The above and other aspects, features and advantages of exemplary embodiments of the present invention will be more apparent from the following detailed description taken in conjunction with the accompanying drawings, in which:
Throughout the drawings, the same drawing reference numerals will be understood to refer to the same elements, features and structures.
The following description with reference to the accompanying drawings is provided to assist in a comprehensive understanding of exemplary embodiments of the invention 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 embodiments described herein can be made without departing from the scope and spirit of the invention. Also, descriptions of well-known functions and constructions are omitted for clarity and conciseness.
Exemplary embodiments of the present invention provide a calibration apparatus and method for compensating Transmitting (Tx) and Receiving (Rx) hardware paths in a communication system using a smart antenna. For this purpose, exemplary embodiments of the present invention also provide an apparatus and method for performing Tx calibration and Rx calibration by establishing calibration paths and transmitting and receiving a reference signal in the calibration paths in a communication system. An exemplary calibration apparatus transmits/receives the reference signal in a single reference Tx/Rx path, controls Tx/Rx calibration paths of the reference signal by controlling Transmit Control Blocks (TCBs), switches, and a combiner/distributor, and performs calibration using signals received from the calibration paths.
In the present invention, a calibration apparatus and method may be considered in two ways.
An exemplary embodiment of the present invention will be described in the context of a time-division communication system, by way of example. In view of the nature of the time-division communication system that uses the same frequency for transmission and reception unlike a frequency-division communication system, a single antenna suffices for signal transmission and reception because the same beam shape is used for transmission and reception.
Referring to
The baseband module 145 includes a reference signal generator for generating a reference signal and a calibrator for performing calibration using a signal received from each path.
The calibrator receives a signal from each path and extracts a calibration vector for the path. It compensates the Tx/Rx hardware paths by applying the calibration vectors to beamforming coefficients used for beamforming. The calibrator may perform calibration continuously during signal transmission/reception, or during intervals if hardware performance does not change fast.
The Tx modules 133, 137 and 141 upconvert signals received from the baseband module 145. The Rx modules 135, 139 and 143 downconvert signals received from the TCBs 127, 129 and 131 and provide the downconverted signals to the baseband module 145.
The TCBs 127, 129 and 131 output the signals received from the Tx modules 133, 137 and 141 to the couplers 119, 121 and 123, respectively, and output signals received through the antennas 111, 113 and 115 to the Rx modules 135, 139 and 143. The TCBs 127, 129 and 131 include Tx ports connected to the Tx modules 133, 137 and 141, Rx ports connected to the Rx modules 135, 139 and 143, and antenna ports connected to the antennas 111, 113 and 115. Accordingly, the TCBs 127, 129 and 131 operate in Tx mode when transmitting signals and in Rx mode when receiving signals.
The couplers 119, 121 and 123, which are positioned between the TCBs 127, 129 and 131 and the antennas 111, 113 and 115, connect the TCBs 127, 129 and 131 to the antennas 111, 113 and 115. The couplers 119, 121 and 123 each have a coupling port for extracting or coupling a signal with a coupling value from or to ports for receiving and outputting a traffic signal. In accordance with an exemplary embodiment of the present invention, the couplers 119, 121 and 123 couple reference signals input to the antennas 111, 113 and 115 to the combiner/distributor 117, or provide reference signals received from the combiner/distributor 117 to the TCB 127, for calibration.
The antennas 111, 113 and 115 transmit or receive signals.
An exemplary embodiment of the present invention is characterized in that a reference signal is transmitted/received in a single reference Tx/Rx path, for calibration. By way of example, the reference Tx/Rx path runs through a first Tx module 133 and a first Rx module 135 connected to the baseband module 145.
The combiner/distributor 117 combines signals received from the Tx modules 133, 137 and 141 through the TCBs 127, 129 and 131 and the couplers 119, 121 and 123, or distributes a signal received from the first Tx module 133. The combiner/distributor 117 can be a switch.
The switch 125 connected to the combiner/distributor 117 is connected to the first TCB 127 via a first Tx port and a first Rx port of the TCB 127. Thus, the switch 125 switches the combiner/distributor 117 to the first Tx port or the first Rx port of the TCB 127.
