Method and apparatus for determining spatial signatures for calibrating a communication station having an antenna array
Abstract
A method and apparatus for estimating the downlink signature for a remote transceiver (141,143) which is part of a wireless communication system that includes a main transceiver (101) for communicating with the remote transceiver. The main transceiver includes an array of transmit antenna elements (105). The method uses the remote transceiver for receiving signals when the main transceiver transmits downlink calibration signals. When the main transceiver also has a receive antenna array, the remote transceiver can transmit uplink calibration signals to the main transceiver for determining an uplink signature. The downlink and uplink signatures are used to determine a calibration function to account for differences in the apparatus chains that include the antenna elements of the arrays, and that enable downlink smart antenna processing weights (118) to be determined from uplink smart antenna processing weights (115) when the main transceiver includes means for smart antenna processing according to weights.

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12 claims: 3 independent, 9 dependent
- 1A method comprising:transmitting a set of one or more downlink calibration waveforms from a main transceiver (101) via an array of transmit antenna elements of a transmit antenna array (105) of the main transceiver (101) to a plurality of remote transceivers (141);processing the signals received at each remote transceiver (141) corresponding to the downlink calibration waveforms, the processing to determine downlink signature related signals related to the downlink signature for each remote transceiver (141);transmitting the downlink signature related signals from each remote transceiver (141) to the main transceiver (101);determining a downlink signature for each remote transceiver (141) from the downlink signature related signals received at the main transceiver (101) from each remote transceiver (141);combining the downlink signatures for each remote transceiver (141) to determine a combined downlink signature;transmitting a set of one or more uplink calibration waveforms from each remote transceiver (141) to the main transceiver (101);processing at the main transceiver (101) the received antenna signals corresponding to the uplink calibration signals transmitted from each remote transceiver (141), the processing determining an uplink signature for each remote transceiver (141);combining the uplink signatures for the remote transceivers (141) to determine a combined uplink signature;determining a calibration function for the main transceiver (101) from the combined uplink and combined downlink signatures;and transmitting from each remote transceiver (141) a remote transceiver received signal quality estimate to the main transceiver (101);wherein the signature combining is a weighted combining, the weighting of the signature for each remote transceiver (141) being the remote transceiver signal quality estimate of the remote transceiver (141).
- 5A wireless communication system comprising:a main transceiver (101) comprising an array of transmit antenna elements (105), the main transceiver (101) being configured to transmit a set of one or more downlink calibration waveforms via the transmit antenna array (105) to a plurality of remote transceivers (141);and a plurality of said remote transceivers (141), each remote transceiver being configured to: process the signals received from the main transceiver corresponding to the transmitted downlink calibration waveforms to determine downlink signature related signals related to the downlink signature for the remote transceiver (141);transmit the downlink signature related signals to the main transceiver (101);transmit a set of one or more uplink calibration waveforms to the main transceiver (101);and transmit a remote transceiver received signal quality estimate to the main transceiver (101);wherein the main transceiver is configured to: determine a downlink signature for each remote transceiver (141) from the downlink signature related signals received from each remote transceiver;combine the downlink signatures for each remote transceiver (141) to determine a combined downlink signature;process the received antenna signals corresponding to the uplink calibration signals transmitted from each remote transceiver (141), the processing determining an uplink signature for each remote transceiver (141);combine the uplink signatures for the remote transceivers (141) to determine a combined uplink signature;and determine a calibration function for the main transceiver (101) from the combined uplink and combined downlink signatures;wherein the signature combining is a weighted combining, the weighting of the signature for each remote transceiver (141) being the remote transceiver signal quality estimate of the remote transceiver (141).
- 9A main transceiver (101) for use in a wireless communication system, the main transceiver comprising an array of transmit antenna elements (105), the main transceiver (101) being configured to transmit a set of one or more downlink calibration waveforms via the transmit antenna array (105) to a plurality of remote transceivers (141); wherein each remote transceiver is configured to:process the signals received from the main transceiver corresponding to the transmitted downlink calibration waveforms to determine downlink signature related signals related to the downlink signature for the remote transceiver (141);transmit the downlink signature related signals to the main transceiver (101);transmit a set of one or more uplink calibration waveforms to the main transceiver (101);and transmit a remote transceiver received signal quality estimate to the main transceiver (101);wherein the main transceiver is configured to: determine a downlink signature for each remote transceiver (141) from the downlink signature related signals received from each remote transceiver;combine the downlink signatures for each remote transceiver (141) to determine a combined downlink signature;process the received antenna signals corresponding to the uplink calibration signals transmitted from each remote transceiver (141), the processing determining an uplink signature for each remote transceiver (141);combine the uplink signatures for the remote transceivers (141) to determine a combined uplink signature;and determine a calibration function for the main transceiver (101) from the combined uplink and combined downlink signatures;wherein the signature combining is a weighted combining, the weighting of the signature for each remote transceiver (141) being the remote transceiver signal quality estimate of the remote transceiver (141).
Independent claims3
175 paragraphs in 5 sections, as filed
Cross-Reference to Related Application
0001This application claims the benefit of U.S. Provisional Patent Application Serial Number: 60/083,875 for <i>METHOD AND APPARATUS FOR DETERMINING SPATIAL SIGNATURES WITH APPLICATION TO CALIBRATING A BASE STATION HAVING AN ANTENNA ARRAY</i> to inventors Boros, Barratt, Uhlik, and Trott, Assignee ArrayComm, Inc., filed May 1, 1998.
FIELD OF INVENTION
0002This invention relates to the field of wireless communication systems, and more specifically, to a method and apparatus for calibrating a communication station that includes an array of antenna elements.
BACKGROUND
Smart Antenna Systems
0003Antenna arrays may be used in any wireless communication receiver or transmitter or transceiver (herein under "communication station") that transmits or receives radio frequency signals using an antenna or antennas. The use of antenna arrays in such a communication station provides for antenna performance improvements over the use of a single element antenna. These antenna performance improvements include improved directionality, signal to noise ratio, and interference rejection for received signals, and improved directionality, security, and reduced transmit power requirements for transmitted signals. Antenna arrays may be used for signal reception only, for signal transmission only, or for both signal reception and transmission.
0004A typical application of antenna array communication stations is in a wireless communication system. Examples include a cellular communication system consisting of one or more communication stations, generally called base stations, each communicating with its subscriber units, also called remote terminals and handsets. In cellular systems, the remote terminal may be mobile or in a fixed location, and when fixed. such a system often is called a wireless local loop system. The antenna array typically is at the base station. Terminology for the direction of communication comes from conventional satellite communication, with the satellite replaced by the base station. Thus, communication from the remote terminal to the base station is called the uplink, and communication from the base station to the remote terminal is called the downlink. Thus, the base station antenna array transmits on the downlink direction and receives on the uplink direction. Antenna arrays also may be used in wireless communication systems to add spatial division multiple access (SDMA) capability, which is the ability to communicate with several users at a time over the same "conventional" (FDMA, TDMA or CDMA) channel. We have previously disclosed adaptive smart antenna processing (including spatial processing) with antenna arrays to increase the spectrum efficiency of SDMA and non-SDMA systems. See Co-owned U.S. Patent 5,515,378 for <i>SPATIAL DIVISION MULTIPLE ACCESS WIRELESS COMMUNICATION SYSTEM</i>, U.S. Patent 5,592,490 for <i>SPECTRALLY EFFICIENT HIGH CAPACITY WIRELESS COMMUNICATION SYSTEMS</i>, U.S. Patent 5,828,658 for <i>SPECTRALLY EFFICIENT HIGH CAPACITY WIRELESS COMMUNICATION SYSTEMS WITH SPATIO-TEMPORAL PROCESSING</i>, and WO9817037 for <i>METHOD AND APPARATUS FOR DECISION DIRECTED DEMODULATION USING ANTENNA ARRAYS AND SPATIAL PROCESSING.</i> Systems that use antenna arrays to improve the efficiency of communications and/or to provide SDMA sometimes are called <i>smart antenna</i> systems.
0005With smart antenna communication systems that use linear spatial processing for the adaptive smart antenna processing, during uplink communications, one applies amplitude and phase adjustments in baseband to each of the signals received at the antenna array elements to select (<i>i</i>.<i>e</i>., preferentially receive) the signals of interest while minimizing any signals or noise not of interest―that is, the interference. Such baseband amplitude and phase adjustment can be described by a complex valued weight, the <i>receive weight</i>, and the receive weights for all elements of the array can be described by a complex valued vector, the <i>receive weight vector.</i> Similarly, the downlink signal is processed by adjusting the amplitude and phase of the baseband signals that are transmitted by each of the antennas of the antenna array. Such amplitude and phase control can be described by a complex valued weight, the <i>transmit weight,</i> and the weights for all elements of the array by a complex valued vector, the <i>transmit weight vector.</i> In some systems, the receive (and/or transmit) weights include temporal processing, and then are called <i>spatio-temporal parameters</i> for <i>spatio-temporal</i> processing. In such cases, the receive (and/or transmit) weights may be functions of frequency and applied in the frequency domain or, equivalently, functions of time applied as convolution kernels. Alternatively, each convolution kernel, if for sampled signals, may itself be described by a set of complex numbers, so that the vector of convolution kernels may be re-written as a complex values weight vector, which, for the case of there being <i>M</i> antennas and each kernel having <i>K</i> entries, would be a vector of <i>KM</i> entries.
0006The <i>receive spatial signature</i> characterizes how the base station array receives signals from a particular subscriber unit in the absence of any interference or other subscriber units. A receive weight vector for a particular user may be determined using different techniques. For example, it may be determined from spatial signatures. It also may be determined from the uplink signals received at the antennas of the array from that remote user using some knowledge about these uplink signals, for example, the type of modulation used. The <i>transmit spatial signature</i> of a particular user characterizes how the remote user receives signals from the base station in the absence of any interference. The transmit weight vector used to communicate on the downlink with a particular user is determined either from the receive weight vector (see below under "The Need for Calibration") or from the transmit spatial signature of the particular user and the transmit spatial signatures of the other users in such a way as to maximize the energy to the particular user and minimize the energy to the other users.
0007U.S. Patents 5,592,490 for <i>SPECTRALLY EFFICIENT HIGH CAPACITY WIRELESS COMMUNICATION SYSTEMS</i> describes spatial signatures and their uses, and U.S. Patent 5,828,658 for <i>SPECTRALLY EFFICIENT HIGH CAPACITY WIRELESS COMMUNICATION SYSTEMS WITH SPATIO-TEMPORAL PROCESSING,</i> describes how to extend this to spatio-temporal processing using spatio-temporal signatures.
0008Thus, while the description herein is provided in terms of spatial signatures, adding time equalization to provide spatio-temporal processing is easily accommodated, for example by adding the concepts of spatio-temporal signatures, which may be described by <i>MK</i> vectors (both uplink and downlink) when the temporal processing is using equalizers with <i>K</i> taps (<i>i</i>.<i>e</i>., convolution kernels of length <i>K</i> in the weight convolving functions). Thus, how to modify the invention to accommodate spatio-temporal processing and spatio-temporal signatures would be clear to those of ordinary skill in the art, for example in view of above-referenced and incorporated herein by reference U.S. Patent 5,828,658. Therefore, those in the art would understand that any time the term spatial signature is used, this might indeed be referring to a spatio-temporal signature in the context that the invention is being applied to a communication station equipped with means for spatio-temporal processing.
The Need for Calibration
0009It is desirable to determine the transmit weight vector from the receive weight vector for a particular user. More generally, it is desirable to determine the appropriate transmit signals to use for transmitting to a particular user from signals received from that user. Practical problems may make difficult determining the transmit weight vector from the receive weight vector for a particular user. Frequency division duplex (FDD) systems are those in which uplink and downlink communications with a particular remote user occur at the different frequencies. Time division duplex (TDD) systems are those in which uplink and downlink communications with a particular remote user occur at the same frequency but in different time slots. In a TDD system, because of the well known principle of reciprocity, it might be expected that determining the transmit weight vector from the receive weight vector is straightforward. However, on the uplink, the received signals that are being processed may be somewhat distorted by the receive electronics (the receive apparatus chains) associated with each of the antenna elements of the antenna array. The receive electronics chain includes the antenna element, cables, filters, RF receivers and other components, physical connections, and analog-to-digital converter ("ADC") if processing is digital. In the case of a multi-element antenna array, there typically is a separate receive electronics apparatus chain for each antenna array element, and thus the amplitude and the phase of each of the received signals at each element may be distorted differently by each of the receive apparatus chains. In addition, there are RF propagation effects that take place on the uplink between the subscriber unit and a particular receiving antenna, such effects including without limitation the path loss, fading and shading effects, multipath, and near-field scattering, and these effects may be different from antenna element to antenna element. Note that the receive electronics chain and the RF propagation effects together make up the uplink spatial signature for the remote user. A receive weight vector that does not take these receive electronics chain and RF propagation effects into account will be in error, causing less than optimal reception at the base station. However, in practice, communication may still be possible. Also, when a receive weight vector is determined using some knowledge of the characteristics of the received signal, for example, the type of modulation used, such a method already takes into account the uplink receive electronics chain and RF propagation effects. When one transmits downlink signals through the antenna array, each of the signals radiated by an antenna element goes through a different transmit electronics apparatus chain, thus possibly causing different amplitude and phase shifts in the transmitted signals. In addition, there are again RF propagation effects. If the transmit weight vector was derived from a receive weight vector that did not take the differences in the receive electronics chains and RF propagation into account, transmission from the base station may be hard to achieve. Further difficulty may result if the transmit weight vector does not take differences in the transmit electronics chains and transmit RF propagation effects into account, possibly making communication using such a transmit weight vector impossible.
0010The purpose of calibration is to determine calibration factors for compensating for the different amplitude and phase errors that occur in the signals in the receive chain and uplink RF propagation, and the different amplitude and phase errors that occur in the transmit chain and downlink RF propagation, the calibration factors used in a communication station to determine a transmit weight vector for transmitting to a remote user from the set of signals received from the remote user. It should be added that because the phase and amplitude shifts that occur in the receive and transmit apparatus chains are, in general, frequency dependent, so in general are the calibration factors frequency dependent.
0011In the case of a TDD system, the uplink and downlink RF propagation effects cancel so that the calibration factors are independent of the location of the subscriber unit.
0012It is known that compensation can be achieved by convolving each of the <i>M</i> signals received or transmitted by the antenna elements by a calibration function (<i>i.e.</i>, by a complex valued time sequence), where each calibration function describes the transfer function correction required to compensate for the gain and phase errors a signal undergoes when passing through the transmit and receive apparatus chains. In some systems, this can be simplified to multiplicative correction, where each calibration function is a calibration factor―a complex valued number that describes the required amplitude and phase correction required for compensation. In general, the set of calibration functions defines a calibration vector function with each element a calibration function. In the case of multiplicative correction, the set of calibration factors defines a calibration vector with each element a calibration factor.
