The invention relates to a calibration device and method for calibrating antenna arrays, especially for calibrating antenna arrays used for performing body scans. Also, the invention relates to an according antenna array and body scanner.
In recent years, the use of radio frequency imaging for performing body scans for security purposes has been on the rise. In order to calibrate according antenna arrays, complicated calibration procedures so far have to be followed. Especially, a great deal of different calibration standards have to be measured. Also, the large size of such calibration standards is problematic.
For example, the document WO 2013/174807 A1 shows a calibration system and method for calibrating an according antenna array. The system and method shown there though are disadvantageous, since very unwieldy calibration standards have to be measured using the antenna array.
This makes it necessary to decommission the according scanner employing the antenna array, and leaving the respective checkpoint without a scanner or requiring additional scanners.
Accordingly, the object of the invention is to provide a calibration device and calibration method, which allow for an accurate calibration of an antenna array while at the same time requiring only a low number of small-footprint calibration standards for performing the calibration measurements.
According to a first aspect of the invention, a calibration device for calibrating an antenna array is provided. The calibration device comprises a transmitter, which is configured for transmitting a first calibration signal to all antennas of the antenna array, resulting in a plurality of received first calibration signals provided by the antenna array to the calibration device. Moreover, the calibration device comprises a receiver, which is configured for receiving a plurality of second calibration signals from the antennas of the antenna array. Finally, the calibration device comprises an antenna characteristic calculator, which is configured for calculating an antenna characteristic of each individual antenna of the antenna array based on the plurality of received first calibration signals and the plurality of received second calibration signals. It is thereby possible to determine the antenna characteristics of each individual antenna accurately without requiring large-scale calibration standards.
According to a first preferred implementation form of the first aspect, the calibration device moreover comprises a reflection unit, which is configured for reflecting, with a first reflection characteristic, a third calibration signal successively transmitted by the antennas of the antenna array and received simultaneously by the antennas of the antenna array as a plurality of received third calibration signals, and reflecting, with a second reflection characteristic different from the first reflection characteristic, a fourth calibration signal successively transmitted by the antennas of the antenna array and received simultaneously by the antennas of the antenna array as a plurality of received fourth calibration signals. Therefore, only two different reflectors within the reflection unit are necessary for performing all calibration measurements. These reflectors do not have to have a large size.
According to a further preferred implementation form of the first aspect, the calibration device furthermore comprises a calibration parameter determining unit, which is configured for determining the calibration parameters of the antenna array based upon the plurality of received first calibration signals, the plurality of received second calibration signals, the plurality of received third calibration signals and the plurality of received fourth calibration signals. It is thereby possible to determine the calibration parameters of the antenna array in an accurate manner without requiring the use of a large number of calibration standards or the use of large-scale calibration standards.
According to a further preferred implementation form of the first aspect, the transmitter, the receiver and the reflection unit are arranged in known positions with regard to the antenna array and to each other. This allows for a very accurate calibration.
According to a further preferred implementation form of the first aspect, the calibration device moreover comprises a calibration parameter determining unit, configured for determining calibration parameters of the antenna array based upon the plurality of received first calibration signals, the plurality of received second calibration signals, the plurality of received third calibration signals, the plurality of received fourth calibration signals, and the known positions of the transmitter, the receiver and the reflection unit. A further increase of the accuracy of determining the calibration parameters is thereby possible.
According to a further preferred implementation form of the first aspect, the reflection unit comprises a first reflector, configured for reflecting the third calibration signals with the first reflection characteristic and a second reflector, configured for reflecting the fourth calibration signals with the second reflection characteristic. This allows for an especially simple to implement construction of the reflection unit.
According to a further preferred implementation form of the first aspect, the reflection unit comprises a single switchable reflector, which is switchable between the first reflection characteristic and the second reflection characteristic. This allows for an especially small-scale construction of the reflection unit.
