiate beams and requesting a second antenna group including the first antenna group to radiate beams to an optimized sector; a beam receiver for receiving response beams from the first antenna group and the second antenna group; and a sector selector for setting up an optimized sector based on the received beams for the first antenna group, and transmitting information on the optimized sector to the beam radiation controller in order to control the second antenna group to radiate beams to the optimized sector.
2. The control system of claim 1, wherein the sector selector sets up a final sector based on response beams in response to a plurality of beams radiated to the setup optimized sector, and sets up a sector radiating a response beam having a comparatively stronger intensity among the plurality of response beams as the optimized sector or the final sector.
3. The control system of claim 1, wherein a number of antennas included in the second antenna group is decided as multiple of 2n of the first antenna group.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF THE EMBODIMENTS
(7) In the following detailed description, only certain exemplary embodiments of the present invention have been shown and described, simply by way of illustration. As those skilled in the art would realize, the described embodiments may be modified in various different ways, all without departing from the spirit or scope of the present invention. Accordingly, the drawings and description are to be regarded as illustrative in nature and not restrictive. Like reference numerals designate like elements throughout the specification.
(8) Through the specification, unless explicitly described to the contrary, the word “comprise” and variations such as “comprises” or “comprising”, will be understood to imply the inclusion of stated elements but not the exclusion of any other elements.
(9) Hereinafter, a beamforming array antenna and a beamforming method using the same will be described with reference to the accompanying drawing. Prior to describing an exemplary embodiment of the present invention, a typical beamforming antenna and a beamforming protocol will be described.
(10)
(11) As shown in i,j) of a transmitter and a combiner vector (
i,j) of a receiver. Furthermore, the beam direction and the beam intensity of the beam may be expressed by a channel state information matrix
which is transmitted through a Multi input Multi output (MIMO) channel.
(12) As described above, the typical beamforming antenna decides the beam direction and the beam intensity based on a beamforming vector, a combiner vector, and a CSI matrix. Such a typical beamforming antenna fines an optimized beam signal pair through beam signal search between a transmitter and a receiver. Accordingly, a comparatively long time is consumed to calculate all CSI matrices for beamforming communication.
(13) A typical beamforming protocol using a typical beamforming antenna will be described with reference to
(14)
(15) When beamforming communication initiates, beam searching is performed within a predetermined range through sector level training as shown in
(16) After the sector is decided, a beam level training procedure is performed as shown in
(17) According to the above beamforming protocol, a time for beam searching may be shortened a little in beamforming communication. However, it is still time consuming procedure. In accordance with an exemplary embodiment of the present invention, a beamforming antenna has a structure of
(18)
(19) As shown in
(20) The beam radiation controller 110 may control a beam to be radiated to a predetermined sector area for beam searching. Herein, an initially transmitted beam is controlled to be transmitted from signal transmitters in two antennas predetermined from the plurality of antennas. After the initially transmitted beam, beam radiation is controlled while increasing the number of antennas. Such a control operation will be described in later.
(21) The beam receiver 120 of each antenna receives a response beam corresponding to the beam radiated to the predetermined sector area from the transmitter.
(22) The sector selector 130 selects a sector related to a response beam having the strongest intensity among a plurality of the received response beams. The beam radiation controller 110 decides the selected sector as an optimized sector. The optimized sector may be a final sector according to the number of antennas. The sector selector 130 transfers information on the optimized sector to the beam radiation controller 110 in order to radiate a beam to the optimized sector.
(23) A beam forming algorithm procedure performed through the control system will be described with reference to
(24)
(25) As shown in
(26) In order to search for a target when the system initiates, the two predetermined antennas radiating beams may be two center antennas, for example, a first antenna 1 and a second antenna 2, included in a predetermined first antenna group at step S100. Furthermore, each antenna radiates a beam to a predetermined sector at step S100. Herein, each antenna may be set up to radiate a beam to two sectors in accordance with an embodiment of the present invention.