0013Determining the transmit weight vectors from the receive weight vectors for a particular user is more difficult in the case of an FDD system because reciprocity may no longer be assumed. One needs to additionally take into account the differences in propagation on the uplink and downlink. Once one does take such differences into account, there still is a need to determine calibration factors for compensating for the different amplitude and phase errors that occur in the signals in the receive chain and uplink RF propagation and the different amplitude and phase errors that occur in the transmit chain and downlink RF propagation. In general, single calibration factors that are independent of the location of the remote user may not be possible. In such a case, one needs to be able to determine the uplink and downlink spatial signatures.
0014In the case of no calibration factors that are independent of the remote user location being possible, when there is some functional relationship that enables one to determine the transmit weight vector to use from the received signals <i>and</i> some parameter, for example, the angle of arrival, there still is a need to determine a set of calibration functions for compensating for the different amplitude and phase errors that occur in the signals in the receive chain and uplink RF propagation and the different amplitude and phase errors that occur in the transmit chain and downlink RF propagation, these functions being dependent on one or more parameters of the remote user, for example the angle of arrival.
The Need for Signature Estimation
0015When no simple calibration (as defined above) is possible, one still needs to compensate for the different amplitude and phase errors that occur in the signals in the receive chain and uplink RF propagation, and the different amplitude and phase errors that occur in the transmit chain and downlink RF propagation. The purpose of signature estimation is to determine the uplink and downlink spatial signatures which characterize these differences. Thus calibration is a special case of signature estimation when either 1) the RF propagation effects cancel so that downlink weights can be determined from uplink signals or weights, or 2) there is some simple functional relationship of the RF propagation effects so that uplink weights can be determined from uplink signals and some parameters of the remote user, for example, the angle of arrival of the uplink signals.
Other Methods
0016Known methods for determining array calibrations each have one or more associated drawbacks. Most known methods require external measuring equipment which may be expensive, unwieldy and cumbersome to use repeatedly. Secondly, conventional calibration methods are sensitive to drifts in system parameters, such as frequency references, over the extended period of time during which measurements are being taken, and these drifts result in inaccuracies in the measured array calibrations. In addition, some known techniques only determine multiplicative rather than convolution kernel calibrations despite the need to calibrate frequency dependent components in the antenna array. In order to eliminate this frequency dependence and still use multiplicative calibrations, it is necessary to calibrate the antenna array for each frequency channel of communication. Thirdly, the transfer characteristics of the RF electronics depend on changing ambient conditions such as temperature and humidity which make it essential that antenna arrays be repeatedly calibrated in their ambient environment.
0017Harrison <i>et al</i>. disclose in U.S. Patent Number 5,274,844 (Dec. 28, 1993) a method for calibrating transmit and, separately, receive chains (as complex valued vector transfer functions) in two experiments which involve a data bus connecting a resource controller to a remote terminal. In the first experiment, the data bus indicates to the remote terminal to send a known signal to the base station. This determines the receive apparatus chain calibration. In a second experiment, the signals received at the remote terminal are sent back to the resource controller via the data bus to enable determining the transmit apparatus chain calibration.
0018Co-owned U.S. Patent 5,546,090, issued 13 August 1996, and assigned to the assignee of the present invention, discloses a calibration method which can determine both transmit and receive calibrations using a simple transponder co-located with the remote terminal that retransmits to the base station the signals received at the remote terminal from the base station. Such a method does not require the wired data-bus of the Harrison <i>et al</i>. invention. Still, additional transponder equipment is required.
0019PCT Patent application publication WO 95/34103 (published December 14, 1995) entitled <i>ANTENNA ARRAY CALIBRATION,</i> Johannisson, <i>et al</i>., inventors, discloses a method and apparatus for calibrating the transmission (and reception) of an antenna array. For transmit calibration, an input transmit signal is inputted into each antenna element one antenna at a time. After the input transmit signal has passed through a respective power amplifier, the signal transmitted by each antenna element is sampled by a calibration network. The resulting signal is fed into a receiver, and a computation means relates the received signal with the original transmit signal for each antenna element. Correction factors can then be formed for each antenna element. The antenna elements may then be adjusted (in amplitude and phase, or in-phase <i>I</i> and quadrature <i>Q</i> components) using the correction factors so as to ensure that each element is properly calibrated during transmission. For receive calibration, a known input signal is generated and injected using a calibration network (a passive distribution network) into each antenna element of the antenna array. The signals pass from the antenna elements through respective low noise amplifiers, and the signals thus received by each antenna element are measured by a beam forming apparatus. The beam forming apparatus can then generate correction factors by comparing the injected signal with the measured signals so as to individually calibrate each antenna element. The correction can be described as amplitude and phase corrections, or as corrections in in-phase <i>I</i> and quadrature <i>Q</i> components.
0020U.S. Patent 5,530,449 to Wachs <i>et al.</i> entitled <i>PHASED ARRAY ANTENNA MANAGEMENT SYSTEM AND CALIBRATION METHOD</i> (herein under "Wachs") describes a management system and calibration method for use with a phased array antenna that employs a system level measurement of amplitude and phase, conducted during nodal operation, to determine on an element by element basis, the tracking performance of individual chains for the antennas. The system and method measure the amplitude and phase of individual element chains utilizing probe carriers. The required correction coefficients for each chain are determined from the measured amplitude and phase data, and each individual element chain is individually compensated to remedy the amplitude and phase errors. The system separately calibrates forward and return link phased array antennas on a phased array antenna communication station which is on a satellite. In one embodiment, a separate remote calibration station is used. For calibrating the transmit paths, the probe signal is transmitted to an antenna at the calibration system alternatively from one element (a reference element) and an element under test. The signals received at the calibration station are compared to determine the corrections. A separate communication link also is used to provide communication between the calibration station and the satellite. In the receive direction, the remote calibration station is used to transmit to all antenna elements of the phased array, but only two elements are alternately sampled to form the calibration carrier. The calibration carrier is then downlinked at Ka band to a gateway hub station for computation. In an alternate embodiment, a local sense antenna at the satellite's communication station is used to sample outputs of the transmit antenna elements. In both embodiments, separate calibrations are carried out for receive and transmit paths, and extra equipment is needed, either a separate remote calibration station, with an additional link, or a separate sense antenna system. Several features of Wachs' system are of note. First, additional hardware is required in the form of a separate calibration station or probe antenna. Second, special waveforms need to be used for that calibration, rather than ordinary communication waveforms supported by standard air interfaces. This means that the communication station needs additional hardware for forming and transmitting such waveforms, and the calibration station needs special receiving/demodulating hardware, and cannot reuse standard hardware. Thus there is a chance that a Wachs-like system adapted for use in a wireless communication system may not be allowed to operate in some countries.
0021Thus these known methods provide separate calibrations for the receive and transmit paths. The methods require special calibration apparatus. Some known methods and systems use special waveforms, and thus need additional hardware for processing such waveforms, and also do not conform to any established air interface standards, so face the risk of not being allowed to operate in some countries Those known systems that also calibrate for the different air paths between the base station antenna elements and the subscriber unit are more properly classified as spatial signature estimating techniques under the definition of calibration used herein.
0022Parish <i>et al</i>. in EP1133836 for <i>METHOD AND APPARATUS FOR CALIBRATING A WIRELESS COMMUNICATION STATION HAVING AN ANTENNA ARRAY</i>, describe a calibration method for a base station with an array of antenna elements that does not require any additional calibration apparatus. One aspect includes transmitting a prescribed signal from each antenna element using the transmit electronics of that antenna element while receiving the transmitted signal in at least one of the receiver electronics chains not associated with the antenna. This is repeated, transmitting prescribed signals from other antenna elements using other transmit apparatus chains until prescribed signals have been transmitted from all antenna elements for which calibration factors are required. Calibration factors for each antenna element are determined as a function of the associated transmit electronics chain and receiver electronics chain transfer functions. When downlink and uplink communication occurs in the same frequency channel, a single calibration factor is determined for any antenna element. In one version of the Parish <i>et al</i>. invention, the single calibration factor is in phase a function of the difference between the transmit apparatus chain transfer function phase and the receiver apparatus chain transfer function phase associated with a particular antenna element. In another aspect of the Parish <i>et al</i>. invention, the calibration factors so determined are used for determining a set of transmit weights from a set of receive weights.
0023While the Parish <i>et al</i>. invention enables determining a single set of calibration factors for the base station which enables a downlink set of weights to be determined from an uplink set of weights without requiring some additional apparatus such as a transponder, and calibrates for differences in base station electronics paths, the Parish <i>et al</i>. method cannot be adapted to estimate spatial signatures to deal with RF propagation path differences which may occur. In addition, the base station needs to enter a spatial calibration mode for carrying out the calibration experiment, and thus cannot be used for any other purpose during that time.
0024Also, there is no mention in the prior art of the capability of calibrating by combining measurements from a plurality of remote transceivers.
Desirable Features
0025The main purpose of the calibration process is to acquire calibration information for the base station. This may involve measuring the gain and phase differences between the uplink and downlink channels. Accuracy and high precision are of great importance during this procedure. If the calibration information is not accurate, then the beam pattern on the downlink will be highly distorted. As a consequence, less energy will be radiated toward the target user, and an excess amount of interference will be radiated toward co-channel users. This will have a negative effect on the downlink signal quality and on the downlink range. Ultimately, a bad calibration strategy may significantly reduce the capacity of the wireless network.
0026One desirable feature of a calibration method is that only a base station and a subscriber unit are needed for calibration with no further equipment such as signal generators, transponders, calibration stations, additional antennas, probes, or other equipment, being required. Such a system ideally should be able to calibrate for differences in both the receive and transmit electronics. Such systems also should use ordinary communication waveforms substantially conforming to the particular air interface standard of the wireless communication system in which they operate. This enables reusing standard hardware, and also ensures non-violation of standards and maintaining compatibility with any future modifications with standards. By "conforming to an air interface standard" we mean conforming to the channel structure and modulation of an air interface, where "channel structure" is a frequency slot in the case of FDMA, a time and frequency slot in the case of TDMA, and a code channel in the case of CDMA, and "modulation" is the particular modulation scheme specified in the standard.
0027Another desirable feature is that the method can be used for signature estimation in order to also account for differences in the RF paths.
0028Another desirable feature of a calibration method is ease of use and the ability to carry out the calibration rapidly and frequently, even for example, as frequently as several times a minute. This ultimately increases the downlink processing accuracy which has a profound effect on signal quality, capacity, coverage, and possibly other parameters.
0029Another desirable feature of a calibration method is that each and every subscriber unit supports calibration.
0030Another desirable feature for a calibration system is the ability to carry out some or all of the processing of received data for calibration within the subscriber unit, thus not requiring the subscriber unit to send the received data back to the base station and not requiring the base station to carry out all of the processing. The computational burden of the base station thus may be significantly reduced by "distributing" the load across intelligent subscriber units. This feature is particularly desirable, for example, for base stations that service many subscriber units, or that calibrate before each call or even several times during each call.
0031Another desirable feature is the ability to initiate calibration on any available conventional channel on the base station, for example, any carrier and any time slot of a FDMA/TDMA system. This further enhances flexibility since one can choose any timeslot and any carrier which is available for use at the moment.
0032Another desirable characteristic for a calibration method is the ability to calibrate a base station without having to take the base station off-line for calibration, thus enabling base station calibration to be performed while the base station services hundreds of calls, for example, in a FDMA/TDMA/SDMA system on other carriers (frequency slots)/timeslots/spatial channels. This feature is especially important for wideband base stations that service many conventional channels (<i>e</i>.<i>g</i>., carriers for an FDMA/TDMA system) at the same time.
0033Another desirable characteristic for a calibration method is the ability carry out rapid calibration even several times during an existing call.
0034Another desirable characteristic for a calibration method is the ability to carry out calibration in a <i>seamless</i> manner during an ongoing call so that a base station may be able to continuously calibrate itself during some calls.
0035Another desirable characteristic for a calibration method is the ability to carry out calibration with several remote transceivers by combining measurements, each of which may be able to "see" only a subset of a communication station's antenna array, or each of which may face a different interference environment.
0036Another desirable characteristic for a calibration method is the ability to determine whether calibration is accurate, for example by performing statistical measurements, together with the ability to feed back such information to the communication station to determine, for example, if the combining from several remote stations may be necessary.
0037Another desirable feature is high accuracy, with immunity to frequency offset, timing misalignment, I/Q mismatch, and phase noise that typically might occur in communication with inexpensive subscriber units.
0038Thus there still is a need in the art for a calibration method and apparatus that include all or most of the above characteristics. For example, the is a need for a system and method one that are accurate and simple, both in terms of the equipment necessary and the time required, so that calibration can be performed repeatedly and rapidly wherever and whenever desired. There also is a need in the art for a simple calibration technique that only uses existing base station electronics and does not require special calibration hardware. There also is a need in the art for a method that enables one to determine transmit weight vectors from receive weight vectors, including calibrating for the receive electronics and transmit electronics, the calibration obtained using simple techniques that use existing base station and subscriber unit electronics and do not require special calibration hardware.
0039Thus there still is a need in the art for efficient methods that determine uplink spatial signatures for correcting for the differences in uplink RF paths and receive electronics and downlink spatial signatures for correcting for the differences in downlink RF paths and transmit electronics.
SUMMARY
0040An feature of the present invention is enabling calibrating a communication station having an antenna array for differences in electronics paths, the calibration using only the communication station and a subscriber unit.
0041Another feature of the invention is providing calibration that enables using a calibrated transmit weight vector, the transmit weight vector essentially determined from a receive weight vector, the calibration taking into account differences in electronics paths.
0042Another feature of the invention is determining spatial signatures that enable using a calibrated transmit weight vector, the transmit weight vector essentially determined from a receive weight vector, the calibrating taking into account differences in electronics paths and RF propagation paths.
0043Another feature of the invention is enabling determining the uplink spatial signature of a subscriber unit communicating with a communication station, the determining using only the communication station and the subscriber unit.
0044Another feature of the invention is enabling determining the downlink spatial signature of a subscriber unit communicating with a communication station, the determining using only the communication station and the subscriber unit.
0045Still another feature of the invention is calibrating a communication station having an antenna array that the calibrating easy and without taking the communication station off the air for those conventional channels not currently being calibrated.
0046Still another feature of the invention is calibrating a communication station having an antenna array, the calibrating able to be carried out partially or in total at a subscriber unit.
0047Still another feature of the invention is calibrating a communication station, the calibrating method providing high accuracy, with immunity to frequency offset, timing misalignment, I/Q mismatch, and phase noise that typically might occur in communicating with inexpensive subscriber units.
0048Another feature of the invention is providing a calibration method and apparatus that can be readily implemented in a radio frequency system and that make it practical to perform frequent and routine system calibration, the calibration enabling the use of a calibrated transmit weight vector, the transmit weight vector essentially determined from a receive weight vector, the calibration including correcting for differences in electronic paths and for differences in RF propagation effects.
