Wireless transceiver

The wireless transceiver with phased arrays and beamsteering capabilities addresses signal coverage issues in non-line-of-sight environments, enhancing network connectivity and reducing power consumption while being aesthetically integrated into structures.

GB2638039AActive Publication Date: 2025-08-13VISBAN CO LTD
View PDF 13 Cites 0 Cited by

Patent Information

Application Number
GB2024012862
Authority / Receiving Office
GB · GB
Patent Type
Applications
Current Assignee / Owner
Filing Date
2021-06-28
Publication Date
2025-08-13
Estimated Expiration
2041-06-28

AI Technical Summary

Technical Problem

Wireless communications networks face challenges in providing uniform coverage in areas without line of sight, particularly at higher frequencies, due to atmospheric attenuation and signal degradation through structures, necessitating the development of small, high-gain, steerable, and aesthetically unobtrusive wireless transceivers.

Method used

A wireless transceiver with a planar substrate supporting phased arrays of antennae on opposite faces, connected by vias, allowing for controllable orientation and beamsteering, and configured for analog or digital beamforming, suitable for frequencies up to 300 GHz, including features for reduced power consumption and selective signal retransmission.

Benefits of technology

Enhances signal coverage and reduces interference by providing directional and controllable signal relay, suitable for integration into structures like window glass, improving network connectivity and reducing power consumption.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 00000000_0001_ABST
    Figure 00000000_0001_ABST
  • Figure 00000000_0000_ABST
    Figure 00000000_0000_ABST
Patent Text Reader

Abstract

A wireless transceiver (1) includes a planar substrate (2) having first (3) and second (4) opposite faces. A plurality of first antennae (Rx1, …, RxN) are supported on the first face (3) and a plurality of second antennae (Tx1, .., TxM) are supported on the second face (4). A circuit (7, Fig. 1), supported by the planar substrate (2), is connected to the first antennae (Rx1, …, RxN) and the second antennae (Tx1, …, TxM). The circuit comprises vias (8) formed through the substrate (2). The susbstrate has a minimum transmission of 50% for visible light wavelengths, and wo is suitable for use on windows. The circuit (7) is configured to control the first antennae (Rx1, …, RxN) as a first phased array (5) to receive radio signals (9) and to control the second antennae (Tx1, …, TxM) as a second phased array (6) to retransmit (11) the radio signals received using the first phased array (5). The phased arrays are each controllably orientable. The wireless transceiver may operate in a time multiplexed communication system and is configurable to only serve selected service providers. Varactor diodes may be used to provide phase shifts for beamsteering / beamforming.
Need to check novelty before this filing date? Find Prior Art