A Tx calibration operation for calibrating Tx paths and an Rx calibration operation for calibrating Rx paths in the above-described exemplary calibration apparatus will be described later with reference to
Referring to
The calibration apparatus is configured by adding the Tx coupler 233 and the Rx coupler 235 to the calibration apparatus illustrated in
Accordingly, the switch 227 switches signals between the Tx and Rx couplers 233 and 235 and the combiner/distributor 217, instead of switching signals between the first Tx and Rx ports and the combiner/distributor 117 as illustrated in
The combiner/distributor 217 distributes a signal received from the Tx coupler 233, and combines input signals and outputs the combined signal to the Rx coupler 235. A switch can be used as the combiner/distributor 217.
In an exemplary embodiment, the Tx coupler 233 and the Rx coupler 235 can be incorporated in the first Tx module 237 and the first Rx module 239, respectively. In this case, the Tx coupler and the Rx coupler are denoted by reference numerals 233-1 and 235-1, respectively in
The above calibration apparatus operates in substantially the same manner as that of
Referring to
For Tx calibration, the baseband module 345 generates Tx calibration reference signals through a reference signal generator and outputs the reference signals to the N Tx modules 333, 337 and 341.
The Tx modules 333, 337 and 341 upconvert the received reference signals to Radio Frequency (RF) signals.
The TCBs 327, 329 and 331 operate in Tx mode. Thus the TCBs 327, 329 and 331 connect their Tx ports to their antenna ports and provide the RF signals to the couplers 319, 321 and 323.
The couplers 319, 321 and 323 couple the received signals to the combiner/distributor 317.
The combiner/distributor 317 combines the signals received from the couplers 319, 321 and 323. Hence, the combiner/distributor 317 functions as a combiner for Tx calibration.
The switch 325 is connected to an Rx port of a first TCB 327 and switches the combined signal to the first TCB 327. If the coupler 235 illustrated in
The first TCB 327 outputs the received signal to the first Rx module 335.
The first Rx module 335 downconverts the received signal to a baseband signal. A calibrator of the baseband module 345 can perform Tx calibration using the baseband signal received from the Rx module 335.
The first Rx module 335 serves as a reference Rx module for the Tx calibration.
For example, one path in which the reference signals are transmitted for the Tx calibration starts from the baseband module 345, passes through the second Tx module 337, the TCB 329, the second coupler 321, the combiner/distributor 317, the switch 325, and the first TCB 327 in this order, and returns to the baseband module 345.
The combiner/distributor 317 combines reference signals received from the first Tx module 333 and the Nth Tx module 341 as well as the second Tx module 337. The Tx modules 333, 337 and 341 form calibration paths running through the first Rx module 335 and transmit the reference signals in the calibration paths, for the Tx calibration.
If the combiner/distributor 317 is a switch, the Tx calibration is carried out for all paths sequentially at intervals since a simultaneous Tx calibration for the paths is impossible. Now a description will be made of an exemplary Rx calibration with reference to
Referring to
For Rx calibration, the baseband module 345 generates an Rx calibration reference signal through the reference signal generator and outputs the reference signals to the first Tx module 333.
The first Tx module 333 upconverts the reference signal to an RF signal and provides the RF signal to the first TCB 327. If the coupler 233 illustrated in
The first TCB 327 has an Rx port connected to an antenna port. Thus, the first TCB 327 outputs the RF signal to the switch 325 via a Tx port. The switch 325, which is connected to the Tx port of the first TCB 327, switches the received signal to the combiner/distributor 317.
The combiner/distributor 317 distributes the reference signal received from the switch 325 to the couplers 319, 321 and 323. The combiner/distributor 317 functions as a distributor for Rx calibration.
The couplers 319, 321 and 323 couple the received signals to the TCBs 327, 329 and 331, respectively.
The TCBs 327, 329 and 331 operate in Rx mode. Thus, the TCBs 327, 329 and 331 connect their antenna ports to their Rx ports and output the coupled signals to the Rx modules 335, 339 and 343, respectively.
The Rx modules 335, 339 and 343 downconvert the received signals to baseband signals. Thus the calibrator of the baseband module 345 can perform Rx calibration using the baseband signals received from the Rx modules 335, 339 and 343.
The first Tx module 333 serves as a reference Tx module, for the Rx calibration.
For example, one path in which the reference signal is transmitted for the Rx calibration starts from the baseband module 345, passes through the first Tx module 333, the first TCB 327, the switch 325, the combiner/distributor 317, the second coupler 321, the second TCB 329, and the first Rx module 339 in this order, and returns to the baseband module 345.