0049Yet another feature is enabling rapid calibration even several times during an existing call.
0050Yet another feature is enabling carrying out calibration in a <i>seamless</i> manner during an ongoing call so that a communication station may be able to continuously calibrate itself during a particular call.
0051Yet another feature is the ability to carry out calibration with several remote transceivers by combining measurements, each of which may be able to "see" only a subset of a communication station's antenna array, or each of which may face a different interference environment.
0052Yet another feature is providing the ability to determine whether calibration is accurate, for example by performing statistical measurements, together with the ability to feedback such information to the communication station to determine, for example, if the combining from several remote stations may be necessary.
0053These and other features will become clear from reading the detailed description of the preferred embodiments of the invention provided herein below
BRIEF DESCRIPTION OF THE DRAWINGS
0054The present invention will be more fully understood from the detailed description of the preferred and some alternate embodiments of the invention, which, however, should not be taken to limit the invention to any specific embodiments, but are for explanation and better understanding only. The embodiments in turn are explained with the aid of the following figures: <ul id="ul0001" list-style="none"><li>Fig. 1 shows the uplink and downlink signal flow on the base station;</li><li>Fig. 2 shows the decomposition of the uplink and downlink channels into "propagation" and "electronic" factors;</li><li>Fig. 3 illustrates the frame structure of a typical TDD system;</li><li>Fig. 4 shows the receive signal processor and the uplink weight computation;</li><li>Fig. 5 illustrates the symmetry between the uplink and downlink signal paths;</li><li>Fig. 6 shows the internal structure of the transmit weight generator;</li><li>Fig. 7 shows the protocol sequence during calibration;</li><li>Fig. 8 illustrates the decomposition of a 6-element circular array into 2-element subarrays;</li><li>Fig. 9 illustrates the uplink signature estimation at the base station;</li><li>Fig. 10 shows the downlink signature estimation at the subscriber unit;</li><li>Fig. 11 shows a flowchart of one embodiment of a method for carrying out downlink signature determination with calibration bursts interspersed with normal TCH bursts;</li><li>Fig. 12 shows the architecture of a typical subscriber unit in which aspects of the present invention may be implemented;</li><li>Fig. 13 shows the results of testing a two antenna element implementation of the method for downlink signature estimation;</li><li>Fig. 14 shows the results of testing an implementation of the method for downlink signature estimation using a single transmitter and antenna element; and</li><li>Fig. 15 shows the results of testing an implementation of the method for downlink signature estimation using a single transmitter and antenna element, but with a different set of frequencies than used to obtain the results of Fig. 14.</li></ul>
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
A Note on Reference Numerals
0055The first one or two digits in a reference numeral indicate on which figure that reference numeral is first introduced. Reference numerals between <b>100</b> and <b>199</b> are first introduced in Fig. 1, those between <b>200</b> and <b>299</b> are first introduced in Fig. 2, and so forth. For example, reference numeral <b>111</b> is first introduced in Fig. 1, <b>909</b> is first introduced in Fig. 9, <b>1009</b> is first introduced in Fig. 10, and <b>1211</b> is first introduced in Fig. 12.
General System Description
0056The invention preferably is implemented in wireless cellular communication systems which include a base station (<i>i</i>.<i>e</i>., a transceiver, a communications station) with a multiple antenna array that uses smart antenna techniques for uplink or downlink communication or both. The preferred implementation is in a system that operates using the Personal Handyphone (PHS) air interface communication protocol. Two implementations are one in which the subscriber units are fixed in location, and the other in which subscriber units may be mobile.
0057WO9817037 describes the hardware of a base station of a mobile system in detail, the base station preferably having four antenna elements. While the invention is useful for mobile and fixed subscriber unit situations, details are provided herein for incorporating the invention into a system with fixed location subscriber units. Wireless systems with fixed locations are sometimes called <i>wireless local loop</i> (WLL) systems. A WLL base station into which some aspects of the present invention are incorporated is described in U.S. Patent Application 09/020,049 for <i>POWER CONTROL WITH SIGNAL QUALITY ESTIMATION FOR SMART ANTENNA COMMUNICATION SYSTEMS</i> while the subscriber unit for use in such a WLL system is described in EP1002390 for <i>METHOD AND SYSTEM FOR RAPID INITIAL CONTROL SIGNAL DETECTION IN A WIRELESS COMMUNICATION SYSTEM</i>. The WLL base station described in above-referenced U.S. Patent Application 09/020,049 includes SDMA and may have any number of antenna elements, and many of the simulations described herein will assume a six-antenna array. It will be clear to those of ordinary skill in the art that the invention may be implemented in any smart antenna based system using any air interface with one or more than one spatial channel(s) per conventional channel, and having mobile, fixed, or a combination of mobile and fixed subscriber units. Such a system may be analog or digital, and may use frequency division multiple access (FDMA), code division multiple access (CDMA), or time division multiple access (TDMA) techniques, the latter usually in combination with FDMA (TDMA/FDMA).
0058Note that while the preferred embodiment is to apply the invention in a wireless communication system having base stations, each base station having subscriber units, the invention also is applicable to peer to peer communication from one radio to another. There is no inherent need to define the concept of a base station or subscriber unit, and how to modify this description to accommodate the peer-to-peer case would be clear to one of ordinary skill in the art. Therefore, while the invention is described as being implemented in a communication station and a subscriber unit, the communication station in this context may be any radio transceiver equipped with an antenna array, and the subscriber unit may be any other radio transceiver remote to the array-equipped transceiver and able to communicate with the array-equipped transceiver using some modulation scheme. While the preferred embodiment describes a base station that has a single array for both uplink (receive) processing and downlink (transmit) processing, with means for adaptive smart antenna processing on the uplink and the downlink, the invention also is applicable to a base station that has an array only for transmit processing, and for a base station that uses a separate antenna array for uplink processing and for downlink processing. When only a single antenna is used for receiving signals, the calibration factor is the downlink signature since all received signals pass through the same receive electronics chain. Also, the "number" of antenna is clearly the number of "active" antennas, that is, the number of antenna used for communication.
0059While the calibration is intended in the embodiments described herein for use in adaptive smart antenna processing, the calibration may be for any other purpose, so that the antenna-array-equipped transceiver need not even include means for adaptive smart antenna processing.
0060Fig. 1 depicts the uplink and downlink signal flow through a typical base station (BS) on which the present invention may be embodied. Base station <b>101</b> includes an array of antenna elements <b>105</b>. The base station communicates with one or more subscriber units such as subscriber unit <b>141</b> and subscriber unit <b>143</b>. In the preferred embodiment the base station has a single array of antenna elements that are used for both receive and transmit, so that a receive/transmit unit <b>107</b> is used. For frequency domain duplexing unit <b>107</b> is a frequency duplexer and for time domain duplexing (TDD), such as used in the preferred embodiment, unit <b>107</b> is a switch. On the downlink, signals from the subscriber units are received at the antenna array. Those signals <b>106</b> pass through the switch <b>107</b> set to the receive position and these signals pass through the receive RF electronics <b>109</b>. In this description, all the characteristics of the receive RF electronics, including all the cables and the switch characteristics and the RF receivers, and other receive paths, are all lumped together. The receive RF electronic unit <b>109</b> converts the RF signals to baseband signals <b>110</b>. In the preferred embodiment, receive RF electronics unit <b>109</b> includes analog RF components, including analog downconversion, analog to digital converters, and digital downconverter components to produce digital baseband antenna signals <b>110,</b> and these baseband received antenna signals are processed by receive signal processor <b>111</b> to generate a received signal from a particular subscriber unit, for example subscriber unit <b>141</b>. The receive signal processor includes determining a weighted sum of the complex valued (in phase I and quadrature Q) antenna signals in an optimal manner where the weighting is in amplitude and phase, and where optimal means that the desired signal components are enhanced by a maximum amount and the non-desired components are suppressed by a maximum amount.
0061The complex valued receive weights are computed by locking onto a known training sequence. or by using some decision-directed technique, or "blindly" by using some other special structure in the signal. In general, it is not essential to know the phase and amplitude relations of the receive electronics in order to perform the computation of the uplink (<i>i</i>.<i>e</i>. receive) weights. See below and in above-referenced co-owned WO9817037 for more details on how these weights are computed.
0062Fig. 1 shows the output of the receiver part of the base station as being voice or data <b>113</b> with signals which are directed to the Network Interface Unit (NIU). Thus, as shown in Fig. 1, receive signal processor <b>111</b> also includes all the demodulation function.
0063On the downlink the base station receives voice/data from the NIU denoted <b>121</b> in Fig. 1. The signal is modulated according to the system specification. A transmit signal processor <b>123</b> includes distributing complex valued weighted copies <b>124</b> of the modulated baseband signal (the weighting according to a set of complex valued transmit weights), and the weighted transmit antenna signals are fed to transmit RF electronics unit <b>125</b> to generate a set of RF transmit signals <b>127</b>, one signal aimed at each antenna element of antenna array <b>105.</b> These RF antenna signals are fed to the corresponding antenna array element through TX/RX switch <b>107</b> which is set in the transmit position. The transmit weights are chosen so that the antenna array radiates most of the energy towards a particular subscriber unit ("beam-forming") and it transmits minimal energy toward co-channel users ("null-placing"). In the preferred embodiment the set of transmit weights <b>118</b> is computed directly from the set of receive weights <b>115</b> generated by receive signal processor <b>111,</b> and the computation is carried out by transmit weight generator <b>117</b> in real time. However, during this computation the transmit weight generator <b>117</b> must take into account the gain and phase differences between the uplink and downlink propagation channels where the channels include both the air path from and to a subscriber unit and the variation among the different signal parts within the receive RF electronics and also within the transmit RF electronics. In the preferred embodiment this information is stored in calibration storage unit <b>131</b> in the form of a calibration vector <b>133</b> as will be described below. Determining this calibration information is the main goal of the present invention.
Uplink and Downlink Signal Path Descriptions
0064In this description, the number of elements in the base station antenna array <b>105</b> shall be denoted by <i>M.</i> Thus, on the uplink there are <i>M</i> signal paths from a subscriber unit, one to each of the <i>M</i> inputs of the receive signal processor <b>111</b>. Similarly, on the downlink, there are <i>M</i> signal paths, one from each of the <i>M</i> inputs of transmit signal processor <b>123</b> to the subscriber unit. Each of these signal paths is described herein by a complex valued number that characterizes the phase and amplitude distortion of a baseband signal. As a compact representation, in this description, the uplink and downlink channels thus are mathematically described by <i>M</i>-dimensional complex valued vectors denoted <b>a</b><sub>rx</sub> and <b>a</b><sub>tx</sub>, respectively, where <i>M</i> is the number of elements in the base-station antenna array <b>105</b>, and where each element in the vector represents the path associated with one of the antenna elements in array <b>105.</b> Such a description is particularly accurate when the differences in propagation times from (or to) a remote subscriber unit and individual antenna elements (delay spread) are much smaller than the symbol period for a system that uses a digital modulation scheme, such as the system of the preferred embodiment. The vectors <b>a</b><sub>rx</sub> and <b>a</b><sub>tx</sub> may be recognized as the (unnormalized) uplink spatial signature and downlink spatial signature, respectively, for the subscriber unit for this base station.
0065Throughout the description, the uplink and downlink signatures, and the uplink and downlink weights, will all be described in baseband. It would be clear to those of ordinary skill in the art that the adaptive smart antenna processing, including any weighting in amplitude and phase, may alternatively be carried out in some other band, for example, in intermediate frequency or in the passband. In such a case, the signature and all its components similarly would be defined in that frequency band.
0066The main goal of the invention is to calibrate the base station. Assuming identical RF propagation on the uplink and downlink, a single subscriber unit can be used together with its base station to carry out the calibration. It also will be apparent that the method enables the separate determination of the uplink and downlink signatures for any subscriber unit. The ease with which such data can be obtained enables one to obtain complete signature information for any (and even every) active subscriber unit. Therefore, in addition to calibrating the base station by running a simple calibration experiment with one of the subscriber units, the method enables subscriber dependent uplink and downlink signatures to be determined for any subscriber unit, these signatures including the effects of the electronic signal paths in the base station hardware and any differences between the uplink and downlink electronic signal paths for the subscriber unit. One use of such information is to determine separate calibrations for each subscriber unit when the RF propagation to and from the subscriber unit is different. Another use is for calibrating the base station, but rather than obtaining a single calibration vector using the base station and a single subscriber unit, using several subscriber units to determine the single calibration vector. In one embodiment, the single calibration vector is the average calibration vector. In another embodiment, it is the weighted average calibration vector, the weighting given to the estimate made using a particular subscriber unit dependent on a measure of the quality of the signal received by that subscriber unit, so that estimates from subscriber units having better quality signals are weighed more in the weighted average. A method and apparatus for determining signal quality is disclosed in above referenced U.S. Patent Application 09/020,049. The implementation of the signal quality estimation method is now described.
0067Denote by <i>N</i> the number of samples of a burst to use for the estimate. The sampled modulus information is first extracted by forming the sum of the squares of the in phase and quadrature received signals. The mean power and mean squared power are then determined using averages over the number of samples for the expectation operation.<maths id="math0001"><img file="EP1513271A2_D0001.tif" /></maths> and<maths id="math0002"><img file="EP1513271A2_D0002.tif" /></maths> Note that once the instantaneous power <i>R</i><sup>2</sup>(<i>t</i>) = <i>I</i><sup>2</sup>(<i>t</i>) + <i>Q</i><sup>2</sup>(<i>t</i>) is determined, determining the squared power <i>R</i><sup>4</sup>(<i>t</i>) = [<i>R</i><sup>2</sup>(<i>t</i>)]<sup>2</sup> requires only a single additional multiplication per sample, and the estimated signal-to-interference-plus-noise-ratio (SINR) is determined as the signal quality estimate, preferably with at most one square root operation, using<maths id="math0003"><img file="EP1513271A2_D0003.tif" /></maths>
0068Both the ratio<maths id="math0004"><img file="EP1513271A2_D0004.tif" /></maths> and the quantity A are sometimes called the kurtosis. This preferred method of signal quality estimation is insensitive to frequency offset, and so is a particularly attractive method for use with the CM method which also is insensitive to frequency offsets.
0069In alternate embodiments, the single calibration vector estimate may be obtained using some other function of the several determinations of calibration vectors, for example, taking from each calibration vector only the good quality estimates of the element, and then combining all the subsets to obtain one high quality calibration vector.
0070Note that in the description below, the phase and magnitude distortions that occur in the various signal paths are described by the amplitude and phase, respectively, of a single complex valued number, so that a calibration for a one-to-<i>M</i> or <i>M</i>-to-one system is described by a <i>M</i>-dimensional complex valued vector. For a FDMA or FDMA/TDMA system, a different complex number may be required to describe the phase and magnitude distortions for each carrier (each frequency band).