Description

Field of the invention The present invention relates to wireless transceivers and methods for operating 5 wireless transceivers, in particular wireless transceivers for radio signals with frequencies exceeding 5 GHz. Background As wireless communications networks move towards higher frequencies to improve w data rates, the corresponding decrease in wavelengths can lead to issues with providing uniform coverage in areas without line of sight to a transmitter, for example, in urban areas, forested areas, inside structures and so forth. As wireless communications networks start to move to frequencies at and above 5 GHz 15 (sometimes termed “fifth generation” or “5G”), the effects of attenuation by atmospheric gasses such as oxygen (02), carbon dioxide (C02) and water vapour (H20) can be significant in some frequency bands. Atmospheric weather effects can exacerbate such issues, for example attenuation may reach in the region of 60 dB.m1. 20 Providing wireless network coverage to the interior of structures such as building and sports stadiums is already an issue for frequencies below 5 GHz. Moving to higher frequencies will cause further degradation of signal intensities penetrating into structures. Improvements in building glass relating to thermal regulation, for example inclusion of thin metallised layers to help keep buildings cooler, may further attenuate 25 radio signals from the exterior. CN 106992807 A describes a signal relay system for 5G communication. The system includes a downlink signal enhancement subsystem which includes a first receiving antenna, a first low noise amplifier module and a first transmitting antenna. The 30 system also includes an uplink signal enhancement subsystem which includes a second receiving antenna, a second low noise amplifier module and a second transmitting antenna. The described signal relay system for 5G communication supports signal through-wall or through-glass. A 5G signal sent by a base station can be amplified and transmitted to an indoor wireless terminal, and a signal of the indoor wireless terminal 35 can be amplified and uploaded to the base station. US 2018 / 139521 Ai describes a transparent wireless bridge for providing access to an optical fiber network, including a first transceiver outside a building and configured to transmit / receive communication signals to and from the optical fiber network. A first glass sheet attached to an outer side of a window includes a first antenna 5 communicatively coupled to the first transceiver and configured to transmit and receive communication signals to and from the first transceiver. A second glass sheet is attached to an inner side of the window and includes a second antenna configured to wirelessly transmit and receive communication signals to and from the first antenna. The wireless bridge also includes a second transceiver located inside the building that is 10 communicatively coupled to the second antenna and configured to wirelessly transmit and receive data to and from the second antenna. US 2015 / 380816 Ai describes an antenna control system and a method capable of consistently maintaining an optimum orientation point between a donor antenna and 15 an adjacent base station. The antenna control system for receiving a signal from a base station includes a donor antenna including an antenna module disposed by being fixed to an inner side of a window glass and configured with an array antenna, a phase shifter including a plurality of transmission lines, and a phase controller configured to control the phase shifter to change an orientation direction of the antenna module. A repeater 20 includes a measuring module for measuring a reception signal received by the antenna module. An analyzing module is for analyzing a signal quality parameter in each orientation direction of the antenna module based on a measurement result of the measuring module. A generating module is for generating an antenna control signal for controlling the orientation direction of the antenna module based on an analysis result 25 of the analyzing module. Summary According to a first aspect of the invention there is provided a wireless transceiver include a planar substrate having first and second opposite faces and having a thickness between the first and second opposite faces. The wireless transceiver also includes a 5 number of first antennae supported on the first face. The wireless transceiver also includes a number of second antennae supported on the second face. The wireless transceiver also includes a circuit supported by the planar substrate and connected to the first antennae and the second antennae. The circuit includes a number of vias formed through the thickness of the planar substrate for transmission of signals 10 between the circuit and the first antennae and / or between the circuit and the second antennae. The circuit is configured to control the first antennae as a first phased array to receive radio signals. The first phased array is directional and controllably orientable within a first range of acute angles to a normal of the first face. The circuit is also configured to control the second antennae as a second phased array to retransmit the 15 radio signals received using the first phased array. The second phased array is directional and controllably orientable within a second range of acute angles to a normal of the second face. The vias may be for interconnection of components of different functionality which may 20 be layered and patterned into devices or heterogeneously integrated as discrete components. The direction in which the first phased array is oriented may correspond to an axis of a principle radiation lobe of a first radiation pattern of the first phased array. The 25 direction in which the second phased array is oriented may correspond to an axis of a principle radiation lobe of a second radiation pattern of the second phased array. The first and second phased arrays may be controllably orientable in the sense that the directionally of the first and second phased arrays is not fixed, and may be 30 independently varied in use by the circuit. The circuit may be connected to the first antennae and the second antennae using physical, hard-wired links such as, for example, conductive traces, micro-strip lines, conductive vias and so forth. Herein an acute angle means between o and 90 degrees, inclusive of 0 and 90 degrees. The first range of acute angles may include all, or less than all, of a first hemisphere directed away from the first face. In other words, the first range of acute angles need not include the entire first hemisphere. The second range of acute angles may include 5 all, or less than all, of a second hemisphere directed away from the second face. The first and second hemispheres may in combination define a complete sphere. The device may provide a base station of a w ireless communication network. The device may provide a relay station of a wireless communication network. The device 10 may provide a transceiver of a wireless communication network. The planar substrate may be a flexible film or sheet. The first antennae may be disposed directly on the first face. One or more dielectric 15 layers may be disposed between the first antennae and the first face. The second antennae may be disposed directly on the second face. One or more dielectric layers may be disposed between the second antennae and the second face. The first phased array may be controllably orientable in use to any angle within the first 20 range. The first range may extend to encompass an entire hemisphere having a base parallel to the first face. However, the first range may encompass a range of angles which is less than a hemisphere. The first range may be less than or equal to 2n steradians, less than or equal to 3.1 / 4 steradians, less than or equal to 1 steradians, or less than or equal to 1 / 2 steradians. The first range maybe substantially cone shaped. 25 The first range may be substantially horn-shaped. The first range may be substantially fan-shaped. The first phased array maybe controllably orientable in use about first and / or second axes. The first and second axes may be orthogonal. The first and second axes may 30 correspond, when the wireless transceiver is installed, to horizontal and vertical directions with respect to gravity7. The first phased array may be controllably orientable in use about azimuthal and / or polar angles of a spherical polar coordinate system having a zenith oriented at an acute angle to the normal of the first face. The zenith need not be perpendicular to the first face. The zenith need not be parallel to the first 35 face. The second phased array may be controllably orientable in use to any angle within the second range. The second range may extend to encompass an entire hemisphere having a base parallel to the second face. However, the second range may encompass a range of angles which is less than a hemisphere. The second range may be less than or 5 equal to 2n steradians, less than or equal to 371 / 4 steradians, less than or equal to n steradians, or less than or equal to ji / 2 steradians. The second range may be substantially cone shaped. The second range may be substantially horn-shaped. The second range may be substantially fan-shaped. 10 The second phased array may be controllably orientable in use about second and / or second axes. The second and second axes may be orthogonal. The second and second axes may correspond, when the wireless transceiver is installed, to horizontal and vertical directions with respect to gravity. The second phased array may be controllably orientable in use about azimuthal and / or polar angles of a spherical polar coordinate 15 system having a zenith oriented at an acute angle to the normal of the second face. The zenith need not be perpendicular to the second face. The zenith need not be parallel to the second face. The circuit may include one or more components supported on the first face. The 20 circuit may include one or more components supported on the second face. The planar substrate may include, or take the form of, a laminate of two or more layers. The circuit may include one or more components supported within the laminate planar substrate. 25 The planar substrate may be transparent. Transparent may correspond to the planar substrate having a minimum transmission of 50% for visible wavelengths. A portion of the wireless transceiver supporting the first and / or second antennae maybe transparent or opaque. 30 The transparent planar substrate may include, or be formed from, glass. The transparent planar substrate may include, or take the form of, one or more plastics including but not limited to polycarbonate (PC), polyimide (PI), polyethylene terephthalate (PET), polyethylene naphthalate PEN, cyclo-olefin polymer (COP), or any 35 other polymer having sufficient mechanical strength to support the circuit and sufficient transparency to be seen through. The planar substrate may include, or take the form of, a laminate including one or more layers of glass and / or plastic and / or adhesive. The laminate may include one or more conductor layers. Conductor layers of the laminate may be internal (i.e. between the 5 first and second faces), and / or external (i.e. supported on the first and / or second faces). One or more layers of the laminate may support one or more components of the circuit. The circuit may include a first microstrip line supported on the first face and a second 10 microstrip line support on the second face. The first and second microstrip lines may be connected by corresponding vias. Vias connecting between microstrip lines supported on the first and second faces may be impedance matched to the microstrip lines. The circuit may include a number of first microstrip lines supported on the first face. The circuit may include a number of second microstrip lines supported on the 15 second face. Any microstrip line may be connected by vias extending through the planar substrate to one or more microstrip lines and / or other components of the circuit supported on the opposite side of the planar substrate. Compared to, for example, radiative transfer or capacitive coupling between the first 20 and second faces, such physical connections do not require that the planar substrate is formed from a material or materials having loss dielectric loss properties. Though not required, materials having loss dielectric loss properties may still be used. The circuit may include one or more components flip-chip bonded to the planar 25 substrate. One or more components of the circuit may be flip-chip bonded to the first face. One or more components of the circuit may be flip-chip bonded to the second face. One or more components of the circuit may be flip-chip bonded to the first face and one or more further components may be flip-chip bonded to the second face. 30 The one or more components may be flip-chip bonded to the planar substrate in accordance with the Heterogeneous Integration Roadmap, HIR. The Heterogeneous Integration Roadmap (HIR) is a set of guidelines developed for silicon systems-in-package (SiP) technologies. HIR may refer to, for example, the guidelines set out in the publication of the HIR 2019 edition. Although established for semiconductor / flat panel 35 device fabrication using substrates for packaging semiconductor / flat panel devices, to the best of the inventor’s knowledge the methods of the HIR have not previously been adapted to heterogeneous integration on substrates other than printed circuit boards, for example on glass and / or transparent plastic substrates. Although HIR may include the use of glass substrates as intermediate carriers, we are unaware of total systems integration of the form proposed herein being conducted on glass. The wireless 5 transceiver may include no printed circuit board substrates. Although the wireless transceiver may include no printed circuit board substrates, it may be connected to separately packaged devices, for example a power supply, which may include printed circuit board substrates. 10 The circuit may include an analog circuit configured for analog beamforming of the first phased array and / or analog beemsteering of the second phased array. The analog circuit may receive and re-transmit the radio signals without conversion to the digital domain. 15 The analog circuit may include a first varactor diode corresponding to each first antenna of the first phased array. Each first varactor diode may be configured to apply a phase shift to a signal received from the respective first antenna. The circuit may be configured to control the plurality of first antennae as the first phased array by controlling the capacitances of the first varactor diodes. The circuit may be configured 20 to control the capacitances of the first varactor diodes by controlling a reverse bias applied to each first varactor diode. The analog circuit may include a second varactor diode corresponding to each second antenna of the second phased array. Each second varactor diode may be configured to 25 apply a phase shift to a signal being transmitted to the respective second antenna. The circuit may be configured control the plurality of second antennae as the second phased array by controlling the capacitances of the second varactor diodes. The circuit may be configured to control the capacitances of the second varactor diodes by controlling a reverse bias applied to each second varactor diode. 30 The circuit may include one or more digital circuits configured for digital beamforming of the first phased array and / or digital beamsteering of the second phased array. The circuit may include a digital channel corresponding to each of the first antennae. The circuit may include a digital channel corresponding to each of the second antennae. The circuit may also include a down-conversion section configured to convert signals received from the first antennae from a transmit band to a baseband. The circuit may also include one or more digital circuits configured to perform digital beamforming on the down converted signals to obtain a summed signal, and to perform beam-steering 5 on the summed signal to generate and output a plurality of transmit signals. The circuit may also include an up-conversion section configured to convert the transmit signals from the baseband to the transmit band and to output the up-converted transmit signals to corresponding second antennae. 10 Dow and up-conversion refer to signal carrier frequencies. Down conversion and / or up-conversion may utilise standard heterodyning techniques and apparatuses. Baseband may refer to a carrier frequency at or close to zero frequency, or equivalently the absence of a carrier frequency. Conversion to baseband may allow use of lower performance analog-to-digital convertors (ADCs). 15 The plurality of first antennae may be arranged into a number of first sub-arrays. Each first sub-array may include two or more of the first antennae. The second antennae may be arranged into a plurality of second sub-arrays. Each second sub-array may include two or more of the second antennae. The circuit may be configured for hybrid 20 beamforming and / or beamsteering. The circuit may include a digital channel corresponding to each of the first sub-arrays. The circuit may include a digital channel corresponding to each of the second sub-arrays. The circuit may also include a number of first analog circuits. Each first analog circuit 25 may be configured to perform analog beamforming on signals received from a respective first sub-array. The circuit may also include a number of second analog circuits. Each second analog circuit may be configured to perform analog beamsteering for a respective second sub-array. The circuit may also include one or more digital circuits configured to perform digital beamforming on signals received from the first 30 analog circuits to obtain a summed signal, and to perform beam-steering on the summed signal to generate and output a number of transmit signals to respective second analog circuits. Each first analog circuit may include a first varactor diode corresponding to each first 35 antenna of the respective first sub-array. Each first varactor diode may be configured to apply a phase shift to a signal received from the respective first antenna. Each first analog circuit may be configured to perform analog beamforming on signals received from the respective first sub-array by controlling the capacitances of the corresponding first varactor diodes. Each first analog circuit may be configured to control the capacitances of the corresponding first varactor diodes by controlling a reverse bias 5 applied to each first varactor diode. Each second analog circuit may include a second varactor diode corresponding to each second antenna of the respective second sub-array. Each second varactor diode may be configured to apply a phase shift to a signal being transmitted to the respective second 10 antenna. Each second analog circuit may be configured to perform analog beamsteering for a respective second sub-array by controlling the capacitances of the corresponding second varactor diodes. Each second analog circuit may be configured to control the capacitances of the corresponding second varactor diodes by controlling a reverse bias applied to each second varactor diode. 15 The circuit may also include a down-conversion section configured to convert signals received from the first analog circuits from a transmit band to baseband for reception by the one or more digital circuits. The circuit may also include an up-conversion section configured to convert the transmit signals output from one or more digital 20 circuits from the baseband to the transmit band for reception by a respective second analog circuit. The circuit may include one or more filters. A filter may include, or take the form of, a film bulk acoustic resonator, FBAR. A filter may include, or take the form of, a thin-25 film bulk acoustic resonator, TFBAR. A filter may include, or be formed from, metamaterials. Metamaterial filters suitable for use in the wireless transceiver include, without being limited to, metamaterial filters described in “Metamaterial Structure Inspired Miniature RF / Microwave Filters”, Abdullah Alburaikan, PhD Thesis (2016), The University of Manchester, https: / / www.escholar.manchester.ac.uk / uk-ac-man- 30 scw:3O53o8, (see in particular pages 56 onwards). The wireless transceiver may be configured for a radio signal in accordance with the definition of 5G used in “5G Evolution: A View on 5G Cellular Technology Beyond 3GPP Release 15”, Amitabha Ghosh, Andreas Maeder, Matthew7 Baker and Devaki 35 Chandramouli, IEEE Access (2019), Vol. 7, pg 127639, DOI 10.1109 / ACCESS.2019.2939938. The wireless transceiver may be configured for radio signals having carrier frequencies between and including 5 GHz and 300 GHz. The wireless transceiver maybe configured for radio signals having carrier frequencies between and including 30 GHz 5 and 300 GHz. The wireless transceiver may be configured for radio signals having carrier frequencies within one or more of the K (20 GHz to 40 GHz), L (40 GHz to 60 GHz) and M (60 GHz to 100 GHz) bands defined by NATO. The wireless transceiver may be configured for radio signals having carrier frequencies within one or more of the Ka (27 GHz to 40 GHz), V (40 GHz to 75 GHz) and W (75 GHz to no GHz) bands 10 defined by the Institute of Electrical and Electronics Engineers (IEEE). The wireless transceiver may be configured for radio signals having carrier frequencies exceeding 300 GHz. The wireless transceiver may be configured for radio signals having carrier frequencies equalling or exceeding 1 THz. The wireless transceiver may be configured for a radio signal which is a 5G signal. The wireless transceiver may be configured for a 15 radio signal which is a 6G signal. The wireless transceiver may be configured for a radio signal which is a 7G signal. The wireless transceiver may also include a number of third antennae supported on the second face and a number of fourth antennae supported on the first face. The circuit 20 may also be configured to control the third antennae as a third phased array to receive radio signals. The third phased array may be directional and controllably orientable within a third range of acute angles to a normal of the second face. The circuit may also be configured to control the plurality of fourth antennae as a fourth phased array to retransmit the radio signals received using the third phased array. The fourth phased 25 array may be directional and controllably orientable within a fourth range of acute angles to a normal of the second face. In this way, the device may relay radio signals from the first face to the second face using the first and second antennae, and may relay signals in the opposite direction 30 using the third and fourth antennae. On the first face, the first antennae may provide receiving, Rx, antennae and the fourth antennae may provide transmitting, Tx, antennae. On the second face, the third antennae may provide receiving, Rx, antennae and the second antennae may provide transmitting, Tx, antennae. 