The combiner/distributor 317 distributes the reference signal received from the first Tx module 333 to the Rx modules 335, 339 and 343. The first Tx module 333 forms calibration paths running through the Rx modules 335, 339 and 343 and transmits the reference signal in the calibration paths, for the Rx calibration.
The combiner/distributor 317 can be a switch. In this case, the Rx calibration is carried out for all paths sequentially at intervals since a simultaneous Rx calibration for the paths is impossible. The calibration apparatus has been described above with reference to
Referring to
If the calibration apparatus includes the combiner/distributor, the calibration apparatus generates a reference signal for calibration in step 413. If a plurality of antennas or Tx/Rx modules are to be calibrated, the calibration apparatus generates a plurality of reference signals for the antennas or Tx/Rx modules.
The calibration apparatus upconverts the reference signal to an RF signal in step 415. In the case of a plurality of reference signals, the calibration apparatus upconverts the individual reference signals to RF signals.
In step 417, the calibration apparatus couples the RF signal. In the case of a plurality of reference signals, the calibration apparatus couples the respective RF signals.
The calibration apparatus combines the reference signals from all paths in step 419 and proceeds to step 435. If signal combination is available, the calibration apparatus upconverts all reference signals simultaneously and combines them.
On the other hand, if the reference signals cannot be combined, for example, if the reference signals are switched in step 411, the calibration apparatus sets a variable i to 1 in order to sequentially switch reference signals from the paths, in step 421. If the calibration apparatus uses a switch, the paths are calibrated sequentially at intervals because all the paths cannot be calibrated at the same time.
The calibration apparatus generates a reference signal in step 423, upconverts the reference signal to an RF signal in step 425, and couples the RF signal in step 427.
The calibration apparatus switches the coupled signal in step 429 and compares i with a threshold N in step 431. N is the number of antennas or Tx modules. Therefore, the calibration apparatus repeats upconversion and coupling in steps 423 through 429 N times for reference signals over the respective paths by switching. If i is different from N, the calibration apparatus goes to step 433 in which the calibration apparatus increases i by 1 in step 433 and goes to step 423.
If i is identical to N, the calibration apparatus goes to step 435.
In step 435, the calibration apparatus downconverts the combined signal obtained in step 419 or the switched signals obtained in step 429 to baseband signals.
In step 437, the calibration apparatus performs calibration using the baseband signals received through each signal transmission path. Specifically, the calibration apparatus acquires Tx calibration vectors from result of comparing the reference signal and the baseband signals. The calibration apparatus applies the Tx calibration vectors to beamforming coefficients for signal transmission. In this manner, the Tx calibration is carried out by compensating Tx signals in Tx paths.
With reference to
Referring to
If the reference signal can be distributed, the calibration apparatus distributes the RF reference signal to paths in step 517 and couples the distributed signals for the respective paths in step 519. In step 521, the calibration apparatus downconverts the coupled signals to baseband signals. Then the calibration apparatus goes to step 535.
On the other hand, if the reference signal cannot be distributed, for example, if the reference signal can be switched as a plurality of reference signals in step 511, the calibration apparatus sets a variable i to 1 to switch the reference signal to the respective paths in step 523. In the case where the calibration apparatus uses a switch, calibration is carried out sequentially for all Rx paths at intervals because a simultaneous calibration for the Rx paths is impossible.
In step 525, the calibration apparatus switches the RF reference signal to each path. The calibration apparatus couples the switched reference signals in step 527 and downconverts the coupled signals to baseband signals in step 529.
In step 531, the calibration apparatus compares i with a threshold N. N is the number of antennas or Rx modules. Therefore, the calibration apparatus iteratively performs steps 525 to 531 to switch the reference signal N times, couple the N reference signals, and downconvert the coupled N reference signals. If i is different from N, the calibration apparatus increases i by 1 in step 533 and returns to step 525. If i is equal to N, the calibration apparatus proceeds to step 535.
In step 535 the calibration apparatus performs calibration using the baseband signals received through each signal reception path. Specifically, the calibration apparatus acquires Rx calibration vectors from result of comparing the reference signal and the baseband signals. The calibration apparatus applies the calibration vectors to beamforming coefficients, for signal reception. In this manner, the Rx calibration is carried out by compensating signals received in Rx paths.
The calibration will be described with reference to
Referring to
The calibrator determines whether a reference signal has been allocated to occupy part of each Tx signal in step 611. If the reference signal has been allocated to part of each Tx signal, the calibrator goes to step 613. If the reference signal has not been allocated to occupy part of each Tx signal, for example, if the reference signal has been allocated to occupy an entire Tx frame, the calibrator goes to step 619. The reference signal is denoted by C(t).