0071Also note that often, while the electronics may be adequately described by a simple phase and amplitude factor, the RF propagation part within each frequency band of a carrier is not adequately described by a complex number, but is adequately described by a transfer function. Even in such a situation, with reciprocity in the RF paths between the uplink and downlink, the transfer functions cancel out when used for calibration, so that a complex number adequately describes the calibration for one antenna's uplink-downlink signal path, and a complex valued <i>M</i>-dimensional calibration vector is adequate.
0072Sometimes, even the signal paths through the receiver electronics or transmit electronics or both are not adequately describable by complex numbers, but are describable by transfer functions. In an alternate implementation, this is taken into account, so each of the uplink and each of the downlink signal paths is described by a complex valued transfer function for a baseband signal. How to extend the implementations described herein to take into account a set of frequencies rather than a frequency-independent (within a carrier band) phase and amplitude baseband signal path description would be clear to one of ordinary skill in the art, and the scope of this invention certainly includes such extension.
0073Fig. 2 shows how the uplink and downlink channel descriptions are further mathematically decomposed into the product of "propagation" and "electronic" factors in the following manner. Between each base station antenna element (an element in <b>105</b>) and the antenna <b>205</b> of the subscriber unit, there is a complex valued number that describes the phase and amplitude distortion that occurs in a baseband signal due to the RF propagation effects on the uplink and on the downlink. Such propagation effects include without limitation path loss, fading and shadowing effects, multipath, and near-field scattering. For each of the uplink and the downlink, the <i>M</i> such numbers can be combined as <i>M</i>-dimensional complex valued vectors. Define <b>g</b><sub>rx</sub> and <b>g</b><sub>tx</sub> as these vectors for the uplink and downlink, respectively. <b>g</b><sub>rx</sub> and <b>g</b><sub>tx</sub> are called the propagation factors herein. In a typical low-mobility environment the propagation factors remain constant over several frames (<i>i.e.</i>, tens to hundreds of milliseconds).
0074Similarly, there is a complex valued number that describes the phase and amplitude distortion that occurs in a baseband signal due to the receive electronics between an element of the antenna array <b>105</b> and the corresponding output terminal of receive signal processor <b>111</b>, and another complex valued number that describes the phase and amplitude distortion that occurs in a baseband signal in the transmit electronics chain between an input terminal of transmit signal processor <b>123</b> and the corresponding element of the antenna array <b>105</b>. These electronics chain phase and amplitude distortions include those that occur due to cable losses, imperfect physical connections, variations in the gains of the various active receive or transmit RF electronics, and group delays in the particular components that are included in the RF electronics, for example surface acoustic wave (SAW) filters and other components. If the base-station hardware is stable, the electronic factors remain constant over an extended period of time (minutes, hours or days). There are <i>M</i> electronics based factors for each of the transmit and receive electronics chains. For each direction, these factors can be combined as an <i>M</i>-dimensional complex valued vector. Define receive electronic factor vector <b>e</b><sub>rx</sub> as the vector of distortions of the <i>M</i> receive electronics chains, and transmit electronics factor vector <b>e</b><sub>tx</sub> as the set of distortions for the <i>M</i> transmit electronics chains.
0075In Fig. 2 the uplink propagation factors vector <b>g</b><sub>rx</sub> is shown as <b>211</b> and the uplink electronic factors vector <b>e</b><sub>rx</sub> is shown as <b>215,</b> while the downlink electronic factors vector <b>e</b><sub>tx</sub> is shown as <b>217</b> and the downlink propagation factors vector <b>g</b><sub>tx</sub> is shown as <b>219.</b>
0076The multiplicative nature of these factors for each antenna element for each direction may be mathematically expressed as<maths id="math0005"><img file="EP1513271A2_D0005.tif" /></maths> where ⊗ denotes the elementwise product (<i>i</i>.<i>e</i>., the Hadamard product).
0077The preferred embodiment system is a frequency division multiple access/time division multiple access (FDMA/TDMA) system in which each conventional channel is a time slot in a frequency channel (a frequency channel is referred to as a "carrier" herein for FDMA/TDMA systems). In particular, time is divided into frames of timeslots and such a frame is shown as <b>301</b> in Fig. 3. Frame <b>301</b> of the preferred embodiment includes eight timeslots. In order, there are four receive timeslots labeled 0 through 3 (items <b>305, 307, 309,</b> and <b>311</b>) followed by four transmit timeslots labeled 0 through 3 (items <b>315, 317, 319,</b> and <b>321</b>) in Fig. 3. Thus, in the preferred embodiment, the uplink and downlink factors are measured over consecutive receive and transmit slots that are separated by a relatively short time interval. Therefore, by the principle of reciprocity, it is reasonable to assume that the uplink and downlink propagation factors are identical:<maths id="math0006" num="(2)"><math display="block"><mrow><msub><mrow><mtext>g</mtext></mrow><mrow><mtext>rx</mtext></mrow></msub><msub><mrow><mtext> = g</mtext></mrow><mrow><mtext>tx</mtext></mrow></msub></mrow></math><img file="EP1513271A2_D0006.tif" /></maths>
0078In an FDD system the relation between the uplink and downlink propagation factors may be more complicated, and can still be determined.
Uplink Weight Computation
0079In the preferred embodiment, the uplink weights are computed at base station <b>101</b> by receive signal processor <b>111.</b> The uplink weights are summarized by a complex valued <i>M</i>-dimensional complex valued <i>receive weight vector</i> (also called <i>uplink weight vector</i>) <b>115</b> denoted by <b>w</b><sub>rx</sub> herein, each element of which describes the weighing in amplitude and phase of the baseband received signals. The result of applying the weighting generates a baseband signal from the particular subscriber unit. Referring to Fig. 1, the received signals <b>106</b> from the antenna elements are digitized and converted to baseband by receive RF electronics unit <b>109.</b> Fig. 4 shows the preferred embodiment (by programming) of receive signal processing unit <b>111</b>, including receive (uplink) weights computation. Receive signal processor <b>111</b> first performs pass-band filtering, and compensates for frequency offset, timing offset, I/Q mismatch, and other possible distortions. These operations are commonly labeled as "preprocessing," and are carried out in the preprocessor shown as <b>403</b> in Fig. 4.
0080In the next step the transmitted symbol sequence <b>411</b> is estimated from the set of preprocessed received signals <b>405</b> by using a suitable spatial processing and demodulation technique. Referring to Fig. 4, an estimate of the signal from the particular desired subscriber unit is determined by spatial processor <b>407</b> by weighting in amplitude and phase by a set of receive weights described by a receive (uplink) weight vector <b>115.</b>
0081Note that the invention also covers replacing spatial processor <b>407</b> with a spatio-temporal processor which includes time equalization. With spatio-temporal processing, the weighting is replaced by a convolution operation in the time domain, or equivalently, multiplication in the frequency domain. The convolution usually is finite and on sampled data, and so is equivalent to combining the spatial processing with time equalization using a time-domain equalizer with a finite number of equalizer taps. That is, each of the weights in the weight vector is replaced by a finite number of values. If the length of each convolving function is <i>K</i>, then rather than determining a complex valued <i>M</i>-weight vector <b>w</b><sub>rx</sub>, one determines a complex valued <i>M</i> by <i>K</i> matrix <b>W</b><sub>rx</sub>.
0082Note that a spatial weight determining method can easily be modified for spatio-temporal processing according to a weight matrix by re-expressing the problem in terms of matrices and vectors of different sizes. As throughout this description, let <i>M</i> be the number of antenna elements, and <i>N</i> the number of samples. Let <i>K</i> be the number of time equalizer taps per antenna element. A set of received signal samples can be written as a matrix of row vectors, each row vector representing the single samples from a single antenna. All the signal samples can then be represented by an (<i>M</i> by <i>N</i>) received signal matrix. To accommodate spatio-temporal processing, each row vector of <i>N</i> samples of the (<i>M</i> by <i>N</i>) received signal matrix can be rewritten as <i>K</i> rows of shifted versions of the first row to produce a received signal matrix of size (<i>MK</i> by <i>N</i>), which when pre-multiplied by the Hermitian transpose (<i>i</i>.<i>e</i>., complex conjugate transpose) of a weight vector of size (<i>MK</i> by 1) produces an estimated received signal row vector of <i>N</i> samples. The spatio-temporal problem has thus been re-expressed as a weight vector determining problem. For example, for covariance based methods, the weight vector is a "long" weight vector of size (<i>MK</i> by 1). Rearranging terms in the "long" weight vector provides the required (<i>M</i> by <i>K</i>) weight matrix. Therefore, while the description herein is in terms of weights and spatial processing, the scope is intended to include spatio-temporal processing.
0083Referring again to Fig. 4 and processor <b>407,</b> at first, an estimate of the uplink weight vector <b>115</b> is used, for example the value from the previous frame. The signal estimate <b>408</b> is then demodulated by demodulator and reference signal generator <b>411</b> to generate the estimate of the transmitted symbol sequence <b>412</b> which then is further processed by higher level processing unit <b>413</b> to generate the voice or data signal <b>113</b> that is sent to the Network Interface Unit (not shown). In addition to producing the symbol sequence <b>412</b>, demodulation and reference signal generator <b>411</b> also produces a reference signal <b>410</b> which is a modulated signal that is modulated by the estimated symbols and that has a correct signal structure according to the particular modulation protocol used. This reference signal, together with the preprocessed receive signal set <b>405,</b> is used by weight vector generator <b>409</b> to generate a better estimate of the receive weight vector <b>115</b>. Weight vector generator <b>409</b> implements an optimization method that determines the weight vector that minimizes an objective function of weight vectors, the objective function including a measure of the deviation of the signal generated through a signal copy spatial processing operation using the weight vector to the reference signal <b>410.</b> In the preferred embodiment, the objective function also includes a term to limit the magnitude of the weight vector. The next estimate of the weight vector obtained from weight vector generator <b>409</b> can then be used by signal copy operation <b>407</b> and also may be used by transmit weight generator <b>117.</b> For more details on the structure of the base station on which the method of the present invention is preferably implemented, see above referenced U.S. Patent Application 09/020,049. For further details of the uplink weight vector computation, see above-referenced WO9817037 and U.S. Patent application S/N 09/153,110 for <i>METHOD FOR REFERENCE SIGNAL GENERATION IN THE PRESENCE OF FREQUENCY OFFSETS IN A COMMUNICATIONS STATION WITH SPATIAL PROCESSING</i>.
Downlink Weight Computation
0084The downlink weights <b>118</b> may be expressed as an <i>M</i>-dimensional complex valued vector of weights <b>w</b><sub>rx</sub> (called the <i>transmit weight vector</i>, also the <i>downlink weight vector</i>). In the preferred embodiment, the downlink weights are computed directly from the uplink weights. The symmetry of the uplink and downlink signal paths is used. This symmetry, illustrated in Figs 5A (uplink) and 5B (downlink), may be expressed as follows: <ul id="ul0002" list-style="none" compact="compact"><li>1. The impulse response of the scalar "channel" (in baseband) between the modulated baseband signal (shown as <b>503</b>) transmitted by the subscriber unit and the post-spatial processing (<i>i</i>.<i>e</i>., demultiplexed) signal (for example. referring to Fig. 4, the reference signal <b>410</b>) is substantially the same as the opposite direction impulse response from the pre-spatial processing scalar baseband signal <b>507</b> transmitted from the base station to the received baseband signal <b>509</b> at the subscriber unit. Mathematically, this symmetry may be stated as the uplink and downlink weight vectors substantially satisfying the equation<maths id="math0007" num="(3)"><math display="block"><mrow><msubsup><mrow><mtext>w</mtext></mrow><mrow><mtext>rx</mtext></mrow><mrow><mtext>*</mtext></mrow></msubsup><msub><mrow><mtext>a</mtext></mrow><mrow><mtext>rx</mtext></mrow></msub><msubsup><mrow><mtext> = w</mtext></mrow><mrow><mtext>tx</mtext></mrow><mrow><mtext>*</mtext></mrow></msubsup><msub><mrow><mtext>a</mtext></mrow><mrow><mtext>tx</mtext></mrow></msub><mtext>.</mtext></mrow></math><img file="EP1513271A2_D0007.tif" /></maths></li><li>2. For receiving from and transmitting to the same subscriber unit (assuming the subscriber unit uses the same antenna for receive and transmit), the beam pattern of the antenna array on the uplink and the downlink should be substantially identical. In the case that the reciprocity condition (<b>g</b><sub>rx</sub> = <b>g</b><sub>tx</sub>) substantially holds, this means that the weight vectors should substantially satisfy<maths id="math0008" num="(4)"><math display="block"><mrow><msub><mrow><mtext>w</mtext></mrow><mrow><mtext>rx</mtext></mrow></msub><msub><mrow><mtext> ⊗ e</mtext></mrow><mrow><mtext>rx</mtext></mrow></msub><msub><mrow><mtext> = w</mtext></mrow><mrow><mtext>tx</mtext></mrow></msub><msub><mrow><mtext> ⊗ e</mtext></mrow><mrow><mtext>tx</mtext></mrow></msub><mtext>,</mtext></mrow></math><img file="EP1513271A2_D0008.tif" /></maths> where ⊗ denotes the elementwise product (<i>i.e</i>., the Hadamard product). Note that in general the beam pattern of the antenna array depends on the weight vectors, as well as on the transfer functions of the RF electronics.</li></ul>
0085Eq. (3) has many solutions for <b>w</b><sub>tx</sub> while Eq. (4) has only one solution:<maths id="math0009" num="(5)"><math display="block"><mrow><msub><mrow><mtext>w</mtext></mrow><mrow><mtext>tx</mtext></mrow></msub><msub><mrow><mtext> = w</mtext></mrow><mrow><mtext>rx</mtext></mrow></msub><msub><mrow><mtext> ⊗ e</mtext></mrow><mrow><mtext>rx</mtext></mrow></msub><msub><mrow><mtext> ∅ e</mtext></mrow><mrow><mtext>tx</mtext></mrow></msub><mtext>,</mtext></mrow></math><img file="EP1513271A2_D0009.tif" /></maths> where ∅ denotes elementwise division. Consequently, the main equation that governs the transmit weight generation is given by<maths id="math0010" num="(6)"><math display="block"><mrow><msub><mrow><mtext>w</mtext></mrow><mrow><mtext>tx</mtext></mrow></msub><msub><mrow><mtext> = w</mtext></mrow><mrow><mtext>rx</mtext></mrow></msub><mtext> ⊗ c,</mtext></mrow></math><img file="EP1513271A2_D0010.tif" /></maths> where the <i>calibration vector</i><b>133</b> (denoted by <b>c</b>) is defined as<maths id="math0011" num="(7)"><math display="block"><mrow><msub><mrow><mtext>c = e</mtext></mrow><mrow><mtext>rx</mtext></mrow></msub><msub><mrow><mtext> ∅ e</mtext></mrow><mrow><mtext>tx</mtext></mrow></msub><mtext>.</mtext></mrow></math><img file="EP1513271A2_D0011.tif" /></maths>
0086The internal structure of the transmit weight generator <b>117</b> is depicted in Fig. 6. To generate an element of transmit weight vector <b>118</b>, the corresponding element of calibration vector <b>133</b> is multiplied by the corresponding element of the receive weight vector <b>115</b> using elementwise multiplication process <b>603.</b>
The Calibration Process
0087The main purpose of the calibration process is to determine calibration vector <b>133</b> for a base station and one of its subscriber units which supports the calibration procedure. No additional calibration equipment such as a transponder, signal generator, or measuring network is needed. In a typical TDD system the calibration process consists of the following steps: <ul id="ul0003" list-style="none"><li>1. Establish a connection with a suitable subscriber unit;</li><li>2. Estimate the uplink channel spatial signature <b>a</b><sub>rx</sub>;</li><li>3. Estimate the downlink channel spatial signature <b>a</b><sub>tx</sub>;</li><li>4. Assuming reciprocity, compute the calibration vector <b>113</b> as<maths id="math0012" num="(8)"><math display="block"><mrow><msub><mrow><mtext>c = a</mtext></mrow><mrow><mtext>rx</mtext></mrow></msub><msub><mrow><mtext> ∅ a</mtext></mrow><mrow><mtext>tx</mtext></mrow></msub><msub><mrow><mtext> = e</mtext></mrow><mrow><mtext>rx</mtext></mrow></msub><msub><mrow><mtext> ∅ e</mtext></mrow><mrow><mtext>tx</mtext></mrow></msub><mtext>;</mtext></mrow></math><img file="EP1513271A2_D0012.tif" /></maths></li><li>5. Terminate the connection with the subscriber unit.</li></ul>
0088Clearly in order to determine calibration functions, one need not <i>explicitly</i> display or store uplink and downlink signatures (steps 2 and 3 above) and one may instead proceed directly to step 4 of computing the calibration function from intermediate quantities related to the uplink and downlink signatures. For the purposes of this invention the computation of the calibration function from such intermediate quantities is equivalent to computing the calibration function from uplink and downlink signatures.