35 Any features described in relation to the first and / or second antennae may be duplicated for, or used in combination with, the third and / or fourth antennae. Any features described in relation to relaying radio signals from the first to second antennae may be duplicated for, or used in combination with, relaying radio signals from the third to fourth antennae. The beamforming and / or beam steering for the third and fourth phased arrays may be implemented using analog, digital, or hybrid approaches. 5 The circuit may include a first circuit configured to control relaying radio signals from the first to second antennae and a second circuit which may be the same as the first circuit except that the second circuit may be configured to control relaying radio signals from the third to fourth antennae. 10 The third antennae may be disposed directly on the second face. One or more dielectric layers may be disposed between the third antennae and the second face. The fourth antennae may be disposed directly on the first face. One or more dielectric layers may be disposed between the fourth antennae and the first face. 15 The circuit may be configured, during a first period of an alternating cycle, to control the first antennae as the first phased array to receive radio signals, and to control the second antennae as the second phased array to retransmit the radio signals received using the first phased array. The circuit may be configured, during a second period of the alternating cycle, to control the plurality of second antennae as the second phased 20 array to receive radio signals, and to control the plurality of first antennae as the first phased array to retransmit the radio signals received using the second phased array. In this way, the first and second antennae may be multiplexed to function as transceivers. During the first period radio signals may be relayed in one direction, and 25 during the second period the direction of relaying radio signals may be reversed. The alternating cycle of first and second periods may be repeated whilst the wireless transceiver is active. The first and second periods may have the same length. The first and second periods may have different lengths. 30 The radio signals transmitted away from the second face may have a lower power than radio signals transmitted away from the first face. For example, the first face may be oriented towards the outside of a building whilst the second face is oriented towards an interior of the building. Using reduced power levels for radio signals retransmitted inside the building, compared to those required for transmission back to the wider 35 external network, may reduce power consumption of the device. Using reduced power levels for signals retransmitted inside the building may reduce interference with other electronics devices and / or equipment inside the building. Using reduced power levels for signals retransmitted inside the building may provide reassurance to any building occupants / users concerned about the intensity of radio signals. 5 The first and / or second antennae may include a dielectric material having a losstangent which is less than a loss-tangent of the planar substrate. The dielectric material may have a loss-tangent which is less than a loss-tangent of the planar substrate at a frequency of 28 GHz. A loss tangent of the planar substrate may 10 be two times, three times, five times or ten times greater than a loss tangent of a dielectric material included in the first and / or second antennae. A loss tangent of the planar substrate may be two times, three times, five times or ten times greater than a loss tangent of a dielectric material included in the first and / or second antennae at a frequency of 28 GHz. The dielectric material may be disposed between ground and 15 radiation planes of the first and / or second antennae. The third and / or fourth antennae may include the dielectric material. The dielectric material may be disposed between ground and radiation planes of the antennae. In this way, the device may optionally utilise low-loss dielectric materials for antennae, 20 whilst the direct, hard wired connections between the antennae and the circuit mean that the planar substrate is not required to be formed from low-loss materials, and may instead be formed from relatively high dielectric-loss materials such as silica glass and / or polymers. This may reduce the cost and manufacturing complexity, for example by enabling use of high-loss but flexible polymer films suitable for roll-to-roll 25 manufacturing methods. The dielectric material may include one or more of inorganic oxides, silica, alumina, an organic material, a fluoropolymer, pohtetrafluoroethylene and nanocomposite. The dielectric material may take the form of a film may have a thickness of between and 30 including 1 pm and 1 mm. The dielectric material maybe include amorphous and / or crystalline regions of the same material. Where the dielectric material exhibits polymorphism, the dielectric material may include two or more different polymorphs, and optionally amorphous material. 35 The dielectric material may have a loss-tangent of less than or equal to 10 at a frequency of 28 GHz. The dielectric material may have a loss-tangent of less than or equal to io *, 10'5 or io 6 at a frequency of 28 GHz. The dielectric material may have a loss-tangent of greater than or equal to 1O’2, to1 or 1 at a frequency of 28 GHz. The planar substrate may have a loss tangent of greater than or equal to 10^ at a frequency of 28 GHz. 5 The first antennae and / or the second antennae maybe formed using photolithography. The third antennae and / or the fourth antennae may be formed using photolithography. The third antennae and / or the fourth antennae may include the same dielectric material as the first antennae and / or the second antennae. 10 The circuit may define two or more passbands for receiving and retransmitting radio signals. The circuit may be configurable such that one or more of the passbands may be disabled. Different passbands may correspond to different service providers of a wireless communications network. Service providers may be mobile telephone, cell 15 service and / or data service providers. Each of the two or more passbands may include one or more analog filters. Analog filters may include, or take the form of, film bulk acoustic resonators, FBAR. Analog filters may include, or take the form of, thin-film bulk acoustic resonators, TFBAR. The 20 outputs of each passband provided by analog filters may be grounded to disable that passband. Passband outputs may be selectively grounded by respective switches controlled by the circuit. Each of the two or more passbands may include one or more digital filters. Digital 25 filters may be provided by a digital circuit configured to perform beamforming and / or beamsteering. Digital filters may be provided by a dedicated digital filtering circuit. The circuit may be configurable such that each of the two or more passbands is independently enabled or disabled in a one-time configuration process. The one-time 30 configuration process may include, or take the form of, programming a programmable read-only memory (programmable ROM). In an initial configuration of the wireless transceiver, each passband output may be grounded by a fuse connection, and the onetime configuration process may include, or take the form of, blowing the fuse connections corresponding to passbands which are to be enabled. The circuit may be configurable such that each of the two or more passbands may be independently enabled or disabled in use. The circuit may be configured to receive passband modification messages comprising 5 instructions to enable one or more passbands and / or to disable one or more other passbands. Passband modification messages may be received through a wireless network which the wireless transceiver forms a part or portion of. Passband modification messages may be received as radio signals. Passband modification messages may be received within one of the two or more passbands defined by the 10 circuit. Passband modification messages may be received within an additional passband which is always enabled. The wireless transceiver may be configured to receive and retransmit radio signals within a time multiplexed wireless communications system. The circuit may be 15 configurable to only retransmit radio signals corresponding to one or more selected service providers. The circuit may be configured to identify the source of a received radio signal, for example using packet header data. In response to the source of a received radio signal corresponds to one of the selected service providers, the circuit may be configured to control the plurality of second antennae as a second phased array 20 to retransmit that received radio signal. In response to the source of a received radio signal does not correspond to one of the selected service providers, the circuit may not retransmit that received radio signal. The selected service providers may be updatable in use. The circuit may be configured 25 to receive selected service provider modification messages comprising instructions to enable retransmission of radio signals originating from one or more service providers and / or to disable retransmission of radio signals originating from one or more other service providers. 30 Selected service provider modification messages may be received through a wireless network which the wireless transceiver is a part of. Selected service provider modification messages may be received as radio signals. The wireless transceiver according to the first aspect may include features 35 corresponding to any features of the wireless transceiver according to the second aspect and / or the wireless transceiver according to the third aspect. According to a second aspect of the invention, there is provided a w ireless transceiver including a number of first antennae and a number of second antennae. The wireless transceiver also includes a circuit connected to the first antennae and the second 5 antennae. The circuit is configured to control the plurality of first antennae as a first phased array to receive radio signals. The first phased array is directional and controllably orientable within a first range of angles. The circuit is also configured to control the plurality of second antennae as a second phased array to retransmit the radio signals received using the first phased array. The second phased array is 10 directional and controllably orientable within a second range of angles to a normal of the second face. The circuit defines two or more passbands for receiving and retransmitting radio signals. The circuit is configurable such that one or more of the passbands may be disabled. 15 The wireless transceiver according to the second aspect may include features corresponding to any features of the wireless transceiver according to the first aspect and / or the wireless transceiver according to the third aspect. The wireless transceiver may also include a planar substrate having first and second 20 faces. The first antennae may be supported on the first face. The second antennae may be supported on the second face. The circuit may be supported on and / or within the planar substrate. The first range of angles may be a first range of acute angles to a normal of the first face. The second range of angles may be a second range of acute angles to a normal of the second face. 25 Different passbands may correspond to different service providers of a wireless communications network. Service providers may be mobile telephone, cell service and / or data service providers. 30 Each of the two or more passbands may include, or take the form of, one or more analog filters. Analog filters may include, or take the form of, film bulk acoustic resonators, FBAR. Analog filters may include, or take the form of, thin-film bulk acoustic resonators, TFBAR. The outputs of each passband provided by analog filters may be grounded to disable that passband. Passband outputs may be selectively 35 grounded by respective switches controlled by the circuit. Each of the two or more passbands may include, or take the form of, one or more digital filters. Digital filters may be provided by a digital circuit configured to perform beamforming and / or beamsteering. Digital filters may be provided by a dedicated digital filtering circuit. 5 The circuit may be configurable such that each of the two or more passbands may be independently enabled or disabled during a one-time configuration process. The onetime configuration process may include, or take the form of, programming a programmable read-only memory (programmable ROM). 10 In an initial configuration of the wireless transceiver, each passband output may be grounded by a fuse connection, and the one-time configuration process may include, or take the form of, blowing the fuse connections corresponding to passbands which are to be enabled. 15 The circuit may be configurable such that each of the two or more passbands may be independently enabled or disabled in use. The circuit may be configured to receive passband modification messages comprising instructions to enable one or more passbands and / or to disable one or more other passbands. Passband modification 20 messages may be received through a wireless network which the wireless transceiver is a part of. Passband modification messages may be received as radio signals. Passband modification messages maybe received -within one of the two or more passbands defined by the circuit. Passband modification messages may be received within an additional passband which is always enabled. 25 According to a third aspect of the invention, there is provided a wireless transceiver including a number of first antennae and a number of second antennae. The wireless transceiver also includes a circuit connected to the first antennae and the second antennae. The circuit is configured to control the first antennae as a first phased array 30 to receive radio signals. The first phased array is directional and controllably orientable within a first range of angles. The circuit is also configured to control the second antennae as a second phased array to retransmit the radio signals received using the first phased array. The second phased array is directional and controllably orientable within a second range of angles to a normal of the second face. The wireless transceiver 35 is configured to receive and retransmit radio signals within a time multiplexed wireless communications system. The circuit is configurable to only retransmit radio signals corresponding to one or more selected service providers. The wireless transceiver according to the third aspect may include features 5 corresponding to any features of the wireless transceiver according to the first aspect and / or the wireless transceiver according to the second aspect. The wireless transceiver may also include a planar substrate having first and second faces. The first antennae may be supported on the first face. The second antennae may 10 be supported on the second face. The circuit may be supported on and / or within the planar substrate. The first range of angles may be a first range of acute angles to a normal of the first face. The second range of angles may be a second range of acute angles to a normal of the second face. 15 The circuit may be configured to identify the source of a received radio signal, for example using packet header data. In response to the source of a received radio signal corresponds to one of the selected service providers, the circuit may be configured to control the second antennae as a second phased array to retransmit that received radio signal. In response to the source of a received radio signal does not correspond to one 20 of the selected service providers, the circuit may not retransmit that received radio signal. The selected service providers may be updatable in use. The circuit may be configured to receive selected service provider modification messages comprising instructions to 25 enable retransmission of radio signals originating from one or more service providers and / or to disable retransmission of radio signals originating from one or more other service providers. Selected service provider modification messages may be received through a wireless 30 network which the wireless transceiver is a part of. Selected service provider modification messages may be received as radio signals. A structure may include one or more wireless transceivers according to any one of the first, second and / or third aspects. The structure may include, or take the form of, a building. The building may be a commercial, residential or civic building. The structure may include, or take the form of, an item of street furniture such as, for example, a street light, a bench, a bus shelter, a signpost or sign, a parking meter, a safety barrier, an advertising hoarding or 5 billboard, and so forth. The structure may include a window having interior and exterior surfaces, and the wireless transceiver may be attached to the interior surface of the window. 10 According to a fourth aspect of the invention, there is provided a method of using a wireless transceiver according to any one of the first, second and / or third aspects or a structure incorporating a wireless transceiver according to any one of the first, second and / or third aspects. The method includes controlling the first antennae as a first phased array to receive radio signals. The first phased array is directional and 15 controllably orientable within a first range of angles. The method also includes controlling the second antennae as a second phased array to retransmit the radio signals received using the first phased array. The second phased array is directional and controllably orientable within a second range of angles. 20 The method may include features corresponding to any features of the wireless transceiver according the first aspect, the wireless transceiver according the second aspect and / or the wireless transceiver according to the third aspect. Brief Description of the drawings Certain embodiments of the present invention will now be described, by way of example, with reference to the accompanying drawings in which: Figure i is a schematic cross-section of a wireless transceiver attached to a window; 5 Figure 2 is a schematic illustration of using the wireless transceiver of Figure 1 for directional reception and transmission of radio signals; Figure 3 is a schematic plan view of a first example of an antenna array layout; Figure 4 is a schematic plan view of a second example of an antenna array layout; Figure 5 is a schematic plan view of a third example of an antenna array layout; 10 Figure 6 is a schematic plan view of a fourth example of an antenna array layout; Figure 7 is a schematic cross-section of a first example of an antenna stack; Figure 8 is a schematic cross-section of a second example of an antenna stack; Figure 9 is a schematic cross-section of a third example of an antenna stack; Figure 10 is a schematic block diagram of a circuit for providing analog beamforming 15 and beamsteering; Figure 11 is a schematic block diagram of a circuit for proriding digital beamforming and beamsteering; Figure 12 schematically illustrates data buffers used in some implementations of the circuit of Figure 11; 20 Figure 13 is a schematic block diagram of a first, receiving, sub-array used in the circuit of Figure 14; Figure 14 is a schematic block diagram of a circuit for providing a hybrid of analog and digital beamforming and beamsteering; Figure 15 is a schematic block diagram of a second, transmitting, sub-array used in the 25 circuit of Figure 14; Figure 16 schematically illustrates a second wireless transceiver; Figure 17 schematically illustrates an alternative configuration of the second wireless transceiver of Figure 16; Figure 18 is a schematic block diagram of a switchable filter bank; 30 Figure 19 is a schematic block diagram of a passband filter which may be disabled by blowing a fuse; Figure 20 is a schematic block diagram of a passband filter which may be enabled by blowing a fuse; Figure 21 is a schematic block diagram of a portion of a second circuit for providing 35 analog beamforming and beamsteering; Figure 22 is a schematic block diagram of a portion of a third circuit for providing analog beamforming and beamsteering; and Figure 23 is a schematic block diagram of a portion of a fourth circuit for providing analog beamforming and beamsteering. 5 Detailed description In the following description, like parts are denoted by like reference numerals. The problems of line-of-sight to a base station and atmospheric and / or weather 10 attenuation of radio signals may be addressed by adding further wireless transceivers to a wireless network. However, in order to do this in practice, wireless transceivers are required which are small, high-gain, steerable and inexpensive and which do not require large amounts of power. The direction of the Poynting vector of radio signals, especially for non-line-of-sight environments, is important to maximising quality of 15 service performance. It is also desirable that the wireless transceivers used should be aesthetically unobtrusive, i.e. small and preferably easy to disguise and / or integrate into an environment. The present specification describes wireless transceivers which address, amongst other problems, these issues. 20 The current infrastructure for wireless communications is expected to encounter limitations and underlying issues which will make it difficult to scale towards higher frequencies, for example towards (or beyond) mm-waves. As the demand for higher bandwidth is driven ever upwards for new services such as mobile data, content streaming and so forth, the size of an area (or “cell”) covered by a single transmitter 25 tower had become increasingly small. This trend is expected to continue for frequencies above 5 GHz, often referred to as “5G”. The current conventional infrastructure of cell towers is already approaching its limits, and a new approach is required as wireless communications networks increasing move towards a line-of-sight, point-to-multipoint system operating at high frequencies and high data rates. Such 30 high frequency communications, for example mm-wave, may also benefit considerably from the use of massively multi-input-multiple-output antenna architectures to allow beam-forming and beam-steering. Highly directional operation may help to avoid issues with multi-path interference. 