In step 613, the calibrator receives beamforming coefficients Wb1, Wb2, . . . , WbN. The calibrator receives the reference signal from each calibration path illustrated in
where αN denotes an amplitude variation from an Nth path or a signal attenuation in the Nth path and ejθ
In step 617, the calibrator eliminates the beamforming coefficient WbN applied to each path from the received signal CN(t) from the path. Then the calibrator proceeds to step 623.
Meanwhile, the calibrator does not apply a beamforming coefficient to each Tx/Rx path during a reference signal generation time (or frame) in step 619. The calibrator receives the reference signal from each calibration path in step 621 and goes to step 623. The received reference signal is identical to the beamforming coefficient-free reference signal achieved in step 617.
In step 623, the calibrator eliminates the reference signal C(t) and coupler characteristics Rcoupler, i.e. computes
For Tx calibration, the calibrator computes calibration vectors by
For Rx calibration, the received reference signals involve T1=αfeedbackejθ
Tx and Rx paths are compensated by applying the computed Tx calibration vectors for signal transmission and the computed Rx calibration for signal reception.
Compared to the calibration apparatus described in
Referring to
The baseband module 749 includes a reference signal generator for generating a reference signal and a calibrator for performing calibration using a signal received from each path. The calibrator receives the reference signal from each path and extracts a calibration vector for the path. It also compensates Tx/Rx hardware paths by applying the calibration vectors to beamforming coefficients used for beamforming. The calibrator may perform calibration continuously during signal transmission/reception, or every interval if hardware performance does not change fast.
The Tx modules 737, 741 and 745 upconvert signals received from the baseband module 145 and provide the upconverted signals to the TCBs 731, 733 and 735. The Rx modules 739, 743 and 747 downconvert signals received from the TCBs 731, 733 and 735 and provide the downconverted signals to the baseband module 749.
The TCBs 731, 733 and 735 output the signals received from the Tx modules 737, 741 and 745 to the couplers 725, 727 and 729, respectively, and output signals received through the antennas 711, 713 and 715 to the Rx modules 739, 743 and 747. The TCBs 731, 733 and 735 include Tx ports connected to the Tx modules 737, 741 and 745, Rx ports connected to the Rx modules 739, 743 and 747, and antenna ports connected to the antennas 711, 713 and 715.
The couplers 725, 727 and 729 couple reference signals input to the antennas 711, 713 and 715 to the combiner/distributor 717, or receive reference signals from the combiner/distributor 717, for calibration.
The antennas 711, 713 and 715 transmit or receive signals.
Compared to the calibration apparatus illustrated in
The combiner/distributor 717 is connected to the switches 719, 721 and 723. The first switch 719 is connected to the first coupler 725 and the third switch 723 is connected to the second coupler 727. The second switch 721 is connected between the first and third switches 719 and 723.
To be more specific about the connection relationship of the switches 719, 721 and 723, the first switch 719 is connected to the first coupler 725, the combiner/distributor 717, and the second switch 721. The second switch 721 is connected to the first switch 719, the combiner/distributor 717, and the third switch 723. The third switch 723 is connected to the second switch 721, the combiner/distributor 717, and the second coupler 727.
The combiner/distributor 717 can be a switch. In this case, signal processing occurs sequentially over respective paths, which will not be described in more detail.
Calibration in the above-described calibration apparatus will be described below with reference to
Before describing
Referring to
For calibration, the baseband module 849 generates a reference signal for calibration through a reference signal generator and outputs the reference signal to the first Tx module 837.
The Tx module 837 upconverts the reference signal to an RF signal. The first TCB 831 operates in Tx mode and thus outputs the RF signal received from the Tx module 837 to the first coupler 825 connected to the first antenna 811.
The first coupler 825 couples the received signal to the first switch 819. The first switch 819 switches the received signal to the second switch 821. The second switch 821 switches the received signal to the combiner/distributor 817.
The combiner/distributor 817 distributes the received signal to the first switch 819, the third switch 823, and the Nth coupler 829. Since the first switch 819 is not connected to the first coupler 825, it does not switch the received signal to the first coupler 825. The third switch 827 switches the received signal to the second coupler 827.