0089In the current WLL system in which the preferred embodiment is implemented, each subscriber unit is able to support the calibration method. Nevertheless, to maximize the signal to noise ratio, it is generally recommended to choose a subscriber unit that is close to the base station. Calibration calls can be initiated on any carrier and any time slot while the base station is servicing standard traffic channel (TCH) calls on other carriers and time slots.
0090Note that while the description herein is for the calibration to occur by the base station communicating with a subscriber unit, the scope clearly includes the base station communicating with a special purpose transceiver that performs the functions described herein, while not necessarily performing any other functions, for example the typical functions a typical subscriber unit performs. For example, one can use a subset of the hardware and software included in a subscriber unit to carry out the calibration.
0091Note that the preferred embodiment uses a system in which communication occurs burst-by-burst. Hence, the description herein uses the term "burst" and used terms such as traffic bursts, calibration bursts, etc. The invention certainly is not limited to burst-by-burst systems. The general equivalent term to "burst" applicable to both burst-by-burst and non burst-by-burst systems used herein is "waveform", and therefore a "calibration waveforms" is a calibration burst for a busts-by-burst system, a "traffic waveforms" is a traffic (or TCH) burst for a busts-by-burst system, and so forth.
0092Fig. 7 shows a typical protocol which includes a calibration call according to aspects of this invention. Different protocols may be designed for other implementations. The sequence order is from top to bottom. The direction of arrows shows the direction of communication. The protocol starts with a standard call-setup procedure <b>703</b> which includes a paging call <b>711</b> from the base station to the subscriber unit, a link channel request <b>713</b> from the subscriber unit to the base station, resulting in link channel assignment sent to the subscriber in step <b>715.</b> Synchronization ("SYNCH") bursts are then sent on the uplink (<b>717</b>) then on the downlink (<b>719</b>). Finally, in step <b>721</b>, the page response is sent to the base station. For the calibration burst phase <b>705</b> of the protocol, the subscriber unit transmits a first uplink calibration burst or bursts (<b>723</b>) so that the base station can estimate the uplink channel. Immediately after this, in step <b>725</b>, the base station transmits a first downlink calibration burst (or bursts) so that the subscriber unit can estimate the downlink channel.
0093Note that in the preferred embodiment, the calibration bursts are calibration waveforms that conform to the particular air interface standard, in this case, the PHS standard. By "conforming to an air interface standard" we mean conforming to the channel structure and modulation of an air interface, where "channel structure" is a frequency slot in the case of FDMA, a time and frequency slot in the case of TDMA, or a code channel in the case of CDMA, and "modulation" is, for example, π/4-DQPSK in the case of PHS, or GMSK in the case of GSM, and so forth. In the two-tone and multi-tone calibration methods described herein under, the calibration waveform consists of a sum of two or more waveforms each conforming to the PHS air interface standard. As such sums occur naturally in a multiuser communication system with frequency reuse, a sum of waveforms conforming to an air interface standard is also considered to conform to an air interface standard for the purpose of this description.
0094While one implementation would be to calibrate the whole antenna array at once, in the preferred embodiment, one considers not the whole array of <i>M</i> antenna elements, but subarrays of the array, each of less than <i>M</i> elements, and calibrates each subarray independently. In this preferred implementation, one or more additional uplink calibration bursts and one or more additional downlink calibration bursts may needed, each for each additional subarray, and these additional steps are shown as dotted lines <b>727</b> and <b>729</b>, respectively in Fig. 7. Note that while only one downlink and one uplink additional step is shown dotted, it is to be understood that this represents as many additional bursts as there are additional subarrays to be calibrated.
0095In the particular implementation, the antennas are calibrated pairwise with each antenna calibrated with respect to a fixed reference antenna. Thus, the <i>M</i>-element antenna array is viewed as a collection of 2-element subarrays and there are <i>M</i>-1 bursts used to calibrate in each direction (steps <b>727</b> and <b>729</b> each carried out <i>M</i>-2 times). Fig. 8 shows a circular arrangement of 6 antennas <b>801, 802, 803, 805, 807,</b> and <b>809,</b> with antenna <b>801</b> arbitrarily chosen as the fixed reference antenna. The subarrays are shown as the antennas within the dotted line areas. The five subarrays are: subarray #1 (<b>811</b>) of antennas <b>801</b> and <b>802</b>, subarray #2 (813) of antennas <b>801</b> and <b>803</b>, subarray #3 (<b>815</b>) of antennas <b>801</b> and <b>805</b>, subarray #4 (<b>817</b>) of antennas <b>801</b> and <b>807</b>, and subarray #5 (<b>819</b>) of antennas <b>801</b> and <b>809.</b>
0096In the preferred embodiment, the subscriber unit has some intelligent signal processing capabilities which allow it to analyze the downlink calibration burst or bursts. In general, some of the downlink channel estimation can then be carried out by the remote subscriber unit, this part of the signature estimation determining partial results, called "downlink signature related signals" herein. In the preferred embodiment, the subscriber unit has sufficient processing power to completely compute the downlink channel estimate, and in this case, the downlink signature related signals are the downlink channel estimate components. These results (whether complete or partial estimates―in general, downlink signature related signals) are sent back to the base station by using some standard messaging protocol, including without limitation SACCH, FACCH, TCH payload as described in the PHS protocol. The PHS protocols are incorporated herein by reference. The PHS standard is described, for example, in the Association of Radio Industries and Businesses (ARIB, Japan) Preliminary Standard, Version 2, RCR STD-28 and variations are described in Technical Standards of the PHS Memorandum of Understanding Group (PHS MoU -- see <u>http://www.phsmou.or.jp</u>). This sending is shown as step <b>731</b> for the first downlink calibration burst and as dotted line <b>733</b> for those implementations that use additional bursts, for example for the remaining subarrays. Other relevant information (<i>e</i>.<i>g</i>., signal quality estimates or the raw I/Q samples) can also be transmitted back to the base station from the subscriber unit for use in power control and for other analyses and purposes. See above referenced U.S. Patent Application 09/020,049 for a description of the power control and signal quality estimation aspects of a subscriber unit.
0097At the end of the calibration process, the base station computes the calibration vector and terminates the calibration call. The call termination <b>709</b> preferably includes a disconnect command <b>735</b> from the base station followed by a release message <b>737</b> from the subscriber unit.
Uplink Signature Estimation
0098In the preferred embodiment, uplink signature estimation occurs at an active subscriber unit in the vicinity of the base station. After the service channel is established, the subscriber unit transmits an uplink calibration burst towards the base station. In our particular implementation, the uplink calibration bursts are idle (no-payload) TCH bursts. In alternate embodiments, other sequences can be used, and how to modify the method to use other sequences would be clear to one of ordinary skill in the art. For example, in another embodiment, downlink signature estimation is carried out first. The downlink signature related signals computed at the subscriber unit, which preferably are the signature estimates, are then transmitted to the base station. These signals are then used to estimate the uplink signature.
0099Fig. 9 describes the elements for determining the uplink signature <b>a</b><sub>rx</sub>. In the preferred embodiment, subscriber unit (<i>e</i>.<i>g</i>., unit <b>141</b>) includes an uplink calibration burst synthesizer <b>907</b> implemented as a set of programming instructions on a signal processor. Synthesizer <b>907</b> includes a memory (part of the already present signal processor memory), and generates the first calibration burst (in step <b>723</b>) or the second calibration burst (in step <b>727).</b> The burst is transmitted from the subscriber unit antenna <b>911</b> using the subscriber unit's transmit RF electronics <b>909</b>. The architecture of the preferred embodiment subscriber unit is described in above referenced U.S. Patent Application 08/907,594 and in Fig. 12. Referring to Fig. 12, time duplexer <b>1203</b> is in the transmit position during transmission and connects the output of transmit RF electronics <b>909</b> to antenna <b>911.</b> Normal traffic burst signals are obtained from telephony interface unit <b>1213</b> via a vocoder DSP <b>1209.</b> The complex valued (<i>I</i>, <i>Q</i>) samples are formed in a DSP device (TX DSP <b>1211</b>) which is connected to a memory <b>1207</b> shared with another DSP device, the RX DSP <b>1205</b> used for signal reception. For the uplink channel determination implementation described herein, TX DSP <b>1211</b> is programmed to carry out the function of uplink calibration burst synthesizer <b>907</b> in addition to its normal transmit signal processing functions. The uplink calibration bursts are received by the base station antenna array <b>105</b> and converted to the baseband signals <b>110</b> by the receive RF electronics <b>109</b>, as shown in Fig. 9. The signals from the antenna elements are then processed by the receive signal processor <b>111</b> which is made up of one or more digital signal processing devices (DSPs) programmed to carry out the functions of the elements <b>403, 921,</b> and <b>931.</b> Pre-processor <b>403</b> carries out pre-processing which includes baseband filtering, and removing the frequency offset, the timing offset, and the I/Q mismatch from the received signal. In some implementations, baseband equalization may also be included in the pre-processor <b>403</b> if necessary, and how to so include equalization and would be clear to those skilled in the art and is not the main concern of the invention. Unit <b>921</b> includes units <b>407</b> and <b>411</b> and estimates the transmitted symbol sequence (a reference signal) by carrying out the signal copy operation, demodulation and reference signal generation. In the preferred embodiment, the subscriber unit transmits standard TCH bursts, and therefore the default TCH demodulation method of the base station can be used for this purpose. In an alternate embodiment, the subscriber unit transmits a pre-defined calibration sequence that is explicitly known, and thus may be pre-stored at the base station. In this case, it is not necessary to demodulate the received signal. This alternate is shown in dotted lines in Fig. 9, where the pre-defined burst segments <b>923</b> are used instead of the transmitted signal estimate <b>410.</b> Channel identification unit <b>931</b> uses the transmitted signal estimate <b>410</b> and received signals <b>405,</b> which are the input and output signals respectively, of the uplink channel, <b>933</b> to estimate the underlying spatial signature <b>933.</b> Any standard system identification technique may be used in channel identification unit <b>931.</b> The following method is used in the preferred embodiment. <i>N</i> samples of the received signals <b>405</b> and the transmitted signal estimate <b>410</b> are used. In the preferred embodiment, <i>N</i>=50. That is, just 50 samples of the burst are used. Denote by <i>k</i> the time index of the <i>N</i> samples, where <i>k</i> = 0,1,..., <i>N -</i> 1, by <b>x</b><i>(k)</i> vector of received signals <b>405</b> at time <i>k</i>, and by <i>s(k)</i> transmitted signal estimate <b>410</b> at time <i>k</i>. The estimate of the uplink channel signature is obtained as<maths id="math0013" num="(9)"><math display="block"><mrow><msub><mrow><mtext>â</mtext></mrow><mrow><mtext>rx</mtext></mrow></msub><msup><mrow><mtext> = XS*(SS*)</mtext></mrow><mrow><mtext>-1</mtext></mrow></msup></mrow></math><img file="EP1513271A2_D0013.tif" /></maths> where matrix <b>X</b> = [<b>x</b>(0) <b>x</b>(1)... <b>x</b>(<i>N</i>-1)] and vector <b>S</b> = [<i>s</i>(0) <i>s</i>(1)... <i>s</i>(<i>N</i>-1)]. Those skilled in the art may recognize this as the maximum likelihood estimate of the channel signature for modeling the received signals by<maths id="math0014" num="(10)"><math display="block"><mrow><mtext>x(</mtext><mtext mathvariant="italic">k</mtext><msub><mrow><mtext>)=a</mtext></mrow><mrow><mtext>rx</mtext></mrow></msub><mtext mathvariant="italic">s</mtext><mtext>(</mtext><mtext mathvariant="italic">k</mtext><mtext>)+v(</mtext><mtext mathvariant="italic">k</mtext><mtext>), </mtext><mtext mathvariant="italic">k</mtext><mtext>=0,1,...,</mtext><mtext mathvariant="italic">N</mtext><mtext>-1</mtext></mrow></math><img file="EP1513271A2_D0014.tif" /></maths> where <b>v</b><i>(k)</i> denotes a vector of additive noise at time <i>k</i>, the noise vector being a vector of statistically independent, identically distributed Gaussian random processes with a mean E{<b>v</b><i>(k)</i>}=<b>0</b> and covariance matrix E {<b>v</b><i>(k)</i><b>v</b><i>(k)</i>*} = σ<maths id="math0015"><math display="inline"><mrow><mfrac linethickness="0"><mrow><mtext>2</mtext></mrow><mrow><mtext>v</mtext></mrow></mfrac></mrow></math><img file="EP1513271A2_D0015.tif" /></maths><b>I</b>, where <b>I</b> is the identity matrix. This part of the invention however does not depend on any modeling assumptions. In alternate embodiments, more or less sophisticated standard system identification techniques may be used in place of Eq. (9). The book by Lyung, L., <i>System Identification: Theory for the User</i>, Englewood-Cliffs, NJ: Prentice-Hall, 1987 is a good source for many alternate system identification methods that may be adapted for use in the present invention. Note also that the solution of Eq. (9) and equivalent solutions are sometimes referred to herein as the maximum likelihood estimates, even when the received signal model and other conditions for the maximum likelihood are not met, and it is to be understood that the term "maximum likelihood estimate" means the solution that <i>would be</i> maximum likelihood when the appropriate linear signal model and noise conditions hold. For example, applying Eq. (11) or equivalent would fall under "maximum likelihood estimate" for <i>any</i> transmitted <b>S</b> and received <b>X</b> using <i>any</i> or no model with any kind of noise present.