35 Driven by consumer demands for increasingly diverse and immersive mobile data services, for example High-definition video streaming, cloud-based services, augmented reality and so forth, next generation wireless communication networks and systems will need to offer high throughput, low latency and reliability to remain competitive. For example, beyond the currently planned infrastructure to move up to 6 GHz, there is an additional 200 GHz of spectrum available at mm-wave frequencies 5 that is under-utilized, and which could potentially support data rates in the region of 10 to 50 Gb per second. Wide spectrum does not mean it is unlimited, and other services will also utilize the same, or neighbouring, bands. If significant portion of spectrum is exclusively granted 10 to a single independent mobile network operator, there will be inefficiency of spectrum utilization. An average consumer may utilise cm-waves with spectrum ranging from 3 to 30 GHz, and between 30 and 40 GHz (up to 300 GHz) as a mm-wave spectrum. There is also spectrum sharing at 60 to 70 GHz for mission-critical services, which includes smart city infrastructure, healthcare, self-driving cars, and many other 15 applications. Such services should preferably have access to a continuous high-speed, low-latency connection, and shared spectrum has the potential to help ensure that devices are always connected. The present specification is concerned with wireless transceivers for relaying radio 20 signals, in particular radio signals exceeding 5 GHz used for data transmission in wireless communications networks (for example mobile / cell services). Amongst other features, the wireless transceivers described herein are compact and low profile, allowing for straightforward attachment to, or integration into, structures in a built environment. Wireless transceivers according to the present specification may be 25 particularly suitable for attachment to, or integration into, window glass, and may retain sufficient transparency to be see-through to human observers. These features allow wireless transceivers to be added to structures in order to improve range, reduce blind spots, relay signals to the interior of structures or underground (for 30 example metro transit systems), and so forth. Referring to Figures 1 and 2, a wireless transceiver 1 is shown. The wireless transceiver 1 includes a planar substrate 2 having first 3 and second 4 35 opposite faces and having a thickness t between the first and second opposite faces 3,4. A first array 5 including a number N of first antennae Rx1;..., Rxn,..., Rxn is supported on the first face 3 and a second array 6 including a number M of second antennae Txi, ..., Txm,..., Txm is supported on the second face 4. A circuit 7 is supported by the planar substrate, and the circuit 5 is electrically connected to the N first antennae Rxn and the M second antennae Txm. The circuit 7 includes a number of vias 8 (Figure 7) formed 5 through the thickness t of the planar substrate 2 for transmission of radio frequency electrical signals between the circuit 7 and the first array 5 of first antennae Rxn and / or between the circuit 7 and the second array 6 of second antennae Txm. The wireless transceiver 1 provides a transceiver (alternatively a “base station” or a 10 “relay station”) of a wireless communication network, for example a network used by mobile phones and similar devices. The circuit 7 is configured to control the array 5 of first antennae Rxn as a first phased array 5 to receive incoming radio signals 9. The first phased array 5 is directional and 15 controllably orientable within a first range Aft of acute angles Or to a normal 10 of the first face 3. The direction in which the first phased array 5 is oriented may correspond to an axis of a principle radiation lobe of a first radiation pattern of the first phased array 5. The first range Aft may range between and inclusive of 0 and 90 degrees, i.e. 0 <Aft <90. The first Aft range may include all, or less than all, of a first hemisphere 20 directed away from the first face 3. For example, the first range may encompass an angular range which is less than or equal to 2n steradians, less than or equal to 3n / 4 steradians, less than or equal to n steradians, or less than or equal to n / 2 steradians. The first range Aft may be substantially circularly symmetric about a normal 10 to the 25 first face to, for example first range Aft may be cone shaped, horn-shaped and so forth. However, the range Aft need not be circularly symmetric about a normal 10 to the first face 3, for example the first range Aft may be substantially fan-shaped within a plane. In general, depending on the configuration of the first antennae Rxn forming the first phased array 5, the first phased array 5 may be controllably orientable in use about first 30 and / or second axes. For example, if a polar coordinate system (Or, <pr) is defined relative to the normal 10, then the maximum (hmax and minimum polar angles (hmm to which the first phased array 5 may be steered in use may be a function of the azimuthal angle <p about the normal 10, i.e. 0Rmm((pR~) <fh <ORma^ipsO. When the wireless transceiver 1 is installed, the planar substrate 2 may be oriented at any angle. For 35 example, the planar substrate 2 may be installed vertically with respect to gravity, such that the normal 10 lies in a horizontal plane. The circuit 7 is also configured to control the array 6 of second antennae Txm as a second phased array 6 to transmit outgoing radio signals 11 which correspond to retransmissions of the radio signals 9 received using the first phased array 5. The second 5 phased array 6 is directional and controllably orientable within a second range A02 of acute angles 0rto a normal 11 of the second face 4. Aside from being oriented in the opposite hemisphere to the first range A0t, the second phased array 6 and the second range A02 may be configured relative to the second normal 12 in any way described in relation to the first phased array 5 and the first range A0t relative to the first normal 10. 10 The first 5 and second 6 phased arrays are controllably orientable in the sense that the orientation directions of the first and second phased arrays 5, 6 is not fixed, and may be independently varied in use by the circuit 7. For example, if a spherical polar coordinate system is defined with a zenith aligned with the first normal 10, then an 15 orientation direction (central axis of radiation lobe) for the first phased array 5 may be (Or, (Pr), and an orientation direction (central axis of radiation lobe) for the second phased array 6 may be (Or, (pr) (with 0 <Or <:1 / 2 and 71 / 2 <Or £ n, and possibly further constrained by as a function of azimuthal angle to respective maxima and minima Onmm((pR) <0r< 0Rmad((pR), and 0Tmin((pT) <0t< OTma&PT)). 20 The direction (Or, (Pr) is controlled by adjusting relative phases used by the circuit 7 to sum the radio signals 9 received by the first antennae Rxb ..., Rxn. Referring in particular to Figure 2, if a spacing of the first antennae Rx„ within the first phased array 5 is (h, then a radio signal 9 incident at an angle Or will have a path difference of 25 dj.cosffe) between adjacent first antennae Rxn, Rxn+i. Figure 2 shows the path difference <4.cos(ft?) in a plane corresponding to the azimuthal angle (p for simplicity of illustration. The path difference di.cos(ft?) corresponds to a phase difference, and by controlling the phase differences applied to signals from each first antenna Rxn, the circuit 7 may select for constructive interference of radio signals 9 incident from a 30 particular direction (Or, (pn), whilst radio signals 9 incident from other directions will experience attenuation by destructive interference. In addition to the phase shifts used by the circuit 7 for the summation, the overall shape of the effective radiation pattern of the first phased array 5 will also depend on the radiation patterns of the individual first antennae Rxn. This process is often termed “beamforming”. Beamforming using a 35 phased array is an established technology, and consequently for brevity shall not be described in detail herein. Similarly, the circuit 7 controls relative phases for re-transmission of the radio signals 11 in a direction {Qt, (pr) using the second antennae TxH ..., Txm in a beamsteering process which is an analogue of the beamforming for the first phased array 5. 5 Similarly, for brevity the technology of beamsteering shall not be described in detail herein. In general, the wireless transceiver 1 will receive from one direction (Or, (Pr), for example a direction to a broadcast tower (or cell tower) of a wireless communication 10 network, and re-transmit (re-broadcast / relay) in a different direction (Or, <Pt), for example towards the interior of a building or even towards a particular user device such as a mobile telephone. The wireless transceiver 1 is configured to send and receive radio signals 9,11 having 15 carrier frequencies between and including 5 GHz and 300 GHz, for example, within one or more of the K (20 GHz to 40 GHz), L (40 GHz to 60 GHz) and / or M (60 GHz to too GHz) bands defined by NATO. Additionally or alternatively, the wireless transceiver 1 may be configured to send and receive radio signals 9,11 having carrier frequencies within one or more of the Ka (27 GHz to 40 GHz), V (40 GHz to 75 GHz) and W (75 20 GHz to no GHz) bands defined by the Institute of Electrical and Electronics Engineers (IEEE). The wireless transceiver 1 is not particularly limited by the frequency band(s) of operation, and may be scaled for radio signals 9,11 having carrier frequencies exceeding 300 GHz, or even up to or above 1 THz. The wireless transceiver 1 may relay radio signals 9,11 corresponding to consumer data sendees referred to as “5G”, “6G” or 25 any other notional generation of mobile data services. The wireless transceiver 1 may be configured for a radio signal in accordance with the definition of 5G used in “5G Evolution: A View on 5G Cellular Technology Beyond 3GPP Release 15”, Amitabha Ghosh, Andreas Maeder, Matthew Baker and Devaki Chandramouli, IEEE Access (2019), Vol. 7, pg 127639, DOI 10.1109 / ACCESS.2019.2939938. 30 The vias 8 (Figure 7) are used for interconnection of components of different functionality which may be layered and / or patterned into devices or heterogeneously integrated as discrete components to form the circuit 7 or parts thereof. The circuit 7 is connected to the phased array 5 of first antennae Rxn and the phased array 6 of second 35 antennae Txm using physical, hard-wired links such as, for example, conductive traces, micro-strip lines, conductive vias and so forth. The manner of heterogeneous integration of the circuit 7 components, the first antennae Rx„ and the second antennae Txm on, or within, the planar substrate 2, is an important feature of the wireless transceiver 1. In particular, radio signals 9,11 are not 5 radiatively coupled between the first and second faces 3, 4, and instead are piped through the thickness t of the substrate 2 using a number of vias 8 (Figure 7). Consequently, the dielectric loss characteristics of the planar substrate 2 are not substantially relevant to the function of the wireless transceiver 1, opening up the possibility to use unconventional materials such as glass and / or transparent polymers. 10 In this way, the planar substrate 2 may optionally be formed using a transparent material (for example having a minimum transmission of 50% for visible wavelengths). A transparent planar substrate 2 may include, or be formed from, glass, or using one or more plastics including but not limited to polycarbonate (PC), polyimide (PI), 15 polyethylene terephthalate (PET), polyethylene naphthalate PEN, cyclo olefin polymer (COP), or any other polymer having sufficient mechanical strength to support the circuit and sufficient transparency to be seen through. These materials would not conventionally be used as circuit substrates for radio frequency (RF) signals and / or as antenna substrates, due to excessive dielectric loss characteristics. However, by piping 20 RF signals through the substrate 2 to the circuit 7 using the vias 8 (Figure 7), these types of lossy materials may be used. This may be advantageous because a substantial fraction of the wireless transceiver 1, including the arrays 5,6 of antennae Rxn, Txm. may potentially be made transparent or semi-transparent. For example, by using v ery fine and / or thin conductive traces, metallic nanowires, metal meshes and so forth to 25 define the antennae Rxn, Txm. Largely transparent wireless transceivers 1 may be applied to interior surfaces of a window glass 13 of a building or other structure, for example using an adhesive layer 14, without significantly obscuring the view of people inside or reducing the natural 30 illumination from the window 13. In this way, radio signals 9 incident on the window 13 maybe retransmitted 11 deeper into the building or structure. The planar substrate 2 does not need to be a single, monolithic block of material, and may in some examples take the form of a laminate (not shown) including one or more 35 layers of glass and / or plastic and / or adhesive. A laminate may include one or more conductor layers, which may be internal (i.e. between the first and second faces 3,4), and / or external (i.e. supported on the first and / or second faces 3,4). The planar substrate 2 may be thin enough to be flexible, for example a thin film or 5 sheet of a polymer material. The first antennae Rxn may be disposed directly on the first face 3. Alternatively, one or more dielectric layers may be disposed between the first antennae Rxn and the first face 3, for example, in order to define both the radiating and ground planes of the first 10 antennae Rx„ over the first face 3. Similarly, the second antennae Txm may be disposed directly on the second face 4, or separated from the second face 4 by one or more dielectric layers. The integration of the circuit 7 with the planar substrate 2 is not particularly limited, 15 and in general the circuit 7 may include one or more components supported on the first face 3 and / or one or more components supported on the second face 4. In some examples, the circuit 7 may additionally or alternatively include one or more components supported within the planar substrate 2. For example, if the planar substrate 2 is a laminate, then components of the circuit 7 may be supported on one or 20 more surfaces of the layers making up the laminate which are internal (between first and second faces 3,4) when the laminate is assembled. The circuit 7 may include one or more components flip-chip bonded to the planar substrate 2, for example to the first face 3, to the second face 4, or to a face of a layer 25 which will be internal to a laminate once the planar substrate 2 is assembled. Such one or more components of the circuit 7 may be flip-chip bonded to the planar substrate 2 (or a layer thereof) in accordance with the Heterogeneous Integration Roadmap, HIR. The Heterogeneous Integration Roadmap (HIR) is a set of guidelines developed for 30 silicon systems-in-package (SiP) technologies. HIR may refer to, for example, the guidelines set out in the publication of the HIR 2019 edition. Although established for semiconductor / flat panel device fabrication using substrates for packaging semiconductor / flat panel devices, to the best of the inventor’s knowledge the methods of the HIR haw not previously been adapted to heterogeneous integration on 35 substrates other than printed circuit boards, for example on glass and / or transparent plastic substrates. Although the HIR describes the use of glass substrates as intermediate carriers, the inventors of the present specification are unaware of total systems integration of the form proposed herein being conducted on glass or transparent polymers. In some examples, the wireless transceiver i itself may include no conventional printed circuit board substrates such as glass fibre-epoxy, cardboard, 5 copper clad laminate, FR2 / FR4 printed circuit boards polytetrafluoroethylene (PTFE) and so forth. Of course, this does not preclude the wireless transceiver 1 being connected to separately packaged devices, for example a power supply (not shown), which may include conventional printed circuit board substrates (not shown). In other examples, conventional printed circuit board substrates, for example those mentioned 10 hereinbefore, may be used in the wireless transceiver 1 and / or the circuit 7, for example as the planar substrate 2. The circuit 7 may include one or more filters, for example one or more film bulk acoustic resonators, FBAR, one or more thin-film bulk acoustic resonators, TFBAR, 15 and / or one or more metamaterials. Metamaterial filters suitable for use in the wireless transceiver include, without being limited to, metamaterial filters described in “Metamaterial Structure Inspired Miniature RF / Microwave Filters”, Abdullah Alburaikan, PhD Thesis (2016), The University of Manchester, https: / / www.esch0lar.manchester.ac.Uk / uk-ac-man-scw:305308, (see in particular 20 pages 56 onwards). Filters for signals from the first antennae Rxn may be supported on the first face 3 for proximity, and filters for the signals to the second antennae Txm may be supported on the second face 4 for the same reasons. Film-based bulk acoustic wave resonators may offer properties including, but not 25 limited to, low insertion loss, high selectivity at frequency bands including and in excess of 25 GHz bands, low power consumption, and high isolation as compared to surface acoustic wave (SAW) resonators with the same central frequency. Film-based bulk acoustic wave resonators may be configured for high (for example 60 GHz) frequencies, and may exhibit steep filter skirts because of their high Q-factor and high 30 acoustic velocity, combined with high power handling. Materials having high thermal conductance are used. Possible materials may include aluminum nitride (A1N) as the dielectric - which is piezoelectric and is most widely magnetron sputtered at typically 200 °C-3OO °C, with electrode materials range from platinum (Pt) to copper (Cu). For example, conductive elements may be formed using copper, Cu, with a barrier layer 35 comprising an alloy of copper, Cu and one or more refractory metal elements selected from tantalum, Ta, niobium, Nb, molybdenum. Mo, tungsten, W, zirconium, Zr. hafnium, Hf, rhenium, Re, osmium, Os, ruthenium, Ru, rhodium, Rh, titanium, Ti, vanadium, V, chromium, Cr, and nickel Ni. Copper is preferable due to high conductance of electricity and heat, though other metals may be used subject to suitable electrical conductivity and skin depth at the intended operating frequencies. 5 Molybdenum may be a good choice since this metal provides a combination of a relatively moderate acoustic impedance, density, and resistivity, in addition to being widely available in any Gen-X flat panel line as a source / drain metallization standard. The term Gen-X is a standard term used in the flat panel industry , and refers to the size of the substrate. For example, Genio+ refers to a substrate size up to 2840mm by 10 3370mm. The planar substrate 2 may incorporate a heat spreader layer (not shown). The heat spreader layer may be incorporated during a heterogeneous integration fabrication process. A heat spreader layer may enable operation at higher power and / or using a 15 higher density of antennae and / or microstrip interconnects without requiring a fan or other cooling method. In some examples, a ground plane layer 23, 26 (Figure 7) may be formed from copper and may additionally serve as a heat spreader layer. Additionally or alternatively, an antenna dielectric layer 24, 27 (Figure 7) may be formed from a dielectric with relatively high thermal conductance, for example A1N, or 20 AlOx (in particular A12O3 in the sapphire structure) may also sen e as a good heat spreader layer. The first and second antennae Rx„. Txm are preferably planar antennae. The first antennae Rxn and / or the second antennae Txm may be formed using photolithography. 25 The wireless transceiver 1 is preferably attached to, or integrated as part of, a structure in the form of a commercial, residential or civic building (not shown). Alternatively, a wireless transceiver 1 may be attached to, or integrated with, an item of street furniture (not show n) such as, for example, a street light, a bench, a bus shelter, a signpost or 30 sign, a parking meter, a safety-' barrier, an advertising hoarding or billboard, and so forth. In some examples, the wireless transceiver 1 includes a planar substrate 2 which is transparent, and is attached to a window 13 of the structure in the manner described hereinbefore. 35 Referring also to Figure 3, a first example of an antenna array layout 15 (hereinafter “first antenna layout”) is shown. The first antenna layout 15 is formed from a number of planar strip antennae 16, arranged to form rows and columns. The strip antennae 16 may take the form of microstrip antennae. If deposited on, or over, the first face 3, the first antenna layout 5 15 may provide the first phased array 5 of N first antennae Rxb ..., Rxn. Additionally or alternatively, if deposited on, or over, the second face 4, the first antenna layout 15 may provide the second phased array 6 of M second antennae Txi,..., Txm. The radiating and ground plane surfaces of the planar strip antennae 16 need to be high 10 conductivity, typically copper, with high surface smoothness to minimize loss. The radiating and ground plane surfaces of the planar strip antennae 16 may be patterned using any suitable technique, and may be deposited by photolithography, etched, electroplated and so forth. The ground plane(s) may be disposed below the radiating electrodes, separated by a low-loss dielectric such as aluminum oxide (Al20x), a 15 fluoropolymer (such as PTFE / teflon), low-loss nanocomposites and so forth. Preferably all materials used should be compatible with Gen-X flat panel processing lines. Referring also to Figure 4 a second example of an antenna array layout 17 (hereinafter 20 “second antenna layout”) is shown. The second antenna layout 17 is formed from a number of planar loop antennae 18, arranged to form rows and columns. If deposited on, or over, the first face 3, the second antenna layout 17 may provide the first phased array 5 of Nfirst antennae Rxt, 25 ..., Rxn. Additionally or alternatively, if deposited on, or over, the second face 4, the second antenna layout 17 may provide the second phased array 6 of M second antennae Txi,..., Txm. Although shown as circular in Figure 4, planar loop antennae 18 may have any shape 30 such as, for example, square, rectangular, or any regular or irregular polygon, depending only on the desired shape of radiation pattern for the individual antennae Rxn, Txm. More complex, directional planar antennae may be used. For example, referring also to 35 Figure 5, a third example of an antenna array layout 19 (hereinafter “third antenna layout”) is shown. The third antenna layout 17 is formed from a number of planar Vivaldi antennae 20, arranged to form rows and columns. All of the Vivaldi antennae 20 are oriented in the same direction. If deposited on, or over, the first face 3, the third antenna layout 19 5 may provide the first phased array 5 of V first antennae Rxi,..., Rxn. Additionally or alternatively, if deposited on, or over, the second face 4, the third antenna layout 19 may provide the second phased array 6 of M second antennae Txb ..., Txm. Using directional antennae to form one or both the first and second phased arrays 5,6 10 may provide improve directional selectivity, at the cost of being unable to steer the phased arrays 5, 6 to some angles corresponding to nodes of the antennae radiation patterns. This can be countered by including multiple sub-arrays of directional antennae oriented in different directions. 