According to a further preferred implementation form of the first aspect, the single switchable reflector is configured for being switched between the first reflection characteristic and the second reflection characteristic by moving and/or rotating at least one surface of the switchable reflector and/or switching a liquid crystal between different states. This allows for a very small-scale implementation of the reflection unit.
According to a further preferred implementation form of the first aspect, the transmitter is configured for transmitting the first calibration signal to all antennas of the antenna array simultaneously and the receiver is configured for successively receiving the second calibration signals from all antennas of the antenna array. This allows for an especially quick calibration process.
According to a further preferred implementation form of the first aspect, the calibration device comprises a plurality of transmitters, which is configured for successively transmitting a first calibration signal to all antennas of the antenna array, resulting in a plurality of received first calibration signals for each of the transmitters of the plurality of transmitters.
Moreover, in this case the calibration device comprises a plurality of receivers, configured for successively receiving a plurality of second calibration signals from the antennas of the antenna array for each receiver of the plurality of receivers. The antenna characteristic calculator is then configured for calculating the antenna characteristic of each antenna of the antenna array based on the plurality of received first calibration signals of all transmitters of the plurality of transmitters and the plurality of received second calibration signals of all receivers of the plurality of receivers. This allows for an averaging of the plurality of first calibration signals and of the plurality of second calibration signals thereby minimizing a negative effect of clutter within the measurement environment.
According to a second aspect of the invention, an antenna array comprising a calibration device according to the first implementation form of the first aspect is provided.
According to a third aspect of the invention, an antenna array system, comprising a first antenna array according to the second aspect and a second antenna array according to the second aspect is provided. The calibration device of the first antenna array is configured for calibrating the second antenna array, while the calibration device of the second antenna array is configured for calibrating the first antenna array. Especially in body scanners employing to antenna arrays, this allows for a very quick and efficient calibration.
According to a first preferred implementation form of the third aspect, the transmitter, the receiver and the reflection unit of the calibration device of the first antenna array is integrated into a surface of the second antenna array. The transmitter, the receiver and the reflection unit of the calibration device of the second antenna array is integrated into a surface of the first antenna array. This allows for an especially simple construction of the antenna array system.
According to a second preferred implementation form of the third aspect, the antenna array system is a body scanner. The first antenna array is configured for scanning a first side of a person, while the second antenna array is configured for scanning a second side of a person. An especially efficient calibration of such a body scanner is possible.
According to a fourth aspect of the invention, a calibration method for calibrating an antenna array is provided. The method comprises transmitting a first calibration signal to all antennas of the antenna array, resulting in a plurality of received first calibration signals, provided by the antenna array. Moreover, the method comprises receiving a plurality of second calibration signals from the antennas of the antenna array. Finally, the method comprises calculating an antenna characteristic of each antenna of the antenna array based on the plurality of received first calibration signals and the plurality of received second calibration signals. It is thereby possible to determine the antenna characteristics of each individual antenna accurately and requiring no large-scale calibration standards.
According to a first preferred implementation form of the fourth aspect, the method comprises reflecting, with a first reflection characteristic, a third calibration signal successively transmitted by the antennas of the antenna array and received by the antennas of the antenna array as a plurality of received third calibration signals and reflecting, with a second reflection characteristic, a fourth calibration signal successively transmitted by the antennas of the antenna array and received by the antennas of the antenna array as a plurality of received fourth calibration signals, wherein the first reflection characteristic is different form the second reflection characteristic. Therefore, only two different reflectors within the reflection unit are necessary for performing all calibration measurements. These reflectors do not have to have a large size.
According to a further preferred implementation form of the fourth aspect, the method comprises determining calibration parameters of the antenna array based upon the plurality of received first calibration signals, the plurality of received second calibration signals, the plurality of received third calibration signals and the plurality of received fourth calibration signals. It is thereby possible to determine the calibration parameters of the antenna array in an accurate manner without requiring the use of a large number of calibration standards or the use of large-scale calibration standards.