Downlink Signature Estimation
0100In order to estimate the downlink channel, the base station <b>101</b> transmits one or more downlink calibration bursts towards subscriber unit <b>141.</b> Fig. 10 describes the elements for determining the downlink signature <b>a</b><sub>tx</sub>. In the preferred embodiment, transmit signal processor <b>123</b> in base station <b>101</b> is programmed as a downlink calibration burst synthesizer <b>1005</b> to generate the downlink calibration burst (the first burst of step <b>725</b> or the second burst of step <b>727</b> depending on the number of bursts used in the embodiment of the method, and the step in that embodiment). Such a burst preferably is generated by recalling the burst from a memory in base station <b>101.</b> The bursts are transmitted to subscriber unit <b>141</b> by using transmit signal processor <b>123</b> for the required spatial processing (shown in Fig. 10 as part of unit <b>1005</b>) and then transmitting through the transmit RF electronics <b>125</b> and antenna array <b>105.</b>
0101The bursts are received in the subscriber unit (<i>e.g.</i>, unit <b>141</b>) on antenna <b>911</b> via subscriber unit receive electronics <b>1009.</b> Referring again to Fig. 12, the preferred embodiment subscriber unit includes RX DSP <b>1205</b> which for this implementation is programmed as a pre-processor <b>1011</b> to generate a sampled received signal <b>1012</b> denoted y(k) where <i>k</i> is used as a time index, and also programmed as a downlink channel identification processor <b>1013</b> which determines the downlink channel signature using the received signal <b>1012</b> and a stored version <b>1019</b> of the set of transmitted signals denoted by <i>M</i>-vector <i>z</i>(<i>k</i>). The stored version <b>1019</b> is stored in a buffer formed in memory <b>1207.</b> The subscriber unit then transmits the result back to the base station.
0102In the particular embodiment, the signals are modulated using π/4 DQPSK and have a baud rate of 192 kbaud per sec. The received signal y(k) is four times oversampled. When used for two-tone calibration (see below), the transmitted calibration waveforms are appropriately modulated sine waves, and in the preferred embodiment, to preserve memory, only a single period of each sine wave is stored in memory <b>1207,</b> that section of memory <b>1207</b> configured as a circular buffer. The data then is repeatedly read out as a sequence of periods.
0103A typical subscriber unit usually has at most a few antennas (one antenna <b>911</b> in the WLL system on which the invention preferably is implemented), which limits the information that is available for downlink signature estimation. Also, the hardware for a typical subscriber unit is simple because of size and cost constraints and therefore less capable of sophisticated, accurate processing than a typical base station's hardware. As a result, the received signal at the subscriber unit may have significant distortions including, without limitation, frequency and timing offset effects, and phase noise that may reduce the accuracy of the downlink channel estimate compared, for example to those of the uplink estimate. In the future, it is anticipated that more signal processing (or other computing) power will be available in average subscriber units to enable these distortions to be corrected in preprocessor <b>1011</b>. However, our invention also works when less signal processing power is available.
0104In an improved embodiment, the base station uses specifically designed signal sequences that are robust with respect to effects that include, without limitation, frequency offset, timing offset, I/Q mismatch, and phase noise. This enables accurate results to be obtained using even simple inexpensive subscriber units with some, but limited, signal processing capability. For example, the downlink calibration burst may consist of pure tones. This enables RX DSP <b>1205</b> programmed as preprocessor <b>1011</b> in the subscriber unit to carry out frequency offset and timing alignment estimation with little computational effort. Alternatively, the downlink calibration burst can be synthesized from pseudo-random signal sequences or chirp (swept frequency) signal sequences which make it possible to characterize the propagation channel across a wider range of frequencies.
0105Let row vector <b>z</b>(<i>k</i>) = [<i>z</i><sub>1</sub>(<i>k</i>) <i>z</i><sub>2</sub>(<i>k</i>)... <i>z</i><sub><i>M</i></sub>(<i>k</i>)], <i>k</i>=0, 1, ..., <i>N</i>-1 denote the <i>N</i> samples (in baseband) of <i>M</i> modulated baseband signals <i>z</i><sub>1</sub>(<i>k</i>), <i>z</i><sub>2</sub>(<i>k</i>), ..., <i>z</i><sub><i>M</i></sub>(<i>k</i>) that are transmitted from base station <b>101</b> from a calibration burst. Let <i>y</i>(<i>k</i>) <i>k</i>=0, 1, ..., <i>N</i>-1 denote the <i>N</i> samples of the received signal (in baseband and after the preprocessing of <b>1011</b>) at the subscriber unit. Define vector <b>y</b> and matrix <b>Z</b> as<maths id="math0016"><img file="EP1513271A2_D0016.tif" /></maths> respectively. The downlink signature estimate <b>1017</b> is preferably determined in identification processor <b>1013</b> according to<maths id="math0017" num="(11)"><math display="block"><mrow><msub><mrow><mtext>â</mtext></mrow><mrow><mtext>tx</mtext></mrow></msub><msup><mrow><mtext> =(Z*Z)</mtext></mrow><mrow><mtext>-1</mtext></mrow></msup><mtext>Z*Y.</mtext></mrow></math><img file="EP1513271A2_D0017.tif" /></maths> Those skilled in the art may recognize that this is the maximum likelihood estimate of the downlink signature when the received signal samples 1012 conform to the model (in baseband) that<maths id="math0018" num="(12)"><math display="block"><mrow><mtext mathvariant="italic">y</mtext><mtext>(</mtext><mtext mathvariant="italic">k</mtext><mtext>) = z(</mtext><mtext mathvariant="italic">k</mtext><msub><mrow><mtext>)a</mtext></mrow><mrow><mtext>tx</mtext></mrow></msub><mtext> + </mtext><mtext mathvariant="italic">n</mtext><mtext>(</mtext><mtext mathvariant="italic">k</mtext><mtext>), </mtext><mtext mathvariant="italic">k</mtext><mtext> = 0,1,..., </mtext><mtext mathvariant="italic">N</mtext><mtext> - 1</mtext></mrow></math><img file="EP1513271A2_D0018.tif" /></maths> where the <i>n(k), k=0,</i> ..., <i>N</i>-1 denote some additive noise in the received signal, modeled as <i>N</i> statistically independent, identically distributed Gaussian random variables. Note that this invention does not depend on the received signal samples conforming to such a model. Note also that the solution of Eq. (11) and equivalent solutions are sometimes referred to herein as the maximum likelihood estimates, even when the received signal model and other conditions for the maximum likelihood are not met, and it is to be understood that the term "maximum likelihood estimate" means the solution that <i>would be</i> the maximum likelihood solution when the appropriate linear signal model and noise conditions hold. For example, applying Eq. (11) or equivalent would fall under the term "maximum likelihood estimate" for any transmitted <b>Z</b> and received <b>Y</b> using <i>any</i> or no model with any kind of noise present.
0106Denoting the noise samples as a vector<maths id="math0019"><img file="EP1513271A2_D0019.tif" /></maths> Eq. (12) can then be expressed as<maths id="math0020" num="(13)"><math display="block"><mrow><msub><mrow><mtext>y = Za</mtext></mrow><mrow><mtext>tx</mtext></mrow></msub><mtext> + n.</mtext></mrow></math><img file="EP1513271A2_D0020.tif" /></maths>
0107Note that the signature <b>1017</b> can be determined according to Eq. (11) only if <b>Z</b> has linearly independent columns. For this, each antenna element of the calibrated array (or subarray) transmits <i>M</i> (or fewer in the case of a subarray) substantially "linearly independent" signals from the <i>M</i> (or fewer) antenna elements during downlink calibration. <i>M</i> transmitted signals <i>z</i><sub>i</sub>(<i>k</i>) are linearly independent if it is impossible to find constant complex valued parameters <i>c</i><sub>1</sub> , <i>c</i><sub>2</sub>, ..., <i>c</i><sub><i>M</i></sub> so that<maths id="math0021"><img file="EP1513271A2_D0021.tif" /></maths> for <i>k</i> = 0, 2,..., <i>N</i>-1 . In practice, this requirement can be fulfilled in various different ways. In one embodiment, the calibration burst can be divided into segments so that only one antenna element is active at any given time (orthogonality in the time domain). Alternatively, the antenna elements can transmit pure tones with different frequencies (orthogonality in the frequency domain). Linearly independent signals can also be synthesized from pseudo-random signal sequences or chirp signal sequences. Other techniques would be apparent to those of ordinary skill in the art.
Two-Tone Downlink Calibration
0108In the preferred embodiment, the antenna array is partitioned into 2-element subarrays with a common reference element, as shown in Fig. 8, and each subarray is calibrated independently. In one embodiment, during calibration each antenna element of a particular subarray transmits a complex valued sine wave at a different frequency. Denote by ω<sub>1</sub> and ω<sub>2</sub> (in radians per second) the frequencies of the first calibration signal through the first antenna element of a particular subarray and the second calibration signal through the second antenna element of a particular subarray, respectively. In this case, the value of <i>M</i> is 2 and the downlink channel estimate according to Eq. (11) is<maths id="math0022"><img file="EP1513271A2_D0022.tif" /></maths> where <i>T</i> denotes the sampling period for the signals and Δω = ω<sub>2</sub> - ω<sub>1</sub> denotes the frequency separation between the tones. If <i>N</i> is chosen so that the observation interval <i>NT</i> is an integer multiple of 2π/Δω, then e<sup><i>jΔωNT</i></sup> = 1, and we obtain the simple formulas<maths id="math0023"><img file="EP1513271A2_D0023.tif" /></maths><maths id="math0024"><img file="EP1513271A2_D0024.tif" /></maths>
0109One will recognize these as the discrete Fourier transform (DFT or its rapid implementation, the FFT) of the received signal at ω<sub>1</sub> and ω<sub>2</sub>, respectively. One also will recognize these as proportional to the cross-correlations of the received subscriber unit signal <i>y</i> with the two calibration bursts, respectively. Clearly, in implementation, the 1/<i>N</i> factors are not included in determining the signatures.
0110The relative downlink signature for one of the antenna elements, say the second antenna element, with the first antenna element as the reference, is computed as the second cross correlation divided by the first cross correlation.
0111In the preferred embodiment implementation, RX DSP <b>1205</b> is programmed as downlink channel identification processor <b>1013.</b> Received signal samples y(k) are four times oversampled 192 kbaud per sec. signals. That is, there are 784 ksamples per second. The two frequencies used are 24 kHz (divided by 2π for kradians/sec.) and -72 kHz (recall that the calibration signals are complex valued). In general, the larger the frequency difference Δω= ω<sub>2</sub> - ω<sub>1</sub>, the better the performance. In the preferred implementation, signals are synthesized by providing particular bit patterns to the π/4 DQPSK modulator (the standard for PHS). This enables the tones to be easily synthesized. However, the π/4 DQPSK modulation and the particular baud rate means that effectively only signals with frequencies of +72 kHz, +24 kHz, -24 kHz and -72 kHz may be synthesized. While the greatest separation would be obtained with the tone pair being at +72 kHz and -72 kHz, the 72 kHz signals appear less like pure tones than the 24 kHz signals, so the two tones used in the preferred embodiment are +24 kHz and -72 kHz. That this performs better than using +24 kHz and -24 kHz tones is discussed in the "Performance" section herein below. The DSP program implementing channel identification processor <b>1013</b> may be summarized as follows:<maths id="math0025"><img file="EP1513271A2_D0025.tif" /></maths>
0112Note that alternate implementations may use different methods for synthesizing the tone signals that do not include the limitations of what tones are available, such methods possibly requiring more complex implementation, or may use different orthogonal signals.
0113The method using tone calibration bursts is robust with respect to phase noise and frequency offset for frequency offsets and phase noises that are small compared to the frequency difference Δω.
0114When large timing offsets are present, an improved embodiment of the two-tone method allows such a timing offset to be determined and the quantities corrected for the timing offset. Let τ denote the constant time by which the transmitted signal is delayed. In this improved embodiment, the calibration bursts are broken up into two time segments, with the break point the same for the two bursts. During the first time segment, a sum of the first and second sine waves is transmitted from the same antenna element, say the first antenna element. Let there be <i>N</i><sub>1</sub> samples during the first time segment and denote the received signal at the subscriber unit by <i>y</i><sub>1</sub>(<i>k</i>), <i>k</i>=0, ..., <i>N</i><sub>1</sub>-1. Assuming that the first segment observation interval <i>N</i><sub>1</sub><i>T</i> is an integer multiple of 2π/Δω, an estimate for the timing offset is determined from the ratio of the cross correlation of the subscriber unit received signal with the second correlation burst to the cross correlation of the subscriber unit received signal with the first correlation burst:<maths id="math0026"><img file="EP1513271A2_D0026.tif" /></maths> On the second segment of the calibration bursts, the two sine waves are transmitted via two different antennas as in the previously described embodiment of the two-tone method. Let there be <i>N</i><sub>2</sub> samples during the second time segment and denote the received signal at the subscriber unit by <i>y</i><sub>2</sub>(<i>k</i>), <i>k</i>=0, ..., <i>N</i><sub>2</sub>-1. If <i>N</i><sub>2</sub> is chosen so that the observation interval <i>N</i><sub>2</sub><i>T</i> is an integer multiple of 2π/Δω, then<maths id="math0027"><img file="EP1513271A2_D0027.tif" /></maths> Combining Eqs. (16) and (17) leads to the desired ratio of the two downlink signature estimates. For simplicity, the two segments are made of equal length, <i>N</i><sub>1</sub>=<i>N</i><sub>2</sub>. As in the first two-tone embodiment, the two frequencies used are 24 kHz and -72 kHz (recall that the calibration signals are complex valued). The DSP program for RX DSP <b>1205</b> implementing channel identification processor <b>1013</b> according to the second implementation that includes correcting for the timing offset may be summarized as follows. <tables id="tabl0001" num="0001"><img file="EP1513271A2_D0028.tif" /></tables>
0115It would be clear to those of ordinary skill in the art that various modifications may be made to the methods, including without limitation, using segments of unequal length, using two sets of two tone signals (separated by a known amount), and transmitting different combinations. Different formulas also may be used to determine the calibration factors.