15 For example, referring also to Figure 6 a fourth example of an antenna array layout 21 (hereinafter “fourth antenna layout”) is shown. The fourth antenna layout 17 is formed from a number of first planar Vivaldi antennae 20a oriented towards the right as illustrated and a number of second planar Vivaldi 20 antennae 20b oriented towards the left as illustrated. The first Vivaldi antennae 20a are arranged into a first two-dimensional lattice, and the second Vivaldi antennae 20b are arranged into a second two-dimensional lattice which interpenetrates the first lattice. 25 If deposited on, or over, the first face 3, the fourth antenna layout 21 may provide the first phased array 5 of Nfirst antennae Rxi,..., Rxn. Additionally or alternatively, if deposited on, or over, the second face 4, the fourth antenna layout 21 may provide the second phased array 6 of M second antennae Txi,..., Txm. 30 Although particular numbers of antennae 16,18, 20, 20a, 20b have been shown in Figures 3 to 6, the numbers N, M of first and second antennae Rxn, Txm are not limited. In practical implementations, each of the first and second phased arrays 5, 6 may include hundreds, thousands, or even tens of thousands of first and second antennae Rxn, Txm. Although particular shapes and distributions of antennae 16,18, 20, 20a, 20b have been shown in Figures 3 to 6, these are not limiting. In general, any type or shape of antennae may be used, though preferably planar antennae should be used for practicality of manufacturing and scaling. The antennae may be arranged into arrays 5 covering the first and / or second face 3,4 based on any two-dimensional lattice type. First example of an antenna stack Referring also to Figure 7, a first example of an antenna stack 22 (hereinafter the “first stack”) is shown. 10 The first stack 22 includes a planar substrate 2. A first ground plane layer 23 is formed or supported on the first face 3. A first antenna dielectric layer 24 is formed or supported over the first ground plane layer 23. A first conductor layer 25 is formed or supported on the first antenna dielectric layer 24. Similarly, a second ground plane 15 layer 26, second antenna dielectric layer 27 and second conductor layer 28 are formed and / or supported in order on the second face 4. Further, intermediate layers may be provided, for example, to improve inter-layer adhesion. The first antennae Rxb ..., Rxn are formed by patterning the first conductor layer 25. 20 Connecting elements of the circuit 7 such as microstrip lines, conductive traces and so forth are also patterned into the first conductor layer 25. One or more circuit 7 components may be formed or supported one the first conductor layer 25. For example, FBAR filters may be formed on the first conductor layer 25 and / or discrete components / integrated circuits may be bonded (e.g. flip-chip bonded) to connecting 25 elements of the first conductor layer 25. Similarly, the second antennae Tx,,..., Txm are formed by patterning the second conductor layer 28. Connecting elements and optionally circuit 7 components may be patterned into, formed or supported on the second conductor layer 28 in the same way as the first conductor layer 25. 30 Connections between the first and second conductor layers 25,28 are provided by through-thickness vias 8 which connect between the first and second faces 3,4. The vias may be formed by backfilling of holes drilled in the substrate 2. The vias also pass through the antenna dielectric layers 24, 27. The vias 8 connecting the first and second conductor layers 25, 28 are electrically isolated from the ground plane layers 23, 26 by 35 apertures 29 patterned into the ground plane layers 23, 26. One or more other vias (not shown) may extend through the substrate 2 to connect between the ground plane layers 23,26 to ensure a common ground potential. In other examples, the ground plane layers 23, 26 may be patterned so as to only 5 provide ground plane conductors directly corresponding to radiating surfaces of antennae (and connections thereto). Patterning of the ground plane layers 23, 26 may be preferable if the wireless transceiver 1 should be transparent, although alternatively ground plane layers 23, 26 could be formed from transparent conductors such as polymers, indium tin oxide (ITO) or similar conductive oxides. In some examples, the 10 antenna dielectric layers 24. 27 may cover all, or substantially all, of the first and second faces 3, 4. However, in other examples the antenna dielectric layers 24, 27 may be patterned or deposited so that the antenna dielectric layers 24, 27 are only present where needed to separate radiation and ground elements of the first and / or second antennae Rxn, Txm. 15 As described hereinbefore, the planar substrate 2 may be formed from a material which exhibits significant dielectric losses, because RF signals are transmitted using vias 8 instead of radiatively through the thickness t. When lossy materials such as glass or transparent polymers are used, the antenna dielectric layers 24,27 should be formed 20 from a dielectric material having a loss tangent tan(8) (in which 8 is loss angle) which is less than a loss tangent tan(8) of the planar substrate 2 (effective, overall loss-tangent tan(8) when the substrate 2 is a laminate). Unlike the planar substrate 2, the dielectric loss characteristics of the materials used for antenna dielectric layers 24, 27 should be considered and minimised. 25 In this way, the wireless transceiver may utilise low-loss dielectric materials for the antenna dielectric layers 24, 27, whilst the direct, hard wired connections between the antennae Rxn, Txm and the components of the circuit 7 (using vias 8, micro-strip lines and so forth) mean that the planar substrate 2 is not required to be formed from low-30 loss materials, and may instead be formed from relatively high dielectric-loss materials such as silica glass and / or polymers. This may reduce the cost and manufacturing complexity, for example by enabling use of high-loss but flexible polymer films suitable for roll-to-roll manufacturing methods. 35 The antenna dielectric layers 24,27 may include, or be formed from, one or more of inorganic oxides, silica, alumina, an organic material, a fluoropolymer, polytetrafluoroethylene and nanocomposite. Each antenna dielectric layer 24, 27 may take the form of a film having a thickness of between and including 1 pm and 1 mm. The material of either or both antenna dielectric layers 24,27 may include amorphous and / or crystalline regions of the same material. Where the material of either or both 5 antenna dielectric layers 24, 27 exhibits polymorphism, the material may include two or more different polymorphs, and optionally amorphous material. The materials for forming the antenna dielectric layers 24, 27 are not limited to these specific examples, although preferably the antenna dielectric layers 24, 27 should have loss-tangents tan(8) of less than or equal to 10^ at a frequency of 28 GHz. More preferably, the 10 antenna dielectric layers 24, 27 may have loss-tangents tan(8) of less than or equal to to-4,10'5 or io-6 at a frequency of 28 GHz. Since it is not important for the operation of the first stack 22, the planar substrate 2 may have a loss tangent of greater than or equal to to-3 at a frequency of 28 GHz. 15 Microstrip lines (not shown) connecting to first antennae Rxn and / or components of the circuit 7 supported on the first face 3 may be connected to microstrip lines connecting to second antennae Txm and / or components of the circuit 7 supported on the second face 4 by vias 8 which are configured for impedance matching with the microstrip lines. 20 Second example of an antenna stack Referring also to Figure 8, a second example of an antenna stack 30 (hereinafter the “second stack”) is shown. 25 The second stack 30 includes a planar substrate 2 in the form of a laminate of a first layer 31 and a second layer 32 bonded to sandwich a common ground plane layer 33. The common ground plane layer 33 may be deposited onto either the first layer 31 or the second layer 32. Alternatively, the common ground plane 33 may be a freestanding layer, for example a conductive sheet or foil, bonded between the first and 30 second layers 31,32. The first and second conductor layers 25,28 are patterned over the respective first and second faces 3,4 in the same way described for the first stack 22. Unlike the first stack 22, the dielectric materials of the planar substrate 2 of the second 35 stack 30 may require more careful consideration. In particular, the efficiency of antennae Rx„, Txm defined between the conductor layers 25,28 and the common ground plane 33 may suffer if high dielectric loss materials are used for the first and second layers 31,32. This may be mitigated by using thin first and second layers 31,32, for example, thin polymer layers. The second stack 30 may particularly useful for w ireless transceivers 1 in which at least the portions providing the phased arrays 5,6 5 are flexible. Similarly to the ground plane layers 23, 26, the common ground plane layer 33 includes apertures 29 for passage of vias 8. Alternatively, the common ground plane layer 33 may be patterned in the same way described for the ground plane layers 23, 26. 10 Third example of an antenna stack Referring also to Figure 9, a third example of an antenna stack 34 (hereinafter the “third stack”) is shown. 15 The third stack 34 includes a planar substrate 2 having a first face 3 which supports the first conductor layer 25 and a second face 4 which supports the second conductor layer 28. Sections of the first conductor layer 25 providing radiating conductors 35 of first antennae Rxn may be opposed across the substrate 2 by ground electrodes 36 defined in the second conductor layer 28. Similarly, sections of the second conductor layer 28 20 providing radiating conductors 37 of second antennae Txm may be opposed across the substrate 2 by ground electrodes 36 defined in the first conductor layer 25. Similarly to the second stack 30, the efficiency of antennae Rxn, Txm defined across the substrate 2 may suffer if high dielectric loss materials are used for the substrate 2. This 25 may be mitigated using thinner substrates. Although not shown in Figure 9, vias 8 still connect between the first and second conductor layers 25, 28 in the third stack 34, for example, to pipe RF signals from the first antennae Rxn to components of the circuit 7 supported on or over the second face 30 4- Circuit for analog beamforming and beamsteering The beamforming and beamsteering of the wireless transceiver 1 may be implemented in the analog domain. Referring also to Figure 10, an example of a circuit 7 in the form of an analog circuit 38 is shown. The analog circuit 38 is configured for analog beamforming of the first phased array 5 5 and analog beemsteering of the second phased array 6. The analog circuit 38 receives and re-transmit the radio signals 9,11 without conversion to the digital domain. The analog circuit 38 includes a bank of low noise amplifiers 39, a beamforming phase array 40, a signal summer 41, a beamsteering phase array 42, a bank of transmission 10 amplifiers 43 and a controller 44. When a radio signal 9 is incident on the first phased array 5 of N first antennae Rxi,..., Rxn, a respective received electrical signal G^t),..., Gn(t),..., GNit) is induced in each. The received electrical signal G^t),..., Gn^t),..., G^t) are received by respective low 15 noise amplifiers 391,..., 39n, ■■■, 39n, each of which outputs a corresponding amplified signal S^t), —, Sn(t), ■■■, SnCI). Optionally, the received electrical signals Gi(t),..., Gn(t), ..., GN(t) may be pre-processed using a filter bank 45. The filter bank 45 may include signal conditioning filters, for example, to remove signals falling outside of an expected or intended frequency band. 20 The beamforming phase array 40 applies a slightly different delay ..., a„,..., ax to each of the N amplified signal S^t),..., Sn(t),..., S^f). For example, the first amplified signal S^t) is delayed by an amount ai so that the corresponding output is Sitt+a,), the nth of N amplified signals is delayed by an amount an so that the corresponding output 25 is S„(t+a„), and so forth for each amplified signal S^t),..., Sn(t),..., The delays %, ..., an,..., On are controlled by the controller 44 to provide steering of the direction (9r, (Pr) of the central axis of the radiation pattern of the first phased array 5 will experience maximum constructive interference. 30 The delayed amplified signals S(t+aj),..., 8.,(1+0,,),..., Sy^t+a^ are summed by the signal summer 41 to produce a summed signal Sj(t): N ST(t) = ^S^t + aJ n=l Combined with the delays ai, ..., an, —, on applied to each of the N amplified signals Silt),..., iSn(t),..., Sy(t), the effect of the summation is that contributions to the summed signal Sift) from radio signals 9 arriving at, or close, to the direction (Or, <pK) of first phased array 5 will combine constructively, whereas contributions from radio signals 9 5 arriving from significantly different angles will interfere destructively and be substantially attenuated. The beamsteering phase array 42 receives the summed signal Sift), and splits it into a number M of output signals Pi(t),..., Pm(t)...., PmU), each corresponding to one of the 10 second antennae Txb ..., Txm,.... Txm- Each output signal Pi(t),..., Pm(t),..., PmU) is generated by applying a different delay Pi,..., pm,..., Pm to the summed signal Sift). For the mth of M output signals Pm(t): P-mft) = ST(t + Pm) 15 (2) The delays Pi,..., pm,..., Pm are controlled by the controller 44 to steer the direction (Or, (pr) of the second phased array 6 for transmission of the outgoing radio signals n. Each of the output signals Pi(t),..., Pm(t),..., Pm(C is received by respective 20 transmission amplifier 431,..., 43m,..., 43m, which outputs a corresponding transmission signal Hi(t),..., Hm(t),..., H^ift). Each transmission signal Hi(t),..., Hm(t), ..., Hm(1) is received by the respective second antennae Txb ..., Txm, ■■■, Txm, causing it to radiate electromagnetic waves. The delays Pi,..., pm,..., Pm result in the electromagnetic waves emitted by the second antennae Txb ..., Txm,..., Txm being cancelled or at least 25 attenuated by destructive interference, except at or close to the intended direction (Ot, (Pt) of the second phased array 6 where there is constructive interference. The net result is that the outgoing radio signals 11 are directed about the orientation (Ot, (pr) of the second phased array 6 set by the controller 44 using the delays Pi,..., pm, ■■■, Pm. 30 The controller 44 may take the form of a microcontroller, one or more digital electronic processors, a field-programmable gate array, one or more phase arrays, one or more phase detectors, one or more phase shifters, or any other device suitable for controlling the delays ch,..., an,..., a.vfor beamforming and the delays Pi,..., pm,..., Pm for beamsteering. Circuit for digital beamforming and beamsteering The beamforming and beamsteering of the wireless transceiver 1 may be implemented in the digital domain, for example using methods from the area of software defined radios. 5 Referring also to Figure 11, an example of a circuit 7 in the form of a second circuit 46 including a digital circuit 47 is shown. The second circuit 46 includes a bank of low-noise amplifiers 391,..., 39n,..., 39n connected to the first phased array 5 of Nfirst antennae Rxb ..., Rxn,..., Rxn, which 10 convert an incoming radio signal 9 into the Namplified signals ..., Sn(.l)..... Sx(t) in the same way as for the analog circuit 38. The digital circuit 47 is configured for digital beamforming of the amplified signals S^t),..., Sn(t), SnCO from the first phased array 5, and also to perform digital beamsteering of the second phased array 6 by outputting the M output signals PJS),..., Pm(t),..., PM(t). In the same way as the 15 analog circuit 38, the second circuit 46 also includes a bank of transmission amplifiers 43i, -, 43m, —, 43m which amplify the output signals Pt(l)..... Pmit), ..., Pu(t) and provide transmission signals H^t),..., ..., to the second antennae Txb..., Txm,..., Txm. The second circuit 46 provides a digital channel corresponding to each of the Nfirst antennae Rxb ..., Rxn, and a digital channel corresponding to each of the M 20 second antennae Txb ..., Txm. Each of the amplified signals ..., S„(t),..., Sv(f) is received by a respective analog-to-digital converter (ADC) 481,..., 48n,..., 48n of the digital circuit 47. The ADCs 481, ..., 48,1,..., 48n sample the amplified signals S^t),..., Sn(t),..., S^t) with a sampling 25 interval of 8t. Whilst the digital circuit 47 will operate continuously in use, purely for illustration of the explanations hereinafter, let a digital sampling of the nth amplified signal at a time t = k.8t be denoted Sn(tk) (with k an integer). A beamforming delay block 49 applies delays ab ..., an,..., ax to the digitised input 30 signals &(h)...., &■(&), Sx(tk) for beamforming. For example, the delays ab ..., a,„ ..., ax may be integer multiples of the sampling interval St of the ADCS 481,..., 48n. Alternatively, if finer precision is required, then interpolation between one or more prior samplings may be used. For example, each channel may include a buffer of the last several samplings, e.g. three previous samplings {Sn(tk), Sn(tk-i), Sn^tk-z), SnCtks)}, 35 and a polynomial interpolant may be used to shift each digital sampling to an estimated value corresponding to a delay an which does not corresponding to an integer number of sampling intervals. Preferably, the ADCs 481,..., 48n sample at a rate i / 5t that permits using integer multiples of the sampling interval, as this will be more accurate and less computationally intensive. The delays ai,...,an,..., aware controlled by a controller 50 of the digital circuit 47. The delayed signals S^tk+a,),..., Snfa+th), S^tk+aN) are summed by a summing block 51 to generate a digitised summed signal Siftil- Referring also to Figure 12, in some examples the beamforming block 49 and the 10 summing block 51 may be implemented in an integrated way using a buffer Bt..... Bn,... Bn corresponding to each input channel and storing a number K of samplings of the amplified signals S^t),..., Sn(t),..., Su(t). For example, if the most recent sampling is the kih, then the nth of Nbuffers Bn stores samples B„ = {Sn(tk), Sn(tk-i), ■■■, S„(tk-K+i)}. The beamforming operation can then be performed by selecting samples with 15 appropriate delays from each of the N buffers Bi,..., Bn,..., Bn and summing them. For one example orientation of the first phased array 5, the digitised summed signal St(ik) may be generated by summing: 20 (3) this example is illustrated by the grey shading in Figure 12. If N >K, the sum may simply be truncated. Different delays may be used, for a second example orientation of the first phased array 5, the digitised summed signal Si{tk) may be generated by-summing: 25 N (th) ~ $n(tic-2(n-l)) n=l (4) this example is illustrated by the hatching in Figure 12. Again, the sum can simply be truncated once the index 2(n-i) exceeds K-i. Sums need not include every buffer, for 30 example, yet another orientation may correspond to: N / 2 ' $2n—1 (ti-n+1) 71=1 (5) this example is not illustrated in Figure 12, and would correspond to summing S / t*), S3(tk^, S5(t^2) and so forth. Using the buffers Bt,..., Bm,.... Bm, two or more sums could be calculated concurrently, enabling two “virtual” directional antennas to receive in 5 parallel using a single array 6 of first antennae Rxi,..., Rxn,..., Rxn. Referring again to Figure 11, a beamsteering delay block 52 generates M digitised output signals Pi(tk),..., Pm(tk),..., Pu(tk) by applying delays fa,..., 0m,..., 0M to the digitised summed signal Sill fa When the delays fa,..., fan,.... 0m correspond to integer 10 multiples of the sampling interval St, the beamsteering delay block 52 may be implemented simply using a buffer storing a number K2 of values of the digitised summed signal S-fatfa i.e. {Si(tfa Sifak-fa Sj(tk-K2+i)} to output delayed values. For delays 0t,..., 0m, ...,0m which do not correspond to integer multiples of the sampling interval St, a buffer combined with polynomial interpolation may be used. 15 The digitised output signals Pfa-fa.... Pfatfa..., Py / tlP) are converted into the analog output signals Pi(fa.... Pm(f),.... Pm(1) by respective digital-to-analog-converters (DAC) 53b ••• 53m, •••, 53m- 20 The digital implementation of beamforming and beamsteering requires ADCs 48 and DACs 53 with very7 high bandwidth. An alternative implementation would be to omit the beamforming and beamsteering delay blocks 49, 52, and instead of synchronising the ADCs 48 and DACs 53 to a single time, the controller 50 could control the ADCs 48 to sample at staggered times to implement the beamforming delays a1}..., an,..., on, and 25 similarly for the DACs 53. Additionally or alternatively, the second circuit 46 may include a down-converter 541, ..., 54„,..., 54N in each input channel, configured to convert the amplified signals Sfat), ..., Sfat) from a transmit band to baseband prior to sampling. Similarly, the second 30 circuit may also include up-converters 551,..., 55m,..., 55m in each output channel to convert the outputs of the digital circuit 47 from baseband back to the transmit band. Converting to baseband for the digital processing reduces the bandwidth requirements for the ADCs 48 and DACs 53. Examples of down-converters 54 and up-converters 55 may include heterodyne circuits utilising local oscillators. Circuit for hybrid beamforming and beamsteering The beamforming and beamsteering of the wireless transceiver 1 may be implemented partly in the analog domain and partly in the digital domain. 