The second coupler 827 and the Nth coupler 829 couple the distributed signals to the second TCB 833 and the Nth TCB 835, respectively.
Both the second TCB 833 and the Nth TCB 835 operate in Rx mode and thus provide the received signals to the second Rx module 843 and the Nth Rx module 847, respectively.
The second Rx module 843 and the Nth Rx module 847 downconvert the received signals to baseband signals and provide the baseband signals to a calibrator of the baseband module 849.
Thus, the baseband module 849 acquires calibration signals through the calibrator.
Establishment of a first calibration path and acquisition of calibration signals have been described above. For forming the first calibration path, the first TCB 831 operates in the Tx mode and the other TCBs 833 and 835 operate in the Rx mode. The first switch 819 switches the first coupler 825 to the second switch 821 and the second switch 821 switches the first switch 819 to the combiner/distributor 817. The third switch 823 switches the combiner/distributor 817 to the second coupler 827. The combiner/distributor 817 functions as a distributor for distributing an input signal as a plurality of signals.
An exemplary method of forming a second calibration path and acquiring a calibration signal from the second calibration path will be described below with reference to
Referring to
For calibration, the baseband module 849 generates a reference signal through the reference signal generator and outputs the reference signal to the second and Nth Tx modules 841 and 845.
The Tx modules 841 and 845 upconvert the reference signal to RF signals. The second and Nth TCBs 833 and 835 operate in the Tx mode. Thus the TCBs 833 and 835 control the RF signals received from the Tx modules 841 and 845 to be output to the second coupler 827 connected to the second antenna 813 and the Nth coupler 829 connected to the Nth antenna 815.
The second coupler 827 couples the received signal to the third switch 823 and the Nth coupler 829 couples the received signal to the combiner/distributor 817.
The third switch 823 switches the received signal to the combiner/distributor 817. The combiner/distributor 817 combines the received signals and outputs the combined signal to the second switch 821. The second switch 821 switches the received signal to the first switch 819.
The first switch 819 switches the received signal to the first coupler 825 and the first coupler 825 couples the received signal to the first TCB 831.
The first TCB 831 operates in the Rx mode and outputs the received signal to the first Rx module 839.
The first Rx module 839 downconverts the received signal to a baseband signal and provides the baseband signal to the calibrator of the baseband module 849.
Thus, the baseband module 849 acquires a calibration signal through the calibrator.
Acquisition of a calibration signal through the second calibration path has been described above. To establish the second calibration path, the first TCB 831 operates in the Rx mode and the other TCBs 833 and 835 operate in the Tx mode. The third switch 823 switches the second coupler 827 to the combiner/distributor 817 and the second switch 821 switches the combiner/distributor 817 to the first switch 819. The first switch 819 switches the second switch 821 to the first coupler 825. The combiner/distributor 817 functions as a combiner for combining a plurality of input signals.
An exemplary method of forming a third calibration path and acquiring calibration signals will be described below with reference to
Referring to
For calibration, the baseband module 849 generates a reference signal through the reference signal generator and outputs the reference signal to the second Tx module 841.
The second Tx module 841 upconverts the reference signal to an RF signal. The second TCB 833 operates in the Tx mode and thus outputs the RF signal to the second coupler 827 connected to the second antenna 813.
The second coupler 827 couples the received signal to the third switch 823. The third switch 823 switches the received signal to the second switch 821 and the second switch 821 switches the received signal to the combiner/distributor 817.
The combiner/distributor 817 distributes the received signal to the first switch 819, the third switch 823, and the Nth coupler 829. The first switch 819 switches the received signal to the first coupler 825, while the third switch 823 cannot switch the received signal to the second coupler 827.
The first and Nth couplers 825 and 829 couple the distributed signals to the first and Nth TCBs 831 and 835, respectively.
Both the first and Nth TCBs 831 and 835 operate in the Rx mode and output the received signals to the first and Nth Rx modules 839 and 847.
The first and Nth Rx modules 839 and 847 downconvert the received signals to baseband signals and provide the baseband signals to the calibrator of the baseband module 849.
Thus, the baseband module 849 acquires the calibration signals through the calibrator.
Acquisition of calibration signals through the third calibration path has been described above. To establish the third calibration path, the second TCB 833 operates in the Tx mode and the other TCBs 831 and 835 operate in the Rx mode. The third switch 823 switches the second coupler 827 to the second switch 821 and the second switch 821 switches the third switch 823 to the combiner/distributor 817. The first switch 819 switches the combiner/distributor 817 to the first coupler 825. The combiner/distributor 817 functions as a distributor for distributing an input signal as a plurality of signals.