0116It is advantageous to use any two constant modulus signals whose dot product is a pure tone. Alternatively, one might, for example, use a tone for the first segment and a chirp signal sequence for the second.
0117One also may generalize the method to deal with more than two antennas at a time. The following alternative method works for any number of <i>M</i> antennas. In the first segment (say the first half) of the segment, the sum of <i>M</i> different single tone signals, each of the <i>M</i> tones being distinct, is transmitted from the first (say the reference) antenna element, while no signal is transmitted from the other antenna elements. In the second segment, a different one of the <i>M</i> single tone signals is transmitted from the <i>M</i> antenna elements. The method then proceeds as follows to estimate the <i>M</i>-antenna element array (or subarray). The notation used is that the first half correlations are denoted by <i>A</i><sub>i</sub> with the subscript <i>i</i> denoting which tone the received signal was correlated with, while the second half correlations are denoted by <i>B</i><sub>i</sub> with the subscript <i>i</i> denoting which tone the received signal was correlated with. The <i>M</i> pure tone signals have frequencies denoted by ω<sub>1</sub>, ω<sub>2</sub>, ..., ω<sub><i>M</i></sub>, respectively. <tables id="tabl0002" num="0002"><img file="EP1513271A2_D0029.tif" /></tables>
0118The above generalization for determining the signature for <i>M</i> elements simultaneously can be modified to avoid transmitting the sum of all the <i>M</i> tones on one antenna element in the first segment. In general, one can assume that the timing offset is the same for transmissions from all the antenna elements of a base station. In the system in which the embodiments described herein is implemented, all the ADCs and all the downconversions and upconversions are synchronized. In such a case, for example, only the sum of the tone transmitted from the reference antenna element and one other antenna tone (<i>e.g.,</i> the second) are transmitted from the first element in the first segment. How to modify the above generalization in this and many other ways would be clear to one of ordinary skill in the art.
0119Note that while the above discussion mentions canceling out timing offsets, the dividing of the factors also cancels out any phase offsets.
Timing Offset Determination.
0120The above discussion also suggests how sending multiple signals, for example, pure tone signals, can be used to determine the timing offset in the subscriber unit with very little computation.
0121To determine timing offset, one carries out steps 1, 2 and 3 of the "Improved Two-Tone Downlink Method" above. In step 3, the quantity <i>C</i>1 is essentially exp-<i>j</i>(ω<sub>2</sub>-ω<sub>1</sub>)τ. Thus, taking logarithms and diving by Δω=(ω<sub>2</sub>-ω<sub>1</sub>) gives an estimate of the timing offset τ.
0122In an improved timing offset method, one carries steps 1 and 2 of the "Improved <i>M</i>-Tone Downlink Method" above. In step 2, the quantities 1, <i>A</i><sub>2</sub>/<i>A</i><sub>1</sub>, ..., <i>A</i><sub><i>M</i></sub>/<i>A</i><sub>1</sub>, respectively, give the <i>M</i> quantities 1, exp-<i>j</i>(ω<sub>2</sub>-ω<sub>1</sub>)τ, ..., exp-<i>j</i>(ω<sub><i>M</i></sub>-ω<sub>1</sub>)τ, respectively. Taking logarithms of the last <i>M</i>-1 quantities and dividing the first of these by (ω<sub>2</sub>-ω<sub>1</sub>), the second by (ω<sub>3</sub>-ω<sub>1</sub>), ..., and the last by (ω<sub><i>M</i></sub>-ω<sub>1</sub>), respectively, gives <i>M</i>-1 estimates of the timing offset τ. These may be averaged to give a final estimate of the timing offset
Calibration During Standard Traffic Channel Calls
0123In yet another alternate embodiment, instead of using dedicated calibration calls, it is possible to embed the calibration procedure into standard telephone calls in both directions which are used for normal traffic functions. Normal traffic functions depend on the air interface, and may include demodulation, timing and frequency tracking, and various control functions such as power control and handoff. For example, the uplink channel signature can be estimated from standard uplink traffic channel (TCH) bursts by using a decision directed technique as described above. The downlink channel estimation method described above is modified as follows:
0124On the downlink, the base station transmits a mixture of TCH bursts and calibration bursts towards the subscriber unit in a random fashion. That is, the calibration bursts are interspersed with the TCH bursts. Because calibration bursts may cause audible errors to occur, it is preferable to send such calibration bursts infrequently and during silent periods. A typical silent period is longer than a burst, so in an improved embodiment, calibration bursts are sent (instead of TCH bursts) only after a number of idle bursts are sent by the base station.
0125An illustrative embodiment of processing by the subscriber unit which includes estimating the downlink channel signature is shown in Fig. 11. In step <b>1105</b> the subscriber unit acquires the raw burst and first preprocesses the burst in the receive signal processor programmed as preprocessor <b>1011.</b> This received preprocessed signal is stored. The preprocessed signal next is demodulated in step <b>1109</b> as would be a standard TCH burst. In step <b>1111</b>, it is determined whether or not the demodulated bits are for a standard TCH burst. As in most standard protocols, the PHS protocol used in the system of the illustrative embodiment includes some method to determine when a sequence is correctly received, for example, the presence of a particular pre-defined bit-sequence. In the PHS standard, there is such a 32-bit "Unique Word" sequence, which is prearranged and known to every subscriber unit. Correct reception is determined in step <b>1111</b> by detecting the presence of the Unique Word. Other protocols use other techniques, and alternate ways of determining correct reception of a <i>standard</i> TCH burst in whatever protocol would be clear to those of ordinary skill in the art using the specification of the protocol. If the burst is determined to be a standard TCH burst, then the bit sequence is forwarded in step <b>1113</b> to vocoder DSP <b>1209.</b> If, on the other hand, the bit sequence is not recognized as a standard TCH burst, then the subscriber unit in step <b>1115</b> determines whether the received burst is a calibration burst. In the two-tone methods described herein above, this step <b>1115</b> is performed preferably by carrying out the first correlation step of the calibration method. If the correlation is high, then there is a high level of confidence that this is a calibration burst. If the result of step <b>1115</b> is that yes, this is a calibration burst, then the downlink signature estimation method is continued in step <b>1117</b> and the resulting downlink signature is sent to the base station in step <b>1119</b>.
Calibration Using SYNCH Bursts
0126In yet another alternate embodiment, instead of using dedicated calibration calls, it is possible to embed the calibration bursts into SYNCH bursts, the calibration bursts preferably being the two-segment multi-tone bursts (or two-segment two-tone busts for pairwise calibration).
Performance
0127The accuracy of the downlink channel estimate for the two-tone method (improved implementation including timing alignment correction) was measured by performing experiments using the PHS base station and a subscriber unit from the WLL system used in the preferred embodiment. In the first experiment, two antennas of the PHS base station were used with two different sets of transmit electronics. Forty sets of calibration bursts were sent to the subscriber unit, and the subscriber unit was programmed to save the received signal. The saved received signal was then used to calculate the relative downlink signature. The calculation was carried out offline using the MATLAB environment (The Mathworks, Inc., Natick, MA). The results are shown in Fig. 13. As can be seen, for the carrier frequency of the experiment, the two transmit electronics/antenna elements had different amplitude gains and produced the relative phase of about 109 degrees. The two tones used were +24 kHz and -72 kHz.
0128A second experiment was carried out, this time by using the same transmit electronics and the same antenna. That is, the two calibration signals (the two tones) were transmitted from the <i>same</i> electronics and antenna element. Fig. 14 shows the results when the two tones used were +24 kHz and -72 kHz. As can be seen, the phase angle was close to 0.0, and the magnitude close to 1.0, as would be expected. This same experiment was repeated with the two tones being at +24 kHz and -24 kHz. The results are shown in Fig. 15. The error and variance when using these two tones were larger that when using the frequencies used for Fig. 14.
Using Several Subscriber Units
0129In another aspect of the invention, the calibration factor may be obtained using more than one subscriber unit and determined as a function of signatures obtained from these subscriber units. These may even be all subscriber units. The function may be, for example, a principal component, an average, or a centroid. In the preferred embodiment of the combining step, the principal component method is used. Signatures <b>a</b><sub>1</sub>, ... ,<b>a</b><sub><i>Ns</i></sub> gathered from subscribers 1, ..., <i>Ns,</i> respectively, are combined by forming a matrix A = [a<sub>1</sub> ... a<sub><i>Ns</i></sub>] and computing the principal component (the eigenvector corresponding the eigenvalue of largest magnitude) of <b>A</b><sup>H</sup><b>A</b> or, equivalently, by finding the left singular vector corresponding to the largest singular value of <b>A</b>. In an improved embodiment, each subscriber unit also obtains a signal quality estimate, and these estimates are sent to the base station. Any subscriber unit implemented signal quality determining method may be used, and the method (and apparatus) for determining signal quality used in the preferred embodiment is the kurtosis based method disclosed in above referenced U.S. Patent Application 09/020,049 and also described herein above. Note also that signal quality related measures may already be available at the base station for power control purposes. When signal quality estimates are available, a weighted average calibration factor is obtained, the weighting for a calibration factor using a subscriber unit according to the received signal quality for that subscriber unit. For example, using the principal component method, the signature estimate is the principal component of the weighted signature matrix A = [β<sub>1</sub>a<sub>1</sub> ... β<sub><i>Ns</i></sub><b>a</b><sub><i>Ns</i></sub>], where β<sub>1</sub>, ..., <i>β</i><sub>Ns</sub> are the weighting factors for respective subscriber units 1, ..., <i>Ns</i>.
0130In yet another aspect, the calibration factor may again be obtained as a function of calibration factors obtained from several (even all) subscriber units. However, the function takes into account the relative "quality" of each element of the signature estimate from each of these subscriber units. This is applicable to the case when for a subscriber unit, one or more of the base station antenna elements are "weak" compared to the other elements. In such a case, some of the signature estimate elements and the corresponding calibration factor elements are discarded. For example, one might discard signature elements that have a smaller (normalized) magnitude than some magnitude threshold. Alternatively, one might use the signature estimates to compare predicted received signals to actual received signals, and thus determine residual error (for example, error squared averaged over a burst) for each element and discard signature elements that produce a large residual error. One then can combine several such "incomplete" calibration factor estimates that include at least one estimate of every one of the calibration factor elements. As an example, suppose there are four antenna elements in an array (or subarray), and at three subscriber units denoted SU 1, SU2, and SU3, respectively, the first and second elements, second and third elements, and third and fourth elements, respectively, are deemed sufficiently accurate. Denoting the <i>j</i>th calibration factor element using the ith subscriber unit by <i>C</i><sub><i>ij</i></sub>, the four elements of the complete calibration factor estimate are determined as <i>C</i><sub>11</sub>, <i>C</i><sub>12</sub>, <i>C</i><sub>23</sub>(<i>C</i><sub>12</sub>/<i>C</i><sub>22</sub>), and <i>C</i><sub>34</sub> (<i>C</i><sub>12</sub>/<i>C</i><sub>22</sub>) (<i>C</i><sub>23</sub>/<i>C</i><sub>33</sub>), respectively. This can be generalized to any set of complete or incomplete SU determinations as follows: Let <i>C</i><sub><i>ij,</i></sub> be the <i>j</i>th calibration factor element determined from the ith subscriber unit and let <i>Q</i><sub><i>ij</i></sub> be the estimate quality associated with the measurement of <i>C</i><sub><i>ij</i></sub> where <i>i</i> = 1, ..., <i>Ns</i> and <i>j</i> = 1, ..., <i>M</i>. With the above-mentioned method of determining signature reliability, <i>Q</i><sub><i>ij</i></sub> has value 0 if the component is deemed unreliable or value 1 if it is deemed reliable. Other methods of mathematically indicating reliability also are possible, as will be clear to those of ordinary skill in the art. The complete calibration vector <b>D</b> = [<i>D</i><sub>1</sub><i>D</i><sub>2</sub> ... <i>D</i><sub><i>M</i></sub>] is determined by performing a joint minimization over <b>D</b> and the complex-valued parameters <i>B</i><sub>1</sub>, ..., <i>B</i><sub><i>Ns</i></sub>. That is, defining <b>B</b> = [<i>B</i><sub>1</sub> ... <i>B</i><sub><i>Ns</i></sub>], <b>D</b> is determined by carrying out the operation<maths id="math0028"><img file="EP1513271A2_D0030.tif" /></maths> This minimization can be carried out using standard methods, for example by performing a grid search over <b>D</b> to approximately locate the global minimum, and then performing a gradient descent to refine the estimate. Alternative methods would be clear to those of ordinary skill in the art.
Other Aspects
0131As will be understood by those of ordinary skill in the art, many changes in the methods and apparatuses as described above may be made without departing from the spirit and scope of the invention. Variations include, without limitation: <ul id="ul0004" list-style="bullet"><li>The method can be modified for estimating uplink signatures or downlink signatures rather than only for determining a calibration factor to use for estimating a downlink weight vector from an uplink weight vector.</li><li>Each uplink signature or downlink signature may be determined as a vector of transfer functions. The methods described herein would be modified to include standard transfer function system identification techniques.</li><li>The uplink or downlink channel signatures may be obtained using formulas other than derived from Eq. (9) or Eq. (11), based on different models for the channels and different estimation techniques.</li><li>The uplink or downlink channel signatures may be described in other than baseband, as would be applicable to the case of the uplink and downlink weights being applied at a base station to signals in other than baseband.</li><li>The methods can be adapted for different types of communication systems, including, without limitation, systems with mobile subscriber units, or systems using different protocols, or both. The methods also can be adapted to non-digital modulated systems, such as the common AMPS FDMA system. The method also can be adapted to non TDMA digital systems. In such cases, the uplink and downlink frequencies are in general different, so that separate uplink and downlink signatures need to be obtained for each subscriber unit. Note that we can then determine downlink weight vectors knowing all the downlink signatures for the subscriber units.</li><li>Different pre-defined calibration signals may be used.</li><li>Different subarray configurations (of more than two antenna elements) may be used, or all the antenna elements in the array calibrated simultaneously.</li><li>More or less of the downlink processing can occur in the subscriber units, depending on how much computation and storage power is available in the subscriber unit and the base station.</li></ul>
0132Several aspects of the invention described herein were described implemented as programs run on one or more DSP devices. Given sufficient economic incentive, DSP functionality, including DSP programs, may be incorporated into special purpose hardware, for example as part of an application specific integrated circuit (ASIC) or as part of a very large scale integrated circuit (VLSI). DSP functionality may also be met by other processors, for example a general purpose microprocessor. In addition, a DSP device running a program may be converted into a special purpose piece of hardware. Thus, the terms digital signal processor, DSP, and DSP device as used herein include these equivalent alternatives.