5 Referring also to Figures 13 to 15, an example of a circuit 7 in the form of a hybrid circuit 56 is shown. Referring in particular to Figure 14, the N first antennae Rxi,..., Rxn,..., Rxn of the first phased array 5 are arranged into a number J of first sub-arrays 571,..., 57,,..., 57J. Each 10 first sub-array 57J includes two or more of the first antennae Rxn, and provides a corresponding aggregate received signal 5¾ to an input channel of a digital circuit 59. The digital circuit 59 is the same as the digital circuit 47, except that instead of performing digital beamforming on received signals Gn(t), the digital circuit 59 is configured to perform digital beamforming on the J aggregate received signals 581,..., 15 58j,..., 58j. Similarly, the digital circuit 59 is configured to perform digital beamsteering to generate a number Wof aggregate output signals 6o,...., 6ow,..., 6ow. The M second antenna Txb ..., Txm,..., Txm of the second phased array 6 are arranged into Wsecond sub-arrays 6ti,..., 61W, —, 6tw, each of which receives a respective aggregate output signal 601,..., 60 60w. 20 Referring in particular to Figure 13, a first sub-array 57j is shown in more detail. Each first sub-array 57J includes a number Nj of first antennae Rxb ..., Rxnj and an analog circuit configured to perform analog beamforming on the received signals G(t) 25 to generate the corresponding aggregate received signal 5¾. In Figure 13, the first antennae Rxi,..., Rxnj are numbered from 1 to Nj internally for the purpose of illustrating the first sub-array 57j, but these represent only a portion of the overall number N of first antennae Rxb ..., Rxn. 30 The analog circuit of the first sub-array 57j includes a low-noise amplifier 391,..., 39^ corresponding to each of the Nj first antennae Rxb ..., Rxnj, a beam forming phase array 40 and a signal summer 41, which are configured in the same way as the corresponding components of the analog circuit 38, except that the aggregate received signal s8j only corresponds to a sum over a sub-set of Nj out of the total of N received signals Gjt),..., 35 G>(D- The delays %,..., Onj applied by the beam forming phase array 40 of the first sub-array 57j may be pre-set and fixed, or alternatively the delays at,..., aNj may be controlled by control signals 62 provided by the controller 44 of the digital circuit 59. Referring in particular to Figure 15, a second sub-array 6iw is shown in more detail. 5 Each second sub array 61W includes a number Mw of second antennae Txb ..., Txmw and an analog circuit configured to perform analog beamsteering on the aggregate output signal 6ow to generate the corresponding transmission signals H(t) for transmission by the second antennae Rxb ..., Rxmw. In Figure 15, the second antennae Txb ..., Txmw are 10 numbered from 1 to Mw internally for the purpose of illustrating the second sub-array 61W, but these represent only a portion of the overall number M of second antennae Txb ..., Txm. The analog circuit of the second sub array 6tw includes a beamsteering phase array 42 15 and a transmission amplifier 431, ..., 43Mw corresponding to each of the Mw second antennae Txb ..., Txmw, which are configured in the same way as the corresponding components of the analog circuit 38, except that output signals H(t) are only supplied to a sub-set of Mw out of the total of M second antennae Txb ..., Txm. The delays pi,..., Pmw applied by the beamsteering phase array 42 of the second sub array 6iw may be 20 pre-set and fixed, or alternatively the delays Pi,..., Pm™ may be controlled by control signals 63 provided by the controller 44 of the digital circuit 59. The hybrid circuit 56 may optionally include down-converters 54b ..., 54.1 and up-convertors 55i,..., 55w for each digital channel. 25 Using a hybrid circuit 56 may permit some of the flexibility of software defined radio, whilst reducing, compared to a purely digital approach, the number of ADCs 48 and DACs 53 required, and also the requirements for data processing capacity’. 30 Wireless transceiver for duplex relaying The examples described hereinbefore have explained relaying signals 9 received at the first face 3 to be re-transmitted n from the second face 4. In practice, a wireless transceiver 1 will also need to relay radio signals in the other direction (from the second face 4 to the first face 3). This may be accomplished in a number of different ways. For example, the circuit 7 may be configured to alternate between first and second periods. During the first period of each alternating cycle, the circuit 7 may control the first phased array 5 as described hereinbefore to receive radio signals 9, which are then re-transmitted as outgoing signals 11 by the second phased array 6. During the second 5 period of each alternative cycle, the circuit 7 may reverse the direction so that the second phased array 6 receives radio signals 9, which are then re-transmitted as outgoing signals 11 by the first phased array 5. In this way, the first and second antennae R1X,..., Rxn, Txb ..., Txm may be time-multiplexed to function as transceivers. During the first period radio signals 9 are relayed in one direction, and during the 10 second period the direction of relaying radio signals 9 is reversed. The alternating cycle of first and second periods is repeated whilst the device is active. The first and second periods may have the same, or different, lengths, depending on the requirements of an installation location. 15 Circuits 7 for duplex transmission may be provided by adapting and / or duplicating any of the examples described hereinbefore. Alternatively, instead of time-multiplexing the usage of the first and second antennae Rix,..., Rxn, Txb ..., Txm, dedicated receiving and transmitting antennae may be 20 supported on both the first and second faces 3, 4. Referring also to Figure 16, a second wireless transceiver 64 is shown. The second wireless transceiver 64 includes the first and second phased arrays 5, 6 as 25 described hereinbefore. The second wireless transceiver 64 also includes a number N2 of third antennae Rxi,..., Rx’n2 supported on the second face 4 and a number M2 of fourth antennae Txi,..., Tx’m2 supported on the first face 3. In addition to relaying signals 9 from the first phased array 5 to the second phased array 6, the circuit 7 is additionally configured to control the N2 third antennae Rxi...., Rx’n2 as a third phased 30 array 65 to receive radio signals, and to control the M2 fourth antennae Txi,..., Tx’m2 as a fourth phased array 66 to retransmit the radio signals received using the third phased array 65. Similarly to the second phased array 6, the third phased array 65 is directional and controllably orientable within a third range AQ3 of acute angles to the normal 12 of the second face 4. Similarly to the first phased array 5, the fourth phased 35 array 66 is directional and controllably orientable within a fourth range A64 of acute angles to the normal 10 of the first face 3. In this way, the second wireless transceiver 64 may relay radio signals from the first face 3 to the second face 4 using the first and second phased arrays 5, 6, and may relay signals in the opposite direction using the third and fourth phased arrays 65, 66. 5 Circuits 7 for duplex transmission may be provided by adapting and / or duplicating any of the examples described hereinbefore. Although shown as being grouped separately in Figure 16, the first and fourth phased arrays 5,66 need not correspond to physically separate regions of the first face 3. 10 Alternatively, as shown in Figure 17, the first antennae Rxb ..., RxNmay be interspersed with the fourth antennae Tx’b ..., Tx’ms. Similarly, the second antennae Txb ..., Txm may be interspersed with the third antennae Rx’b ..., Rx’n2. 15 Any of the example of duplex, or bi-directional, relaying may be configured such that radio signals transmitted away from the second face 4 have a lower power than radio signals transmitted away from the first face 3. For example, the first face 3 may be oriented towards the outside of a building whilst 20 the second face 4 is oriented towards an interior of the building. Using reduced power levels for radio signals retransmitted inside the building, compared to those required for transmission back to the wider external network, may reduce power consumption of a wireless transceiver 64. Using reduced power levels for signals retransmitted inside the building may reduce interference with other electronics devices and / or equipment 25 inside the building. Using reduced power levels for signals retransmitted inside the building may provide reassurance to any building occupants / users concerned about the intensity of radio signals. Radio signal selectivity in frequency-division multiplexed wireless networks 30 Although the optional filter bank 45 has been described as providing signal conditioning functions, the filter bank may additionally or alternatively also provide the capability to select to relay radio signals 9 received from some wireless network service providers, whilst not relaying radio signals from other service providers. 35 Referring also to Figure 18, a first example of a portion of the filter bank 45 is shown. The filter bank 45 is part of the circuit 6, and in this example includes a number NF of passband filters 671,..., 67nf, each defining a passbands for received signals Gn(t) from an nth of Nfirst antennae Rxb ..., Rxn. Each passband filter 671,..., 67nf corresponds to a different service provider in a frequency multiplexed wireless communications 5 network. Service providers may be mobile telephone sendee providers, data sendee providers, and so forth. The passband filters 671,..., 67nf may take the form of analog filters such as, for example, film bulk acoustic resonators, FBAR, thin-film bulk acoustic resonators, TFBAR, and so forth. 10 The filter bank 45 is configurable such that one or more of the passbands 671,..., 67nf may be disabled. For example, in the example shown in Figure 18, the output of each passband filter 671,..., 67nf is switchable between onward processing and ground by a respective switch SWb ..., SWnf. The circuit 7 maybe configurable such that an output of each of the two or more passband filters 671,..., 67nf maybe independently enabled 15 or disabled in use. For example, each switch SWb ..., SWnf may be controlled by a control signal 681,..., 68nf supplied by a controller 44,50 of the circuit 7. In this way, an owner / installer of the wireless transceiver 1,64 may control which service providers may use their infrastructure, and update this in use. For example, 20 passbands corresponding to service providers who pay a subscription may be enabled whilst other passbands are disabled. Frequency bands used for emergency calls and / or by emergency sendees may be always enabled. In networks where different bands are allocated to the same service provider for voice calls and data services, the wireless transceiver 1,64 may be configured to relays signals for voice calls at the same time that 25 data services are disabled for that service provider. The circuit 7 may be configured to receive passband modification messages (not shown) comprising instructions to enable one or more passbands and / or to disable one or more other passbands by shorting the outputs of the corresponding passband filters 671,..., 30 67F. Passband modification messages may be received through a wireless network which the wireless transceiver 1,64 forms a part or portion of, for example as radio signals. Passband modification messages may be received within a passband which is always enabled. Alternatively, instead of using analog filtering, the passbands corresponding to different sendee providers may be provided by digital filters, for example provided as part of a digital circuit 47,59. 5 Whilst passbands are preferably configurable in use, in other examples the circuit 7 may be configurable such that each of the two or more passbands is independently enabled or disabled in a one-time configuration process. For example, referring also to Figure 19, each passband may be provided by a 10 corresponding passband filter 67 which is connected for onward processing via a fuse 69. A pair of terminals 70, 71 may be provided to either side of the fuse 69, to enable a one-time configuration by passing a high current between the terminals 70, 71 to blow the fuse 69 and disable the corresponding passband, whilst protecting surrounding portions of the circuit 7. 15 Alternatively, referring also to Figure 20, the fuse 69 may initially short the output of passband filter 67 to ground, so that the fuse 69 must be blown in a one-time configuration step in order to enable the corresponding passband. 20 A one-time configuration process may also be applied to circuits 7 using digital filtering to provide passbands, for example, by programming a programmable read-only memory (programmable ROM). Radio signal selectivity in time-division multiplexed wireless networks 25 Selectivity of relaying radio signals need not be restricted to wireless networks utilising frequency-division multiplexing. A wireless transceiver 1,64 may additionally or alternatively be configured to receive and retransmit radio signals within a time-multiplexed wireless communications system. The circuit 7 may be configurable to only retransmit radio signals 9 corresponding to one or more selected service providers. 30 The circuit 7 may be configured to identify the source of a received radio signal 9 using, for example, packet header data. Alternatively, if the time windows for different service providers are known, the circuit 7 may simply disable relaying during the time slots corresponding to non-selected service providers. 35 If the source of a received radio signal 9 corresponds to a selected service providers, for example a subscriber, then the circuit 7 will cause retransmission of that received radio signal 9 as an outgoing radio signal 11. Otherwise, the received radio signal 9 may not be retransmitted. Exceptions for emergency communications and / or emergency service users may be programmed into the wireless transceiver 1, 64. 5 The selected service providers may be updatable in use. For example, the circuit 7 may be configured to receive selected service provider modification messages (not shown) including instructions to enable retransmission of radio signals originating from one or more service providers and / or to disable retransmission of radio signals originating from one or more other service providers. Selected service provider modification 10 messages (not shown) may be received through a wireless network which the wireless transceiver is a part of. Modifications It will be appreciated that many modifications may be made to the embodiments 15 hereinbefore described. Such modifications may involve equivalent and other features which are already known in the design, manufacture and use of wireless transceivers, and which may be used instead of or in addition to features already described herein. Features of one embodiment may be replaced or supplemented by features of another embodiment. For example, features of one wireless transceiver be replaced or 20 supplemented by features of other wireless transceivers and / or features of one antenna arrangement may be replaced or supplemented by features of other antenna arrangements. Wireless transceivers 1, 64 have been described which include planar substrates 2. 25 However, features described hereinbefore such as the selectivity of which radio signals to relay, may be applied to wireless transceivers (not shown) for which the first and second phased arrays 5, 6, and optionally the third and fourth phased arrays 65, 66, are not supported on opposite faces of a planar substrate. For example, the first and second phased arrays 5, 6 may be supported on a pair of faces oriented at an angle to 30 one another for relaying radio signals 9 around corners. In one particular example, a further wireless transceiver (not shown) may include N first antennae Rxi,..., Rxn, M second antennae Txb ..., Txm, and a circuit 7,38, 47,56. The circuit 7,38, 47, 56 may be configured to control the Nfirst antennae Rxi,..., Rxn 35 as a first phased array 7 to receive incoming radio signals 9, and to control the M second antennae Txb ..., Txm as a second phased array 6 to transmit outgoing radio signals 11. Like the wireless transceivers 1,64 described hereinbefore, the first phased array 5 is 5 directional and controllably orientable within a first range of angles though in this case the range is not restricted relative to a normal 10 of a first face 3 of a planar substrate 2. Similarly, the second phased array 6 is directional and controllably orientable within a second range of angles A02 which is not bound relative to a normal 12 of a second face 4 of a planar substrate 2. 10 Analog beamforming using varactor diodes In implementations of the analog circuit 38 shown in Figure 10, the functions of the beamforming phase array 40 and the beamsteering phase array 42 in generating respective delays ..., an,..., ax, Pi,..., / 1™,..., Pm may be provided by the variable 15 capacitances of respective varactor diodes (also sometimes referred to as “varicaps”). For example, referring also to Figure 21, a portion of a second analog circuit 38b is shown. 20 Although only the portion between receiving antennae Rxi,..., Rxn,..., Rxn and the signal summer 41 is shown in Figure 21, the second analog circuit 38b is the same as the analog circuit 38, except that the beamforming phase array 40 takes the form of an array of N varactor diodes C( VRJ...., C(VRn),..., C( VRn), each having a variable capacitance C(VRn) which is a function of a corresponding reverse bias VRh..., VRn,..., 25 VRn controlled by the controller 44. The controller 44 may supply the reverse biases VRi,..., VRn,..., VRn directly, or may control one or more voltages sources (not shown) and / or amplifiers (not shown) which provide the reverse biases VRh ..., VRn,..., VRnto the varactor diodes C(VRi),..., C(VRn),..., C(VRn). Each varactor diode C(VR„) is arranged to inject an impedance -i(wC( VRA)1 into the path of a corresponding signal 30 SA I) to provide the beamforming delay a„. Varactor diodes of the beamforming phase array 40 may be part of an integrated circuit flip-chip bonded to the substrate 2. In the example shown in Figure 21, each varactor diode C( VRn) is connected between system ground and the signal Sn(t) path. The reverse bias VRn provided by the 35 controller 44 is isolated from the signal Sn(t) path by connecting the varactor diode C(VRn) in series with a blocking capacitance Cbiock. The blocking capacitance Cbioek should be significantly larger than an upper bound (in use) of the varactor diode capacitance C(VRn), for example at least ten times. In this way, the total series capacitance will be dominated by the varactor diode capacitance C( VRn). 5 The configuration shown in Figure 21 is exemplary, and any other circuit suitable for coupling the signal paths S(t),..., SN(_t) to corresponding varactor diodes C( VR),..., C( VRn) may be used instead. In alternative implementations, each varactor diode C( VRn) could instead be connected to a signal path between the corresponding antenna Rxn and low noise amplifier 39„. 10 It will be appreciated that the blocking capacitance Cbiock will not block transient signals when one or more of the reverse biases VRly..., VRn,..., VRn are changed, for example when changing the orientation(s) Br, Brior the first and / or second arrays 5, 6. However, the rate and frequency of changing the orientation(s) Br, Bt of the first and / or 15 second arrays 5, 6 will be orders of magnitude below the carrier frequencies of RF signals 9,11, and may be easily removed with filtering. Additionally or alternatively, the relaying of radio signals may be temporarily switched off during periods when the orientation(s) Br, St for the first and / or second arrays 5, 6 are being changed. 20 Additionally or alternatively, the beamsteering phase array 42 may include (or take the form of) an array of M varactor diodes. For example, referring also to Figure 22, a portion of a third analog circuit 38c is shown. Although only the portion between the signal summer 41 and the transmitting antennae 25 Txi,..., Txm,..., Txm is shown in Figure 22, the second analog circuit 38c is the same as the analog circuit 38 and / or the second analog circuit 38b, except that the beamsteering phase array 42 takes the form of an array of M varactor diodes C( VRB,..., C(VRm),..., C(VRm), each having a capacitance C(VRm) which is a function of a corresponding reverse bias VR1}.... VRm,..., VRm supplied by the controller 44. The 30 controller 44 may supply the reverse biases VR,...., VRm,..., VRm directly, or may control one or more voltages sources (not shown) and / or amplifiers (not shown) which provide the reverse biases VRi,..., VRm,..., VRm to the varactor diodes C(VRB, —, C(VRm),..., C(VRm)- Each varactor diode C(VRm) injects an impedance -i(®C(VRm))1 which provides the beamforming delay Pm into the summed signal Sj{t) to provide the 35 corresponding output signal Pm(t). Varactor diodes of the beamsteering phase array 42 may be part of an integrated circuit flip-chip bonded to the substrate 2 (the same integrated circuit may provide varactor diodes for both the beamforming phase array 40 and the beamsteering phase array 42). The configuration shown in Figure 22 is exemplar}', and any other circuit suitable for 5 coupling the varactor diode capacitances C(VR^,..., C(VRm) into the summed signal Si(t) to provide the corresponding output signals Pi(t),..., Pu(t) may be used instead. . In alternative implementations, each varactor diode C( VRm) could instead be connected at a point between the corresponding transmission amplifier 43m and the antenna Txm. 10 Although examples have been described in which a number M of transmission amplifiers 431,..., 43m are used, the order of beamsteering and amplification maybe reversed. For example, referring also to Figure 23, a portion of a fourth analog circuit 38d is shown. 15 The fourth analog circuit 38d is the same as the third analog circuit 38c, except that the summed signal Si(t) is amplified by a single transmission amplifier 43 to output a base transmission signal HKO- The base transmission signal Hi(f) is subsequently split into M transmission channels, and the transmission signals ..., for transmission by the antennae Txb ..., Txm are generated by a beamsteering phase array 42 in the form 20 of an array of M varactor diodes C( VRi),..., C( VRm) ■ Similarly, in some implementations (not shown) of the hybrid circuit 56, the beamforming phase arrays 40 of first sub-arrays 57 and / or the beamsteering phase arrays 42 of second sub-arrays 61 may be implemented using varactor diodes. In 25 general, beamforming and / or beamsteering of any of the examples described hereinbefore may be implemented and / or replaced using varactor diodes C( VR) as described in relation to Figures 21 to 23. The blocking capacitance Cbiock connected in series with varactor diodes C(VRn), C(VRm) 30 may be implemented supported on the first and / or second faces 3,4 of the planar substrate 2. For example, by patterning areas of the first and / or second conductor layers 25, 28 and corresponding regions of the first, second or common ground plane layers 23, 26, 33. An additional dielectric (not shown) maybe deposited in regions corresponding to blocking capacitances Cbiock, or an existing antenna dielectric layer 24, 35 27 maybe used. Although claims have been formulated in this application to particular combinations of features, it should be understood that the scope of the disclosure of the present invention also includes any novel features or any novel combination of features disclosed herein either explicitly or implicitly or any generalization thereof, whether or 5 not it relates to the same invention as presently claimed in any claim and whether or not it mitigates any or all of the same technical problems as does the present invention. The applicant hereby gives notice that new claims may be formulated to such features and / or combinations of such features during the prosecution of the present application or of any further application derived therefrom. 10