An exemplary embodiment of the invention is now further explained by way of example only with respect to the drawings, in which
First, we demonstrate the underlying problem of calibrating an antenna array along
Reference will now be made in detail to the preferred embodiments of the present invention, examples of which are illustrated in the accompanying drawings. However, the following embodiments of the present invention may be variously modified and the range of the present invention is not limited by the following embodiments.
In
M=T·(Γ0+ΓCC), wherein
During a calibration, it is necessary to determine the unknown frequency responses of all involved antennas including transmission antennas and reception antennas. Also, it is necessary to determine the crosstalk between the antennas. In order to determine the reflection factor of the measuring object, the following formula is used:
In
In a first step, the transmitter 13 transmits a first calibration signal to all antennas of the antenna array simultaneously. The first calibration signal is received by the individual antennas of the antenna array and provided to the control unit 12 by a data connection as a plurality of received first calibration signals. In a second step, the receiver 11 receives a plurality of second calibration signals from the antennas of the antenna array successively. In order for this step to happen, the control unit 12 of the calibration device 1 instructs the antenna array 2 to transmit the respective second calibration signal successively by all antennas of the antenna array.
The plurality of received first calibration signals and the plurality of received second calibration signals are handed to the antenna characteristic calculator 10 by the control unit 12. The antenna characteristic calculator 10 calculates an antenna characteristic for each individual antenna of the antenna array 2 therefrom.
Instead of only comprising a single receiver 11 and a transmitter 13, the calibration device 1 can also comprise plurality of receivers and a plurality of transmitters. In this case, the afore-mentioned steps are repeated successively for each individual receiver and transmitter. The resulting signals can be averaged in order to reduce the effect of clutter within the measurement environment. This is explained in detail later on.
After determining the antenna characteristics, the antennas of the antenna array successively transmit a third calibration signal to the reflection unit 15. The signals are reflected by the reflection unit 15 using a first reflection characteristic. A plurality of reflected third calibration signals is received by the antennas of the antenna array. As a next step, the antennas of the antenna array successively transmit a fourth calibration signal to the reflection unit 15. The signals are reflected using a second reflection characteristic and received by the antennas of the antenna array as a plurality of received fourth calibration signals. The two different reflection characteristics are for example achieved by the reflection unit 15 and/or comprising two different reflection standards, or by comprising a single reflection standard, which is moved or rotated. Also the use of a liquid crystal, which is switched between two different states is possible. The third and fourth calibration signals may be identical, but do not have to be.
Finally, the plurality of received first calibration signals, the plurality of received second calibration signals, the plurality of received third calibration signals and the plurality of received fourth calibration signals are processed by the calibration parameter determining unit 14 in order to determine the calibration parameters. The exact mathematics will be explained later on.
In order to determine the calibration parameters, moreover the exact positioning of the transmitter 13, receiver 11, reflection unit 15 and antenna array 2 with regard to each other is necessary. This exact positioning can for example be previously determined or set by positioning the respective units at exactly determined locations.
In
This shows the previously described first step of determining the antenna characteristics of each of the individual antennas of the antenna array 2.
In
In
In
In
Alternatively, a number of calibration devices or at least a number of transmitters and receivers within a single calibration device can be placed in front of the antenna array 2 so as to cover all individual antennas of the antenna array.
In
This setup is especially useful in body scanners, which have two antenna arrays for simultaneously or successively scanning two sides of a person. It is then possible for the two antenna arrays to calibrate each other. Especially the exact positioning of the individual units is very easy in this case, since the two antenna arrays and accordingly also the individual parts of the calibration devices are placed at fixed positions with regard to each other.
Since in the first step, already the antenna characteristics of each individual antenna are determined, also the phase relationships between the individual antennas of the antenna array 2 are known. It is therefore possible to perform a virtual focusing of the antenna array 2 on the reflection unit 15 during the second step. This makes it possible to use only very small reflectors within the reflection unit 15, since it is not necessary to have a strong reflection signal. By performing the virtual focusing, it is possible to retrieve even a very small reflection signal.