(27) After the first and second antennas 1 and 2 receive the control signal at step S100, the first and second antennas 1 and 2 perform sector level training that radiates signals to the predetermined two sectors, respectively at step S110. At this time, a third antenna 3 to an eighth antenna 8 do not operate. It will be described with reference to
(28)
(29) Referring to
(30) As described above, the first antenna group receives response beams in response to the beam radiated at step S110 of
(31) As shown in
(32) When the second antenna group is set up based on the first antenna group, the number of antennas in the second antenna group is decided based on multiple of 2n of the first antenna group. That is, since the first antenna group includes the first antenna 1 and the second antenna 2, the second antenna group is set up to include four antennas such as the first antenna 1 to the fourth antenna 4.
(33) Based on the control signal that was received at the step S140, the first to fourth antennas 1 to 4 perform sector level training that radiates beams in the second sector direction, for example, toward a 2-1 sector and a 2-2 sector at step S150. The second antenna group including the first to fourth antennas receives response beams corresponding to the radiated beams of S150 and transfers the received response beams to the signal receivers 120 of the beamforming antenna control system 100.
(34) The beam receiver 120 transfers total eight response beams to the sector selector 130 to perform select level cycle at step S160. The sector selector 130 selects a sector related to a beam having the strongest beam intensity and decides the selected sector as the optimized sector at step S170.
(35) As shown in
(36) The sector selector 130 selects the optimized sector by repeating the above procedures. Since an output beam becomes a further sharp beam as the number of antennas radiating beams increases and since a sector area becomes more limited as the above procedures repeat, an optimized beam pair can be found at further faster speed. The sector area may be a beam search area.
(37) The sector selector 130 decides the final sector at step S180 after repeating the steps S110 to S170. An optimized level is decided by performing beam level training through a seventh antenna 7 at steps S190 and S200. A beam to be transmitted to a target is decided by increasing a beam resolution while performing addition searching with a high resolution beam using an eighth antenna 8 at steps S210 and S220. Since the steps S190 to S230 of deciding the optimized level and performing additional searching with the high resolution beam are already widely known, detailed descriptions thereof will be omitted herein.
(38)
(39) As illustrated in
(40) As described above, the beam width is changed according to the number of antennas. A radiation pattern of an antenna may be expressed as Equation 1 below.
(41)
(42) In Equation 1, λ denotes a wavelength, d denotes a gap between arrays, β denotes an input phase difference, and N denotes the number of arrays.
(43) Based on Equation 1, a beam width (Δθ.sub.h) becomes narrower because a gap between beams becomes smaller as the number of arrays (N) is increased.
(44) Accordingly, an array antenna system including a control system for controlling beamforming by being connected to a plurality of array antennas decides a sector through sector level training between a receiving antenna and a transmitting antenna when an array is a smallest array having the widest beam width, for example, 2-array. Herein, input signals of all antennas except the 2-array antenna become 0.
(45) After deciding the sector, an optimized beam width is gradually reduced by performing beam level training while increasing the number of array antennas by multiple of 2n (n denotes an positive integer). In the same manner, input signals of all antennas become 0 except antennas related to the beam level training. In case of the antennas involved in the beam level training, a phase difference of the same input signal size is decided in order to control a beam to be radiated in a sector size.
(46) An angle formed by beam can be calculated by equation that expresses an array factor. The array factor may be expressed by Equation 2 below.
(47)
(48) When Equation 2 is normalized by applying 0 as array center, Equation 2 can be converted to Equation 3 below.
(49)
(50) A phase difference that maximizes the array factor may be decided when Ψ becomes 0. It may be expressed by Equation 4 below.
Ψ=kd cos θ+β=0,β=−kd cos θ
(51) A beam may be controlled to be forward inside a sector size using the above equations with β value obtained through simulations and measured value.
(52) While this invention has been described in connection with what is presently considered to be practical exemplary embodiments, it is to be understood that the invention is not limited to the disclosed embodiments, but, on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.
(53) While this invention has been described in connection with what is presently considered to be practical exemplary embodiments, it is to be understood that the invention is not limited to the disclosed embodiments, but, on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.