Claims

1. A wireless transceiver comprising:a planar substrate having first and second opposite faces and having a thickness5 between the first and second opposite faces, the planar substrate having a minimum transmission of 50% for visible wavelengths;a plurality of first antennae supported on the first face;a plurality of second antennae supported on the second face;a circuit supported by the planar substrate and connected to the plurality of first 10 antennae and the plurality of second antennae, wherein the circuit comprises a plurality of vias formed through the thickness of the planar substrate for transmission of radio signals between the circuit and the first antennae and / or between the circuit and the second antennae, wherein the circuit is configured:to control the plurality of first antennae as a first phased array to receive15 the radio signals, the first phased array being directional and controllablyorientable within a first range of acute angles to a normal of the first face;to control the plurality of second antennae as a second phased array to retransmit the radio signals received using the first phased array, the second phased array being directional and controllably orientable within a second20 range of acute angles to a normal of the second face.

2. The wireless transceiver according to claim 1, wherein the circuit comprises one or more components supported on the first face and / or one or more components supported on the second face; and / or25 wherein the planar substrate comprises a laminate of two or more layers, andwherein the circuit comprises one or more components supported within the laminate planar substrate.

3. The wireless transceiver according to claim 1 of claim 2, wherein the circuit30 comprises a first microstrip line supported on the first face and a second microstrip line support on the second face, wherein the first and second microstrip lines are connected by corresponding vias; and / orwherein the circuit comprises one or more components flip-chip bonded to the planar substrate.

4. The wireless transceiver according to any one of claims 1 to 3, wherein:the circuit comprises an analog circuit configured for analog beamforming of the first phased array and / or analog beemsteering of the second phased array optionally wherein:the analog circuit comprises a first varactor diode corresponding to each first5 antenna of the first phased array, wherein each first varactor diode is configured toapply a phase shift to a signal received from the respective first antenna and the circuit is configured to control the plurality of first antennae as the first phased array by controlling the capacitances of the first varactor diodes; and / orthe analog circuit comprises a second varactor diode corresponding to each10 second antenna of the second phased array, wherein each second varactor diode is configured to apply a phase shift to a signal being transmitted to the respective second antenna and the circuit is configured control the plurality of second antennae as the second phased array by controlling the capacitances of the second varactor diodes.15 5- The wireless transceiver according to any one of claims 1 to 4, wherein thecircuit comprises one or more digital circuits configured for digital beamforming of the first phased array and / or digital beamsteering of the second phased array.

6. The wireless transceiver according to any one of claims 1 to 5, wherein the20 plurality of first antennae are arranged into a plurality of first sub-arrays, each first sub-array comprising two or more of the first antennae;wherein the plurality of second antennae are arranged into a plurality of second sub-arrays, each second sub-array comprising two or more of the second antennae;wherein the circuit is configured for hybrid beamforming and / or beamsteering;25 optionally wherein the circuit comprises:a plurality of first analog circuits, each first analog circuit configured to perform analog beamforming on signals received from a respective first subarray;a plurality of second analog circuits, each second analog circuit30 configured to perform analog beamsteering for a respective second sub-array;one or more digital circuits configured to perform digital beamforming on signals received from the first analog circuits to obtain a summed signal, and to perform beam-steering on the summed signal to generate and output a plurality of transmit signals to respective second analog circuits.