In the following, more information regarding the exact mathematics underlying the above-shown calibration device is given.
In a first option, an active calibration without a cluttered environment is shown. A non-cluttered environment means that there are no scattering objects within the environment. Especially a back-and-forth-reflection of signals between the antenna array 2 and the calibration device 1 is not accounted for. The following steps are performed:
The goal of the calibration is to determine the calibration coefficient C, which comprises the unknown parameters regarding the phase correction and the unknown characteristics of the antennas of the antenna array 2.
For performing the first step, in multi-static array, a transmission channel n transmits a signal to a reception channel—the receiver 11. The transmission channel of the antenna array 2 has a frequency characteristic HT/n. The receiver 11 has a frequency characteristic HAR.
This is repeated for all transmission channels of the antenna array 2.
A respective measuring signal is as follows:
ST,n=T,n·HAR·AT,n
After this, the transmitter 13 transmits to the individual reception channels of the antenna array 2. The transmitter has a frequency characteristic HAT. The reception channel m of the antenna array 2 has the characteristic HR,m
A respective measuring signal is as follows:
SR,m=HR,m·HAT·AR,m,
wherein
HT,n: frequency response transmitter n of antenna array
HAR: frequency response of receiver
AT,n: free space propagation
n: index of transmitter channel
HR,m: frequency response receiver m of antenna array
HAT: frequency response transmitter
AR,m: free space propagation
m: index of reception channel
In order to determine the characteristics of the individual antenna elements of the antenna array 2, the following formulas are used:
wherein
Finally, the coefficient Cap for performing the phase front correction of the channels of the antenna array 2 are calculated as follows:
Cap,nm={tilde over (H)}T,n·{tilde over (H)}R,m=HT,n·HR,m·HAT·HAR
In the second step, the reflection measurement using the first reflector of the reflection unit 15 is performed. Here, the individual transmission channel the measuring signals are as follows:
Measuring signal sΓ1,nm:
sΓ1,nm=HT,nHR,m(AΓ1,nmΓO1+ΓCC,nm+ΓB,nm)
Measuring signal SΓ2,nm:
sΓ2,nm=HT,nHR,m(AΓ2,nmΓO2+ΓCC,nm+ΓB,n)
The resulting reflection measurements are subtracted from each other:
sΓ,nm=sΓ1,nm−sΓ2,nm=HT,nHR,m(AΓ1,nmΓ01−AΓ2,nmΓ02)
If the target position of the reflectors are nearly identical, the following relationships hold true:
AΓ1,nm≈AΓ2,nm=AΓ2,nm=AΓ,nm
sΓ,nm=HT,nHR,mAΓ,nm(Γ01−Γ02), wherein
Now a phase front correction of the measuring data using Cap is performed:
After this, a coherent processing of the aperture data is performed:
A correction of the free space propagation and a coherent summation of the aperture data is performed. This increases the signal to know as ratio at the signal to clutter ratio due to the correlation gain.
Estimation of the frequency response of the transmitter 13 and receiver 11:
This is under the assumption that the reflection factors Γ01 and Γ02 are known and identical for the all transmission and reception antenna combinations of the antenna array 2. This is for example given for a small metal plate as reflector.
Finally, the calibration coefficient C are calculated:
The calibration factors C comprise the unknown frequency characteristics of the transmitter and the receiver and can be employed for all radar measurement data.