0133A further aspect of the invention comprises a method for estimating the downlink signature for a remote transceiver, the method comprising: transmitting a set of one or more downlink calibration waveforms from a main transceiver (101) via an array of antenna elements of a transmit antenna array (105) of the main transceiver (101) to the remote transceiver (141), wherein the set of downlink calibration waveforms comprise modulated constant modulus calibration signals selected so that the dot product of any two calibration signals transmitted from any two distinct antenna elements of the transmit antenna array (105) is a pure tone; processing the signals received at the remote transceiver (141) corresponding to the downlink calibration waveforms, the processing to determine downlink signature related signals related to the downlink signature for the remote transceiver (141), wherein the downlink signature related signals are determined in relation to a reference antenna element of the transmit antenna array (105); transmitting the downlink signature related signals from the remote transceiver (141) to the main transceiver (101); and determining the downlink signature of the remote transceiver (141) from the downlink signature related signals received at the main transceiver (101).
0134The above method may further comprise transmitting a set of one or more uplink calibration waveforms from the remote transceiver (141) to the main transceiver (101); processing at the main transceiver (101) the received antenna signals corresponding to the uplink calibration signals transmitted from the remote transceiver (141), the processing determining the uplink signature for the remote transceiver (141); and determining a calibration function from the main transceiver (101) from the uplink and downlink signatures for the remote transceiver (141).
0135Each of the set of downlink calibration waveforms may conform to an air interface standard. The downlink calibration waveforms may be transmitted during silent periods. The downlink calibration waveforms may be transmitted only after a number of idle waveforms are transmitted from the main transceiver.
0136The downlink calibration waveforms transmitted from the main transceiver may be designed to be robust to one or more of the set comprising frequency offset, phase noise, I/Q mismatch, and timing offset. Any component in a signature estimate may be discarded if it corresponds to a weak receive or transmit antenna element relative to the other antenna elements.
0137The uplink calibration signals may be idle traffic waveforms. The uplink calibration signals may be the downlink signature related signals.
0138The above method may further comprise determining at the main transceiver (101) an uplink weight vector for receiving from the remote transceiver (141) by processing received antenna signals received while the remote transceiver (141) is transmitting to the main transceiver (101); and determining at the main transceiver (101) a downlink weight vector for transmitting to the remote transceiver (141) from the determined uplink weights and the calibration function.
0139The downlink calibration waveforms may be selected so that the signals transmitted from each transmit antenna element are substantially orthogonal.
0140The downlink calibration waveforms may comprise combinations of M distinct modulated constant modulus calibration signals, M being the number of antenna elements of the antenna array (105) for which a downlink signature is being determined. Each calibration signal may comprise two segments, denoted a first segment and a second segment, respectively, the two segments being identically timed for each calibration signal, wherein during the first segment time interval, a first set of linear combinations of the calibration signals may be transmitted from each of the antenna elements of the transmit antenna array (105), and during the second segment time interval, a second set of linear combinations of the calibration signals may be transmitted from each of the antenna elements of the transmit antenna array (105).
0141The signals transmitted from each antenna element of the transmit antenna array (105) may be modulated tone signals, the frequencies of the tone signals from distinct arrays being distinct. The downlink signature related signal determining processing step and downlink signature determining step together may comprise cross correlating the signals received at the remote transceiver (141) with each of the tone signals; and normalizing the correlations with the signal transmitted from the reference element.
0142There may be M antenna elements. A first set of linear combinations may be a sum of M distinct tone signals being transmitted from the reference antenna element, and none of the tone signals being transmitted from the other transmit antenna elements, the frequencies of the tone of the distinct tone signals being distinct. A second set of linear combinations may be a different one of the tone signals being transmitted from each of the antenna elements, the frequencies of the tones from the distinct arrays being distinct. Determining the downlink signature may comprise cross correlating the signals received during a first segment at the remote transceiver (141) with each of the first segment signals transmitted by each antenna element to obtain first segment correlations; normalizing the first segment correlations with the first segment correlation with the signal transmitted from the reference element, the normalizing forming first segment normalized correlations; cross correlating the signals receiving during a second segment at the remote transceiver (141) with each of the second segment signals transmitted by each antenna element to obtain second segment correlations; normalizing the second segment correlations with the first segment correlation with the signal transmitted from the reference element, the normalizing forming second segment normalized correlations; and dividing each the second segment normalized correlation with the corresponding first segment normalized correlations to form the downlink signature estimate components.
0143The downlink signature related signals may comprise the downlink signature for the remote transceiver. The array of transmit antenna elements and the one or more receive antenna elements may comprise common antenna elements. The downlink signature estimate may be determined as the maximum likelihood estimate.
0144The communication system may be a cellular system comprising one or more base stations, each having one or more subscriber units, and the main transceiver may be one of the base stations. The remote transceiver may be a subscriber unit of the main transceiver. The air interface standard may be PHS.
0145A yet further aspect of the invention comprises a method for determining a downlink weight vector for a remote transceiver (141), the method comprising: transmitting a set of one or more downlink calibration waveforms from a main transceiver (101) via an array of antenna elements of a transmit antenna array (105) of the main transceiver (101) to the remote transceiver (141); processing the signals received at the remote transceiver (141) corresponding to the downlink calibration waveforms, the processing to determine downlink signature related signals related to a downlink signature for the remote transceiver (141); transmitting the downlink signature related signals from the remote transceiver (141) to the main transceiver (101); transmitting a set of one or more uplink calibration signals from the remote transceiver (141) to the main transceiver (101); processing at the main transceiver (101) the received antenna signals corresponding to the uplink calibration signals transmitted from the remote transceiver (141), the processing determining an uplink signature for the remote transceiver (141); determining an uplink weight vector for the remote transceiver (141); and determining a downlink weight vector for the remote transceiver (141) by: determining a calibration function for the remote transceiver (141) from the determined uplink signature and the received antenna signals corresponding to the downlink signature related signals received at the main transceiver (101), and determining the downlink weight vector from the determined uplink weight vector and the calibration function.
0146A yet further aspect of the invention comprises a wireless communication system comprising a main transceiver (101) comprising an array of transmit antenna elements (105), one or more receive antenna elements (105), and one or more main transceiver signal processors (111, 123) for processing received antenna signals and for forming transmit apparatus signals; and a remote transceiver (141) capable of receiving signals from and transmitting signals to the main transceiver (101) comprising a remote transceiver receive antenna (911) for receiving remote transceiver received signals; a remote transceiver transmit antenna (911) for transmitting remote transceiver transmit signals to the main transceiver (101), and one or more remote transceiver signal processors (1011) for processing remote transceiver received signals and for forming remote transceiver transmit signals, wherein at least one of the main transceiver signal processors (111, 123) is programmed to transmit a set of downlink calibration waveforms from the main transceiver (101) via the transmit antenna array (105) to the remote transceiver (141), wherein the downlink calibration waveforms comprise modulated constant modulus calibration signals selected so that the dot product of any two calibration signals transmitted from any two distinct antenna elements of the transmit antenna array (105) is a pure tone; wherein at least one of the remote transceiver signal processors (1011) is programmed to process the signals received corresponding to the transmitted downlink calibration waveforms at the remote transceiver (141) to determine downlink signature related signals related to the downlink signature for the remote transceiver (141), wherein the downlink signature is determined in relation to a reference antenna element of the transmit antenna array (105); transmit the downlink signature related signals from the remote transceiver (141) to the main transceiver (101), and wherein at least one of the main transceiver signal processors (111, 123) is programmed to process the downlink signature related signals received at the main transceiver (101) from the remote transceiver (141) to determine the downlink signature for the remote transceiver (141).
0147At least one of the remote transceiver signal processors may be programmed to transmit a set of one or more uplink calibration waveforms to the main transceiver, and at least one of the main transceiver signal processors may be programmed to process the received antenna signals corresponding to the uplink calibration waveforms transmitted from the remote transceiver, the processing determining an uplink signature for the remote transceiver; and to determine a calibration function for the main transceiver from the uplink and downlink signatures for the remote transceiver.
0148The main transceiver may further comprise means for uplink adaptive smart antenna processing including linear uplink adaptive smart antenna processing according to an uplink weight vector, and downlink adaptive smart antenna processing including linear downlink adaptive smart antenna processing according to a downlink weight vector, wherein at least one of the main transceiver signal processors may be programmed to determine an uplink weight vector for receiving from the remote transceiver by processing received antenna signals received while the remote transceiver is transmitting to the main transceiver; and determine the downlink weight vector for transmitting to the remote transceiver from the uplink weight vector determined for the remote transceiver and the calibration function.
0149The uplink calibration signals may be idle traffic waveforms. The uplink calibration signals may be the downlink signature related signals.
0150The downlink calibration waveforms may be selected so that the signals transmitted from each transmit antenna elements are substantially orthogonal. The downlink calibration waveforms may be designed to be robust to one or more of the set comprising frequency offset, phase noise, I/Q mismatch, and timing offset.
0151The downlink calibration waveforms may comprise combinations of M distinct modulated constant modulus calibration signals, being the number of antenna elements of the antenna array for which a downlink signature is being determined. Each calibration signal may comprise two segments, denoted a first segment and a second segment, respectively, the two segments being identically timed for each calibration signal. During the first segment time interval, a first set of linear combinations of the calibration signal may be transmitted from each of the antenna elements of the transmit antenna array (105), and during the second segment time interval, a second set of linear combinations of the calibration signals may be transmitted from each of the antenna elements of the transit antenna array (105).
0152The signals transmitted from each antenna element of the transmit antenna array may be modulated tone signals, the frequencies of the tone signals from distinct arrays being distinct. The downlink signature signals determining and the downlink signature determining together may comprise cross correlating the signals received at the remote transceiver (141) with each of the tone signals, and normalizing the correlations with the signal transmitted from the reference element.
0153There may be M antenna elements. The first set of linear combinations may be a sum of M distinct tone signals being transmitted from the reference antenna element, and none of the tone signals being transmitted from the other transmit antenna elements, the frequencies of the tone of the distinct tone signals being distinct. The second set of linear combinations may be a different one of the tone signals being transmitted from each of the antenna element, the frequencies of the tones from the distinct arrays being distinct. The downlink signature signals determining and the downlink signature determining together may comprise cross correlating the signals received during the first segment at the remote transceiver (141) with each of the first segment signals transmitted by each antenna element to obtain first segment correlations; normalizing the first segment correlations with the first segment correlation with the signal transmitted from the reference element, the normalizing forming first segment normalized correlations; cross correlating the signals received during the second segment at the remote transceiver (141) with each of the second segment signals transmitted by each antenna element to obtain second segment correlations; normalizing the second segment correlations with the first segment correlation with the signal transmitted from the reference element, the normalizing forming second segment normalized correlations; and dividing each the second segment normalized correlation with the corresponding first segment normalized correlations to form the downlink signature estimate components.
0154As will be understood by those skilled in the art, the skilled practitioner may make many changes in the methods and apparatuses as described above without departing from the scope of the invention as defined in the claims. For example, the communication station in which the method is implemented may use one of many protocols. In addition, several architectures of these stations and subscriber units are possible. The invention may be applied in a system comprising any antenna-array-equipped transceiver and another transceiver communicating with the array-equipped transceiver. Many more variations are possible.
Contents5
41 sheets
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Every citation, both ways
| Document | Relation | Office | Cited during |
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| CN111133691A | Cited by | China | Search report |
| US8179314B2 | Cited by | United States of America | Applicant |
| EP3641165A4 | Cited by | European Patent Office (EPO) | Search report |
| US8311494B2 | Cited by | United States of America | Applicant |
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| EP0713261A1 | Cites | European Patent Office (EPO) | Search report |
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Priority claims3
| Document | Office | Kind | Date |
|---|---|---|---|
| 83875P | United States of America | – | |
| 8387598 | United States of America | P | |
| 99919979 | European Patent Office (EPO) | A |
Members33
| Document | Office | Kind | |
|---|---|---|---|
| WO9957820A1 | World Intellectual Property Organization (WIPO) | A1 | |
| AU3757399A | Australia | A | |
| EP1078476A1 | European Patent Office (EPO) | A1 | |
| CN1308794A | China | A | |
| JP2002514033A | Japan | A | |
| US2002155818A1 | United States of America | A1 | |
| US2003032423A1 | United States of America | A1 | |
| US2003050016A1 | United States of America | A1 | |
| US6615024B1 | United States of America | B1 | |
| US6654590B2 | United States of America | B2 | |
| US6668161B2 | United States of America | B2 | |
| EP1376891A2 | European Patent Office (EPO) | A2 | |
| EP1376892A2 | European Patent Office (EPO) | A2 | |
| EP1376893A2 | European Patent Office (EPO) | A2 | |
| CN1507168A | China | A | |
| CN1507169A | China | A | |
| CN1507170A | China | A | |
| US2004127260A1 | United States of America | A1 | |
| EP1376891A3 | European Patent Office (EPO) | A3 | |
| EP1376892A3 | European Patent Office (EPO) | A3 | |
| EP1376893A3 | European Patent Office (EPO) | A3 | |
| EP1513271A2This record | European Patent Office (EPO) | A2 | |
| EP1513271A3 | European Patent Office (EPO) | A3 | |
| CN1199371C | China | C | |
| US6963742B2 | United States of America | B2 | |
| CN100352181C | China | C | |
| CN101489236A | China | A | |
| JP4402294B2 | Japan | B2 | |
| EP1376891B1 | European Patent Office (EPO) | B1 | |
| AT489780T | Austria | T | |
| ATE489780T1 | Austria | T1 | |
| DE69942985D1 | Germany | D1 | |
| CN101489236B | China | B |
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Numbers
- Publication
- 1513271
- Application
- 40288995
Titles3
- German
- Verfahren und Vorrichtung zur Bestimmung räumlicher Parameter zur Kalibrierung einer Kommunikationsstation mit Antennenarray
- English
- Method and apparatus for determining spatial signatures for calibrating a communication station having an antenna array
- French
- Procédé et appareil permettant de déterminer des signatures spatiales pour étalonner une station de communications possédant un ensemble d'antennes
Classification
- CPC, 15
- H04L25/03343
- H01Q1/246
- H01Q3/2605
- H01Q3/267
- H04B7/005
- H04B7/0615
- H04B7/0617
- H04B7/0842
- H04B7/0848
- H04L2025/03426
- H04B17/10
- H04B17/11
- H04B17/12
- H04B17/14
- H04B17/221
- IPC, 8
- H01Q1 24
- H01Q3 26
- H04B7 005
- H04B7 04
- H04B7 06
- H04B7 08
- H04B17 00
- H04L25 03
Designated states19
- Contracting states, 19
- Austria
- Belgium
- Switzerland
- Cyprus
- Germany
- Denmark
- Spain
- Finland
- France
- United Kingdom
- Greece
- Ireland
- Italy
- Liechtenstein
- Luxembourg
- Monaco
- Netherlands (Kingdom of the)
- Portugal
- Sweden