7. The wireless transceiver according to any one of claims 1 to 6, further comprising:a plurality of third antennae supported on the second face;a plurality of fourth antennae supported on the first face;5 wherein the circuit is further configured:to control the plurality of third antennae as a third phased array to receive radio signals, the third phased array being directional and controllably orientable within a third range of acute angles to the normal of the second face;to control the plurality of fourth antennae as a fourth phased array toio retransmit the radio signals received using the third phased array, the fourthphased array being directional and controllably orientable within a fourth range of acute angles to the normal of the first face.

8. The wireless transceiver according to any one of claims 1 to 7, wherein the15 circuit is configured, during a first period of an alternating cycle:to control the plurality of first antennae as the first phased array to receive radio signals; andto control the plurality of second antennae as the second phased array to retransmit the radio signals received using the first phased array;20 wherein the circuit is configured, during a second period of the alternatingcycle:to control the plurality of second antennae as the second phased array to receive radio signals; andto control the plurality of first antennae as the first phased array to25 retransmit the radio signals received using the second phased array.

9. The wireless transceiver according to claim 8 or claim 9, wherein the radio signals transmitted away from the second face have a lower power than radio signals transmitted away from the first face.3010. The wireless transceiver according to any one of claims 1 to 9, wherein the first and / or second antennae comprise a dielectric material having a loss-tangent which is less than a loss-tangent of the planar substrate.35 11. The wireless transceiver according to any one of claims 1 to 10, wherein thecircuit defines two or more passbands for receiving and retransmitting radio signals,and wherein the circuit is configurable such that one or more of the passbands may be disabled, optionally wherein one or more of:each of the two or more passbands comprises one or more analog filters; each of the two or more passbands comprises one or more digital filters;5 the circuit is configurable such that each of the two or more passbands may beindependently enabled or disabled during a one-time configuration process; andthe circuit is configurable such that each of the two or more passbands may be independently enabled or disabled in use.10 12. The wireless transceiver according to any one of claims i to 11, wherein theplurality of first antennae and the plurality of second antennae are multiplexed to function as transceivers, wherein during a first period the radio signals are relayed in a first direction and during a second period the radio signals are relayed in a second direction that is reverse of the first direction, and wherein the circuit is configurable to15 only retransmit the radio signals responsive to determining the radio signals are from one or more selected service providers.

13. The wireless transceiver according to any one of claims 1 to 12, wherein the entire length of connections between the circuit and the plurality of first antennae is 20 supported by the planar substrate; andwherein the entire length of connections between the circuit and the plurality of second antennae is supported by the planar substrate.

14. A structure comprising the wireless transceiver according to any one of claims 125 to 13-15. A method of using a wireless transceiver according to any one of claims 1 to 13 or a structure according to claim 14, the method comprising:controlling the plurality of first antennae as a first phased array to receive radio 30 signals, the first phased array being directional and controllably orientable within a first range of angles; andcontrolling the plurality of second antennae as a second phased array to retransmit the radio signals received using the first phased array, the second phased array being directional and controllably orientable within a second range of angles.AMENDMENTS TO THE CLAIMS HAVE BEEN FILED AS FOLLOWS:5510 07 25Claims1. A wireless transceiver configured to receive and retransmit radio signals within a time multiplexed wireless communications system, comprising:a plurality of first antennae;a plurality of second antennae; anda circuit connected to the plurality of first antennae and the plurality of second antennae, wherein the circuit is configured:to control the plurality of first antennae as a first phased array to receive the radio signals, the first phased array being directional and controllably orientable within a first range of angles;to control the plurality of second antennae as a second phased array to retransmit the radio signals received using the first phased array, the second phased array being directional and controllably orientable within a second range of angles; andwherein the circuit is configured to only retransmit the radio signals responsive to the circuit identifying, using packet header data of the radio signals, a source of the radio signals as corresponding to one or more selected service providers.

2. The wireless transceiver according to claim 1, further comprising a planar substrate having first and second faces, wherein:the first antennae are supported on the first face and the first range of angles is a first range of acute angles to a normal of the first face;the second antennae are supported on the second face and the second range of angles is a second range of acute angles to a normal of the second face; andthe circuit is supported on and / or within the planar substrate.

3. The wireless transceiver according to claim 2, wherein the circuit comprises one or more components supported on the first face and / or one or more components supported on the second face; and / orwherein the planar substrate comprises a laminate of two or more layers, and wherein the circuit comprises one or more components supported within the laminate planar substrate.

4. The wireless transceiver according to claim 2 or claim 3, wherein the circuit comprises a first microstrip line supported on the first face and a second microstrip line10 07 25support on the second face, wherein the first and second microstrip lines are connected by corresponding vias; and / orwherein the circuit comprises one or more components flip-chip bonded to the planar substrate.

55. The wireless transceiver according to any one of claims 1 to 4, wherein: the circuit comprises an analog circuit configured for analog beamforming of the first phased array and / or analog beemsteering of the second phased array optionally wherein:10 the analog circuit comprises a first varactor diode corresponding to each firstantenna of the first phased array, wherein each first varactor diode is configured to apply a phase shift to a signal received from the respective first antenna and the circuit is configured to control the plurality of first antennae as the first phased array by controlling the capacitances of the first varactor diodes; and / or15 the analog circuit comprises a second varactor diode corresponding to eachsecond antenna of the second phased array, wherein each second varactor diode is configured to apply a phase shift to a signal being transmitted to the respective second antenna and the circuit is configured control the plurality of second antennae as the second phased array by controlling the capacitances of the second varactor diodes.

206. The wireless transceiver according to any one of claims 1 to 5, wherein the circuit comprises one or more digital circuits configured for digital beamforming of the first phased array and / or digital beamsteering of the second phased array.25 7. The wireless transceiver according to any one of claims 1 to 6, wherein theplurality of first antennae are arranged into a plurality of first sub-arrays, each first sub-array comprising two or more of the first antennae;wherein the plurality of second antennae are arranged into a plurality of second sub-arrays, each second sub-array comprising two or more of the second antennae;30 wherein the circuit is configured for hybrid beamforming and / or beamsteering.

8. The wireless transceiver according to claim 7, wherein the circuit comprises: a plurality of first analog circuits, each first analog circuit configured to perform analog beamforming on signals received from a respective first sub-array;35 a plurality of second analog circuits, each second analog circuit configured toperform analog beamsteering for a respective second sub-array; and10 07 25one or more digital circuits configured to perform digital beamforming on signals received from the first analog circuits to obtain a summed signal, and to perform beam-steering on the summed signal to generate and output a plurality of transmit signals to respective second analog circuits.

59. The wireless transceiver according to any one of claims 2, or 3 to 8 when dependent via claim 2, further comprising:a plurality of third antennae supported on the second face; anda plurality of fourth antennae supported on the first face;10 wherein the circuit is further configured:to control the plurality of third antennae as a third phased array to receive radio signals, the third phased array being directional and controllably orientable within a third range of acute angles to the normal of the second face; and15 to control the plurality of fourth antennae as a fourth phased array toretransmit the radio signals received using the third phased array, the fourth phased array being directional and controllably orientable within a fourth range of acute angles to the normal of the first face.20 10. The wireless transceiver according to any one of claims 1 to 9, wherein thecircuit is configured, during a first period of an alternating cycle:to control the plurality of first antennae as the first phased array to receive radio signals; andto control the plurality of second antennae as the second phased array to 25 retransmit the radio signals received using the first phased array;wherein the circuit is configured, during a second period of the alternating cycle:to control the plurality of second antennae as the second phased array to receive radio signals; and30 to control the plurality of first antennae as the first phased array toretransmit the radio signals received using the second phased array.

11. The wireless transceiver according to claim 9 or claim 10 when dependent via claim 2, wherein the radio signals transmitted away from the second face have a lower 35 power than radio signals transmitted away from the first face.10 07 2512. The wireless transceiver according to any one of claims 2, or 3 to 11 when dependent via claim 2, wherein the first and / or second antennae comprise a dielectric material having a loss-tangent which is less than a loss-tangent of the planar substrate.5 13. The wireless transceiver according to any one of claims 1 to 12, wherein thecircuit defines two or more passbands for receiving and retransmitting radio signals, and wherein the circuit is configurable such that one or more of the passbands maybe disabled, optionally wherein one or more of:each of the two or more passbands comprises one or more analog filters;10 each of the two or more passbands comprises one or more digital filters;the circuit is configurable such that each of the two or more passbands may be independently enabled or disabled during a one-time configuration process; andthe circuit is configurable such that each of the two or more passbands may be independently enabled or disabled in use.1514. The wireless transceiver of any one of claims 1 to 13, configured to allow the selected service providers to be updated in use.

15. The wireless transceiver of claim 14, wherein the circuit is configured to receive 20 selected service provider modification messages comprising instructions to enableretransmission of radio signals originating from one or more service providers and / or to disable retransmission of radio signals originating from one or more other service providers.25 16. A structure comprising the wireless transceiver according to any one of claims 1to 5.

17. A method of using a wireless transceiver which comprises: a plurality of first antennae;30 a plurality of second antennae; anda circuit connected to the plurality of first antennae and the plurality of second antennae, the method comprising:using the circuit to control the plurality of first antennae as a first phased array to receive radio signals, the first phased array being directional and controllably35 orientable within a first range of angles; andusing the circuit to identify, using packet header data of the radio signals received using the first phased array, a source of the radio signals;in response to the source of the radio signals corresponds to one or more selected service providers, using the circuit to control the plurality of second antennae 5 as a second phased array to retransmit the radio signals, the second phased array being directional and controllably orientable within a second range of angles.LDCMApplication No: GB2412862.1Examiner:Dr John CullenClaims searched: 1-11, 13-15Date of search: 4 October 2024Patents Act 1977: Search Report under Section 17Documents considered to be relevant:Category Relevant to claims Identity of document and passage or figure of particular relevance X Y X:l-10, 13-15. Y:ll US 2020 / 0091990 Al (HO) See Figs 5 and 10 and paras 47-58 and 74-77. Y 11 US 2020 / 0067593 Al (GHARAVI et al.) See Figs 1 A, 2B and 4 and paras 36 and 105-107. A — WO 2020 / 231763 Al (CORNING INC) See Figs 2, 3 and 9 and paras 21-26, 32-34 and 36. A — US 8892048 Bl (TURNER) See Figs 1 and 3, line 60 of col 3 to line 28 of col 4 and line 28 of col 6 to line 29 of col 7. A — CN 111342222 A (ANHUI JINGZHUO LIGHT DISPLAY TECH CO LTD) See Abstract and Fig.

2. A — US 2020 / 0350980 Al (ROFOUGARAN et al.) See Fig. 1 and paras 18 and 24. A — US 2020 / 0336168 Al (HORMIS et al.) See Figs 4 and 9 and paras 60-64. A — US 2020 / 0145093 Al (CHENG et al.) See Figs 1 and 2 and para 31-36. A — Black, E et al, "Breaking Down mmWave Barriers with Holographic Beam Forming", 12 Feb 2020. Downloaded from http s: / / www. microwavej ournal. com / articles / 33433 -breaking-down-mmwave-barriers-with-holographic-beam-forming on 16 Dec 2021.Categories:X Document indicating lack of novelty or inventive step A Document indicating technological background and / or state of the art. Y Document indicating lack of inventive step if p Document published on or after the declared priority date but combined with one or more other documents of same category. before the filing date of this invention. & Member of the same patent family E Patent document published on or after, but with priority dateearlier than, the filing date of this application.Field of Search:Search of GB, EP, WO &US patent documents classified in the following areas of the UKCX :Worldwide search of patent documents classified in the following areas of the IPC____________HO IL; HO IQ; H04B; H05K________________________________________The following online and other databases have been used in the preparation of this search report Search-Patent, Search-NPLInternational Classification:Subclass Subgroup Valid From H04B 0007 / 155 01 / 01 / 2006 HO IL 0023 / 15 01 / 01 / 2006 H01Q 0003 / 26 01 / 01 / 2006 H01Q 0025 / 00 01 / 01 / 2006Application No: GB2412862.1Examiner: Dr John CullenClaims searched: 1-18Date of search: 25 March 2025Patents Act 1977Further Search Report under Section 17Documents considered to be relevant:Category Relevant to claims Identity of document and passage or figure of particular relevance Y 1-12, 17, 18 US 2020 / 0091990 Al (HO) See Figs 5 and 10 and paras 47-58 and 74-77 Y 1,15,16 US 2008 / 0274718 Al (ROPER) See paragraphs 9, 11, 17, 29-32, 35, 38, 41, 45 and Figure 4 Y 1, 14-16 US 2009 / 0176487 Al (DEMARCO) See paragraphs 22-26 and 34, and Figure 1 Y 1,13,15, 16 US 2006 / 0205342 Al (MCKAY et al.) See Paragraphs 6, 10, 49, 57, 58, 65, 67, 71 and 77, and Figs 1, 2 A and 4-10 Y 1,13,15, 16 US2008 / 311848 B2 (PROCTOR et al.) JtS 1 at least EP 4106477 Al (SEAT SA) See whole documentCategories:X Document indicating lack of novelty or inventive step A Document indicating technological background and / or state of the art. Y Document indicating lack of inventive step if P Document published on or after the declared priority date but combined with one or more other documents of same category. before the filing date of this invention. & Member of the same patent family E Patent document published on or after, but with priority date earlier than, the filing date of this application.Field of Search:International Classification:Subclass Subgroup Valid From H04B 0007 / 155 01 / 01 / 2006 HO IL 0023 / 15 01 / 01 / 2006 H01Q 0003 / 26 01 / 01 / 2006 H01Q 0025 / 00 01 / 01 / 2006 H04W 0048 / 00 01 / 01 / 2009

Citation Information

Patent Citations

  • Transparent antenna device

    CN111342222A

  • Method for a mobile relay system, method for user equipment, method for an application server, apparatus, vehicle and computer program

    EP4106477A1

  • Remotely controllable and reconfigurable wireless repeater

    US20060205342A1

  • Restricted access full band repeater

    US20080274718A1

  • Configuration of a Repeater

    US20080311848A1