In
If for example a bandwidth B=10 GHz and a number of frequency points Nf=128 are chosen, an unambiguous area of c0/2B(Nf−1)=1.92 m. This means that a crosstalk is only relevant within a maximum of 0.8 m as depicted in
This is also shown in
As a second option, an active calibration within a cluttered environment maybe performed. Such a cluttering for example occurs in antenna array systems using two antenna arrays, as for example shown in
In order to take care of such a cluttered environment, the steps 1-3, as shown above are slightly modified. In this case, the calibration device 1 comprises not only a single transmitter and receiver, but a plurality of transmitters and receivers. This means that the first step of measuring the transmission channels of the antenna array 2 is successively performed using a number of transmitters of the calibration device 1. Also, the second step of measuring the reception channels of the antenna array 2 is successively performed using a plurality of transmitters of the calibration device. The resulting measuring signals are as follows:
sT,n(q)=HT,n·HAR,q·AT,nq
sR,m(p)=HR,m·HAT,p·AR,mp
Now, an estimation of the frequency responses of the transmitter and receiver channels is performed:
After correcting the free-space propagation, the measurement data can be presented as follows:
sT,n(q)=HT,n·HAR,q
sR,m(p)=HR,n·HAT,p
In matrix notation:
After scaling and averaging with regard to a reference measurement of a reference transmitter and receiver of the calibration device, the values are as follows:
With a reference measurement:
sR,m(j)=HAT,jHR,m=HAT(ref)HR,m
sT,n(i)=HT,nHAR,i=HT,nHAR(ref)
Written as vector:
ĤAT|Px|=[ĤAT,1ĤAT,2 . . . ĤAT,P]T
ĤAR|Qx|=[ĤAR,1ĤAR,2 . . . ĤAR,Q]T
Resulting in:
Due to the two-fold averaging of the measurement data, it is possible to improve the signal to clutter ratio and the signal noise ration by the factor M·P for {hacek over (H)}R and N·Q for {hacek over (H)}T. The observed clutter can be treated statistically like a speckle phenomenon in remote reconnaissance. Therefore, it can be considered as Gauss-distributed noise. This allows for the above-mentioned estimation of the signal to noise ratio and signal to clutter ratio gain.
Finally, the coefficients Cap for phase front correction of the transmission and reception channels is as follows:
Cap,nm=H̆T,n·H̆R,m=HT,n·HR,m·HR,m·HAT(ref)·HRT(ref)
The further processing along steps 4-8 occurs as earlier explained.
Finally, in
In a fifth step 104, antenna characteristics of all antennas of the antenna array are calculated. In an optional sixth step 105, a reflection unit is positioned in a known position with regard to the antenna array. In seventh step 106, a third calibration signal is transmitted to the reflection unit, successively by all antennas of the antenna array. In an eighth step 107, the third calibration signals are reflected by the reflection unit and received as a plurality of received third calibration signals by the antennas of the antenna array.
In a ninth step 108, a fourth calibration signal is successively transmitted to the reflection unit by the antennas of the antenna array and reflected thereby in a tenth step 109 and received as a plurality of fourth calibration signals. In a final eleventh step 110 calibration parameters of the antenna array are determined based upon the plurality of received first calibration signals, the plurality of received second calibration signals and received third and received fourth calibration signal.
The embodiments of the present invention can be implemented by hardware, software, or any combination thereof. Various embodiments of the present invention may be implemented by one or more application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable gate arrays (FPGAs), processors, controllers, microcontrollers, microprocessors, or the like.
Various embodiments of the present invention may also be implemented in the form of software modules, processes, functions, or the like which perform the features or operations described above. Software code can be stored in a memory unit so that it can be executed by a processor.
The memory unit may be located inside or outside the processor and can communicate date with the processor through a variety of known means.
The invention is not limited to the examples. The characteristics of the exemplary embodiments can be used in any advantageous combination.
Although the present invention and its advantages have been described in detail, it should be understood, that various changes, substitutions and alterations can be made herein without departing from the spirit and scope of the invention as defined by the appended claims.
The present application claims priority to U.S. Provisional Application No. 62/423,461, filed Nov. 17, 2016, the entire contents of which is herein incorporated by reference.
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