As with the calibration apparatus illustrated in
In an exemplary embodiment in which the communication system is a time-division one, the other Tx and Rx modules except the first Tx and Rx modules 837 and 839 and the second Tx and Rx modules 841 and 843 operate in the Rx mode in the first calibration path, in the Tx mode in the second calibration path, and in the Rx mode in the third calibration path. The first TCB 831 operates in the Tx mode in the first calibration path, in the Rx mode in the second calibration path, and in the Rx mode in the third calibration path. The second TCB 833 operates in the Rx mode in the first calibration path, in the Tx mode in the second calibration path, and in the Tx mode in the third calibration path.
With reference to
Referring to
The calibration apparatus distributes the coupled signal in step 919, couples the distributed signals in step 921, and downconverts the coupled signals to baseband signals in step 923.
In step 925, the calibration apparatus acquires the baseband signals as calibration signals for the first calibration path and goes to step 927.
Referring to
The calibration apparatus combines the coupled signals in step 935, couples the combined signal in step 937, and downconverts the coupled signal to a baseband signal in step 939.
In step 941, the calibration apparatus acquires the baseband signal as a calibration signal for the second calibration path and goes to step 943.
Referring to
The calibration apparatus distributes the coupled signal in step 951, couples the distributed signals in step 953, and downconverts the coupled signals to baseband signals in step 955.
In step 957, the calibration apparatus acquires the baseband signals as calibration signals for the third calibration path and goes to step 959.
The calibration apparatus performs calibration using the calibration signals received from the first, second and third paths in step 959.
An exemplary calibration process in the calibration apparatus, especially in the calibrator, will be described with reference to
Referring to
where A1 denotes signals received from the first calibration path, A2 denotes signals received from the second calibration path, A3 denotes signals received from the third calibration path, T1 to TN denote the first to Nth Tx modules, R1 to RN denote the first to Nth Rx modules, αN and βN denote amplitude variations from the Nth Tx and Rx paths, respectively, and ejθ
Thus, Equation (5) describes reference signals that have traveled in paths running through the Tx and Rx modules. For instance, T1R2 is a reference signal that has started from the baseband module and traveled through the first Tx module, the first TCB, the first coupler, the first switch, the second switch, the combiner/distributor, the third switch, the second coupler, the second TCB, and the second receiver, sequentially in this order.
In step 1013, the calibrator acquires a value for a reference Tx-Rx path, for example, a first Tx-Rx path running through the first Tx and Rx modules by
Path 2 Factor=A1(2)/A3(2)=T1R3/T2R3=T1/T2
A2(1)·Path 2 Factor=T2R1·T1/T2=T1R1 (6)
where numerals in the brackets following A1, A2 and A3 denote terms representing A1, A2 and A3, respectively in Equation (5). For example, A1(2) denotes the second term of A1 in Equation (5). Path 2 Factor denotes a factor by which the reference Tx-Rx path value, i.e. the first Tx-Rx path value is calculated.
In step 1015, the calibrator extracts a calibration vector for each path using T1R1 expressed as
T1R1=C(t)·α1ejθ
A calibration vector for the Rx module over each path is computed by
A calibration vector for the Tx module over each path is computed by
Since R2/R1,R3/R1, . . . ,RN/R1 and T2/T1,T3/T1, . . . ,TN/T1 can be calculated, the amplitude and phase variations in each Tx path and each Rx path relative to the first Tx module 737 and the first Rx module 739 can be computed. Subsequently, final Tx and Rx calibration vectors can be achieved by eliminating coupler characteristics Rcoupler from A1/T1R1 and A2/T1R1 as follows.
where wT denotes a Tx calibration vector and wR denotes an Rx calibration vector.
Thus, Tx and Rx hardware paths can be compensated, i.e. calibration can be performed by applying the calibration vectors to beamforming coefficients during signal transmission and reception.
As is apparent from the above description, exemplary embodiments of the present invention advantageously enable calibration without using additional Tx and Rx hardware devices. As a result, system complexity is minimized and hardware configuration cost is saved.
While the invention has been shown and described with reference to certain exemplary 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 present invention as defined by the appended claims and their equivalents.
| Number | Date | Country | Kind |
|---|---|---|---|
| 2006-64949 | Jul 2006 | KR | national |